BLOW-BY GAS TREATING DEVICE AND ENGINE INCLUDING BLOW-BY GAS TREATING DEVICE
20220403764 · 2022-12-22
Inventors
- Masayasu TAKAMI (Sakai-shi, Osaka, JP)
- Katsunori IKEMACHI (Sakai-shi, Osaka, JP)
- Yuki YOSHITA (Sakai-shi, Osaka, JP)
- Masayuki TOCHIMOTO (Sakai-shi, Osaka, JP)
- Kazuya ISHIDA (Sakai-shi, Osaka, JP)
- Tomohiro SUZUKI (Sakai-shi, Osaka, JP)
- Yu SUZUKI (Sakai-shi, Osaka, JP)
- Toru SUZUKI (Sakai-shi, Osaka, JP)
- Kentaro KITA (Sakai-shi, Osaka, JP)
Cpc classification
F01M13/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M2011/0033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M2013/0438
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M11/0004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M2013/0461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01M13/0416
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01M13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The blow-by gas treating device 100 has a main structure portion 101 which separates oil OL from the blow-by gas BG and an outlet portion 40 which supplies gas G having been separated from the blow-by gas BG to an intake system. The main structure portion 101 has a first blow-by gas taking-in portion 111, a second blow-by gas taking-in portion 112, a separating portion 330 which separates the blow-by gas BG into oil OL and gas G, a first oil guiding portion 151 which guides the oil OL to a front side, a second oil guiding portion 152 which guides the oil OL to a rear side, a first oil drain 161 which discharges the oil OL into the engine, and a second oil drain 162 which discharges the oil OL into the engine.
Claims
1. A blow-by gas treating device for treating a blow-by gas generated in an engine, the device comprising: a main structure portion which is provided in a head cover of the engine, takes in and guides the blow-by gas, and separates from the blow-by gas an oil contained in the blow-by gas; and an outlet portion which supplies the gas, which is a gas after the oil has been separated from the blow-by gas by the main structure portion and has been guided from the main structure portion, to an intake system of the engine, wherein the main structure portion has: a first blow-by gas taking-in portion provided on a front side of the engine and taking in the blow-by gas; a second blow-by gas taking-in portion provided on a rear side of the engine and taking in the blow-by gas; a separating portion provided between the first blow-by gas taking-in portion and the second blow-by gas taking-in portion in a front-back direction of the engine and separating the blow-by gas, having been taken in by the first blow-by gas taking-in portion and the second blow-by gas taking-in portion, into the oil and the gas; a first oil guiding portion which is provided from the separating portion toward the front side and guides the oil, having been separated from the blow-by gas by the separating portion, to the front side; a second oil guiding portion which is provided from the separating portion toward the rear side and guiding the oil, having been separated from the blow-by gas by the separating portion, to the rear side; a first oil drain which is provided on the front side, temporarily stores the oil having been guided by the first oil guiding portion and discharges the oil into the engine; and a second oil drain which is provided on the rear side, temporarily stories the oil having been guided by the second oil guiding portion and discharges the oil into the engine.
2. The blow-by gas treating device according to claim 1, wherein the separating portion is provided at a center part between the first oil drain and the second oil drain in the front-back direction.
3. The blow-by gas treating device according to claim 1, wherein the first oil guiding portion and the second oil guiding portion exhibit a groove shape.
4. The blow-by gas treating device according to claim 1, wherein the main structure portion has a partition wall portion disposed horizontally along the front-back direction; the first blow-by gas taking-in portion and the second blow-by gas taking-in portion are provided on a lower surface side of the partition wall portion; and the first oil guiding portion and the second oil guiding portion are provided on an upper surface side of the partition wall portion.
5. The blow-by gas treating device according to claim 1, wherein the separating portion has: a flow-velocity rise operating portion which raises a flow velocity of the blow-by gas along a vertical direction; a filter through which the blow-by gas, the flow velocity of which has been raised by the flow-velocity rise operating portion, is passed; and an impact plate which extends in a horizontal direction and causes the blow-by gas having passed the filter to be collided and separated into the oil and the gas.
6. The blow-by gas treating device according to claim 1, wherein the outlet portion has an oil guiding surface for guiding the oil remaining in the gas after having been separated from the blow-by gas into the head cover.
7. The blow-by gas treating device according to claim 6, wherein, the outlet portion has: an outlet mounting portion having a through hole which is provided on an upper part of the head cover and through which the gas is passed; and a container body which is mounted on the outlet mounting portion and temporarily stores the gas having passed through the through hole and supplies the gas to the intake system, wherein the oil guiding surface is an oil-guiding inclined surface inclined downward toward the through hole from a mating surface between the outlet mounting portion and the container body.
8. The blow-by gas treating device according claim 7, wherein, the oil-guiding inclined surface is formed over an entire region from the mating surface to an inner surface of the through hole.
9. The blow-by gas treating device according to claim 7, wherein the oil-guiding inclined surface exhibits a part of a surface of a pyramid.
10. The blow-by gas treating device according to claim 6, further comprising: a guiding wall portion which is provided in the head cover and guides the gas after having been separated from the blow-by gas to the outlet portion, wherein the oil having been guided by the oil guiding surface into the head cover from the outlet portion flows on the guiding wall portion and is led to at least one of the first oil guiding portion and the second oil guiding portion.
11. The blow-by gas treating device according to claim 1, wherein the separating portion is provided with inclination in a direction in which the oil having been separated from the blow-by gas by the separating portion is led to the first oil guiding portion and the second oil guiding portion.
12. The blow-by gas treating device according to claim 11, wherein the separating portion has: a flow-velocity rise operating portion which raises a flow velocity of the blow-by gas along a direction inclined with respect to a vertical direction; a filter through which the blow-by gas, the flow velocity of which has been raised by the flow-velocity rise operating portion, is passed; and an impact plate which causes the blow-by gas having passed the filter to be collided and separated into the oil and the gas, wherein a surface of the flow-velocity rise operating portion faced with the impact plate is inclined downward toward the first oil guiding portion and the second oil guiding portion.
13-18. (canceled)
19. The blow-by gas treating device according to claim 1, wherein the separating portion has: a flow-velocity rise operating portion which raises a flow velocity of the blow-by gas; a filter through which the blow-by gas, the flow velocity of which has been raised by the flow-velocity rise operating portion, is passed; an impact plate which causes the blow-by gas having passed through the filter to be collided and separated into the oil and the gas; a fastening member which is fastened to the flow-velocity rise operating portion and holds the filter between the flow-velocity rise operating portion and the impact plate; and a deformation suppressing member which is disposed between the flow-velocity rise operating portion and the impact plate and suppresses deformation of the filter caused by the fastening of the fastening member.
20. The blow-by gas treating device according to claim 19, wherein the fastening member has: a shaft part fastened to the flow-velocity rise operating portion; and a head part provided on one of end portions of the shaft part, wherein the deformation suppressing member is a cylindrical member having a hole through which the shaft part is passed and is disposed between the flow-velocity rise operating portion and the head part in a state where the shaft part is passed through the hole.
21-22. (canceled)
23. An engine comprising a blow-by gas treating device for treating a blow-by gas generated in the engine, wherein the blow-by gas treating device has: a main structure portion which is provided in a head cover of the engine, takes in and guides the blow-by gas, and separates from the blow-by gas an oil contained in the blow-by gas; and an outlet portion which supplies the gas, which is a gas after the oil has been separated from the blow-by gas by the main structure portion and has been guided from the main structure portion, to an intake system of the engine, wherein the main structure portion has: a first blow-by gas taking-in portion provided on a front side of the engine and taking in the blow-by gas; a second blow-by gas taking-in portion provided on a rear side of the engine and taking in the blow-by gas; a separating portion provided between the first blow-by gas taking-in portion and the second blow-by gas taking-in portion in a front-back direction of the engine and separating the blow-by gas, having been taken in by the first blow-by gas taking-in portion and the second blow-by gas taking-in portion, into the oil and the gas; a first oil guiding portion which is provided from the separating portion toward the front side and guides the oil, having been separated from the blow-by gas by the separating portion, to the front side; a second oil guiding portion which is provided from the separating portion toward the rear side and guiding the oil, having been separated from the blow-by gas by the separating portion, to the rear side; a first oil drain which is provided on the front side, temporarily stores the oil having been guided by the first oil guiding portion and discharges the oil into the engine; and a second oil drain which is provided on the rear side, temporarily stories the oil having been guided by the second oil guiding portion and discharges the oil into the engine.
24. The blow-by gas treating device according to claim 2, wherein the first oil guiding portion and the second oil guiding portion exhibit a groove shape.
25. The blow-by gas treating device according to claim 2, wherein the main structure portion has a partition wall portion disposed horizontally along the front-back direction; the first blow-by gas taking-in portion and the second blow-by gas taking-in portion are provided on a lower surface side of the partition wall portion; and the first oil guiding portion and the second oil guiding portion are provided on an upper surface side of the partition wall portion.
26. The blow-by gas treating device according to claim 2, wherein the separating portion has: a flow-velocity rise operating portion which raises a flow velocity of the blow-by gas along a vertical direction; a filter through which the blow-by gas, the flow velocity of which has been raised by the flow-velocity rise operating portion, is passed; and an impact plate which extends in a horizontal direction and causes the blow-by gas having passed the filter to be collided and separated into the oil and the gas.
27. The blow-by gas treating device according to claim 8, wherein the oil-guiding inclined surface exhibits a part of a surface of a pyramid.
28. The blow-by gas treating device according to claim 7, further comprising: a guiding wall portion which is provided in the head cover and guides the gas after having been separated from the blow-by gas to the outlet portion, wherein the oil having been guided by the oil guiding surface into the head cover from the outlet portion flows on the guiding wall portion and is led to at least one of the first oil guiding portion and the second oil guiding portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0078]
[0079]
[0080]
[0081]
[0082]
[0083]
[0084]
[0085]
[0086]
[0087]
[0088]
DESCRIPTION OF EMBODIMENTS
[0089] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the drawings.
[0090] Note that, the embodiments described below are preferred specific examples of the present invention, and technically preferable various limitations are given, but the scope of the present invention is not limited to these modes unless there is description particularly limiting the present invention in the following description. Moreover, the same signs are given to similar constituent elements in each of the figures, and detailed description will be omitted as appropriate.
[0091] (Outline of Engine 1)
[0092]
[0093] The engine 1 shown in
[0094] (Structure Example of Engine 1)
[0095] The engine 1 includes a cylinder block 2, a cylinder head 3, a head cover 4, an oil pun 7, and a blow-by gas treating device 100. The cylinder head 3 is assembled on the cylinder block 2. The head cover 4 is assembled onto the cylinder head 3. The cylinder block 2 has a cylinder 5 on an upper part and a crank case 6 on a lower part. The oil pun 7 is disposed on a lower part of the crank case 6. A piston 8 is disposed in the cylinder 5. A crank shaft 9 is disposed in the crank case 6. The piston 8 is connected to the crank shaft 9 through a con rod 10.
[0096] As shown in
[0097] The rocker arm 17 is biased by a spring 18 to an upper end portion side of the push rod 15. An intake valve 19 and an exhaust valve 20 are moved vertically by power transmitted through the push rod 15 and the rocker arm 17 by rotation of the valve cam shaft 12 and open/close an intake port and an exhaust port, respectively.
[0098] As shown in
[0099] As shown in
[0100] As shown in
[0101] A connecting pipe 50T of an intake pipe 50 and the pipe 41 shown in
[0102] On the other hand, an exhaust from the exhaust passage 31 is supplied to a turbine 62 of a turbocharger 60 and rotates the turbine 62 and a blower 61 at a high speed. The mixed intake air B is supplied to the blower 61 of turbocharger 60 and is compressed. Compressed intake air C supercharges the intake passage 30 of the intake system.
[0103] (Blow-by Gas Treating Device 100 According to First Embodiment)
[0104] Subsequently, a preferred structure example of the blow-by gas treating device 100 according to the first embodiment will be described by referring to
[0105]
[0106]
[0107] Note that
[0108] Here, an X-direction shown in
[0109] As shown in
[0110] The blow-by gas treating device 100 shown in
[0111] <Main Structure Portion 101 of Blow-by Gas Treating Device 100>
[0112] First, a preferred structure example of the main structure portion 101 of the blow-by gas treating device 100 will be described by referring to
[0113] As shown in
[0114] As shown in
[0115] As shown in
[0116] As shown in
[0117] <First Blow-by Gas Taking-In Portion 111 and Second Blow-by Gas Taking-In Portion 112>
[0118] Subsequently, the first blow-by gas taking-in portion 111 and the second blow-by gas taking-in portion 112 will be described by referring to
[0119] The first blow-by gas taking-in portion 111 and the second blow-by gas taking-in portion 112 are holes formed by the partition wall portion 200 and the guiding plate 295 and take in the blow-by gas BG. The partition wall portion 200 is separated into a first guiding lower-surface portion 231 side and a second guiding lower-surface portion 232 side with the separating portion 330 as a center. The first blow-by gas taking-in portion 111 is provided at a position closer to the front surface portion 4B (that is, on the front side of the engine 1) and takes in the blow-by gas BG from the front side. In addition, the second blow-by gas taking-in portion 112 is provided at a position closer to the rear surface portion 4C (that is, on the rear side of the engine 1) and takes in the blow-by gas BG from the rear side. The guiding plate 295 shown in
[0120] As shown in
[0121] <Impactor 120 of Separating Portion 330>
[0122] The separating portion 330 shown in
[0123] The impactor 120 has a function of a nozzle or an orifice. A throttle hole 121 axial direction of the impactor 120 is a so-called vertical throttle hole along a vertical direction, which is the Z-direction, or the up-down direction. The impactor 120 is a rise operating portion which can raise the flow velocity of the blow-by gas BG by having the blow-by gas BG passed upward along the throttle hole 121. The impactor 120 is disposed at the center position RP with respect to the X-direction of the partition wall portion 200. As a result, the blow-by gas BG taken in by the first blow-by gas taking-in portion 111 and the blow-by gas BG taken in by the second blow-by gas taking-in portion 112 are both guided to the impactor 120 more reliably. The impactor 120 raises the flow velocity of the blow-by gas BG flowing in the throttle hole 121 and then, leads the blow-by gas BG to the filter 130.
[0124] <Filter 130 of Separating Portion 330>
[0125] As shown in
[0126] As described above, the guiding wall portion 203 is provided between the partition wall portion 200 and the upper surface portion 4A of the head cover 4. Thus, the gas G not containing the mist of the oil OL emitted from the filter 130 is guided by the guiding wall portion 203, passes through a passage 135 of the upper region 4Q and is led to the outlet portion 40.
[0127] The separating portion 330 is located at the center position RP in the X-direction shown in
[0128] <First Oil-Guiding Groove Portion 151 and Second Oil-Guiding Groove Portion 152>
[0129] The first oil-guiding groove portion 151 shown in
[0130] Note that the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 may be connected to each other. In this case, in one of the oil-guiding groove portions, a portion provided from the filter 130 toward the front side of the engine 1 is called a first oil-guiding groove portion 151, while a portion provided from the filter 130 toward the rear side of the engine 1 is called a second oil-guiding groove portion 152.
[0131] <First Oil Drain 161 and Second Oil Drain 162>
[0132] The first oil drain 161 is provided on the front side of the engine 1 and presents a cylindrical shape, for example. The first oil drain 161 is provided downward, which is a Z1-direction in the head cover 4 at a front position of the first guiding lower-surface portion 231 of the partition wall portion 200. The first oil drain 161 has a check valve, temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1. Similarly, the second oil drain 162 is provided on the rear side of the engine 1 and presents a cylindrical shape, for example. The second oil drain 162 is provided downward, which is the Z1-direction in the head cover 4 at a rear position of the second guiding lower-surface portion 232 of the partition wall portion 200. The second oil drain 162 has a check valve, temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1.
[0133] As a result, if the engine 1 is inclined to the front side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X1-direction by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged in the Z1-direction through the first oil drain 161. Similarly, if the engine 1 is inclined to the rear side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X2-direction by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged in the Z1-direction through the second oil drain 162. In the head cover 4, the oil OL having been discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 from the head cover 4 shown in
[0134] (Action Example of Blow-by Gas Treating Device 100)
[0135] Subsequently, an action example of the blow-by gas treating device 100 in the engine 1 described above will be explained by referring to
[0136] The blow-by gas BG having leaked from between the piston 8 and the cylinder 5 shown in
[0137] The impactor 120 raises the flow velocity of the blow-by gas BG flowing into the throttle hole 121 and then, leads the blow-by gas BG to the filter 130. The blow-by gas BG whose flow velocity has been raised passes through the filter 130 and collides against the impact plate 133 and then, it is separated into the oil OL and the gas G not containing the mist of the oil OL.
[0138] The gas G having been separated from the blow-by gas BG by the separating portion 330 is emitted from the filter 130, rises and passes through the passage 135 of the upper region 4Q and is sent to the outlet portion 40.
[0139] On the other hand, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is, if the engine 1 is inclined to the front side, emitted from the filter 130, guided to the front indicated by the X1-direction by the first oil-guiding groove portion 151, and is led to the first oil drain 161 on the front side. Similarly, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is, if the engine 1 is inclined to the rear side, emitted from the filter 130, guided to the rear indicated by the X2-direction by the second oil-guiding groove portion 152, and is led to the second oil drain 162 on the rear side.
[0140] The oil OL having been guided by the first oil-guiding groove portion 151 to the first oil drain 161 is temporarily stored in the first oil drain 161 and then, is discharged into the engine 1 through the check valve provided in the first oil drain 161. Similarly, the oil OL having been guided by the second oil-guiding groove portion 152 to the second oil drain 162 is temporarily stored in the second oil drain 162 and then, is discharged into the engine 1 through the check valve provided in the second oil drain 162. The oil OL having been discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 through the oil return path 99 from inside the head cover 4, for example.
[0141] By the way, the engine 1 is inclined to a front direction or a rear direction depending on start or stop or acceleration or deceleration performed when the vehicle on which the engine 1 shown in
[0142] On the other hand, according to the blow-by gas treating device 100 and the engine 1 including the blow-by gas treating device 100 according to this embodiment, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided to the front side of the engine 1 by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged into the engine 1. Moreover, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided to the rear side of the engine 1 by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged into the engine 1. Thus, in the blow-by gas treating device 100 according to this embodiment, the discharge path of the oil OL having been separated from the blow-by gas BG by the separating portion 330 is clear. Moreover, the gas G after the oil OL has been separated from the blow-by gas BG is led to the outlet portion 40 of the blow-by gas treating device 100 by the main structure portion 101. Then, the outlet portion 40 of the blow-by gas treating device 100 supplies the gas G having been led by the main structure portion 101 to the intake system of the engine 1. As described above, in the blow-by gas treating device 100 according to this embodiment, the discharge path of the oil OL having been separated from the blow-by gas BG by the separating portion 330 and the discharge path of the gas G having been separated from the blow-by gas BG by the separating portion 330 are clearly discriminated. As a result, even if the engine 1 is inclined to the front-back direction, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be suppressed. Moreover, since the flowing of the mist of the oil OL to the intake system can be suppressed, burning of the mist of the oil OL can be suppressed, and purification of an exhaust gas can be promoted.
[0143] Moreover, the separating portion 330 which separates the blow-by gas BG into the oil OL and the gas G is provided at the center part, that is, the center position RP between the first oil drain 161 which temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1 and the second oil drain 162 which temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1. As described above, the separating portion 330 is provided at a position relatively far from the first oil drain 161 and the second oil drain 162. Thus, even if the engine 1 is inclined in the front-back direction, mixing or re-mixing of the oil OL temporarily stored in the first oil drain 161 and the second oil drain 162 or the oil OL or the mist of the oil OL present above the first oil drain 161 and the second oil drain 162 in the gas G having been separated from the blow-by gas BG by the separating portion 330 can be suppressed. As a result, even if the engine 1 is inclined in the front-back direction, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be further suppressed.
[0144] Moreover, since mixing or re-mixing of the oil OL or the mist of the oil OL in the gas G having been separated from the blow-by gas BG by the separating portion 330 can be suppressed, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be suppressed regardless of the position of the outlet portion 40. As a result, a degree of freedom in selecting an installation position or an installation direction of the outlet portion 40 can be increased.
[0145] The first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 present the groove shape and thus, even if the engine 1 is inclined in the front-back direction, the oil OL having been separated from the blow-by gas BG by the separating portion 330 can be guided to the front side and the rear side of the engine 1 reliably even with a simple structure.
[0146] Moreover, according to the blow-by gas treating device 100 according to this embodiment, the first blow-by gas taking-in portion 111 as well as the second blow-by gas taking-in portion 112 which take in the blow-by gas BG, and the first oil-guiding groove portion 151 as well as the second oil-guiding groove portion 152 which guide the oil OL are provided separately at positions on both sides on the upper surface side and the lower surface side through the common partition wall portion 200. Therefore, the first blow-by gas taking-in portion 111 as well as the second blow-by gas taking-in portion 112 and the first oil-guiding groove portion 151 as well as the second oil-guiding groove portion 152 can be provided as single members on the partition wall portion 200. Therefore, a dimension V (see
[0147] Moreover, the blow-by gas BG passes through the filter 130 and collides against the impact plate 133 after having the flow velocity raised by the impactor 120. Thus, the blow-by gas BG is separated into the oil OL and the gas G excluding the mist of the oil OL more reliably. Moreover, the impactor 120 raises the flow velocity of the blow-by gas BG along the vertical direction (up-down direction) at the center position RP in the front-back direction of the engine 1. Furthermore, the impact plate 133 extends in the horizontal direction and causes the blow-by gas BG having passed through the filter 130 to be collided. Thus, as compared with the case where the impactor raises the flow velocity of the blow-by gas along the horizontal direction and causes the blow-by gas to collide against the impact plate extending in the vertical direction, the dimension V in the up-down direction of the blow-by gas treating device 100 can be suppressed.
[0148] Subsequently, a second embodiment of the present invention will be described.
[0149] Note that, when constituent elements of the blow-by gas treating device according to the second embodiment are similar to the constituent elements of the blow-by gas treating device according to the first embodiment, duplicated explanation will be omitted as appropriate, and different points will be mainly explained below.
[0150] (Blow-by Gas Treating Device 100 According to Second Embodiment)
[0151] A preferred structure example of the blow-by gas treating device 100 according to the second embodiment will be described by referring to
[0152]
[0153]
[0154]
[0155] Here, the X-direction shown in
[0156] As shown in
[0157] The blow-by gas treating device 100 shown in
[0158] <Main Structure Portion 101 of Blow-by Gas Treating Device 100 According to Second Embodiment>
[0159] First, a preferred structure example of the main structure portion 101 of the blow-by gas treating device 100 according to the second embodiment will be described by referring to
[0160] As shown in
[0161] As shown in
[0162] As shown in
[0163] As shown in
[0164] <First Blow-by Gas Taking-In Portion 111 and Second Blow-by Gas Taking-In Portion 112>
[0165] Subsequently, the first blow-by gas taking-in portion 111 and the second blow-by gas taking-in portion 112 will be described by referring to
[0166] The first blow-by gas taking-in portion 111 and the second blow-by gas taking-in portion 112 are holes formed by the partition wall portion 200 and the guiding plate 295 and take in the blow-by gas BG. The partition wall portion 200 is separated into the first guiding lower-surface portion 231 side and the second guiding lower-surface portion 232 side with the separating portion 330 as the center. The first blow-by gas taking-in portion 111 is provided at a position closer to the front surface portion 4B (that is, on the front side of the engine 1) and takes in the blow-by gas BG from the front side. In addition, the second blow-by gas taking-in portion 112 is provided at a position closer to the rear surface portion 4C (that is, on the rear side of the engine 1) and takes in the blow-by gas BG from the rear side. The guiding plate 295 shown in
[0167] As shown in
[0168] <Impactor 120 of Separating Portion 330>
[0169] The separating portion 330 shown in
[0170] The impactor 120 has a function of a nozzle or an orifice. An axial direction of the throttle hole 121 of the impactor 120 is a so-called vertical throttle hole along the vertical direction, which is the Z-direction, or the up-down direction. The impactor 120 is the flow-velocity rise operating portion which can raise the flow velocity of the blow-by gas BG by having the blow-by gas BG passed upward along the throttle hole 121. The impactor 120 is disposed at the center position RP with respect to the X-direction of the partition wall portion 200. As a result, the blow-by gas BG taken in by the first blow-by gas taking-in portion 111 and the blow-by gas BG taken in by the second blow-by gas taking-in portion 112 are uniformly guided to the impactor 120. The impactor 120 raises the flow velocity of the blow-by gas BG flowing in the throttle hole 121 and then, leads the blow-by gas BG to the filter 130.
[0171] <Filter 130 of Separating Portion 330>
[0172] As shown in
[0173] As described above, the guiding wall portion 203 is provided between the partition wall portion 200 and the upper surface portion 4A of the head cover 4. Thus, the gas G not containing the mist of the oil OL emitted from the filter 130 is guided by the guiding wall portion 203, passes through the passage 135 of the upper region 4Q and is led to the outlet portion 40. The guiding wall portion 203 can guide the gas G having been separated by the separating portion 330 to the outlet portion 40, since it is disposed in the head cover 4.
[0174] The separating portion 330 is located at the center position RP in the X-direction shown in
[0175] <First Oil-Guiding Groove Portion 151 and Second Oil-Guiding Groove Portion 152>
[0176] The first oil-guiding groove portion 151 shown in
[0177] Note that the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 may be connected to each other. In this case, in one of the oil-guiding groove portions, a portion provided from the filter 130 toward the front side of the engine 1 is called the first oil-guiding groove portion 151, while a portion provided from the filter 130 toward the rear side of the engine 1 is called the second oil-guiding groove portion 152.
[0178] <First Oil Drain 161 and Second Oil Drain 162>
[0179] The first oil drain 161 is provided on the front side of the engine 1 and presents a cylindrical shape, for example. The first oil drain 161 is provided downward, which is the Z1-direction in the head cover 4 at a front position of the first guiding lower-surface portion 231 of the partition wall portion 200. The first oil drain 161 has a check valve, temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1. Similarly, the second oil drain 162 is provided on the rear side of the engine 1 and presents a cylindrical shape, for example. The second oil drain 162 is provided downward, which is the Z1-direction in the head cover 4 at a rear position of the second guiding lower-surface portion 232 of the partition wall portion 200. The second oil drain 162 has a check valve, temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1.
[0180] As a result, if the engine 1 is inclined to the front side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X1-direction by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged in the Z1-direction through the first oil drain 161. Similarly, if the engine 1 is inclined to the rear side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X2-direction by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged in the Z1-direction through the second oil drain 162. In the head cover 4, the oil OL having been discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 from the head cover 4 shown in
[0181] <Structure Example of Outlet Portion 40 of Blow-by Gas Treating Device 100 According to Second Embodiment>
[0182] Subsequently, a structure example of the outlet portion 40 of the blow-by gas treating device 100 according to the second embodiment will be described by referring to
[0183] As having been already described, the outlet portion 40 shown in
[0184] The outlet portion 40 adjusts the pressure of the gas G at the substantially center position CP, for example, of the engine 1 and sends only the gas G having been led from the main structure portion 101 to the pipe 41 of the intake system in the engine 1. In the outlet portion 40, a pressure regulation valve (diaphragm) 350, for example, is provided (See
[0185] As illustrated in
[0186] As shown in
[0187] The container body 750 shown in
[0188] As shown in
[0189] As shown in
[0190] As shown in
[0191] As shown in
[0192] (Action Example of Blow-by Gas Treating Device 100 According to Second Embodiment)
[0193] Subsequently, an action example of the blow-by gas treating device 100 according to the second embodiment will be explained by referring to
[0194] The blow-by gas BG having leaked from between the piston 8 and the cylinder 5 shown in
[0195] The impactor 120 raises the flow velocity of the blow-by gas BG flowing into the throttle hole 121 and then, leads the blow-by gas BG to the filter 130. The blow-by gas BG whose flow velocity has been raised passes through the filter 130 and collides against the impact plate 133, whereby it is separated into the oil OL and the gas G not containing the mist of the oil OL.
[0196] The gas G having been separated from the blow-by gas BG by the separating portion 330 is emitted from the filter 130, rises and is guided along the guiding wall portion 203, passes through the passage 135 of the upper region 4Q and is sent to the outlet portion 40. The gas G sent to the outlet portion 40 passes through the through hole 680 of the outlet mounting portion 700 and is temporarily stored in the internal spaces 720, 721 of the container body 750. Then, when internal pressures of the internal spaces 720, 721 become a predetermined pressure or more, or when an internal pressure of the pipe 41 becomes a predetermined pressure or less, the gas G temporarily stored in the internal spaces 720, 721 of the container body 750 passes through the pressure regulation valve 350, is led to the sub pipe 72 of the blow-by gas mixing joint 70 through the pipe 41, and is mixed in the new intake air AR.
[0197] Here, the separating portion 330 cannot completely separate the blow-by gas BG into the oil OL and the gas G in some cases. For example, the oil OL contained in the blow-by gas BG is not completely separated from the blow-by gas BG by the separating portion 330 but is led to the outlet portion 40 in some cases. Then, there is a concern that the oil OL contained in the blow-by gas BG remains in the outlet portion 40. For example, if there is a horizontal plane in the path through which the blow-by gas BG flows in the outlet portion 40, there is a concern that the oil OL contained in the blow-by gas BG remains on the horizontal plane.
[0198] When the oil OL remains in the outlet portion 40, since the internal pressures of the internal spaces 720, 721 of the outlet portion 40 are relatively high, even if the seal member 745 is provided, there is a concern that the remaining oil OL deludes out to the outside of the engine 1 from the gap between the mating surface 730 of the outlet mounting portion 700 and the mating surface 770 of the container body 750. Alternatively, when the oil OL remains in the outlet portion 40, the remaining oil OL is mixed with the steam contained in the blow-by gas BG and becomes an emulsion in some cases. When the emulsion is generated, there is a concern that a path of the blow-by gas BG is blocked. If the path of the blow-by gas BG is blocked, the internal pressure of the engine 1 rises, and there is a concern that components such as an oil gauge guide provided in the crank case 6, for example, is broken. Moreover, if the path of the blow-by gas BG is blocked, the internal pressure of the engine 1 rises, and there is a concern that the turbocharger sucks in the oil OL. As described above, if the oil OL contained in the blow-by gas BG remains in the outlet portion 40, such nonconformity occurs that the oil OL deludes out to the outside of the engine 1 or blocks the path of the blow-by gas BG.
[0199] On the other hand, the outlet mounting portion 700 of the blow-by gas treating device 100 according to this embodiment has the oil-guiding inclined surface 740. As described above, the oil-guiding inclined surface 740 is inclined downward toward the through hole 680 from the mating surface 730. Thus, even if the oil OL contained in the blow-by gas BG is led to the outlet portion 40, that is, even if the oil OL remains in the gas G having been separated from the blow-by gas BG by the separating portion 330, the oil OL flows on the oil-guiding inclined surface 740 and is guided into the head cover 4. As a result, remaining of the oil OL contained in the blow-by gas BG in the outlet portion 40 can be suppressed.
[0200] The oil OL having been guided from the outlet portion 40 into the head cover 4 by the oil-guiding inclined surface 740 flows on the guiding wall portion 203 and is led at least to either one of the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. At this time, if the guiding wall portion 203 is inclined downward toward the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152, the oil OL is smoothly led from the guiding wall portion 203 at least by either one of the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. The oil OL having been led to the first oil-guiding groove portion 151 is guided forward indicated by the X1-direction shown in
[0201] On the other hand, if the engine 1 is inclined to the front side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is emitted from the filter 130, is guided forward indicated by the X1-direction by the first oil-guiding groove portion 151 and is led to the first oil drain 161 on the front side. Similarly, if the engine 1 is inclined to the rear side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is emitted from the filter 130, is guided rearward indicated by the X2-direction by the second oil-guiding groove portion 152 and is led to the second oil drain 162 on the rear side.
[0202] The oil OL having been guided to the first oil drain 161 by the first oil-guiding groove portion 151 is temporarily stored in the first oil drain 161 and then, discharged into the engine 1 through the check valve provided on the first oil drain 161. Similarly, the oil OL having been guided to the second oil drain 162 by the second oil-guiding groove portion 152 is temporarily stored in the second oil drain 162 and then, discharged into the engine 1 through the check valve provided on the second oil drain 162. The oil OL discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 from inside of the head cover 4 through the oil return path 99, for example.
[0203] According to the blow-by gas treating device 100 and the engine 1 according to this embodiment, the outlet portion 40 has the oil-guiding inclined surface 740 as an oil guiding surface for guiding the oil OL remaining in the gas G after having been separated from the blow-by gas BG into the head cover 4. As a result, even if the oil OL remains in the gas G after having been separated from the blow-by gas BG by the separating portion 330, the blow-by gas treating device 100 according to this embodiment can suppress the remaining of the oil OL contained in the blow-by gas BG in the outlet portion 40.
[0204] Moreover, the oil-guiding inclined surface 740 is inclined downward toward the through hole 680 from the mating surface 730. Thus, the oil OL remaining in the gas G after having been separated from the blow-by gas BG by the separating portion 330 flows downward on the oil-guiding inclined surface 740 toward the through hole 680, passes through the through hole 680, and is guided into the head cover more reliably. As a result, the blow-by gas treating device 100 according to this embodiment can suppress the remaining of the oil OL contained in the blow-by gas BG in the outlet portion 40 more reliably.
[0205] Moreover, the oil-guiding inclined surface 740 is formed over the entire region from the mating surface 730 to the inner peripheral surface 681 of the through hole 680. Thus, regarding the oil OL remaining in the gas G after having been separated from the blow-by gas BG by the separating portion 330, being caught or remaining at least in a part of the outlet portion 40 is suppressed but it smoothly flows downward on the oil-guiding inclined surface 740 toward the through hole 680. Then, the oil OL having flown on the oil-guiding inclined surface 740 toward the through hole 680 passes through the through hole 680 and is guided into the head cover 4 more reliably. As a result, the blow-by gas treating device 100 according to this embodiment can suppress the remaining of the oil OL contained in the blow-by gas BG in the outlet portion 40 more reliably.
[0206] Moreover, since the oil-guiding inclined surface 740 presents a part of the surface of the pyramid (conical body in this embodiment), the oil OL remaining in the gas G after having been separated from the blow-by gas BG by the separating portion 330 can smoothly flow downward on the oil-guiding inclined surface 740 toward the through hole 680.
[0207] Moreover, the oil OL having been guided into the head cover 4 from the outlet portion 40 by the oil-guiding inclined surface 740 flows on the guiding wall portion 203 and is led at least to either one of the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. The first oil-guiding groove portion 151 can guide the oil OL having been separated from the blow-by gas BG by the separating portion 330 to the first oil drain 161 and guide the oil OL having been guided into the head cover 4 from the outlet portion 40 by the oil-guiding inclined surface 740 to the first oil drain 161. Moreover, the second oil-guiding groove portion 152 can guide the oil OL having been separated from the blow-by gas BG by the separating portion 330 to the second oil drain 162 and guide the oil OL having been guided into the head cover 4 from the outlet portion 40 by the oil-guiding inclined surface 740 to the second oil drain 162. As a result, the oil OL having been separated from the blow-by gas BG is recovered by the oil pun 7 or the oil container provided in the engine 1, for example, and emission from the outlet portion 40 can be suppressed.
[0208] Moreover, according to the blow-by gas treating device 100 and the engine 1 including the blow-by gas treating device 100 according to this embodiment, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided to the front side of the engine 1 by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged into the engine 1. Moreover, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided to the rear side of the engine 1 by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged into the engine 1. Thus, in the blow-by gas treating device 100 according to this embodiment, the discharge path of the oil OL having been separated from the blow-by gas BG by the separating portion 330 is clear. Moreover, the gas G after the oil OL has been separated from the blow-by gas BG is led to the outlet portion 40 of the blow-by gas treating device 100 by the main structure portion 101. Then, the outlet portion 40 of the blow-by gas treating device 100 supplies the gas G having been led by the main structure portion 101 to the intake system of the engine 1. As described above, in the blow-by gas treating device 100 according to this embodiment, the discharge path of the oil OL having been separated from the blow-by gas BG by the separating portion 330 and the discharge path of the gas G having been separated from the blow-by gas BG by the separating portion 330 are clearly discriminated. As a result, even if the engine 1 is inclined in the front-back direction, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be suppressed. Moreover, since the flowing of the mist of the oil OL to the intake system can be suppressed, burning of the mist of the oil OL can be suppressed, and purification of the exhaust gas can be promoted.
[0209] Moreover, the separating portion 330 which separates the blow-by gas BG into the oil OL and the gas G is provided at the center part, that is, the center position RP between the first oil drain 161 which temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1 and the second oil drain 162 which temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1. As described above, the separating portion 330 is provided at the position relatively far from the first oil drain 161 and the second oil drain 162. Thus, even if the engine 1 is inclined in the front-back direction, mixing or re-mixing of the oil OL temporarily stored in the first oil drain 161 and the second oil drain 162 or the oil OL or the mist of the oil OL present above the first oil drain 161 and the second oil drain 162 in the gas G having been separated from the blow-by gas BG by the separating portion 330 can be suppressed. As a result, even if the engine 1 is inclined in the front-back direction, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be further suppressed.
[0210] Moreover, since mixing or re-mixing of the oil OL or the mist of the oil OL in the gas G having been separated from the blow-by gas BG by the separating portion 330 can be suppressed, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be suppressed regardless of the position of the outlet portion 40. As a result, the degree of freedom in selecting the installation position or the installation direction of the outlet portion 40 can be increased.
[0211] The first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 present the groove shape and thus, even if the engine 1 is inclined in the front-back direction, it can guide the oil OL having been separated from the blow-by gas BG by the separating portion 330 to the front side and the rear side of the engine 1 reliably even with a simple structure.
[0212] Moreover, according to the blow-by gas treating device 100 according to this embodiment, the first blow-by gas taking-in portion 111 as well as the second blow-by gas taking-in portion 112 which take in the blow-by gas BG, and the first oil-guiding groove portion 151 as well as the second oil-guiding groove portion 152 which guide the oil OL are provided separately at positions on both sides on the upper surface side and the lower surface side through the common partition wall portion 200. Therefore, the first blow-by gas taking-in portion 111 as well as the second blow-by gas taking-in portion 112 and the first oil-guiding groove portion 151 as well as the second oil-guiding groove portion 152 can be provided as single members on the partition wall portion 200. Therefore, the dimension V (see
[0213] Moreover, the blow-by gas BG passes through the filter 130 and collides against the impact plate 133 after having the flow velocity raised by the impactor 120. Thus, the blow-by gas BG is separated into the oil OL and the gas G excluding the mist of the oil OL more reliably. Moreover, the impactor 120 raises the flow velocity of the blow-by gas BG along the vertical direction (up-down direction) at the center position RP in the front-back direction of the engine 1. Furthermore, the impact plate 133 extends in the horizontal direction and causes the blow-by gas BG having passed through the filter 130 to be collided. Thus, as compared with the case where the impactor raises the flow velocity of the blow-by gas along the horizontal direction and causes the blow-by gas to collide against the impact plate extending in the vertical direction, the dimension V in the up-down direction of the blow-by gas treating device 100 can be suppressed.
[0214] Subsequently, a third embodiment of the present invention will be described.
[0215] Note that, when constituent elements of the blow-by gas treating device according to the third embodiment are similar to the constituent elements of the blow-by gas treating devices according to the first embodiment and the second embodiment, duplicated explanation will be omitted as appropriate, and different points will be mainly explained below.
[0216] (Blow-by Gas Treating Device 100 According to Third Embodiment)
[0217] A preferred structure example of the blow-by gas treating device 100 according to the third embodiment will be described by referring to
[0218]
[0219]
[0220]
[0221] Here, the X-direction shown in
[0222] As shown in
[0223] The blow-by gas treating device 100 shown in
[0224] <Main Structure Portion 101 of Blow-by Gas Treating Device 100 According to Third Embodiment>
[0225] First, a preferred structure example of the main structure portion 101 of the blow-by gas treating device 100 according to the third embodiment will be described by referring to
[0226] As shown in
[0227] As shown in
[0228] As shown in
[0229] As shown in
[0230] <First Blow-by Gas Taking-In Portion 111 and Second Blow-by Gas Taking-In Portion 112>
[0231] Subsequently, the first blow-by gas taking-in portion 111 and the second blow-by gas taking-in portion 112 will be described by referring to
[0232] The first blow-by gas taking-in portion 111 and the second blow-by gas taking-in portion 112 are holes formed by the partition wall portion 200 and the guiding plate 295 and take in the blow-by gas BG. The partition wall portion 200 is separated into the first guiding lower-surface portion 231 side and the second guiding lower-surface portion 232 side with the separating portion 330 as a center. The first blow-by gas taking-in portion 111 is provided at a position closer to the front surface portion 4B (that is, on the front side of the engine 1) and takes in the blow-by gas BG from the front side. In addition, the second blow-by gas taking-in portion 112 is provided at a position closer to the rear surface portion 4C (that is, on the rear side of the engine 1) and takes in the blow-by gas BG from the rear side. The guiding plate 295 shown in
[0233] As shown in
[0234] <Separating Portion 330>
[0235] Subsequently, a preferred structure example of the separating portion 330 will be described by referring to
[0236] The separating portion 330 shown in
[0237] As shown in
[0238] Subsequently, each of constituent elements of the separating portion 330 will be described in order by referring to
<Impactor 120 of Separating Portion 330>
[0239] The impactor 120 shown in
[0240] The two throttle holes 121, 121 are through holes, each having a circular sectional shape, for example, and in the example shown in
[0241] The impactor 120 is a flow-velocity rise operation portion which can raise the flow velocity of the blow-by gas BG by having the blow-by gas BG passed diagonally upward along the throttle hole 121. The impactor 120 is disposed at the center position RP with respect to the X-direction of the partition wall portion 200. As a result, the blow-by gas BG taken in by the first blow-by gas taking-in portion 111 and the blow-by gas BG taken in by the second blow-by gas taking-in portion 112 are uniformly guided to the impactor 120. The impactor 120 raises the flow velocity of the blow-by gas BG flowing in the throttle hole 121 and then, leads the blow-by gas BG to the filter 130.
[0242] <Filter 130 of Separating Portion 330>
[0243] As shown in
[0244] As shown in
[0245] As shown in
[0246] As exemplified in
[0247] The gas G having been separated from the blow-by gas BG by the separating portion 330 is emitted from the filter 130. As described above, the guiding wall portion 203 is provided between the partition wall portion 200 and the upper surface portion 4A of the head cover 4. Thus, the gas G not containing the mist of the oil OL emitted from the filter 130 is guided by the guiding wall portion 203, passes through the passage 135 of the upper region 4Q, and is led to the outlet portion 40.
[0248] On the other hand, the oil OL having been separated from the blow-by gas BG by the separating portion 330 passes through the filter 130 and falls as indicated by an arrow G2 in
[0249] The separating portion 330 having the aforementioned structure is located at the center position RP in the X-direction shown in
[0250] <Oil-Outlet Inclined-Guiding Portion 500 and Oil Inclined-Guiding Return Portion 600>
[0251] Subsequently, the oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600 will be described by referring to
[0252] As shown in
[0253] An inclination angle θ1 by which the oil-outlet inclined-guiding portion 500 is inclined with respect to the horizontal plane (X-Y plane) is preferably larger than the inclination angle θ1 of the upper surface 122 of the impactor 120 with respect to the horizontal plane. If the inclination angle θ1 is larger than the inclination angle θ, when the oil OL having been separated from the blow-by gas BG by the separating portion 330 and flown and fallen along the upper surface 122 of the impactor 120 flows down the oil-outlet inclined-guiding portion 500, the flow velocity of the oil OL becomes higher as compared with a case where the oil OL flows on the upper surface 122 of the impactor 120. Thus, the oil OL having been separated from the blow-by gas BG by the separating portion 330 can be rapidly led from the upper surface 122 of the impactor 120 to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. Moreover, since the oil OL cannot remain on the upper surface 122 of the impactor 120 easily, mixing of the oil OL having been separated from the blow-by gas BG by the separating portion 330 in the blow-by gas BG again can be suppressed.
[0254] Moreover, as shown in
[0255] The oil inclined-guiding return portion 600 temporarily stores or pools the oil OL in order to prevent flow-out of the oil OL from the oil-outlet inclined-guiding portion 500, the first oil-guiding groove portion 151, and the second oil-guiding groove portion 152 by momentum of the flow of the oil OL, when the oil OL having been separated from the blow-by gas BG by the separating portion 330 flows from the upper surface 122 of the impactor 120 via the oil-outlet inclined-guiding portion 500. Then, the oil inclined-guiding return portion 600 guides the oil OL to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 and returns it. As described above, the oil inclined-guiding return portion 600 has a function of buffering or pooling oil for temporarily storing the oil OL having been separated from the blow-by gas BG by the separating portion 330 and guiding it to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 and returning it. As shown in
[0256] As shown in
[0257] Moreover, as shown in
[0258] <First Oil-Guiding Groove Portion 151 and Second Oil-Guiding Groove Portion 152>
[0259] The first oil-guiding groove portion 151 shown in
[0260] The first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 are connected to each other through the aforementioned oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600.
[0261] <First Oil Drain 161 and Second Oil Drain 162>
[0262] The first oil drain 161 is provided on the front side of the engine 1 and presents a cylindrical shape, for example. The first oil drain 161 is provided downward, which is the Z1-direction in the head cover 4, at the front position of the first guiding lower-surface portion 231 of the partition wall portion 200. The first oil drain 161 has a check valve, temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1. Similarly, the second oil drain 162 is provided on the rear side of the engine 1 and presents a cylindrical shape, for example. The second oil drain 162 is provided downward, which is the Z1-direction in the head cover 4, at the rear position of the second guiding lower-surface portion 232 of the partition wall portion 200. The second oil drain 162 has a check valve, temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1.
[0263] As a result, if the engine 1 is inclined to the front side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X1-direction by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged in the Z1-direction through the first oil drain 161. Similarly, if the engine 1 is inclined to the rear side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X2-direction by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged in the Z1-direction through the second oil drain 162. In the head cover 4, the oil OL having been discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 from the head cover 4 shown in
[0264] (Action Example of Blow-by Gas Treating Device 100 According to Third Embodiment)
[0265] Subsequently, an action example of the blow-by gas treating device 100 according to the third embodiment will be explained by referring to
[0266] The blow-by gas BG having leaked from between the piston 8 and the cylinder 5 shown in
[0267] The impactor 120 shown in
[0268] As shown in
[0269] On the other hand, the oil OL having been separated from the blow-by gas BG by the separating portion 330 falls along an arrow G2 shown in
[0270] Here, if the surface of the impactor faced with the impact plate 133 which separates the blow-by gas BG into the oil OL and the gas G is in parallel with the horizontal plane, there is a concern that the oil OL having been separated from the blow-by gas BG remains on the surface of the impactor. The oil OL having been separated from the blow-by gas BG contains a moisture (steam). Thus, when a temperature is relatively low, the moisture containing in the oil OL remaining on the surface of the impactor is frozen on the surface of the impactor in some cases. Then, the through hole formed in the impactor, through which the blow-by gas BG is passed, is blocked in some cases. When the through hole of the impactor is blocked, there is nonconformity that the blow-by gas BG cannot be separated into the oil OL and the gas G.
[0271] On the other hand, in the blow-by gas treating device 100 according to this embodiment, the separating portion 330 is provided in the partition wall portion 200 of the head cover 4 with inclination only by the predetermined inclination angle θ with respect to the horizontal plane along the X-Y plane. Specifically, the separating portion 330 is provided with inclination in the direction in which the oil OL having been separated from the blow-by gas BG by the separating portion 330 is led to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. More specifically, the upper surface 122 of the impactor 120 is inclined only by the predetermined inclination angle θ with respect to the horizontal plane along the X-Y plane. Thus, the oil OL having dropped onto the upper surface 122 of the impactor 120 flows on the upper surface 122 of the impactor 120 inclined by the inclination angle θ by its own weight and flows into the oil-outlet inclined-guiding portion 500 with the larger inclination angle θ1.
[0272] As a result, the oil OL having been separated from the blow-by gas BG is reliably led from the upper surface 122 of the impactor 120 to the oil-outlet inclined-guiding portion 500. Then, even if the oil OL gushes in along the oil-outlet inclined-guiding portion 500, it is temporarily stored in the oil inclined-guiding return portion 600 which has a counter gradient. Therefore, the oil OL does not overflow to a region other than the oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600 from the oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600 but can flow at least to either one of the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 from the oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600.
[0273] Moreover, the width W2 in the X-direction of the oil inclined-guiding return portion 600 is set larger than the width W1 in the X-direction of the oil-outlet inclined-guiding portion 500. As a result, even if the oil OL having been separated from the blow-by gas BG by the separating portion 330 flows via the oil-outlet inclined-guiding portion 500 from the upper surface 122 of the impactor 120, the oil inclined-guiding return portion 600 accommodates the oil OL with allowance while suppressing the overflow of the flowing-in oil OL and then, can be made to flow so as to return to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152.
[0274] Note that, as described above in relation with
[0275] In
[0276] The oil OL having been guided to the first oil drain 161 by the first oil-guiding groove portion 151 is temporarily stored in the first oil drain 161 and then, is discharged into the engine 1 through the check valve provided on the first oil drain 161. Similarly, the oil OL having been guided to the second oil drain 162 by the second oil-guiding groove portion 152 is temporarily stored in the second oil drain 162 and then, is discharged into the engine 1 through the check valve provided on the second oil drain 162. The oil OL discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 through the oil return path 99 from inside the head cover 4, for example.
[0277] According to the blow-by gas treating device 100 and the engine 1 according to this embodiment, the separating portion 330 is provided with inclination in the direction in which the oil OL having been separated from the blow-by gas BG by the separating portion 330 is led to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. Thus, the oil OL having been separated from the blow-by gas BG by the separating portion 330 does not remain in the separating portion 330 but is led to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. As a result, the blow-by gas treating device 100 according to this embodiment can suppress remaining of the oil OL contained in the blow-by gas BG and can suppress freezing of the moisture contained in the oil OL at a low temperature. As a result, the operation of separating the blow-by gas BG into the oil OL and the gas G by the separating portion 330 is performed more reliably.
[0278] Moreover, the impactor 120 causes the blow-by gas BG to collide against the impact plate 133 while raising the flow velocity of the blow-by gas BG along the direction inclined with respect to the vertical direction (up-down direction). As a result, the blow-by gas BG is reliably separated into the oil OL and the gas G. And the oil OL having been separated from the blow-by gas BG at the impact plate 133 passes through the filter 130 and drops onto the upper surface 122 of the impactor 120 faced with the impact plate 133. Here, the upper surface 122 of the impactor 120 is inclined downward toward the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. Thus, the oil OL having dropped onto the upper surface 122 of the impactor 120 flows on the upper surface 122 of the impactor 120 by its own weight and is led to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. As a result, the blow-by gas treating device 100 according to this embodiment can suppress the remaining of the oil OL contained in the blow-by gas BG and can suppress the freezing of the moisture contained in the oil OL at a low temperature more reliably.
[0279] Moreover, the setting portion 400 on which the filter 130 is placed protrudes outward from the upper surface 122 of the impactor 120 and forms the oil-guiding clearance region 401 as a space between the impactor 120 and the filter 130. And the oil OL having been separated from the blow-by gas BG by the separating portion 330 flows along the upper surface 122 of the impactor 120 in the oil-guiding clearance region 401. As a result, remaining of the oil OL having been separated from the blow-by gas BG on the upper surface 122 of the impactor 120 is suppressed more reliably, and the oil OL having been separated from the blow-by gas BG is led from the oil-guiding clearance region 401 formed between the impactor 120 and the filter 130 toward the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 more reliably.
[0280] Moreover, the inclination angle θ1 of the oil-outlet inclined-guiding portion 500 with respect to the horizontal plane is larger than the inclination angle θ of the upper surface 122 of the impactor 120 with respect to the horizontal plane. As a result, the oil-outlet inclined-guiding portion 500 can rapidly lead the oil OL having been separated from the blow-by gas BG by the separating portion 330 and having flown along the upper surface 122 of the impactor 120 to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. Moreover, the remaining of the oil OL in the vicinity of the upper surface 122 of the impactor 120 is suppressed, and the mixing of the oil OL having been separated from the blow-by gas BG by the separating portion 330 in the blow-by gas BG again can be suppressed.
[0281] Furthermore, according to the blow-by gas treating device 100 and the engine 1 including the blow-by gas treating device 100 according to this embodiment, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided to the front side of the engine 1 by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged into the engine 1. Moreover, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided to the rear side of the engine 1 by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged into the engine 1. Thus, in the blow-by gas treating device 100 according to this embodiment, the discharge path of the oil OL having been separated from the blow-by gas BG by the separating portion 330 is clear. Moreover, the gas G after the oil OL has been separated from the blow-by gas BG is led to the outlet portion 40 of the blow-by gas treating device 100 by the main structure portion 101. And the outlet portion 40 of the blow-by gas treating device 100 supplies the gas G having been led by the main structure portion 101 to the intake system of the engine 1. As described above, in the blow-by gas treating device 100 according to this embodiment, the discharge path of the oil OL having been separated from the blow-by gas BG by the separating portion 330 and the discharge path of the gas G having been separated from the blow-by gas BG by the separating portion 330 are clearly discriminated. As a result, even if the engine 1 is inclined to the front-back direction, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be suppressed. Moreover, since flowing of the mist of the oil OL to the intake system can be suppressed, burning of the mist of the oil OL can be suppressed, purification of the exhaust gas can be promoted.
[0282] Moreover, the separating portion 330 which separates the blow-by gas BG into the oil OL and the gas G is provided at the center part, that is, the center position RP between the first oil drain 161 which temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1 and the second oil drain 162 which temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1. As described above, the separating portion 330 is provided at a position relatively far from the first oil drain 161 and the second oil drain 162. Thus, even if the engine 1 is inclined in the front-back direction, mixing or re-mixing of the oil OL temporarily stored in the first oil drain 161 and the second oil drain 162 or the oil OL or the mist of the oil OL present above the first oil drain 161 and the second oil drain 162 in the gas G having been separated from the blow-by gas BG by the separating portion 330 can be suppressed. As a result, even if the engine 1 is inclined in the front-back direction, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be further suppressed.
[0283] Moreover, since mixing or re-mixing of the oil OL or the mist of the oil OL in the gas G having been separated from the blow-by gas BG by the separating portion 330 can be suppressed, emission of the oil OL having been separated from the blow-by gas BG from the outlet portion 40 can be suppressed regardless of the position of the outlet portion 40. As a result, a degree of freedom in selecting an installation position or an installation direction of the outlet portion 40 can be increased.
[0284] The first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 present the groove shape and thus, even if the engine 1 is inclined in the front-back direction, the oil OL having been separated from the blow-by gas BG by the separating portion 330 can be guided to the front side and the rear side of the engine 1 reliably even with a simple structure.
[0285] Moreover, according to the blow-by gas treating device 100 according to this embodiment, the first blow-by gas taking-in portion 111 as well as the second blow-by gas taking-in portion 112 which take in the blow-by gas BG, and the first oil-guiding groove portion 151 as well as the second oil-guiding groove portion 152 which guide the oil OL are provided separately at positions on both sides on the upper surface side and the lower surface side through the common partition wall portion 200. Therefore, the first blow-by gas taking-in portion 111 as well as the second blow-by gas taking-in portion 112 and the first oil-guiding groove portion 151 as well as the second oil-guiding groove portion 152 can be provided as single members on the partition wall portion 200. Therefore, the dimension V (see
[0286] Moreover, the blow-by gas BG passes through the filter 130 and collides against the impact plate 133 after having the flow velocity raised by the impactor 120. Thus, the blow-by gas BG is separated into the oil OL and the gas G excluding the mist of the oil OL more reliably. Moreover, the impactor 120 raises the flow velocity of the blow-by gas BG along the direction inclined with respect to the vertical direction (up-down direction) at the center position RP in the front-back direction of the engine 1. Furthermore, the impact plate 133 extends substantially in the horizontal direction and causes the blow-by gas BG having passed through the filter 130 to be collided. Thus, as compared with the case where the impactor raises the flow velocity of the blow-by gas along the horizontal direction and causes the blow-by gas to collide against the impact plate extending in the vertical direction, the dimension V in the up-down direction of the blow-by gas treating device 100 can be suppressed.
[0287] Subsequently, a fourth embodiment of the present invention will be described.
[0288] Note that, when constituent elements of the blow-by gas treating device according to the fourth embodiment are similar to the constituent elements of the blow-by gas treating device according to the first embodiment, the second embodiment, and the third embodiment, duplicated explanation will be omitted as appropriate, and different points will be mainly explained below.
[0289] Essential parts of the structure of the blow-by gas treating device according to the fourth embodiment are similar to the essential parts of the structure of the blow-by gas treating device according to the third embodiment described above in relation with
[0290] Here, the structure example of the separating portion 330 will be mainly described by referring to
[0291]
[0292]
[0293] The separating portion 330 shown in
[0294] The impactor 120 has a function of a nozzle or an orifice. A direction of the axis 121C of the throttle hole 121 of the impactor 120 is along the vertical direction, which is the Z-direction, or the up-down direction, and it is a so-called vertical throttle hole. The impactor 120 is the flow-velocity rise operating portion which can raise the flow velocity of the blow-by gas BG by having the blow-by gas BG passed upward along the throttle hole 121. The impactor 120 is disposed at the center position RP with respect to the X-direction of the partition wall portion 200. As a result, the blow-by gas BG taken in by the first blow-by gas taking-in portion 111 and the blow-by gas BG taken in by the second blow-by gas taking-in portion 112 are uniformly guided to the impactor 120. The impactor 120 raises the flow velocity of the blow-by gas BG flowing in the throttle hole 121 and then, leads the blow-by gas BG to the filter 130. Note that the direction of the axis 121C of the throttle hole 121 is not limited to the vertical direction or the up-down direction but may be inclined with respect to the Z-direction.
[0295] As shown in
[0296] As shown in
[0297] As shown in
[0298] Here, by considering removal prevention and improvement of holding performance of the filter 130, as described above, the filter 130 is preferably held by using the fastening member such as the screw 139. However, as described above, the filter 130 is made of a material such as glass wool, steel wool or the like, for example. Therefore, when the filter 130 is held simply by using the fastening member, a deformation amount of the filter 130 is varied depending on the torque of the fastening member. Then, the shape of the filter 130 is not stable. As a result, if the filter 130 is held simply by using the fastening member, the separation performance of the oil OL might be unstable in some cases.
[0299] In contrast, as shown in
[0300] That is, as shown in
[0301] As shown in
[0302] The blow-by gas BG has the flow velocity raised by flowing into the throttle hole 121 of the impactor 120 and rising toward an upper direction. The blow-by gas BG whose flow velocity has been raised passes through the filter 130, whereby foreign substances are removed, and collides against the lower surface of the impact plate 133 and is separated into the oil OL and the gas G. That is, the impact plate 133 causes the blow-by gas BG having passed through the filter 130 to be collided and separated into the oil OL and the gas G.
[0303] The gas G having been separated from the blow-by gas BG by the separating portion 330 is emitted from the filter 130. As described above, the guiding wall portion 203 is provided between the partition wall portion 200 and the upper surface portion 4A of the head cover 4. Thus, the gas G emitted from the filter 130 and not containing the mist of the oil OL is guided by the guiding wall portion 203, passes through the passage 135 of the upper region 4Q, and is led to the outlet portion 40.
[0304] On the other hand, the oil OL having been separated from the blow-by gas BG by the separating portion 330 passes through the filter 130 and falls and drops onto the upper surface 122 of the impactor 120 in the oil-guiding clearance region 401. The oil OL having dropped on the upper surface 122 of the impactor 120 flows along the upper surface 122 of the impactor 120 in the oil-guiding clearance region 401 and flows toward the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152.
[0305] The separating portion 330 having the aforementioned structure is located at the center position RP in the X-direction shown in
[0306] Subsequently, the oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600 will be described by referring to
[0307] As shown in
[0308] An inclination angle by which the oil-outlet inclined-guiding portion 500 is inclined with respect to the horizontal plane (X-Y plane) is preferably larger than the inclination angle of the upper surface 122 of the impactor 120 with respect to the horizontal plane. Note that the upper surface 122 of the impactor 120 does not necessarily have to be inclined with respect to the horizontal plane and may be in parallel with the horizontal plane. If the inclination angle of the oil-outlet inclined-guiding portion 500 with respect to the horizontal plane is larger than the inclination angle of the upper surface 122 of the impactor 120 with respect to the horizontal plane, when the oil OL having been separated from the blow-by gas BG by the separating portion 330 and flown down along the upper surface 122 of the impactor 120 flows down the oil-outlet inclined-guiding portion 500, the flow velocity of the oil OL is higher as compared with a case where the oil OL flows on the upper surface 122 of the impactor 120. Therefore, the oil OL having been separated from the blow-by gas BG by the separating portion 330 can be rapidly led from the upper surface 122 of the impactor 120 to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152. Moreover, since it becomes difficult for the oil OL to remain on the upper surface 122 of the impactor 120, mixing of the oil OL having been separated from the blow-by gas BG by the separating portion 330 in the blow-by gas BG again can be suppressed.
[0309] Moreover, as shown in
[0310] The oil inclined-guiding return portion 600 temporarily stores or pools the oil OL in order to prevent flow-out of the oil OL from the oil-outlet inclined-guiding portion 500, the first oil-guiding groove portion 151, and the second oil-guiding groove portion 152 by the momentum of the flow of the oil OL, when the oil OL having been separated from the blow-by gas BG by the separating portion 330 flows from the upper surface 122 of the impactor 120 via the oil-outlet inclined-guiding portion 500. Then, the oil inclined-guiding return portion 600 guides the oil OL to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 and returns it. As described above, the oil inclined-guiding return portion 600 has a function of temporarily buffering or pooling oil for temporarily storing the oil OL having been separated from the blow-by gas BG by the separating portion 330 and guiding it to the first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 and returning it.
[0311] As shown in
[0312] The first oil-guiding groove portion 151 shown in
[0313] The first oil-guiding groove portion 151 and the second oil-guiding groove portion 152 are connected to each other through the aforementioned oil-outlet inclined-guiding portion 500 and the oil inclined-guiding return portion 600.
[0314] The first oil drain 161 is provided on the front side of the engine 1 and presents a cylindrical shape, for example. The first oil drain 161 is provided downward, which is the Z1-direction in the head cover 4, at the front position of the first guiding lower-surface portion 231 of the partition wall portion 200. The first oil drain 161 has a check valve, temporarily stores the oil OL having been guided by the first oil-guiding groove portion 151 and discharges it into the engine 1. Similarly, the second oil drain 162 is provided on the rear side of the engine 1 and presents a cylindrical shape, for example. The second oil drain 162 is provided downward, which is the Z1-direction in the head cover 4, at the rear position of the second guiding lower-surface portion 232 of the partition wall portion 200. The second oil drain 162 has a check valve, temporarily stores the oil OL having been guided by the second oil-guiding groove portion 152 and discharges it into the engine 1.
[0315] As a result, if the engine 1 is inclined to the front side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X1-direction by the first oil-guiding groove portion 151, is temporarily stored in the first oil drain 161 and then, is discharged in the Z1-direction through the first oil drain 161. Similarly, if the engine 1 is inclined to the rear side, the oil OL having been separated from the blow-by gas BG by the separating portion 330 is guided in the X2-direction by the second oil-guiding groove portion 152, is temporarily stored in the second oil drain 162 and then, is discharged in the Z1-direction through the second oil drain 162. In the head cover 4, the oil OL having been discharged from the first oil drain 161 and the second oil drain 162 is recovered by the oil pun 7 from the head cover 4 shown in
[0316] As described above, according to the blow-by gas treating device 100 and the engine 1 according to this embodiment, the filter 130 of the separating portion 330 which separates the blow-by gas BG into the oil OL and the gas G is held between the setting portion 400 of the impactor 120 and the impact plate 133 by fastening of the screw 139 with the female thread portion 402 provided on the setting portion 400 of the impactor 120. Here, the deformation suppressing member 140 is disposed between the setting portion 400 of the impactor 120 and the impact plate 133. The deformation suppressing member 140 suppresses deformation of the filter 130 held between the setting portion 400 of the impactor 120 and the impact plate 133 caused by the fastening of the screw 139. As a result, when the filter 130 is held by using the screw 139, the deformation of the filter 130 can be suppressed. For example, variation in a deformation amount of the filter 130 in accordance with the torque of the screw 139 or an unstable shape of the filter 130 can be suppressed. As a result, when the filter 130 is held by using the screw 139, stable separation performances of the oil OL can be realized.
[0317] Moreover, the deformation suppressing member 140 is a cylindrical member having the hole 141 through which the shaft part 139b of the screw 139 is passed. And the deformation suppressing member 140 is disposed between the setting portion 400 of the impactor 120 and the head part 139a of the screw 139 in the state where the shaft part 139b of the screw 139 is passed through the hole 141 of the deformation suppressing member 140. Thus, the deformation suppressing member 140 can receive the forces F1, F2 transmitted from the setting portion 400 of the impactor 120 and the head part 139a of the screw 139 caused by the fastening of the screw 139 between the setting portion 400 of the impactor 120 and the head part 139a of the screw 139. Thus, the deformation suppressing member 140 can suppress deformation of the filter 130 held between the setting portion 400 of the impactor 120 and the impact plate 133 caused by the fastening of the screw 139 more reliably. As a result, when the filter 130 is held by using the screw 139, the stable separation performances of the oil OL can be realized more reliably.
[0318] Moreover, the deformation suppressing member 140 receives the force F1 transmitted from the head part 139a of the screw 139 through the impact plate 133 caused by the fastening of the screw 139 by one of the end portions (the upper end portions in
[0319] Moreover, the length L1 in the axial direction of the hole 141 of the deformation suppressing member 140 is equal to the thickness L2 of the filter 130. Therefore, the deformation suppressing member 140 can suppress such a state that the filter 130 is crushed to a length shorter than the length L1 in the axial direction of the hole 141 of the deformation suppressing member 140. Thus, the variation in the deformation amount of the filter 130 in accordance with the torque of the screw 139 can be suppressed more reliably. As a result, when the filter 130 is held by using the screw 139, the stable separation performances of the oil OL can be realized.
[0320] The embodiments of the present invention have been described. However, the present invention is not limited to the aforementioned embodiments but is capable of various changes within a range not departing from the scope of claims. The constitutions of the aforementioned embodiments can be partially omitted or optionally combined differently from the above.
[0321] For example, as an example of the engine of the present invention, the engine 1 according to this embodiment is exemplified. The engine 1 is a supercharging-type diesel engine with a turbocharger. However, this is not limiting, and the engine of the present invention may be a natural-intake type diesel engine, a supercharging-type gasoline engine with a turbocharger, a natural-intake type gasoline engine and the like. Moreover, the type of the illustrated engine 1 is a multi-cylinder engine such as a supercharging-type three-cylinder engine, a four-cylinder engine and the like with a turbocharger with high outputs, for example. However, the type of the engine 1 is not limited only to them. The engine 1 can be mounted on vehicles of types other than the vehicles such as a construction machine, an agricultural machine, and a lawn mower, for example. Moreover, in the description of this embodiment, the first oil-guiding groove portion 151 is exemplified as the first oil guiding portion, and the second oil-guiding groove portion 152 is exemplified as the second oil guiding portion. However, the first oil guiding portion and the second oil guiding portion are not limited only to them but may be pipe-shaped members, for example.
[0322] For example, in this embodiment, the case where the deformation suppressing member 140 is a cylindrical member was cited as an example. However, the deformation suppressing member 140 is not limited to a cylindrical member but may be a semi-cylindrical member obtained by cutting the cylindrical member into halves along the axis of the hole 141, for example. Moreover, in this embodiment, the case in which the two deformation suppressing members 140 are provided was cited as an example. However, the number of the installed deformation suppressing members 140 is not limited to two but may be one or three or more.
TABLE-US-00001 [Reference Signs List] 1 Engine 2 Cylinder block 3 Cylinder head 4 Head cover 4A Upper surface portion 4B Front surface portion 4C Rear surface portion 4D Left and right surface portion 4P Lower region 4Q Upper region 4R Upper region 5 Cylinder 6 Crank case 7 Oil pun 8 Piston 9 Crank shaft 10 Conrod 11 Valve cam chamber 12 Valve cam shaft 13 Tappet 14 Tappet guide hole 15 Push rod 16 Insertion hole 17 Rocker arm 18 Spring 19 Intake valve 20 Exhaust valve 21 Oil flow-out hole 22 Oil drop hole 30 Intake passage 31 Exhaust passage 40 Outlet portion 41 Pipe 50 Intake pipe 50T Connecting pipe 52 Air cleaner 60 Turbocharger 61 Blower 62 Turbine 70 Blow-by gas mixing joint 71 Main pipe 72 Sub pipe 99 Oil return path 100 Blow-by gas treating device 101 Main structure portion 111 First blow-by gas taking-in portion 112 Second blow-by gas taking-in portion 120 Impactor 121 Throttle hole 121C Axis 122 Upper surface 130 Filter 131 Lower surface 133 Impact plate 135 Passage 138 Screw hole 139 Screw 139a Head part 139b Shaft part 140 Deformation suppressing member 141 Hole 142 End portion 143 End portion 151 First oil-guiding groove portion 152 Second oil-guiding groove portion 161 First oil drain 162 Second oil drain 200 Partition wall portion 203 Guiding wall portion 231 First guiding lower-surface portion 232 Second guiding lower-surface portion 295 Guiding plate 330 Separating portion 350 Pressure regulation valve 400 Setting portion 401 Oil-guiding clearance region 402 Female thread portion 500 Oil-outlet inclined-guiding portion 600 Oil inclined-guiding return portion 601 Step 680 Through hole 681 Inner peripheral surface 700 Outlet mounting portion 702 Upper surface 720 Internal space 721 Internal space 730 Mating surface 740 Oil-guiding inclined surface 741 Upper end portion 742 Lower end portion 745 Seal member 750 Container body 751 Screw 770 Mating surface AR Intake B Intake air BG Blow-by gas C Intake air F1 Force F2 Force G Gas OL Oil RP Center position S Intersection connection position