VARIABLE COMPRESSION RATIO APPARATUS
20170268562 · 2017-09-21
Assignee
Inventors
Cpc classification
F02B75/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/149
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A variable compression ratio apparatus may include: a connecting rod having an end connected with a crank pin of a crank shaft; a plunger housing formed at the other end of the connecting rod, the plunger housing having a space to which a plunger is inserted. In particular, the plunger moves upwardly and downwardly, and an outer circumference surface of the plunger contacts an inner circumference surface of the plunger housing. The apparatus further includes a protrusion protruded from the plunger to the plunger housing and connected with a piston, and a hydraulic pressure control valve for supplying hydraulic pressure to the space and moving the plunger by supplying hydraulic pressure.
Claims
1. A variable compression ratio apparatus, comprising: a connecting rod having an end connected with a crank pin of a crank shaft; a plunger housing formed at an other end of the connecting rod, the plunger housing having a space to which a plunger is inserted therein, wherein the space is opened in an opposite direction to the crank pin, and the plunger is configured to move upward and downward, wherein an outer circumference surface of the plunger contacts an inner circumference surface of the plunger housing; a protrusion protruded outwardly from the plunger to the plunger housing, and connected with a piston through a piston pin; and a hydraulic pressure control valve configured to supply hydraulic pressure into the space, and configured to move the plunger by supplying the hydraulic pressure to a rear surface that corresponds to the crank pin and to a front surface that corresponds to the piston pin from the plunger.
2. The variable compression ratio apparatus of claim 1, wherein the plunger includes: a second plunger disposed inside the space; and a first plunger disposed at a side of the piston independent of the second plunger and having a small diameter than a diameter of the second plunger.
3. The variable compression ratio apparatus of claim 2, wherein the hydraulic pressure control valve supplies hydraulic pressure between the second plunger and the first plunger.
4. The variable compression ratio apparatus of claim 2, wherein the connecting rod includes: a first path providing hydraulic pressure from the hydraulic pressure control valve to a front surface of the first plunger, a second path providing hydraulic pressure from the hydraulic pressure control valve to a rear surface of the second plunger, and a third path providing hydraulic pressure from the hydraulic pressure control valve to a portion between the first plunger and the second plunger.
5. The variable compression ratio apparatus of claim 2, wherein the space of the plunger housing includes: a large inner diameter portion where the second plunger is disposed, and a small inner diameter portion where the first plunger is disposed, and wherein a stopping protrusion is formed between the large inner diameter portion and the small inner diameter portion, so as to stop a movement of the second plunger.
6. The variable compression ratio apparatus of claim 2, wherein the hydraulic pressure supplied by the hydraulic pressure control valve is supplied to an inside space of the plunger housing through the crank shaft, the crank pin and the connecting rod.
7. The variable compression ratio apparatus of claim 4, wherein the hydraulic pressure control valve supplies oil only to the second path so as to supply the hydraulic pressure between the first plunger and the second plunger, whereby a high compression ratio being performed by putting a distance between the first plunger and the crank pin.
8. The variable compression ratio apparatus of claim 4, wherein the hydraulic pressure control valve supplies oil to the second path and the third path such that hydraulic pressure is supplied between the second plunger and the first plunger, and to a rear surface of the second plunger opposite to the first plunger, and wherein the first plunger becomes apart from the crank pin, whereby implementing a high compression ratio.
9. The variable compression ratio apparatus of claim 4, wherein the hydraulic pressure control valve supplies oil only to the first path such that hydraulic pressure is supplied to a front surface of the first plunger, and wherein the first plunger becomes close to the crank pin, whereby implementing a low compression ratio.
10. The variable compression ratio apparatus of claim 4, wherein the hydraulic pressure control valve supplies oil to the first path and the third path such that hydraulic pressure is supplied to a rear surface of the second plunger opposite to the first plunger, and to a front surface of the first plunger, and wherein the first plunger is moved downward, and a middle compression ratio is implemented in a state in which the first plunger is supported by the second plunger.
11. A variable compression ratio apparatus, comprising: a connecting rod having an end connected with a crank pin of a crank shaft; a plunger housing formed at an other end of the connecting rod, the plunger housing having a space to which a plunger is inserted therein, wherein the space is opened in an opposite direction to the crank pin; a first plunger disposed at an opposite side of the crank pin in the space; a second plunger disposed at an inside of the first plunger in the space; a protrusion protruded outwardly from the first plunger to the plunger housing, and connected with a piston through a piston pin; and a hydraulic pressure control valve configured to move the first and second plungers by supplying hydraulic pressure to a rear surface of the second plunger and to a front surface of the first plunger.
12. The variable compression ratio apparatus of claim 11, wherein the hydraulic pressure control valve supplies hydraulic pressure between the second plunger and the first plunger.
13. The variable compression ratio apparatus of claim 12, wherein the connecting rod includes: a first path providing hydraulic pressure from the hydraulic pressure control valve to the front surface of the first plunger, a second path providing hydraulic pressure from the hydraulic pressure control valve to the rear surface of the second plunger, and a third path providing hydraulic pressure from the hydraulic pressure control valve to a portion between the first plunger and the second plunger.
14. The variable compression ratio apparatus of claim 12, wherein the space of the plunger housing includes: a large inner diameter portion where the second plunger is disposed, and a small inner diameter portion where the first plunger is disposed, and wherein a stopping protrusion is formed between the large inner diameter portion and the small inner diameter portion, so as to stop a movement of the second plunger.
Description
DRAWINGS
[0028] In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
[0036] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0037] However, since the size and the thickness of each element shown in the drawings are represented in arbitrary scale for the convenience of description, the present disclosure is not limited thereto, and the thickness is enlarged in order to clearly represent several parts and regions.
[0038] Further, in order to clearly describe the exemplary forms of the present disclosure, the part that is not in relation to the description is omitted.
[0039] The term “first”, “second”, or the like is used for distinguishing elements that have the same title, but the titles are not limited to the order.
[0040] Referring to
[0041] The oil pump 135 pumps oil to the hydraulic pressure control valve 130, and the hydraulic pressure control valve 130 controls the respective oil pumped to the first path 151, the second 152 and the third path 153 according to an operation condition.
[0042] The first path 151, the second 152 and the third path 153 are provided from the hydraulic pressure control valve 130 to the inside of plunger housing 105 through the crank shaft 115, the crank pin 120 and the connecting rod 110, respectively. And, the compression ratio is varied by the plunger housing 105 that controls the piston 100 of the volume being lifted up, which is made by the hydraulic pressure provided to the plunger 105.
[0043] The cross-sectional structure of the plunger housing 105 will be described in more detail with referring to
[0044] Referring to
[0045] The side surfaces of the second plunger 220 and the first plunger 215 contact an inner circumference surface of the plunger housing 105, and the second plunger 220 has an outer diameter that is longer than an outer diameter of the first plunger 215. A stopping protrusion 225 is formed between the lower portion of the open space where the second plunger 220 is disposed and the upper portion of the open space where the first plunger 215 is disposed.
[0046] In addition, at the center portion of the upper surface of the first plunger 215, a protrusion 212 is protruded upwardly, and the protrusion 212 is connected with the piston 100 through a piston pin 210.
[0047] And, the compressive force or the expansion energy exerted to the piston 100 is delivered to the crank shaft 115 through the first plunger 215, the second plunger 220, the plunger housing 105, the connecting rod 110 and the crank pin 120, and transformed to torque.
[0048] As shown in the drawing, the first path 151 is connected to the upper space that corresponds to the upper surface of the first plunger 215 through the connecting rod 110 and the plunger housing 105.
[0049] And, the second path 152 is connected to the middle space between the first plunger 215 and the second plunger 220 through the plunger housing 105, and the third path 153 is connected to the lower space that corresponds to the lower surface of the plunger through the plunger housing 105.
[0050] Referring to
[0051] Accordingly, the first plunger 215 lifts the piston 100 upwardly through the piston pin 210, and the first state of high compression ratio is performed.
[0052]
[0053] Referring to
[0054] Accordingly, the first plunger 215 is lifted upwardly and the second plunger 220 is also lifted upwardly, and the second state of high compression ratio is performed.
[0055]
[0056] Referring to
[0057] Accordingly, the second plunger 220 is lifted upwardly and the first plunger 215 is lowered downwardly, and the middle compression ratio state is performed by preventing further lowering of the first plunger in the state that the position of the second plunger 220 is fixed by the stopping protrusion 225.
[0058]
[0059] Referring to
[0060] Accordingly, the first plunger 215 lowers the piston 100 downwardly through the piston pin 210 so that the low compression state is performed.
[0061]
[0062] Referring to
[0063] In the first state of high compression ratio, hydraulic pressure is supplied to the second path 152. However, hydraulic pressure is not supplied to the first path 151 and the third path 153, and released through the return path 140.
[0064] In the second state of high compression ratio, hydraulic pressure is supplied to the second path 152 and the third path 153. However, hydraulic pressure is not supplied to the first path 151, and released through the return path 140.
[0065] In the middle compression state, hydraulic pressure is supplied to the first path 151 and the third path 153. However, hydraulic pressure is not supplied to the second path 152, and released through the return path 140.
[0066] And, in the low compression state, hydraulic pressure is supplied to the first path 151. However, hydraulic pressure is not supplied to the second path 152 and the third path 153, and released through the return path 140.
[0067] In the exemplary forms of the present disclosure, the high compression ratio, the middle compression ratio and the low compression ratio may be performed by controlling the hydraulic pressure supplied to the first path 151, the second path 152 and the third path 153 through the hydraulic pressure control valve 130, and by controlling the compression ratio in multistep, the fuel consumption is decreased and the engine power is improved in comparison with a variable compression ratio apparatus of two steps.
[0068] Referring
[0069] While the present disclosure has been described in connection with exemplary forms, it is to be understood that the present disclosure is not limited to the disclosed forms. On the contrary, it is intended to cover various modifications and equivalent arrangements by a skilled person in the art included within the spirit and scope of the forms of the present disclosure.
TABLE-US-00001 <Description of symbols> 100: piston 105: plunger housing 110: connecting rod 115: crank shaft 120: crank pin 125: balance weight 130: hydraulic pressure control valve 135: oil pump 140: return path 151: first path 152: second path 153: third path 210: piston pin 212: protrusion 215: first plunger 220: second plunger 225: stopping protrusion