Engine intake system
11067042 ยท 2021-07-20
Assignee
Inventors
- Yusuke Oda (Aki-gun, JP)
- Tomomi Watanabe (Aki-gun, JP)
- Junsou Sasaki (Aki-gun, JP)
- Yuichiro Tanaka (Aki-gun, JP)
- Takuya Yamada (Aki-gun, JP)
Cpc classification
F02M35/10262
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10236
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10144
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10314
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F02M26/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An intake system of an engine supplies gas at least containing fresh air to each cylinder. The system includes an EGR passage that communicates with an internal space of a downstream intake passage and introduces some EGR gas into the downstream intake passage. The EGR passage includes a projected section in a substantially polygonal or cylindrical shape that is projected to the internal space of the downstream intake passage. The projected section is formed in such a shape that a projection length H1 in an outer circumferential surface on an upstream side is longer than a projection length H2 in an outer circumferential surface on a downstream side.
Claims
1. An engine intake system supplies gas containing fresh air to a cylinder of an engine, the engine intake system comprising: a throttle valve that regulates an intake amount of the fresh air; an intake passage having an internal space in which the fresh air that passed through the throttle valve is introduced into the cylinder of the engine; and an EGR passage that communicates with the internal space of the intake passage and introduces at least some exhaust gas as EGR gas into the intake passage, wherein the EGR passage includes a projected section having a substantially polygonal or at least partially cylindrical shape that extends into the internal space of the intake passage, and an upstream lateral surface of the projected section has a projection length that is longer than a projection length on a downstream lateral surface of the projected section.
2. The engine intake system according to claim 1, wherein the projected section of the EGR passage has an at least a partial cylindrical shape.
3. The engine intake system according to claim 2, wherein the at least the partial cylindrical shape is a substantially cylindrical shape.
4. The engine intake system according to claim 2, wherein the at least partial cylindrical shape has a first portion that is closer to a wall of the intake passage than a second portion that is toward an end of the projected section disposed further into the internal space of the intake passage, and a cross section of the first portion being a greater percentage of a circle than a cross section of the second portion.
5. The engine intake system according to claim 1, wherein: a direction along a valve shaft of the throttle valve is set as a valve shaft direction, and the projected section of the EGR passage is formed to project in a direction that crosses the valve shaft direction and to have a projection length that does not overlap the valve shaft under a condition that a downstream portion of the intake passage is seen from the throttle valve.
6. The engine intake system according to claim 2, wherein: a direction along a valve shaft of the throttle valve is set as a valve shaft direction, and the projected section of the EGR passage is formed to project in a direction that crosses the valve shaft direction and to have a projection length that does not overlap the valve shaft under a condition that a downstream portion of the intake passage is seen from the throttle valve.
7. The engine intake system according to claim 4, wherein: a direction along a valve shaft of the throttle valve is set as a valve shaft direction, and the projected section of the EGR passage is formed to project in a direction that crosses the valve shaft direction and to have a projection length that does not overlap the valve shaft under a condition that a downstream portion of the intake passage is seen from the throttle valve.
8. The engine intake system according to claim 1, further comprising: a porous member that covers the EGR passage.
9. The engine intake system according to claim 2, further comprising: a porous member that covers the EGR passage.
10. The engine intake system according to claim 4, further comprising: a porous member that covers the EGR passage.
11. The engine intake system according to claim 5, further comprising: a porous member that covers the EGR passage.
12. The engine intake system according to claim 1, wherein: the internal space of the intake passage communicates between a throttle body that includes the throttle valve and an intake port of the engine, and the internal space of the intake passage includes a fresh air introduction passage, a surge tank, and at least one intake pipe.
13. The engine intake system according to claim 12, wherein: the intake passage comprises an inner divided body, an intermediate divided body, and an outer divided body, each of the inner divided body, the intermediate divided body, and the outer divided body comprising a synthetic resin having heat resistance, the ERG passage includes a channel positioned between the inner divided body and the intermediate divided body, and the channel is configured to communicate with the projected section.
14. The engine intake system according to claim 12, wherein the projected section extends in the internal space of the intake passage in a direction that crosses an axial direction of a throttle valve shaft in a downflow direction of the fresh air from the throttle valve toward the fresh air introduction passage.
15. An engine intake system supplies gas containing at least fresh air to a cylinder of an engine, the engine intake system comprising: a throttle valve that regulates an intake amount of the fresh air; an intake passage having an internal space in which the fresh air that passed through the throttle valve is introduced into the cylinder of the engine; and an EGR passage that communicates with the internal space of the intake passage and introduces at least some exhaust gas as EGR gas into the intake passage, wherein the EGR passage includes a projected section having a substantially polygonal shape that extends into the internal space of the intake passage, and an upstream lateral surface of the projected section has a projection length that is longer than a projection length on a downstream lateral surface of the projected section.
16. The engine intake system according to claim 15, wherein: a direction along a valve shaft of the throttle valve is set as a valve shaft direction, and the projected section of the EGR passage is formed to project in a direction that crosses the valve shaft direction and to have a projection length that does not overlap the valve shaft under a condition that a downstream portion of the intake passage is seen from the throttle valve.
17. The engine intake system according to claim 15, further comprising: a porous member that covers the EGR passage.
18. An engine intake system supplies gas containing at least fresh air to a cylinder of an engine, the engine intake system comprising: a throttle valve that regulates an intake amount of the fresh air; an intake passage having an internal space in which the fresh air that passed through the throttle valve is introduced into the cylinder of the engine; and an EGR passage that communicates with the internal space of the intake passage and introduces at least some exhaust gas as EGR gas into the intake passage, wherein the EGR passage includes means for inhibiting a backflow of the EGR gas toward the throttle valve.
19. The engine intake system of claim 18, wherein: the means for inhibiting a backflow of the EGR gas toward the throttle valve includes means for blocking a backflow of the EGR gas from reaching the throttle valve.
20. The engine intake system of claim 18, wherein: the means for inhibiting comprises means for preventing the throttle valve from being frozen in a sub-zero temperature by moisture in the EGR gas that is introduced by the EGR passage.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODES FOR CARRYING OUT THE EMBODIMENTS
(9) A description will hereinafter be made on an embodiment of the present disclosure with reference to the drawings.
(10) In this embodiment, a description will be made on an intake system 30 that supplies gas at least containing fresh air to an engine 1 using gasoline or the like as fuel with reference to
(11)
(12) Furthermore,
(13) In the drawings (e.g.
(14) In order to clarify the illustration, the engine 1 is illustrated by two-dot chain lines in
(15) First, the engine 1 is a so-called in-line four-cylinder engine in which four cylinders are disposed in series along an axial center of a crankshaft 2. As illustrated in
(16) The cylinder head 4 is attached to an upper surface of the engine block 3, and the head cover is attached to an upper surface of the cylinder head 4. Furthermore, the oil pan 5 is attached to a lower surface of the engine block 3.
(17) As illustrated in
(18) Furthermore, as illustrated in
(19) In addition, as illustrated in
(20) Here, a description will be made by setting a direction along the axial center of the crankshaft 2 in the engine 1 as the longitudinal direction of the engine 1 and setting a horizontal direction that is substantially orthogonal to the longitudinal direction in the front view as the width direction of the engine 1.
(21) As illustrated in
(22) The exhaust system 20 is disposed on a right side of the engine 1. As illustrated in
(23) The first catalyst 23 is a three-way catalyst, for example. The second catalyst 24 is a gasoline particulate filter, for example.
(24) Meanwhile, as illustrated in
(25) The upstream intake passage 31, the throttle body 35, and the downstream intake passage 36 are connected in this order from the front to the rear, and the EGR system 40 is connected to the downstream intake passage 36.
(26) The upstream intake passage 31 is a passage having an internal space in which outside air is suctioned as the fresh air and flows into the throttle body 35. As illustrated in
(27) The first air duct 32 is formed as a cylindrical body having an internal space through which the fresh air flows down.
(28) The air cleaner 33 has a function of removing dust contained in the fresh air that is suctioned via the first air duct 32.
(29) The second air duct 34 is a cylindrical body having an internal space through which the fresh air flows down, a front end thereof is connected to the air cleaner 33, and a rear end thereof is connected to the throttle body 35.
(30) As illustrated in
(31) More specifically, the throttle body 35 includes: a hollow case 35a that communicates with the upstream intake passage 31 and the downstream intake passage 36; a throttle valve 35b that can freely open/close an internal space of the case 35a; and a valve shaft 35c that supports the throttle valve 35b (see
(32) The downstream intake passage 36 is a branch pipe, a so-called intake manifold, through which the gas at least containing the fresh air is introduced into the intake ports 9 of the engine 1. The downstream intake passage 36 is integrally formed with a surge tank 38 that stabilizes a flow velocity of the gas at least containing the fresh air.
(33) As illustrated in
(34) By joining the inner divided body 36a, the intermediate divided body 36b, and the outer divided body 36c in the width direction, the downstream intake passage 36 defines an internal space that communicates between the internal space of the throttle body 35 and the intake ports 9 of the engine 1.
(35) As illustrated in
(36) In detail, as illustrated in
(37) The fresh air introduction passage 37, the surge tank 38, and the independent intake pipes 39 are disposed in this order from the throttle body 35 to the engine 1. In other words, the fresh air introduction passage 37, the surge tank 38, and the independent intake pipes 39 are disposed in this order from an upstream side to a downstream side of a flow of the gas at least containing the fresh air.
(38) As illustrated in
(39) As illustrated in
(40) As illustrated in
(41) More specifically, a portion of the independent intake pipe 39 that is curved upward to the left in the width direction from the lower portion of the surge tank 38 is constructed of the intermediate divided body 36b and the outer divided body 36c, and a portion thereof located above the fresh air introduction passage 37 is constructed of the inner divided body 36a, the intermediate divided body 36b, and the outer divided body 36c.
(42) The independent intake pipe 39 is formed in the curved shape that passes a position separated from the fresh air introduction passage 37 by a specified clearance on the left side in the width direction. As illustrated in
(43) More specifically, as illustrated in
(44) As illustrated in
(45) The EGR passage 41 connects the exhaust system 20 and the downstream intake passage 36 so as to circulate some of the exhaust gas flowing toward the first catalyst 23 into the fresh air introduction passage 37.
(46) The EGR cooler 42 is a cooler of a water-cooling type, for example, and cools the exhaust gas to be circulated into the downstream intake passage 36. As illustrated in
(47) The EGR valve 43 is an on-off valve that regulates a flow rate of the exhaust gas to be circulated into the downstream intake passage 36. As illustrated in
(48) The description will continue on the EGR passage 41 of the above-described EGR system 40.
(49) As illustrated in
(50) Of these, as illustrated in
(51) More specifically, as illustrated in
(52) As illustrated in
(53) As illustrated in
(54) As illustrated in
(55) As illustrated in
(56) As illustrated in
(57) As illustrated in
(58) In detail, as illustrated in
(59) Furthermore, as illustrated in
(60) More specifically, as illustrated in
(61) As it has been described so far, the intake system 30 of the engine 1, which supplies the gas at least containing the fresh air to each of the cylinders 7 in the engine 1, includes: the throttle valve 35b that regulates an intake amount of the fresh air; and the downstream intake passage 36 having the internal space in which the fresh air having flowed through the throttle valve 35b is introduced into the cylinders of the engine 1. The intake system 30 of the engine 1 further includes the EGR passage 41 that communicates with the internal space of the downstream intake passage 36 and introduces some of the exhaust gas as the EGR gas into the downstream intake passage 36. The EGR passage 41 includes the projected section 465 in the substantially polygonal or cylindrical shape that is projected to the internal space of the downstream intake passage 36. The projected section 465 is formed to have the shape in which the projection length H1 on the outer circumferential surface on the upstream side is longer than the projection length H2 on the outer circumferential surface on the downstream side.
(62) In this way, the intake system 30 of the engine 1 can inhibit a backflow flux of the EGR gas toward the throttle valve 35b by controlling (e.g., mechanically controlling or blocking a backflow of) the flux of the EGR gas in the internal space of the downstream intake passage 36.
(63) More specifically, the projected section 465 of the EGR passage 41 is formed in a substantially polygonal or partial cylindrical shape (e.g., gutter shape when viewed in cross-section, where a surface of the partial cylindrical shape decreases as the projected section 465 extends further toward its outermost end) in which the projection length H1 on the outer circumferential surface on the upstream side is longer than the projection length on a downstream lateral surface. Accordingly, in the projected section 465 of the EGR passage 41, the upstream lateral surface can function as a protective wall against the negative-pressure region N that is generated adjacent to the throttle valve 35b.
(64) As a result, even in the case where the projected section 465 of the EGR passage 41 is provided at the position near the throttle valve 35b, the intake system 30 of the engine 1 can inhibit the EGR gas from being drawn to the negative-pressure region N. Thus, the intake system 30 of the engine 1 can introduce the EGR gas into the downstream intake passage 36 in a manner to flow along the flow of the fresh air that flows down toward the downstream portion of the downstream intake passage 36.
(65) Therefore, the intake system 30 of the engine 1 can inhibit the flux of the EGR gas toward the throttle valve 35b by controlling the flux of the EGR gas in the internal space of the downstream intake passage 36. Furthermore, the projected section 465 of the EGR passage 41 can be provided in the further upstream portion of the downstream intake passage 36. Therefore, compared to a case where the projected section 465 of the EGR passage 41 is provided in the downstream portion of the downstream intake passage 36, the intake system 30 of the engine 1 can further reliably mix the fresh air and the EGR gas.
(66) In addition, since the projected section 465 of the EGR passage 41 is formed in the substantially cylindrical shape (or partial cylindrical shape), the intake system 30 of the engine 1 can cause the fresh air to smoothly flow down along the circumferential surface of the projected section 465. Thus, compared to the projected section 465 in a substantially rectangular shape, for example, the intake system 30 of the engine 1 can suppress intake resistance of the fresh air.
(67) Furthermore, since the negative-pressure region N is generated on the downstream side of the projected section 465 by the flow of the fresh air, the intake system 30 of the engine 1 can reliably deliver the EGR gas from the projected section 465 toward the downstream side of the downstream intake passage 36.
(68) Therefore, the intake system 30 of the engine 1 can further inhibit the flux of the EGR gas toward the throttle valve 35b and can reliably cause the EGR gas, which is introduced into the downstream intake passage 36, to flow down to the downstream portion of the downstream intake passage 36.
(69) In a downflow view that is seen in the downflow direction, the projected section 465 of the EGR passage 41 is formed to be projected in the direction that crosses a valve shaft direction and to have the projection length that does not overlap the valve shaft 35c.
(70) As a result, in the downflow view, in the intake system 30 of the engine 1, it is possible to suppress a ratio of an area of the projected section 465 to an opening area of the downstream intake passage 36 to be low. Therefore, the intake system 30 of the engine 1 can further suppress the intake resistance of the fresh air.
(71) Furthermore, the projection length of the projected section 465 can be suppressed in comparison with the projected section 465 having a projection length that overlaps the valve shaft 35c in the downflow view. Thus, in the intake system 30 of the engine 1, the tip of the projected section 465 can be positioned near the circumferential surface of the downstream intake passage 36 where the flow velocity of the fresh air is relatively high.
(72) As a result, the intake system 30 of the engine 1 can reliably merge the EGR gas with the flow of the fresh air toward the downstream portion of the downstream intake passage 36 at a relatively high flow velocity.
(73) Therefore, the intake system 30 of the engine 1 can further reliably cause the EGR gas, which is introduced into the downstream intake passage 36, to flow down to the downstream portion of the downstream intake passage 36.
(74) Moreover, since the sound insulators S, each of which covers the EGR passage 41, are provided, the heat in the EGR passage 41 can be retained in the intake system 30 of the engine 1. Thus, it is possible to introduce the EGR gas, a temperature of which is suppressed from being reduced, toward the downstream portion of the downstream intake passage 36.
(75) In this way, the intake system 30 of the engine 1 can further suppress condensation of moisture contained in the EGR gas in the downstream intake passage 36. Therefore, the intake system 30 of the engine 1 can further reliably introduce the EGR gas containing the moisture into the cylinders of the engine 1.
(76) In correspondences between the configuration of the present disclosure and that of the above-described embodiment, the intake passage in the present disclosure corresponds to the downstream intake passage 36 in the embodiment, similarly, the projection length on the upstream lateral surface corresponds to the projection length H1 on the outer circumferential surface on the upstream side, the projection length on the downstream lateral surface corresponds to the projection length H2 on the outer circumferential surface on the downstream side, and the porous member corresponds to the sound insulator S, but the present disclosure is not only limited to the configuration in the above-described embodiment but can be implemented in various embodiments.
(77) For example, in the above-described embodiment, the engine 1 is an in-line four-cylinder engine. However, the engine 1 is not limited thereto, and may be an in-line six-cylinder engine, a V-type multi-cylinder engine, a single-cylinder engine, or the like. The engine 1 may be vertically arranged or horizontally arranged.
(78) The downstream intake passage 36 is made of the synthetic resin. However, the downstream intake passage 36 is not limited thereto and may be a downstream intake passage that is made of metal.
(79) The downstream intake passage 36 includes the surge tank 38. However, the downstream intake passage 36 is not limited thereto and may be a downstream intake passage that does not include the surge tank 38.
(80) The third EGR passage 46 is constructed of the space provided in the downstream intake passage 36. However, the third EGR passage 46 is not limited thereto and may be a third EGR passage that is constructed of a different pipe from the downstream intake passage 36.
(81) At this time, the projected section may be constructed of the tip of the third EGR passage that is inserted in the fresh air introduction passage 37 of the downstream intake passage 36. Alternatively, it may be configured to insert the third EGR passage, which constructed of a different body, in the projected section integrally formed with the fresh air introduction passage 37.
(82) The projected section 465 has the substantially cylindrical shape (or partial cylindrical shape). However, the projected section 465 is not limited thereto, and may be a projected section in a polygonal cylindrical shape, for example, as long as the projection length H1 on the upstream lateral surface is longer than the projection length H2 on the downstream lateral surface.
(83) The third exhaust gas introduction passage 463 and the fourth exhaust gas introduction passage 464 of the EGR passage 41 are configured to be covered with the sound insulators S. However, the third exhaust gas introduction passage 463 and the fourth exhaust gas introduction passage 464 may be covered with a sound absorbing material or a thermal insulator as long as the sound absorbing material or the thermal insulator is the porous member having the heat retaining property.
DESCRIPTION OF REFERENCE SIGNS AND NUMERALS
(84) 1: Engine 7: Cylinder 30: Intake system 35b: Throttle valve 35c: Valve shaft 36: Downstream intake passage 41: EGR passage 465: Projected section H1: Projection length on outer circumferential surface on upstream side H2: Projection length on outer circumferential surface on downstream side S: Sound insulator