Air intake apparatus for internal combustion engine
10731607 ยท 2020-08-04
Assignee
- AISIN SEIKI KABUSHIKI KAISHA (Kariya-Shi, Aichi-Ken, JP)
- TOYOTA JIDOSHA KABUSHIKI KAISHA (Toyota-shi, Aichi-ken, JP)
Inventors
Cpc classification
F02M35/10072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/112
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10321
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/20
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
International classification
F02M26/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/112
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In this air intake apparatus for an internal combustion engine, an external gas passage includes external gas introduction nozzles that introduce external gas into air intake pipes, and a length of each of the external gas introduction nozzles in a direction in which the external gas introduction nozzles extend is larger than an equivalent diameter of an exit of each of the external gas introduction nozzles.
Claims
1. An air intake apparatus of an internal combustion engine, comprising: a plurality of air intake pipes respectively connected to a plurality of cylinders of the internal combustion engine; and an external gas passage that distributes external gas to the plurality of air intake pipes, wherein the external gas passage extends toward a head port of a head of the internal combustion engine connected to the air intake pipes, and includes external gas introduction nozzles that introduce the external gas into the air intake pipes, a length of each of the external gas introduction nozzles in a direction in which the external gas introduction nozzles extend is larger than an equivalent diameter of an exit of each of the external gas introduction nozzles, the external gas passage includes an external gas inlet and an external gas distributor through which external gas flows to the external gas introduction nozzles, the external gas distributor defining first hierarchy flow paths branched from the external gas inlet and second hierarchy flow paths branched from each of the first hierarchy flow paths, the first hierarchy flow paths are arranged along air intake pathways of the air intake pipes, the first hierarchy flow paths are defined by a wall having an inner peripheral side on which the air intake pathways are provided, and are separated from the air intake pathways by the wall, and in a flat cross-section which passes through the first hierarchy flow paths, the air intake pathways, and the wall, the first hierarchy flow paths are provided directly at an outer peripheral side of the wall without an intervening space, and the air intake pathways are provided directly at the inner peripheral side of the wall without an intervening space.
2. The air intake apparatus of an internal combustion engine according to claim 1, wherein an inner peripheral surface of each of the external gas introduction nozzles is formed in a tapered shape tapered toward the head port.
3. The air intake apparatus of an internal combustion engine according to claim 1, wherein a corner of an entrance of each of the external gas introduction nozzles into which the external gas is introduced is rounded.
4. The air intake apparatus of an internal combustion engine according to claim 3, wherein the corner of the entrance in a vicinity of a boundary between the external gas distributor and each of the external gas introduction nozzles is rounded.
5. The air intake apparatus of an internal combustion engine according to claim 1, wherein the external gas introduction nozzles protrude into the air intake pipes.
6. The air intake apparatus of an internal combustion engine according to claim 1, wherein the external gas is exhaust recirculation gas.
7. The air intake apparatus of an internal combustion engine according to claim 1, further comprising an air intake apparatus main body provided with the air intake pipes, wherein the air intake apparatus main body is formed by bonding a plurality of separate pieces to each other, the plurality of air intake pipes are curved, the air intake apparatus main body includes a first piece that constitutes inner peripheral sides of the curved air intake pipes, a second piece that constitutes outer peripheral sides of the curved air intake pipes and an inner peripheral side of the external gas passage, and a third piece that constitutes an outer peripheral side of the external gas passage, the external gas distributor is formed in a hierarchically branched tournament shape, and the external gas introduction nozzles are integrally provided in a portion of the second piece corresponding to a lowermost hierarchy of the external gas distributor formed in the hierarchically branched tournament shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
MODES FOR CARRYING OUT THE INVENTION
(7) Embodiments of the present invention are hereinafter described on the basis of the drawings.
First Embodiment
(8) The structure of an air intake apparatus 100 for an engine 110 according to a first embodiment of the present invention is now described with reference to
(9) The air intake apparatus 100 according to the first embodiment of the present invention is mounted on the in-line four-cylinder engine 110 (see
(10) In the air intake apparatus 100, intake air that reaches an air intake 12 via an air cleaner (not shown) and a throttle valve (not shown) serving as an air intake path flows into the surge tank 10.
(11) EGR (Exhaust Gas Recirculation) gas, which is a portion of exhaust gas discharged from combustion chambers (cylinders (not shown)) to the outside, is recirculated to the engine 110 through the air intake apparatus 100. The EGR gas separated from the exhaust gas is cooled to a predetermined temperature (about 100 C.) and then introduced into the air intake apparatus main body 80. The EGR gas contains moisture. The EGR gas is an example of an external gas in the claims.
(12) The air intake apparatus main body 80 (such as the surge tank 10, the air intake pipes 20, and EGR gas introduction nozzles 43 described later) is formed by resin molding (resin molding with a polyamide resin, for example). As shown in
(13) As shown in
(14) The EGR gas is introduced into the engine 110. Specifically, as shown in
(15) The EGR gas passage 40 includes an EGR gas inlet 41 and an EGR gas distributor 42. The EGR gas distributor 42 is formed in a hierarchically branched tournament shape. Specifically, the EGR gas distributor 42 includes two flow paths, which are a flow path 42a (X1 side) and a flow path 42b (X2 side) of a first hierarchy, into which the EGR gas inlet 41 is branched. The EGR gas distributor 42 further includes two flow paths, which are a flow path 42c (X1 side) and a flow path 42d (X2 side) of a second hierarchy, into which the flow path 42a (X1 side) of the first hierarchy is branched. The EGR gas distributor 42 further includes two flow paths, which are a flow path 42e (X1 side) and a flow path 42f (X2 side) of a second hierarchy, into which the flow path 42b (X2 side) of the first hierarchy is branched. The length L1 of the flow path 42c (flow path 42e) of the second hierarchy in a direction X is larger than the length L2 of the flow path 42d (flow path 42f) of the second hierarchy in the direction X. The EGR gas inlet 41 and the EGR gas distributor 42 are examples of an external gas inlet and an external gas distributor in the claims, respectively.
(16) According to the first embodiment, as shown in
(17) According to the first embodiment, as shown in
(18) As shown in
(19) As shown in
(20) According to the first embodiment, as shown in
(21) The outer peripheral surface 43h of the EGR gas introduction nozzle 43 is formed so as to be tapered toward the head port 110b. That is, the thickness t (the thickness t on the lower surface 43g side and the side surface 43i side other than the upper surface 43f side) of the EGR gas introduction nozzle 43 in its diameter direction is substantially constant from the entrance 43b side of the EGR gas introduction nozzle 43 to the exit 43a side thereof. The thickness t of the EGR gas introduction nozzle 43 is slightly reduced in the vicinity of the exit 43a.
(22) According to the first embodiment, a corner 43j of the entrance 43b of the EGR gas introduction nozzle 43 into which the EGR gas is introduced is rounded. Specifically, as shown in
(23) According to the first embodiment, as shown in
(24) As shown in
(25) As shown in
Effects of First Embodiment
(26) According to the first embodiment, the following effects can be obtained.
(27) According to the first embodiment, as hereinabove described, the length L3 of the EGR gas introduction nozzle 43 in the direction in which the EGR gas introduction nozzle 43 extends is larger than the equivalent diameter D1 of the exit 43a of the EGR gas introduction nozzle 43. Thus, the length L3 of the EGR gas introduction nozzle 43 is relatively large, and hence the pressure loss increases when air flows back from the air intake pipe 20 to the EGR gas introduction nozzle 43. Consequently, it becomes difficult for the air to flow back from the air intake pipe 20 to the EGR gas introduction nozzle 43, and hence it is possible to significantly reduce or prevent a decrease in the performance of the engine 110 due to backflow of the air to the EGR gas passage 40. Furthermore, it becomes difficult for the air to flow back from the air intake pipe 20 to the EGR gas introduction nozzle 43, and hence it is possible to significantly reduce or prevent variations in the amount of the EGR gas distributed to the plurality of cylinders (to improve the distributivity).
(28) According to the first embodiment, as hereinabove described, the inner peripheral surface 43e of the EGR gas introduction nozzle 43 is formed in a tapered shape tapered toward the head port 110b. Thus, as compared with the case where the inner diameter of the EGR gas introduction nozzle 43 is constant, the pressure loss further increases when the air flows back from the air intake pipe 20 to the EGR gas introduction nozzle 43, and hence it is possible to further significantly reduce or prevent a decrease in the performance of the engine 110 due to backflow of the air to the EGR gas passage 40. Furthermore, the inner peripheral surface 43e of the EGR gas introduction nozzle 43 is formed in a tapered shape tapered toward the head port 110b such that the EGR gas is introduced toward the head port 110b, and hence disruption of flow of the intake air that flows through the air intake pipe 20 is significantly reduced or prevented. Consequently, it is possible to significantly reduce or prevent a decrease in the flow velocity of the intake air. Moreover, the inner peripheral surface 43e of the EGR gas introduction nozzle 43 is formed in a tapered shape tapered toward the head port 110b such that when the EGR gas introduction nozzle 43 is formed by resin molding, the EGR gas introduction nozzle 43 can be easily resin-molded by moving a metal mold to the side opposite to the head port 110b (in a direction opposite to a tapered direction). Thus, the EGR gas introduction nozzle 43 can be resin-molded integrally with the air intake apparatus main body 80 without separately adding a member (piece).
(29) According to the first embodiment, as hereinabove described, the corner 43j of the entrance 43b of the EGR gas introduction nozzle 43 into which the EGR gas is introduced is rounded. Thus, as compared with the case where the corner 43j of the entrance 43b has a square shape, the pressure loss decreases when the EGR gas is introduced into the EGR gas introduction nozzle 43, and hence the EGR gas can be smoothly introduced into the air intake pipe 20.
(30) According to the first embodiment, as hereinabove described, the EGR gas introduction nozzle 43 protrudes into the air intake pipe 20. Thus, unlike the case where the EGR gas introduction nozzle 43 does not protrude into the air intake pipe 20 and is disposed outside the air intake pipe 20, it is possible to significantly reduce or prevent an increase in the size of the air intake apparatus 100.
(31) According to the first embodiment, as hereinabove described, the EGR gas introduction nozzle 43 is disposed on the head port 110b side of the engine 110 relative to the central portion of the air intake pathway C1 of the air intake pipe 20. When a distance between the EGR gas introduction nozzle 43 and a corresponding cylinder of the engine 110 is relatively large, a difference between the on/off timing of a valve that controls introduction of the EGR gas into the air intake pipe 20 and stop thereof and the actual timing at which the EGR gas is introduced into the cylinder of the engine 110 becomes large (the responsiveness becomes poor). Therefore, in order to stop introduction of the EGR gas into the cylinder of the engine 110 at the desired timing, it is necessary to advance the timing at which the valve is turned off. In this case, the amount of the introduced EGR gas is reduced, and hence the effect of introduction of the EGR gas is reduced (the fuel economy is reduced). Thus, according to the first embodiment, as described above, the EGR gas introduction nozzle 43 is disposed on the head port 110b side of the engine 110 relative to the central portion of the air intake pathway C1 of the air intake pipe 20 such that the distance between the EGR gas introduction nozzle 43 and the cylinder of the engine 110 becomes relatively small, and hence the responsiveness of introduction of the EGR gas into the engine 110 can be improved. Consequently, the fuel economy of the engine 110 can be improved.
(32) According to the first embodiment, as hereinabove described, the corner 43j of the entrance 43b in the vicinity of the boundary between the EGR gas distributor 42 and the EGR gas introduction nozzle 43 is rounded. Thus, the EGR gas can be smoothly introduced from the EGR gas distributor 42 into the EGR gas introduction nozzle 43.
(33) According to the first embodiment, as hereinabove described, the EGR gas is introduced into the air intake pipe 20. Thus, it is possible to improve the fuel economy while reducing the pumping loss (intake and exhaust loss) and further to improve emissions.
(34) According to the first embodiment, as hereinabove described, the EGR gas introduction nozzle 43 is integrally provided in the portion of the upper piece 81 corresponding to the lowermost hierarchy of the EGR gas distributor 42 formed in a tournament shape. Thus, it is not necessary to separately add a member (piece) in order to provide the EGR gas introduction nozzle 43, and hence it is possible to significantly reduce or prevent an increase in the number of components.
(35) According to the first embodiment, as hereinabove described, the protruding length D3 of the EGR gas introduction nozzle 43 from the entrance 43b, into which the EGR gas is introduced, into the air intake pipe 20 is larger than the equivalent diameter D1 of the exit 43a of the EGR gas introduction nozzle 43. Thus, the pressure loss can be sufficiently increased when the air flows back from the air intake pipe 20 to the EGR gas introduction nozzle 43, and hence it is possible to effectively significantly reduce or prevent backflow of the air from the air intake pipe 20 to the EGR gas introduction nozzle 43.
Second Embodiment
(36) The structure of an air intake apparatus 200 for an engine 110 according to a second embodiment of the present invention is described with reference to
(37) As shown in
(38) The remaining structures and effects of the second embodiment are similar to those of the aforementioned first embodiment.
(39) The embodiments disclosed this time must be considered as illustrative in all points and not restrictive. The range of the present invention is shown not by the above description of the embodiments but by the scope of claims for patent, and all modifications (modified examples) within the meaning and range equivalent to the scope of claims for patent are further included.
(40) For example, while the example in which the present invention is applied to the air intake apparatus 100 (air intake apparatus 200) mounted on the in-line four-cylinder engine 110 has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. That is, the air intake apparatus according to the present invention may be mounted on an in-line multi-cylinder engine other than the in-line four-cylinder engine, or may be mounted on a V-type multi-cylinder engine, a horizontally opposed engine, or the like. As the engine, a gasoline engine, a diesel engine, a gas engine, or the like can be applied. Alternatively, the present invention is also applicable to air intake apparatuses mounted on not only an engine (internal combustion engine) mounted on a general vehicle (automobile) but also an internal combustion engine installed in transportation equipment such as a train or a ship or stationary equipment other than the transportation equipment.
(41) While the example in which the exit 43a of the EGR gas introduction nozzle 43 (the exit 243a of the EGR gas introduction nozzle 243) has a substantially perfect circular shape has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. For example, the exit of the EGR gas introduction nozzle may have a shape (such as an elliptical shape) other than a substantially perfect circular shape.
(42) While the example in which the inner peripheral surface 43e of the EGR gas introduction nozzle 43 (the inner peripheral surface 243c of the EGR gas introduction nozzle 243) is formed in a tapered shape tapered toward the head port 110b has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. For example, the inner peripheral surface of the EGR gas introduction nozzle may not be tapered toward the head port (the inner diameter may be constant toward the head port).
(43) While the example in which the EGR gas introduction nozzle 43 (EGR gas introduction nozzle 243) protrudes into the air intake pipe 20 has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. For example, the EGR gas introduction nozzle may be disposed outside the air intake pipe such that the EGR gas introduction nozzle does not protrude into the air intake pipe.
(44) While the example in which the EGR gas (exhaust recirculation gas) is introduced into the air intake pipe 20 has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. For example, as the external gas according to the present invention, blow-by gas (PCV gas) for ventilation in a crankcase may be introduced into the air intake pipe.
(45) While the example in which the air intake apparatus main body 80 is made of resin (polyamide resin) has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. For example, the air intake apparatus main body may be made of metal.
(46) While the example in which a valve that changes the length of the air intake pipe 20 (the length of the air intake pathway) is not provided in the air intake pipe 20 has been shown in each of the aforementioned first and second embodiments, the present invention is not restricted to this. For example, the present invention may be applied to an air intake pipe provided with a valve that changes the length of the air intake pipe (the length of an air intake pathway).
DESCRIPTION OF REFERENCE NUMERALS
(47) 20, 20a to 20d: air intake pipe 40: EGR gas passage (external gas passage) 41: EGR gas inlet (external gas inlet) 42: EGR gas distributor (external gas distributor) 43, 243: EGR gas introduction nozzle (external gas introduction nozzle) 43a, 243a: exit 43b, 243b: entrance 43e, 243c: inner peripheral surface 43j: corner 80: air intake apparatus main body 81: upper piece (second piece) 82: middle piece (first piece) 84: EGR gas piece (third piece) 100: air intake apparatus 110: engine (internal combustion engine) 110a: head 110b: head port C1: air intake pathway D1: equivalent diameter L3: length (of the external gas introduction nozzle)