This application is based on and claims the benefit of priority from the prior Japanese Patent Applications No. 2020-036675 filed on Mar. 4, 2020, No. 2020-088748 filed on May 21, 2020, and No. 2020-148198 filed on Sep. 3, 2020, the entire contents of which are incorporated herein by reference.
This disclosure relates to an EGR system configured to allow a part of exhaust gas discharged from an engine to an exhaust passage to flow as EGR gas to an intake passage through an EGR passage to return to the engine.
As the above type of technique, there has conventionally been known a technique disclosed in for example Japanese unexamined patent application publication No. 2018-44518 (JP 2018-44518A) (an intake manifold). In this technique, an intake manifold is provided with a gas distribution part for distributing auxiliary gas (EGR gas, PCV gas, etc.) to a plurality of branch pipes for distributing intake air to corresponding cylinders of an engine. Next to this gas distribution part, there is provided a hot water passage part through which hot water warmed through the use of cooling water for the engine. Further, a partition wall between the gas distribution part and the hot water passage part is formed of a material having good thermal conductivity (a resin material that contains carbon powder or an insert-molded metal plate). The gas distribution part is efficiently kept warm by the heat of hot water in the hot water passage part to prevent the generation of condensed water and the freezing thereof in the gas distribution part.
In the technique disclosed in JP 2018-44518A, however, even though the partition wall located between the gas distribution part and the hot water passage is formed of the material having a good thermal conductivity, the temperature of the hot water depends on a warm-up state of the engine and therefore it is difficult to increase the inside temperature of the gas distribution part with good responsivity and stably keep the inside temperature of the same.
The present disclosure has been made to address the above problems and has a purpose to provide an EGR system capable of increasing the temperature of the inner wall of at least one of an intake passage through which the EGR gas is allowed to flow and an EGR passage with good responsivity and stably keeping the temperature of the inner wall.
To achieve the above-mentioned purpose, one aspect of the present disclosure provides an EGR system configured to allow a part of exhaust gas discharged from an engine to an exhaust passage to flow as an EGR gas to an intake passage through an EGR passage to return to the engine, wherein each of the intake passage through which the EGR gas is allowed to flow and the EGR passage includes an inner wall and an outer wall, the inner wall or the outer wall of at least one of the intake passage through which the EGR gas is allowed to flow and the EGR passage is provided with a heating film, and the EGR system further includes at least one pair of a positive electrode and a negative electrode to energize the heating film.
According to the above configuration, the temperature of the inner wall of at least one of the intake passage and the EGR passage, through each of which EGR gas flows, can be increased with good responsivity and kept stably.
A detailed description of several embodiments of an EGR system, embodied as a gasoline engine system, will now be given.
A first embodiment will be firstly described in detail with reference to the drawings.
(Engine System)
The throttle device 4 is placed in the intake passage 2 upstream of the intake manifold 5 and configured to drive a butterfly throttle valve 4a to open and close at a variable opening degree in response to the operation of an accelerator by a driver in order to adjust the amount of intake air flowing through the intake passage 2. The intake manifold 5 is mainly made of resin material and placed on the intake passage 2 just upstream of the engine 1. This intake manifold 5 includes a single surge tank 5a into which intake air is introduced and a plurality of (four) branch pipes 5b branched off from the surge tank 5a to distribute the intake air introduced in the surge tank 5a to each of the cylinders. In the exhaust passage 3, there are provided an exhaust manifold 6 and a catalyst 7 in this order from an upstream side. The catalyst 7 contains for example a three-way catalyst to purify exhaust gas.
The engine 1 is provided with fuel injection devices (not shown) configured to inject fuel in one-to-one correspondence with the cylinders. The fuel injection devices are configured to inject the fuel supplied from a fuel supply device (not shown) to the corresponding cylinders of the engine 1. In each of the cylinders, the fuel injected from the fuel injection device and the intake air introduced from the intake manifold 5 are mixed, forming a combustible air-fuel mixture.
The engine 1 is further provided with ignition devices (not shown) in one-to-one correspondence with the cylinders. The ignition devices are configured to ignite the combustible air-fuel mixture generated in the corresponding cylinders. The combustible air-fuel mixture in each cylinder is exploded and burnt by an igniting action of the ignition devices. The exhaust gas after burning is discharged to the outside through each cylinder, the exhaust manifold 6, and the catalyst 7. At that time, a piston (not shown) in each cylinder moves up and down, thereby rotating a crankshaft (not shown), generating power in the engine 1.
(EGR System)
This EGR system in the present embodiment is provided with an EGR device 11. The EGR device 11 is configured to allow part of exhaust gas discharged from each cylinder of the engine 1 to the exhaust passage 3 to flow as an exhaust gas recirculation gas (EGR gas) to the intake passage 2 to return to each cylinder of the engine 1. The EGR device 11 includes an exhaust gas recirculation passage (an EGR passage) 12, an exhaust gas recirculation cooler (an EGR cooler) 13 to cool EGR gas that flows through the EGR passage 12, an exhaust gas recirculation valve (an EGR valve) 14 to adjust the amount of EGR gas flowing through the EGR passage 12, and an exhaust gas recirculation gas distributor (an EGR gas distributor) 15 to distribute EGR gas to each of branch pipes 5b of the intake manifold 5 in order to distribute EGR gas flowing through the EGR passage 12 to each of the cylinders of the engine 1. The EGR passage 12 includes an inlet 12a and an outlet 12b. The inlet 12a of the EGR passage 12 is connected to the exhaust passage 3 upstream of the catalyst 7, while the outlet 12b of the EGR passage 12 is connected to the EGR gas distributor 15. In the present embodiment, the EGR gas distributor 15 constitutes a final stage of the EGR passage 12. In this EGR passage 12, the EGR valve 14 is provided downstream of the EGR cooler 13 and the EGR gas distributor 15 is placed downstream of the EGR valve 14.
In this EGR device 11, when the EGR valve 14 is opened, part of the exhaust gas flowing through the exhaust passage 13 is allowed to flow as EGR gas through the EGR passage 12 and is distributed to each branch pipe 5b of the intake manifold 5 through the EGR valve 14 and the EGR gas distributor 15, and further distributed to each cylinder of the engine 1 for recirculation.
(EGR Gas Distributor)
The gas inflow passage 21A has a gas inlet 24 through which EGR gas is introduced in this passage 21A. The gas inlet 24 is connected with the EGR passage 12. For this connection with the EGR passage 12, an inlet flange 24a is provided around the gas inlet 24. The gas inflow passage 21 includes a passage part 21a extending from the gas inlet 24 and branch passage parts 21b and 21c branched off in a bifurcated shape from the passage part 21a. The gas inlet 24 opens on the front side of the EGR gas distributor 15. The passage part 21a extends in a curve from the front side to the back side of the EGR gas distributor 15 and joins to each of the branch passage parts 21b and 21c. The gas chamber 22 has a tubular, laterally long shape. The gas chamber 22 serves to collect EGR gas introduced into the gas inflow passage 21 through the gas inlet 24. The plurality of gas distribution passages 23 branch off from the gas chamber 22 in the front of the gas chamber 22. In the present embodiment, each of the gas distribution passages 23 extends at a slant obliquely downward from the gas chamber 22 to each corresponding branch pipe 5b and opens therein.
In the present embodiment, as shown in
In the present embodiment, as shown in
Each of the heating films 29 and 30 is provided with a ground wire. In this embodiment, the EGR gas distributor 15 is connected (attached) to the EGR passage 12 through the inlet flange 24a. As shown in
(Heating Films)
Herein, the heating films 29 and 30 will be described in detail. As the heating films 29 and 30, for example, “Heating film coating” made by Toyo Drilube Co., Ltd. can be used. This heating film is a drying film made by mixing and dispersing various kinds of conductive pigments in a special binder, and can generate heat over the entire surface when supplied with electric power through electrodes. Electric currents applied to the mixed conductive pigment (conductor) is converted into heat energy (Joule heat) to obtain a heating efficiency. The characteristics of this heating film are as below:
According to the EGR system configured as above in the present embodiment, EGR gas flowing through the EGR passage 12 is introduced into the gas inflow passage 21 of the EGR gas distributor 15, flows through the gas inflow passage 21 while branching off and collects in the gas chamber 22, and is appropriately distributed from the plurality of gas distribution passages 23 to each corresponding branch pipe 5b of the intake manifold 5, and then distributed to each cylinder of the engine 1 for recirculation.
Herein, the generation of condensed water is problematic for the EGR gas distributor 15 (the EGR passage). In the EGR gas distributor 15, however, when the heating films 29 and 30 are energized through the positive electrodes 31 and 33 and the negative electrodes 32 and 34, these heating films 29 and 30 generate heat, thereby heating the inner walls of the gas inflow passage 21 and the gas chamber 22 (the gas passage). Thus, arbitrarily controlling the energization of the heating films 29 and 30 adjusts the temperature and the temperature rise of the inner walls of the gas inflow passage 21 and the gas chamber 22 provided with the heating films 29 and 30. This configuration can increase the temperature of the inner walls of the EGR gas distributor 15 (the EGR passage) with good responsivity and keep the temperature stable. Consequently, it is possible to prevent generation of condensed water and freezing of the same inside the EGR gas distributor 15.
According to the present embodiment configured as above, the negative electrodes 32 and 34 of the heating films 29 and 30 and the ground wire 25a are connected to the metal collar 25 provided in the inlet flange 24a (the joint) of the EGR gas distributor 15 (the EGR passage). Thus, the ground wire 25a does not need to be separately and independently grounded. This configuration can apply grounding to each of the heating films 29 and 30 without installing wiring outside the EGR gas distributor 15.
The present embodiment configured as above can prevent the generation of condensed water in the EGR gas distributor 15 as described above. Thus, the condensed water is less likely to flow from the EGR gas distributor 15 to each branch pipe 5b. This configuration can offer greater flexibility of placement to the EGR gas distributor 15 with respect to the intake manifold 5. For instance, the EGR gas distributor 15 can be placed on the intake manifold 5 (the branch pipes 5b) at a position far from the outlet flange 5c (the engine) as shown by a two-dot chain line in
Next, a second embodiment will be described in detail with reference to the accompanying drawings. In the following description, similar or identical components to those in the first embodiment are assigned the same reference signs as in the first embodiment and their details are omitted. The following description will be given with a focus on differences from the first embodiment.
(EGR Gas Distributor)
This second embodiment differs from the first embodiment in the configurations of the heating films 29 and 30 in the EGR gas distributor 15 (the EGR passage). Herein, the heating temperature of each heating film increases as the electric current flows with a higher current value through the heating film. When the heating films have the same thickness as each other, one heating film having a shorter interelectrode distance between a positive electrode and a negative electrode (a shortest distance) than other heating films more greatly rises in heating temperature than the other heating films. Furthermore, when the heating films have the same interelectrode distance between the positive electrode and the negative electrode, one heating film having a larger thickness than other heating films more greatly rises in heating temperature than the other heating films. In the present embodiment, therefore, in the EGR gas distributor 15, the gas inflow passage 21 (the passage part 21a and each branch passage part 21b and 21c) and the gas chamber 22 are provided with the heating films 29 and 30 different in thickness according to the inner diameters or inner circumferential lengths of the gas inflow passage 21 (the passage part 21a and each branch passage part 21b and 21c) and the gas chamber 22 in order to ensure a uniform temperature of the inner walls heated by the heating films 29 and 30.
Specifically,
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can provide the following operations and effects in addition to the operations and effects in the first embodiment. To be concrete, even when the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (a plurality of different portions) in the EGR gas distributor 15 (the EGR passage) have the inner walls different in inner diameter or inner circumferential length, the heating films 29 and 30 can be designed with different thicknesses according to those differences. Accordingly, controlling energization of each of the heating films 29 and 30 can evenly adjust the temperatures of the inner walls of the passage part 21a, the branch passage parts 21b and 21c, and the gas chamber 22, each provided with the heating films 29 and 30. Thus, even when the inner walls of the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) in the EGR gas distributor 15 (the EGR passage) are different in one of the inner diameter and the inner circumferential length, the temperatures of the inner walls can be increased uniformly.
Next, a third embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
This third embodiment differs from the second embodiment in the configurations of the heating films 29 and 30, positive electrodes 31 and 33, and negative electrodes 32 and 34 in the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) of the EGR gas distributor 15.
In the present embodiment, specifically, the thickness of each heating film 29, 30 in the gas chamber 22 (a specific portion) is set smaller than that of the passage part 21a and the branch passage parts 21b and 21c (other portions) and, instead, the interelectrode distance (the shortest distance) between the positive electrode 31 and the negative electrode 32 and between the positive electrode 33 and the negative electrode 34 in the gas chamber 22 are set smaller than the interelectrode distances in the passage part 21a and the branch passage parts 21b and 21c as shown in
In the second embodiment, specifically, in order to make uniform the temperatures of the inner walls of the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) heated by the heating films 29 and 30, the thickness of each of the heating films 29 and 30 in the gas chamber 22 (the specific portion) having the largest inner diameter or inner circumferential length is set largest among those different portions. In contrast, in the present embodiment, in order to make uniform the temperatures of the inner walls of the passage part 21a, the branch passage parts 21b and 21c, and the gas chamber 22 heated by the heating films 29 and 30, instead of setting the thickness of each heating film 29, 30 small in the gas chamber 22 (the specific portion) having the largest inner diameter or inner circumferential length, the interelectrode distance (the shortest distance) related to the electrodes 31 to 34 provided on the heating films 29 and 30 in the gas chamber 22 is set shorter than the interelectrode distances in the passage part 21a and the branch passage parts 21b and 21c (other portions).
(Operations and Effects of EGR System)
According to the EGR system configured in the present embodiment described above, the EGR gas distributor 15 (the EGR passage) is configured such that, in the gas chamber 22 (the specific portion) having the largest inner diameter or inner circumferential length, the upper heating film 29 has a shorter interelectrode distance (the shortest distance) between the adjacent upper positive electrode 31 and upper negative electrode 32, allowing an electric current to easily flow through the upper heating film 29 between the electrodes 31 and 32. This configuration can enhance the heating property of the upper heating film 29. Similarly, the lower heating film 30 in the gas chamber 22 has a shorter interelectrode distance (the shortest distance) between the adjacent lower positive electrode 33 and lower negative electrode 34, allowing an electric current to easily flow through the lower heating film 30 between the electrodes 33 and 34. This configuration can enhance the heating property of the lower heating film 30. Consequently, the equivalent operations and effects to those in the second embodiment can be obtained.
Next, a fourth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of the heating films 29 and 30 in the EGR gas distributor 15.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the first embodiment. In the present embodiment, specifically, in order to adjust the temperatures of the inner walls of the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) in the EGR gas distributor 15 to the required temperature of each of the passage parts and others 21a, 21b, 21c, and 22 even when these passage parts and others 21a, 21b, 21c, and 22 are different in temperature condition from each other, the heating films 29 and 30 are designed with different thicknesses according to the inner diameter or inner circumferential length of the corresponding passage parts and others 21a, 21b, 21c, and 22. Accordingly, controlling the energization of each heating film 29 and 30 in the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 adjusts the temperatures of the inner walls of the corresponding passage parts and others 21a, 21b, 21c, and 22 each provided with the heating films 29 and 30 to the required temperatures of the passage parts and others 21a, 21b, 21c, and 22. Thus, even when the passage part 21a, branch passage parts 21b, 21c, and gas chamber 22 (the plurality of different portions) of the EGR gas distributor 15 (the EGR passage) are different in temperature condition, the temperatures of their inner walls can be increased to the required temperatures of the passage parts and others 21a, 21b, 21c, and 22.
In the present embodiment, for the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) of the EGR gas distributor 15, the heating films 29 and 30 can be designed with different thicknesses according to the inner diameter or inner circumferential length of the corresponding passage parts and others 21a, 21b, 21c, and 22. As a modified example thereof, the interelectrode distance (the shortest distance) between a positive electrode and a negative electrode may be set different according to the inner diameter or inner circumferential length of each of the plurality of different portions or alternatively both the thickness of each heating film and the interelectrode distance may be set different among the different portions. In these cases, the same operations and effects as above can be obtained.
Next, a fifth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from the fourth embodiment in the configurations of the heating films 29 and 30 in the EGR gas distributor 15.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the first embodiment. In the present embodiment, specifically, in order to adjust the temperatures of the inner walls of the upper side and the lower side (different side portions) of the passage part 21a (the specific portion) of the EGR gas distributor 15 (the EGR passage) to a required temperature of each of the upper side and the lower side even when the upper side and the lower side of the passage part 21a are different in temperature condition from each other, the heating films 29 and 30 can be designed with different thicknesses according to the inner diameter or inner circumferential length of the corresponding passage part and others 21a, 21b, 21c, and 22. Accordingly, controlling the energization of the heating films 29 and 30 in the upper side and the lower side of the passage part 21a (the different side portions) adjusts the temperatures of the inner walls of the upper side and the lower side of the passage part 21a provided with the heating films 29 and 30 to the required temperatures. Thus, even when the upper side and the lower side of the passage part 21a (the specific portion) of the EGR gas distributor 15 (the EGR passage) are different in temperature condition, the above configuration in the present embodiment can increase the temperatures of their inner walls to the required temperature.
Next, a sixth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of the heating films 29 and 30 provided in the EGR gas distributor 15.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the first embodiment. In the present embodiment, specifically, the EGR gas distributor 15 is constituted of the upper casing 26 and the lower casing 27. The upper casing 26 is provided with the upper heating film 29, while the lower casing 27 is provided with the lower heating film 30. In the present embodiment, the thickness of the upper heating film 29 and the thickness of the lower heating film 30 are set according to a difference between the upper interelectrode distance between the upper positive electrode 31 and the upper negative electrode 32 of the upper heating film 29 and the lower interelectrode distance between the lower positive electrode 33 and the lower negative electrode 34 of the lower heating film 30. Thus, controlling the energization of the heating films 29 and 30 makes uniform the temperatures of the inner walls of the upper casing 26 and the lower casing 27 or adjusts the temperatures of the inner walls to the required temperatures of the upper casing 26 and the lower casing 27. Even when there is a difference between the upper interelectrode distance (the first interelectrode distance) in the upper heating film 29 (the first heating film) in the upper casing 26 (the first casing) and the lower interelectrode distance (the second interelectrode distance) in the lower heating film 30 (the second heating film) in the lower casing 27 (the second casing), the configuration in the present embodiment can make uniform the temperatures of the inner walls between the upper casing 26 and the lower casing 27 or adjust the temperatures of the inner walls to the required temperature of the upper casing 26 and the lower casing 27.
Next, a seventh embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of the heating films 29 and 30 in the EGR gas distributor 15. Herein, in the EGR gas distributor 15 (the EGR passage), condensed water generated therein collects in the gas chamber 22 together with EGR gas. If this condensed water can be evaporated, the condensed water will not directly flow from each of the gas distribution passages 23 to each cylinder of the engine 1 through each corresponding branch pipe 5b. In the present embodiment, therefore, in the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) provided with the heating films 29 and 30, in order to set the temperature of the inner wall of the lower casing 27 (the second casing) of the gas chamber 22 (the specific portion) higher than the temperature of the inner wall of the upper casing 26 (the first casing) of the gas chamber 22 and the temperatures of the inner walls of passage part 21a and branch passage parts 21b and 21c (other portions), the thickness of the lower heating film 30 in the gas chamber 22 is set larger than the thickness of the upper heating film 29 in the gas chamber 22 and further larger than the thickness of each of the heating films 29 and 30 in each of the passage part 21a and the branch passage parts 21b and 21c.
Herein,
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the first embodiment. In the present embodiment, specifically, among the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) of the EGR gas distributor 15, provided with the heating films 29 and 30, the thickness of each of the heating films 29 and 30 in the gas chamber 22 (the specific portion) is set larger than the thickness of each of the heating films 29 and 30 in the passage part 21a and the branch passage parts 21b and 21c (other portions). Accordingly, controlling the energization of the heating films 29 and 30 in the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 can adjust the temperature of the inner wall of the gas chamber 22 to a temperature higher than the temperatures of the inner walls of the passage part 21a and branch passage parts 21b and 21c. In the present embodiment, particularly, the thickness of the lower heating film 30 in the gas chamber 22 is set to a thickness capable of heating the inner wall of the lower casing 27 to 100° C. or higher. Thus, it is possible to increase the heating temperature of the condensed water accumulated on the lower heating film 30 in the gas chamber 22 (the specific portion) of the EGR gas distributor 15 (the EGR passage) to 100° C. or higher, thereby prompting evaporation of the condensed water.
According to the preset embodiment configured as above, in the gas chamber 22 (the specific portion) of the EGR gas distributor 15, that is, in the passage part 21a, the branch passage parts 21b and 21c, and the lower casing 27 (a most downstream portion) of the gas chamber 22 (the gas passage), the surfaces of their inner walls are provided with the microscopic projections and depressions 28. Accordingly, the lower heating film 30 is placed on the microscopic projections and depressions 28, so that the lower heating film 30 is formed with the microscopic projections and depressions 30a, resulting in increased surface area, and the condensed water WC is trapped in microscopic depressions of the surface of the lower heating film 30. This can enhance the evaporation efficiency of condensed water in the gas chamber 22 (the specific portion) of the EGR gas distributor 15 (the EGR passage).
In the present embodiment, among the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of different portions) of the EGR gas distributor 15, provided with the heating films 29 and 30, the thickness of each of the heating films 29 and 30 in the gas chamber 22 (the specific portion) is set larger than the thickness of each of the heating films 29 and 30 in the passage part 21a and branch passage parts 21b and 21c (other portions). As an alternative, it may be arranged such that the interelectrode distance (the shortest distance) between the positive electrode 31 and the negative electrode 32 provided on the heating film 29 and between the positive electrode 33 and the negative electrode 34 provided on the heating film 30 in the gas chamber 22 of the EGR gas distributor 15 may be set shorter than the interelectrode distance between the positive electrode 31 and the negative electrode 32 provided on the heating film 29 and between the positive electrode 33 and the negative electrode 34 provided on the heating film 30 in each of the passage part 21a and branch passage parts 21b and 21c (other portions). In this case, the foregoing operations and effects can also be obtained.
Next, an eighth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the placement of the heating films in the EGR gas distributor 15.
Specifically,
Herein,
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the first embodiment. In the present embodiment, specifically, the heating film 35 is provided on the inner wall of one (the lower casing 27 or alternatively the right casing 37) of the plurality members (the upper casing 26 and the lower casing 27, or alternatively, the left casing 36 and the right casing 37) constituting the EGR gas distributor 15. This configuration can minimize the provision of the heating film 35. Thus, the EGR gas distributor 15 (the EGR passage) can be simplified in structure for heating.
Next, a ninth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from the foregoing eighth embodiment in placement of electrodes with respect to the heating films in the EGR gas distributor 15.
In
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the eighth embodiment. In the present embodiment, specifically, the interelectrode distance (the shortest distance) between the adjacent positive electrode 39 and negative electrode 40 on the heating film 35 is short, allowing an electric current to easily flow through the heating film 35 between the electrodes 39 and 40. This can enhance the heating property of the heating film 35.
Next, a tenth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from the foregoing eighth embodiment in the placement of a heating film in the EGR gas distributor 15.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can obtain the same operations and effects as in the eighth embodiment.
Next, an eleventh embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of the heating film, positive electrode, and negative electrode in the EGR gas distributor 15.
Specifically,
In the above-described configuration, the second-layer heating films 43 are overlaid on the heating film 42 at only the positions corresponding to the positive electrode 39 and the negative electrode 40. As an alternative, this second-layer heating film may be provided over the entire surface of a heating film forming an under layer.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in each of the foregoing embodiments. In the present embodiment, specifically, the heating film 42 has a multi-layer structure in the parts corresponding to the positive electrode 39 and the negative electrode 40. In other words, the heating films 43 are overlaid on the heating film 42. Accordingly, in case a pinhole(s) is formed in the part(s) of the under-layer heating film 42 at a position(s) corresponding to the positive electrode 39 and the negative electrode 40, the pinhole(s) is closed by the upper-layer heating film(s) 43. This makes it possible to prevent corrosion of the positive electrode 39 and the negative electrode 40 due to penetration of condensed water through the pinhole(s) of the heating film 42.
Next, a twelfth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of a heating film, a positive electrode, and a negative electrode in the EGR gas distributor 15. In this embodiment, similarly, the following protective structure is provided to prevent corrosion of each electrode 39 and 40.
Specifically,
In the foregoing configuration, the corrosion-resistant materials 44 are overlaid on the heating film 42 at only the positions corresponding to the positive electrode 39 and the negative electrode 40. As an alternative, this corrosion-resistant material 44 may be provided over the entire surface of an under-layer heating film.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in each of the foregoing embodiments. In the present embodiment, specifically, the heating film 42 is provided with the corrosion-resistant materials 44 placed on the surface at the positions corresponding to the positive electrode 39 and the negative electrode 40. The heating film 42 is thus prevented from corroding in parts contacting with the positive electrode 39 and negative electrode 40. This can further prevent corrosion of the positive electrode 39 and the negative electrode 40 due to penetration of condensed water from a corroded part of the heating film 42.
Next, a thirteenth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of a heating film, a positive electrode, and a negative electrode in the EGR gas distributor 15. In the present embodiment, similarly, the following protective structure is provided to prevent corrosion of each electrode 39 and 40.
Specifically,
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in each of the foregoing embodiments. In the present embodiment, specifically, in which the insulating material 45 is provided over the entire surface of the heating film 42, the surface of the heating film 42 is prevented from direct adhesion of carbon (carbon particles) and condensed water, resulting in reduction of electric leakage from the heating film 42. This can prevent a decrease in the amount of heating caused by electric leakage from the heating film 42.
Next, a fourteenth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the configurations of a heating film, a positive electrode, and a negative electrode in the EGR gas distributor 15. In the present embodiment, similarly, the following protective structure is provided to prevent corrosion of each electrode 39 and 40.
Specifically,
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in each of the foregoing embodiments. In the present embodiment, specifically, in the EGR gas distributor 15 (the EGR passage) including the casing 41 made of resin, rubber, or metal, having electric conductivity (a conductive material), the electric conduction of the heating film 42 to the casing 41 is blocked by the insulating material 45, thereby reducing electric leakage from the heating film 42. This can prevent a decrease in the heating amount caused by electric leakage from the heating film 42 when the EGR gas distributor 15 (the EGR passage) is made of a conductive material.
Next, a fifteenth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from each of the foregoing embodiments in the joining structure of a casing and a heating film in the EGR gas distributor 15. A heating film may be deformed by heating and thus the heating film may come unstuck from a casing. In the present embodiment, therefore, the following joining structure is provided to prevent unsticking of the heating film in addition to each structure in the first to thirteenth embodiments.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the foregoing first to thirteenth embodiments. In the present embodiment, specifically, the inner wall of the casing 41 (26, 27, 36, 37) of the EGR gas distributor 15 provided with the heating film 42 (29, 30, 35) and the heating film 42 (29, 30, 35) are held in a close contact relation through the microscopic projections and depressions 47. This configuration can strongly join the heating film 42 (29, 30, 35) with the inner wall of the casing 41 (26, 27, 36, 37) of the EGR gas distributor 15 (the EGR passage), thereby preventing the heating film 42 (29, 30, 35) from unsticking from the inner wall of the casing 41 (26, 27, 36, 37).
Next, a sixteenth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from the fifteenth embodiment in the joining structure of a casing and a heating film in the EGR gas distributor 15.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described as above can provide the following operations and effects in addition to the operations and effects in the foregoing first to thirteenth embodiments. In the present embodiment, specifically, the inner wall of the casing 41 (26, 27, 36, 37) of the EGR gas distributor 15 provided with the heating film 42 (29, 30, 35) and the heating film 42 (29, 30, 35) are held in a close contact relation through the upset parts 48a. This configuration can strongly join the heating film 42 (29, 30, 35) with the inner wall of the casing 41 (26, 27, 36, 37) of the EGR gas distributor 15 (the EGR passage), thereby preventing the heating film 42 (29, 30, 35) from unsticking from the inner wall of the casing 41 (26, 27, 36, 37).
Next, a seventeenth embodiment will be described in detail with reference to the accompanying drawings.
In each of the foregoing embodiments, each of the casings 26 and 27 made of a resin material has a relatively small coefficient of heat conductivity, whereas the heat of each heating film 29 and 30 partly escapes to the casings 26 and 27. This results in an increase in power consumption required to increase the temperature of each heating film 29 and 30 by just the amount of escaped heat. Thus, the present embodiment is different from each of the aforementioned embodiments in addition of the configuration for suppressing heat escape from each heating film 29 and 30 to each casing 26 and 27.
(EGR Gas Distributor)
In the present embodiment, the lower positive electrode 33 and the lower negative electrode 34 are insert-molded in the lower casing 27 as shown in
In the present embodiment, as shown in
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can provide the following operations and effects in addition to the operations and effects in each of the foregoing embodiments. In the present embodiment, specifically, the heat-insulating film 61 is provided between the inner wall of each casing 26 and 27 of the EGR gas distributor 15 (the EGR passage) and each heating film 29 and 30. This heat-insulating films 61 suppress escape of heat from the heating films 29 and 30 to the corresponding casings 26 and 27. This configuration can enhance the temperature rising efficiency and also reduce power consumption required for such temperature rise.
In a case where different kinds of films are heated and formed into a lamination structure, usually, a heating formation treatment is separately needed for each of various kinds of films. This need for such an additional process for heating formation treatment results in an increased manufacturing cost by just that much. In the present embodiment, the different kinds of films, that is, each heating film 29, 30 and the heat-insulating film 61, are made using the binder 30c and the binder 61b made of the same kind of material (e.g., fluoro-rubber). Thus, the temperature condition for forming and heating each heating film 29, 30 and the temperature condition for forming and heating the heat-insulating film 61 can be set equal to each other. Accordingly, the heat-insulating films 61 are applied onto the inner walls of the casings 26 and 27 having the insert-molded electrodes 31 to 34, and further the heating films 29 and 30 are individually applied thereon, and then each of the heating films 29 and 30 and the heat-insulating film 61 can be simultaneously formed by heating. Thus, the heating formation process can be completed at one time.
Next, an eighteenth embodiment will be described in detail with reference to the accompanying drawings.
(EGR Gas Distributor)
The present embodiment differs from the seventeenth embodiment in the arrangement of the heat-insulating films 61 in the EGR gas distributor 15.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can provide the following operations and effects in addition to the operations and effects in the seventeenth embodiment. In the present embodiment, specifically, the surface of the inner wall of each of the casings 26 and 27 (i.e., the inner wall provided with the heat-insulating film) is formed with projections 27b and depressions 27c and the heat-insulating films 61 are placed in the plurality of depressions 27c partitioned by the plurality of projections 27b. Accordingly, the heat-insulating films 61 are prevented from freely moving. This configuration can facilitate application and formation of the heat-insulating films 61 in the inclined inner wall of each casing 26 and 27 (the inclined inner wall provided with the heat-insulating films). Further, the heating films 29 and 30 are each held on the plurality of projections 27b. Thus, even when the heat-insulating films 61 are uneven (irregular) in thickness, the thickness of each heating film 29 and 30 is not influenced by such an irregular thickness. Accordingly, the thickness of each heating film 29 and 30 can be kept uniform.
Next, a nineteenth embodiment will be described in detail with reference to the accompanying drawings.
In the foregoing eleventh embodiment, there is described that when the heating film 42 is overlaid on each of the electrodes 39 and 40 in
(EGR Gas Distributor)
In the present embodiment, as shown in
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can provide the following operations and effects in addition to the operations and effects in the twelfth embodiment. In the present embodiment, specifically, the corrosion-resistant materials 44 are provided on the portions of the heating film 29 each including the interface 63 between the edge of the heating film 29 and the inner wall of the casing 26 and the portions of the heating film 30 each including the interface 63 between the edge of the heating film 30 and the inner wall of the casing 27. Thus, these portions including the interface 63 between the edge of each heating film 29, 30 and the inner wall of each casing 26 and 27 can be prevented from corrosion. This can prevent corrosion of each electrode 31 to 34 due to penetration of condensed water from a corroded portion of the portions including the interface 63 between the edge of each heating film 29, 30 and the inner wall of each casing 26 and 27.
Next, a twentieth embodiment will be described in detail with reference to the accompanying drawings.
The present embodiment differs from each of the foregoing seventeenth to nineteenth embodiments in how to provide the heating films 29 and 30 to a portion corresponding to each electrode 31 to 34.
(EGR Gas Distributor)
In the present embodiment, as shown in
In the present embodiment, the thick film portions 67a and 67b each having a thick thickness are formed together with other portions of the lower heating film 30 which are not thick in thickness than the thick film portions 67a and 67b by simultaneous coating of a coating material. As an alternative, each of the thick film portions 67a and 67b may be formed in two layers by double coating of a coating material for only the thick film portions 67a and 67b to have a thicker thickness than other portions. In the present embodiment, for each of the electrodes 33 and 34, the lower heating film 30 is provided with a thicker thickness on the portion including the outside mating surface 65a and the inside mating surface 65b than other portions. As an alternative, for each of the electrodes 33 and 34, the lower heating film 30 may be provided with a thicker thickness only on the portion including the inside mating surface 65b than other portions.
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can provide the following operations and effects in addition to the operations and effects in the first to eleventh embodiments. In the present embodiment, specifically, each of the heating electrodes 29 and 30 is provided to cover the electrodes 31 to 34 and also each heating film 29 and 30 includes the thick film portions 67a and 67b that are located on the portions including the mating surfaces 65a and 65b between each electrode 31 to 34 and the inner wall of each casing 26 and 27 and have a thicker thickness than other portions of the heating films 29 and 30. This configuration can prevent deformation and thinning of each heating film 29 and 30 due to heat expansion difference at the mating surface 65a and 65b between each electrode 31 to 34 and the inner wall of each casing 26 and 27. Accordingly, each of the heating films 29 and 30 can have enhanced failure-bearing capability against heat expansion difference at the mating surfaces 65a and 65b between each electrode 31 to 34 and the inner wall of each casing 26 and 27 and also prevent deterioration in local resistance due to thinning of the film.
Meanwhile, when the electrodes 33 and 34 are insert-molded in the lower casing 27, production variations and other reasons may cause some defects that the upper surface of the positive electrode 33 protrudes out of the upper surface of the lower casing 27 as shown in
In the present embodiment, the thick film portions 67a and 67b are provided in the lower heating film 30 at positions corresponding to the mating surfaces 65a and 65b of the inner wall mating with the electrodes 33 and 34, thereby enabling to prevent deterioration in the foregoing heating performance.
In the present embodiment, the outside thick film portion 67a and the inside thick film portion 67b are separately provided on the lower heating film 30 for the positive electrode 33; alternatively, the outside thick film portion 67a and the inside thick film portion 67b may be continuously provided. In the present embodiment, furthermore, both the outside thick film portion 67a and the inside thick film portion 67b are provided on the lower heating film 30 for the positive electrode 33; alternatively, either one of the outside thick film portion 67a and the inside thick film portion 67b may be provided. Herein, when only the outside thick film portion 67a is provided, it is possible to prevent fracture of the lower heating film 30 due to a heat expansion difference at the outside mating surface 65a between the positive electrode 33 and the inner wall and also prevent corrosion of the positive electrode 33 at a fractured site. In contrast, when only the inside thick film portion 67b is provided, it is possible to prevent fracture of the lower heating film 30 and corrosion of the positive electrode 33 at a fractured site and additionally prevent deterioration in heating performance of the lower heating film 30.
Next, a twenty-first embodiment will be described in detail with reference to the accompanying drawings.
(Intake Passage)
The present embodiment differs from each of the foregoing embodiments in that a portion or portions of the engine system is provided with a heating film. Each foregoing embodiment describes the heating film 42 (29, 30, 35) provided on the inner wall of the casing 41 (26, 27, 36, 37) of the EGR gas distributor 15 (the EGR passage) and a related structure to the heating film. This twenty-first embodiment, in contrast, describes that the heating film 42 (29, 30, 35) provided in each foregoing embodiment and a related structure to each heating film are provided in an intake passage through which the EGR gas is allowed to flow, not in the EGR gas distributor 15.
Specifically,
In
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above can provide the equivalent operations and effects to those in each of the foregoing embodiments in relation to the parts of the intake passage 2 and the intake manifold 5, each provided with the heating film 42 (29, 30, 35) and its related structure.
Next, a twenty-second embodiment will be described in detail with reference to the accompanying drawings.
The present embodiment differs from each of the foregoing first to sixteenth, nineteenth, and twentieth embodiments in the position of the heating film provided in the EGR gas distributor. Specifically, the first to twentieth embodiments describe the heating film 42 (29, 30, 35) and its related structure provided in the inner wall of the casing 41 (26, 27, 36, 37) of the EGR gas distributor 15. In contrast, the present embodiment describes the configuration that a heating film is provided on an outer wall of the EGR gas distributor, not on an inner wall.
(Intake Manifold Provided with the EGR Gas Distributor)
(EGR Gas Distributor)
The EGR gas distributor 71 is constituted of an upper casing 81 and a lower casing 82 which form the outer shape of the EGR gas distributor 71 as shown in
(Operations and Effects of EGR System)
The EGR system configured in the present embodiment described above is different from the first embodiment in that the heating film 72 is provided on the outer wall of the EGR gas distributor 71 (the upper casing 81 and the lower casing 82), not on the inner wall; however, the present embodiment can provide the equivalent operations and effects to those in the first embodiment. Specifically, in the EGR gas distributor 71 (the EGR passage) in the present embodiment, when the heating films 72 are energized through the corresponding positive electrode 77 and negative electrode 78, the heating films 72 generate heat, thereby heating the casings 81 and 82 from each outer wall side and thus heating the inner wall of the gas chamber 74 (the gas passage). Thus, arbitrarily controlling the energization of each heating film 72 adjusts the temperature of the inner wall of the gas chamber 74 provided with the heating films 72 and the temperature rise. This configuration can increase the temperature of the inner wall of the EGR gas distributor 71 (the EGR passage) with good responsivity and keep the temperature stable. Consequently, it is possible to prevent generation and freezing of condensed water inside the EGR gas distributor 71.
According to the configuration in the present embodiment, in which the heating films 72 are provided on the outer wall of the EGR gas distributor 71 (the upper casing 81 and the lower casing 82) made of resin, the following advantages can be provided.
(1) Each heating film 72 is less likely to be corroded by EGR gas flowing through the inside of the EGR gas distributor 71 and condensed water generated therein, resulting in a reduced necessity of countermeasures against corrosion.
(2) Each heating film 72 does not vary with stress caused by fluctuation of intake pressure (between −85 kPa and atmospheric pressure) in the intake passage 2.
(3) Each heating film 72 can be provided by baking onto the outer wall of the EGR gas distributor 71 after the EGR gas distributor 71 is molded, that is, the flexibility in design and process can be improved.
(4) Each heating film 72 can be provided by attaching onto the outer wall of the EGR gas distributor 71 after the EGR gas distributor 71 is molded.
On the other hand, according to the present embodiment configured as above, conceivable disadvantages which may be caused by the heating films 72 provided on the outer wall of the EGR gas distributor 71 made of resin can be addressed by the following manners.
(1) The temperature rising property of the inner wall of the EGR gas distributor 71 (the upper casing 81 and the lower casing 82) deteriorates. This problem can be addressed by increasing the thickness of the heating film 72.
(2) When a vehicle is subjected to high-pressure cleaning, the splash of water on the heating film 72 of the EGR gas distributor placed in an engine compartment becomes a problem. This problem can be addressed because the heating film 72 itself is dried by energization.
(3) The heating film 72 on the EGR gas distributor 71 provided in an engine compartment may be damaged by contact with flipped stone during traveling of a vehicle. This problem can be addressed by a cover or the like placed on at least the heating film 72.
Next, a twenty-third embodiment will be described in detail with reference to the accompanying drawings.
(Sticking Manner (1) of Film Such as a Heating Film)
In the present embodiment, a concrete example of the case where the heating film 72 is stuck on the outer wall of the EGR gas distributor 71 after the EGR gas distributor 71 is molded will be described below.
The EGR system configured in the present embodiment can provide the equivalent operations and effects to the twenty-second embodiment. In the present embodiment, additionally, the heating film 72 and each electrode 77 and 78 are covered by the film 79, so that the heating film 72 and each electrode 77 and 78 are protected.
Next, a twenty-fourth embodiment will be described in detail with reference to the accompanying drawings.
(Sticking Manner (2) of Film Such as a Heating Film)
In the present embodiment, similarly, a concrete example of the case where the heating film 72 is stuck on the outer wall of the EGR gas distributor 71 after the EGR gas distributor 71 is molded will be described below.
The EGR system configured in the present embodiment can provide the equivalent operations and effects to the twenty-second embodiment. In the present embodiment, additionally, the heating film 72 is covered by the film 79 and thus the heating film 72 can be protected.
The present disclosure is not limited to each of the foregoing embodiments and may be embodied in other specific forms without departing from the essential characteristics thereof.
(1) In the first to sixteenth embodiments, as shown in
(2) In the seventh embodiment, the EGR gas distributor 15 including the passage part 21a, branch passage parts 21b and 21c, and gas chamber 22 (the plurality of portions) provided thereon with the heating films 29 and 30 is configured such that the thickness of the heating films 29 and 30 in the gas chamber 22 (the specific portion) is set larger than the thickness of the heating films 29 and 30 in the passage part 21a and branch passage parts 21b and 21c (other portions) in order to set the temperature of the inner wall of the gas chamber 22 (the specific portion) higher than the temperatures of the inner walls of the passage part 21a and the branch passage parts 21b and 21c (the other portions). As an alternative, the EGR gas distributor including a plurality of different portions provided with the heating films may be configured such that the interelectrode distance (the shortest distance) between the positive electrode and the negative electrode provided to the heating film in the specific portion is set shorter than the interelectrode distance between the positive and negative electrodes provided to the heating film in the other portions in order to set the temperature of the inner wall of the specific portion higher than the temperature of the inner wall of the other portions.
(3) The twenty-second embodiment describes that the heating film 72 is provided on the outer wall of the EGR gas distributor 71 (the upper casing 81 and the lower casing 82). As an alternative, the characteristic configurations in the second to sixteenth, nineteenth, and twentieth embodiments may be rationally modified to the configuration that a heating film is provided on an outer wall of an EGR gas distributor or may be rationally changed to the configuration in the twenty-first embodiment that a heating film is provided on an outer wall of an intake passage (including an intake manifold) through which the EGR gas is allowed to flow.
(4) The twenty-third and twenty-fourth embodiments show that the film sticking manner to stick the heating film 72 and others together with the film 79 onto the outer wall of the upper casing 81. As an alternative, the heating film may be stuck together with a film onto an inner wall of a casing to the same effects. In this case, the heating film can be protected from corrosion due to condensed water generated inside the casing.
The present disclosure is applicable to an intake passage through which the EGR gas is allowed to flow and an EGR passage in a gasoline engine and a diesel engine.
Number | Date | Country | Kind |
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JP2020-036675 | Mar 2020 | JP | national |
JP2020-088748 | May 2020 | JP | national |
JP2020-148198 | Sep 2020 | JP | national |
Number | Name | Date | Kind |
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6092512 | Ma | Jul 2000 | A |
7829048 | Gonze | Nov 2010 | B1 |
8784741 | Yoshioka | Jul 2014 | B2 |
20060196484 | Gill | Sep 2006 | A1 |
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20210372352 | Yoshioka | Dec 2021 | A1 |
Number | Date | Country |
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3048540 | Jul 1982 | DE |
3112655 | Jan 2017 | EP |
58098651 | Jun 1983 | JP |
2018-44518 | Mar 2018 | JP |
2018-105180 | Jul 2018 | JP |
Entry |
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English machine translation of description provided by ESPACENET of JP-58098651-A (Year: 2022). |
Number | Date | Country | |
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20210277850 A1 | Sep 2021 | US |