Exhaust gas treatment device
The exhaust gas treatment device addresses uneven gas flow by using guide portions to evenly distribute exhaust gas around the catalyst carrier, enhancing heating and purification efficiency during cold starts.
Patent Information
- Application Number
- JP2024028201
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-28
- Publication Date
- 2025-09-09
AI Technical Summary
Existing exhaust gas treatment systems face challenges in evenly distributing exhaust gas flow around the catalyst carrier, leading to inefficient heating and purification during cold starts of internal combustion engines.
The exhaust gas treatment device incorporates a catalyst carrier housed within an inner and outer case, with guide portions such as ribs and protrusions that direct exhaust gas flow evenly around the catalyst carrier, ensuring efficient heat transfer and rapid temperature increase.
This configuration ensures even distribution of exhaust gas flow, allowing for quick heating of the catalyst carrier and improved purification efficiency during cold starts.
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Figure 2025130859000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an exhaust gas treatment device. [Background technology]
[0002] Patent document 1 discloses a configuration in which exhaust gas that has passed through a first exhaust gas treatment unit (catalyst carrier) passes outside the housing of a second exhaust gas treatment unit (catalyst carrier) and then passes through the second exhaust gas treatment unit, thereby keeping the second exhaust gas treatment unit warm using the exhaust gas that has passed through the first exhaust gas treatment unit. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-180818 Summary of the Invention [Problem to be solved by the invention]
[0004] In order to increase the activity of the catalyst and improve purification efficiency during cold start of an internal combustion engine, it is necessary to quickly raise the temperature of the catalyst carrier. Therefore, instead of the configuration described in Patent Document 1, the present inventors conceived of a configuration in which the temperature of the catalyst carrier is raised by circulating exhaust gas emitted from the internal combustion engine outside the catalyst carrier. However, the present inventors discovered a problem with such a configuration: it is difficult to ensure that the exhaust gas flows evenly around the catalyst carrier.
[0005] The present invention has been made in view of the above points, and has as its object to provide an exhaust gas treatment device that can improve the efficiency of purifying exhaust gas even during cold start. [Means for solving the problem]
[0006] According to one aspect of the present invention, an exhaust gas treatment device comprises a catalyst carrier through which exhaust gas introduced from an end face flows, an inner case that holds the side of the catalyst carrier, and an outer case that houses the catalyst carrier and at least a portion of the inner case, with a first gap between it and the side of the inner case and a second gap between it and the end face of the catalyst carrier, wherein the outer case has an exhaust gas inlet passage through which exhaust gas introduced from the outside passes, and at least one of the outer case and the inner case has a guide portion that guides exhaust gas introduced from the exhaust gas inlet passage into the first gap toward the end face of the catalyst carrier. [Effects of the Invention]
[0007] In the above embodiment, the exhaust gas introduced through the exhaust gas inlet passage is guided by the guide portion toward the end face of the catalyst carrier, so that the heat of the exhaust gas is efficiently transferred to the catalyst carrier, allowing the catalyst carrier to be heated quickly, thereby improving the efficiency of exhaust gas purification even during cold starts. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a perspective view of an exhaust gas treatment device according to an embodiment of the present invention. [Figure 2] FIG. 2 is a cross-sectional view taken along the radial direction of the exhaust gas treatment device. [Figure 3] FIG. 3 is a cross-sectional view taken along the axial direction of the exhaust gas treatment device. DETAILED DESCRIPTION OF THE INVENTION
[0009] An exhaust gas treatment device 1 according to an embodiment of the present invention will now be described with reference to the drawings.
[0010] First, the overall configuration of an exhaust gas treatment device 1 will be described with reference to Fig. 1. Fig. 1 is a perspective view of an exhaust gas treatment device 1 according to an embodiment of the present invention.
[0011] The exhaust gas treatment device 1 is provided in the exhaust system of an internal combustion engine mounted on a vehicle, for example, and purifies the exhaust gas generated by the internal combustion engine by the action of a catalyst.
[0012] The exhaust gas treatment device 1 is configured to include a cylindrical outer case 10 and an inner case 20 (see FIG. 2) housed in the outer case 10. The inner case 20 holds a catalyst carrier 25. The outer case 10 and the inner case 20 are made of a metal such as aluminum or steel. In the following, the direction along the central axis of the cylindrical catalyst carrier 25 will be referred to as the "axial direction," and the radial direction will be referred to as the "radial direction."
[0013] The outer case 10 is composed of a cylindrical portion 11 and a bottom portion 12, and one end of the cylindrical portion 11 (the right side in FIG. 1) is covered by the bottom portion 12. The other end of the cylindrical portion 11 (the left side in FIG. 1) is connected to the exhaust gas outlet side passage 30. The cylindrical portion 11 is provided with an exhaust gas introduction passage 15 that introduces exhaust gas into the interior of the outer case 10. The exhaust gas introduction passage 15 is provided so as to extend vertically from the side surface of the cylindrical portion 11 radially outward, and is curved along the way. A flange 15a is provided at the end of the exhaust gas introduction passage 15.
[0014] A plurality of ribs 18 are formed on the cylindrical portion 11 so as to protrude toward the inner peripheral surface along the axial direction. The ribs 18 are arranged for the purpose of guiding exhaust gas from the cylindrical portion 11 toward the bottom portion 12 side.
[0015] A bottom portion 12 is provided on one end side of the cylindrical portion 11. The cylindrical portion 11 has a curved portion 11a that curves in a curved shape toward the bottom portion 12 at one end side of the cylindrical portion 11 and connects the cylindrical portion 11 and the bottom portion 12. A convex portion 12a that protrudes toward the end surface 26 of the catalyst carrier 25 is formed in the center of the bottom portion 12. The bottom portion 12 is provided with an annular bulging portion 12b that is formed continuously from the curved portion 11a and bulges outward so as to connect the curved portion 11a and the convex portion 12a in a curved shape.
[0016] Next, the configuration of the exhaust gas treatment device 1 will be described in detail with reference to FIGS.
[0017] 2 is a cross-sectional view showing a cross section along the radial direction of the exhaust gas treatment device 1, and FIG. 3 is a vertical cross-sectional view showing a cross section along the axial direction of the exhaust gas treatment device 1. As shown in FIG.
[0018] 2, the inner case 20 is housed inside the outer case 10 with a first gap 41 between its side surface and the cylindrical portion 11 of the outer case 10. The inner case 20 houses the catalyst carrier 25 inside and holds the side surface of the catalyst carrier 25.
[0019] The catalyst carrier 25 has a cylindrical shape and is fitted inside the inner case 20 and held by the inner case 20. The catalyst carrier 25 is made of a ceramic or metal honeycomb with a catalyst supported on its surface. The catalyst carrier 25 purifies the exhaust gas passing through it by catalytic action. The catalyst is made of a three-way catalyst containing a precious metal. The exhaust gas that has passed through the catalyst carrier 25 is discharged to the outside of the exhaust gas treatment device 1 via an exhaust gas outlet-side passage 30 (see FIG. 1).
[0020] Ribs 18 are provided on the cylindrical portion 11 of the outer case 10. A total of six ribs 18 are formed on the cylindrical portion 11, three ribs 18 (18a, 18b, 18c) in a clockwise direction and three ribs 18 (18d, 18e, 18f) in a counterclockwise direction from the point where the exhaust gas introduction passage 15 is connected to the outer case 10. The ribs 18 are recessed into the inner peripheral surface of the cylindrical portion 11. At the points where the ribs 18 are arranged, the gap between the cylindrical portion 11 and the inner case 20 is narrower than the first gap, and has a directional component along the flow direction of the exhaust gas inside the catalyst carrier 25. The ribs 18 are formed from the cylindrical portion 11 to the curved portion of the bottom portion 12.
[0021] The rib 18 may not be formed so as to protrude from the outer case 10 towards the inner case 20, but may be provided on the inner case 20 and formed so as to protrude from the inner case 20 towards the outer case 10.
[0022] As shown in Fig. 3, one end of the inner case 20 is configured as an exhaust gas inlet 20a that opens facing the bottom 12. An end face 26 of the catalyst carrier 25 is disposed at the exhaust gas inlet 20a, and a second gap 42 is formed between the end face 26 of the catalyst carrier 25 and the bottom 12. Exhaust gas inside the outer case 10 flows into the catalyst carrier 25 from the exhaust gas inlet 20a. The other end of the inner case 20 is fixed to the cylindrical portion 11 by being inscribed in the cylindrical portion 11. Parts of the inner case 20 and the catalyst carrier 25 may extend outside the outer case 10 (exhaust gas outlet-side passage 30).
[0023] Next, the operation of the exhaust gas treatment device 1 configured as above will be described.
[0024] 2, the exhaust gas that has flowed into the exhaust gas processing device 1 from the exhaust gas inlet passage 15 vertically collides with the outer peripheral surface of the inner case 20 at a position facing the exhaust gas inlet passage 15 of the inner case 20. As a result, the exhaust gas is divided into two parts, one in the clockwise direction in the circumferential direction and the other in the counterclockwise direction in the circumferential direction, and each part flows into a first gap 41 between the outer case 10 and the inner case 20.
[0025] The exhaust gas flowing clockwise from exhaust gas introduction passage 15 heads in the circumferential direction of inner case 20, and first passes near rib 18a, whereby a portion of the exhaust gas changes direction along rib 18a protruding from the inner peripheral surface of outer case 10 and flows toward one end. The exhaust gas passing in the circumferential direction through the gap between rib 18a and inner case 20 then passes near rib 18b, whereby a portion of the exhaust gas similarly changes direction along rib 18b and flows toward one end. Furthermore, at rib 18c, a portion of the exhaust gas similarly changes direction along rib 18c and flows toward one end.
[0026] In this way, most of the exhaust gas is guided to flow toward one end by these ribs 18. Some of the exhaust gas flows in the circumferential direction up to near the bottom of inner case 20.
[0027] Similarly, exhaust gas flowing counterclockwise from the exhaust gas inlet passage 15 passes through ribs 18d, 18e, and 18f in the circumferential direction, and most of the gas is guided to change direction along these ribs 18 and flow toward one end.
[0028] Furthermore, the exhaust gas that has passed through rib 18c in the clockwise direction and the exhaust gas that has passed through rib 18f in the counterclockwise direction reach the vicinity of the bottom of inner case 20, which is on the opposite side of exhaust gas introduction path 15. No rib 18 is provided at this location, and the exhaust gases flowing from the clockwise and counterclockwise directions collide with each other, causing the flows to head towards one end.
[0029] In this way, the exhaust gas that flows from the exhaust gas inlet passage 15 into the space between the outer case 10 and the inner case 20 flows circumferentially around the inner case 20, and also flows axially due to the presence of the ribs 18.
[0030] As a result, the exhaust gas introduced into the exhaust gas treatment device 1 is encouraged to flow evenly around the inner case 20, and the heat of the exhaust gas can raise the temperature of the catalyst carrier 25 housed in the inner case 20 evenly from the circumferential direction.
[0031] Next, the exhaust gas that flows from the inner case 20 toward one end passes between the inner case 20 and the outer case 10 and heads toward the bottom 12, as shown in FIG. 3. At the bottom 12, the exhaust gas is guided to flow from the radially outer side to the radially inner side along its curved shape. The exhaust gas that has headed toward the radially inner side of the bottom 12 is further guided to flow axially toward the exhaust gas inlet 20a of the inner case 20 along the shape of the protrusion 12a. As a result, the exhaust gas flows from the exhaust gas inlet 20a to the end face 26 of the catalyst carrier 25.
[0032] The catalyst carried on the surface of the catalyst carrier 25 purifies the carbohydrates in the exhaust gas passing through it into carbon dioxide and water, carbon monoxide into carbon dioxide, and nitrogen oxides into nitrogen. The purified exhaust gas passes through the exhaust gas outlet-side passage 30 and is discharged to the outside of the exhaust gas treatment device 1.
[0033] In this way, the rib 18 is configured as a guide portion that guides the exhaust gas that has flowed radially from the exhaust gas introduction passage 15 into the outer case 10 so that it flows in the axial direction. Furthermore, the bottom portion 12 and the protrusion 12a are configured as guide portions that guide the exhaust gas so that it flows toward the exhaust gas inlet 20a of the catalyst carrier 25.
[0034] As described above, the exhaust gas treatment device 1 of this embodiment includes the catalyst carrier 25 through which exhaust gas introduced from the end face 26 flows, the inner case 20 that holds the side surface of the catalyst carrier 25, and the outer case 10 that is provided with a first gap 41 between it and the side surface of the inner case 20 and a second gap 42 between it and the end face 26 of the catalyst carrier 25, and that houses at least a portion of the catalyst carrier 25 and the inner case 20. The outer case 10 has an exhaust gas inlet passage 15 through which exhaust gas introduced from the outside passes, and at least one of the outer case 10 and the inner case 20 has guide portions (ribs 18, protrusions 12a) that guide the exhaust gas introduced from the exhaust gas inlet passage 15 to the first gap 41 toward the end face 26 of the catalyst carrier 25.
[0035] With this configuration, exhaust gas that has flowed into outer case 10 can be directed along the outer peripheral surface of inner case 20 toward end face 26 of catalyst carrier 25. As a result, even when the temperature of catalyst carrier 25 is low, such as during a cold start, heat from the exhaust gas is efficiently transferred from the surface of inner case 20 to catalyst carrier 25, allowing the temperature of catalyst carrier 25 to rise quickly, thereby improving catalyst efficiency.
[0036] In addition, in this embodiment, the outer case 10 has a bottom 12 that faces the end face 26 of the catalyst carrier 25 at a predetermined distance, and the guide portion (18) guides the exhaust gas introduced from the exhaust gas introduction passage 15 to the first gap 41 so that it flows toward the bottom 12.
[0037] In this configuration, the exhaust gas that flows into the outer case 10 can be directed from the first gap 41 to the bottom 12 by the guide portion formed by the rib 18, so that the heat of the exhaust gas can be efficiently transferred from the surface of the inner case 20 to the catalyst carrier 25.
[0038] In this embodiment, the guide portion (protrusion 12a) guides the exhaust gas, which has been guided to flow toward the bottom portion 12, toward the end face .
[0039] In this configuration, the exhaust gas flowing toward the bottom portion 12 is guided to the end surface 26 of the catalyst carrier 25 , so that the exhaust gas can be introduced into the catalyst carrier 25 appropriately.
[0040] In addition, in this embodiment, the guide portion is a rib 18 that protrudes from at least one of the outer case 10 and the inner case 20 into the first gap 41 and has a directional component along the flow direction of the exhaust gas within the catalyst carrier 25.
[0041] In this configuration, the rib 18 as a guide portion has a directional component along the flow direction of the catalyst carrier 25, so that the exhaust gas is caused to flow along the catalyst carrier outside the catalyst carrier 25, thereby efficiently transferring the heat of the exhaust gas to the catalyst carrier 25.
[0042] In this embodiment, the rib 18 is provided on one of the outer case 10 and the inner case 20, and is spaced apart from the other of the outer case 10 and the inner case 20.
[0043] In this configuration, the outer case 10 and the inner case 20 are spaced apart and a rib 18 is provided between them, so that exhaust gas can be introduced around the inner case 20 and the heat of the exhaust gas can be efficiently transferred to the catalyst carrier 25.
[0044] In addition, in this embodiment, the exhaust gas introduced from the exhaust gas inlet passage 15 into the first gap 41 branches into two circumferential directions through the first gap 41, and the ribs 18 are provided on both the circumferential directions, but not on the opposite side of the exhaust gas inlet passage 15 in the circumferential direction.
[0045] In this configuration, the exhaust gas introduced into the first gap 41 from the exhaust gas inlet passage 15 flows evenly around the inner case 20 and then directed toward the bottom 12, so that the heat of the exhaust gas can be transferred more efficiently to the catalyst carrier 25.
[0046] In this embodiment, the bottom portion 12 has a protrusion 12 a that protrudes toward the center of the end face 26 of the catalyst carrier 25 .
[0047] In this configuration, the exhaust gas flowing toward the bottom portion 12 is guided to the end face 26 of the catalyst carrier 25 by the protrusions 12 a, so that the exhaust gas can be introduced into the catalyst carrier 25 appropriately.
[0048] In addition, in this embodiment, the outer case 10 covers the outer periphery of the inner case 20 so as to form the first gap 41 and further has a cylindrical portion 11 connected to the bottom portion 12, and the guide portion has a curved portion 11a that connects the cylindrical portion 11 and the bottom portion 12 in a curved surface, and an annular bulge portion 12b that is formed on the bottom portion 12 continuously from the curved portion 11a and bulges outward so as to connect the curved surface to the convex portion 12a.
[0049] In this configuration, the exhaust gas flowing from the inner case 20 to one end is guided along the curved shape from the curved portion 11a to the bulging portion 12b of the bottom portion 12, and is further guided toward the convex portion 12a, allowing the exhaust gas to flow smoothly from the first gap 41 to the end face 26 of the catalyst carrier 25.
[0050] In this embodiment, the ribs 18 are formed from the cylindrical portion 11 to the curved portion of the bottom portion 12 .
[0051] In this configuration, exhaust gas flowing from the inner case 20 toward one end is guided along the shape of the inner circumferential surface of the bottom portion 12 so as to smoothly proceed toward the exhaust gas inlet 20 a of the inner case 20 .
[0052] In this embodiment, the exhaust gas introduction passage 15 extends radially outward from the outer case 10.
[0053] In this configuration, exhaust gas collides vertically from the exhaust gas inlet passage 15 with the outer peripheral surface of the inner case 20, causing the exhaust gas to flow around the inner case 20 splitting into two directions, clockwise and counterclockwise, so that the heat of the exhaust gas can be efficiently transferred from the surface of the inner case 20 to the catalyst carrier 25.
[0054] Although the embodiments of the present invention have been described above, the above embodiments merely illustrate some of the application examples of the present invention, and it is not intended that the technical scope of the present invention be limited to the specific configurations of the above embodiments. [Explanation of symbols]
[0055] 1 Exhaust gas treatment device 10 outer case 11 Cylindrical part 11a Curved section 12 Bottom 12a Convex part 12b Bulge 15 Exhaust gas inlet 18 Ribs 20 Inner case 20a Exhaust gas inlet 25 Catalyst Carrier
Claims
1. An exhaust gas treatment device, a catalyst carrier through which exhaust gas introduced from an end face flows; an inner case that holds the side surface of the catalyst carrier; an outer case that accommodates the catalyst carrier and at least a portion of the inner case, the outer case being provided with a first gap between it and a side surface of the inner case and a second gap between it and the end surface of the catalyst carrier; Equipped with the outer case has an exhaust gas introduction passage through which exhaust gas introduced from the outside passes, At least one of the outer case and the inner case has a guide portion that guides the exhaust gas introduced from the exhaust gas introduction passage into the first gap toward the end face of the catalyst carrier. Exhaust gas treatment device.
2. The exhaust gas treatment device according to claim 1, the outer case has a bottom portion facing the end surface of the catalyst carrier with a predetermined gap therebetween, The guide portion guides the exhaust gas introduced from the exhaust gas introduction path into the first gap so that the exhaust gas flows toward the bottom portion. Exhaust gas treatment device.
3. The exhaust gas treatment device according to claim 2, The guide portion guides the exhaust gas, which has been guided to flow toward the bottom portion, toward the end surface. Exhaust gas treatment device.
4. The exhaust gas treatment device according to claim 3, the guide portion is a rib that is provided to protrude into the first gap from at least one of the outer case and the inner case and has a directional component along the flow direction of exhaust gas within the catalyst carrier. Exhaust gas treatment device.
5. The exhaust gas treatment device according to claim 4, the rib is provided on one of the outer case and the inner case, and the other of the outer case and the inner case is spaced apart; Exhaust gas treatment device.
6. The exhaust gas treatment device according to claim 4, the exhaust gas introduced from the exhaust gas introduction passage into the first gap branches into one side and the other side in the circumferential direction and flows through the first gap, the ribs are provided on one side and the other side in the circumferential direction, and are not provided on a position opposite the exhaust gas introduction passage in the circumferential direction; Exhaust gas treatment device.
7. 7. An exhaust gas treatment device according to any one of claims 4 to 6, The bottom portion has a convex portion that protrudes toward the center of the end surface of the catalyst support. Exhaust gas treatment device.
8. The exhaust gas treatment device according to claim 7, the outer case further includes a cylindrical portion that covers an outer periphery of the inner case to form the first gap and is connected to the bottom portion; The guide portion is a curved portion that connects the cylindrical portion and the bottom portion in a curved shape; a ring-shaped bulging portion formed on the bottom portion continuously from the curved portion and bulging outward so as to connect the curved portion to the convex portion in a curved surface; having Exhaust gas treatment device.
9. The exhaust gas treatment device according to claim 8, The rib is formed from the cylindrical portion to the curved portion. Exhaust gas treatment device.
10. The exhaust gas treatment device according to claim 1, The exhaust gas introduction passage extends radially outward from the outer case. Exhaust gas treatment device.
Citation Information
Patent Citations
Exhaust gas treatment device for use near engine
JP2015180818A