Exhaust treatment device for internal combustion engine
By offsetting the urea injector's central axis vertically downward to avoid hydrogen adsorption regions, the exhaust treatment device ensures efficient NOx reduction in hydrogen-fueled internal combustion engines by optimizing urea water distribution.
Patent Information
- Application Number
- JP2022187519
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-11-24
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2042-11-24
AI Technical Summary
In internal combustion engines using hydrogen as fuel, hydrogen is adsorbed onto the catalyst, preventing efficient use of urea water for NOx reduction due to its lighter molecular weight and biased passage through the catalyst.
Positioning the urea injector to avoid spraying urea water in the region where hydrogen is easily adsorbed by offsetting the central axis of the urea injector vertically downward from the catalyst's central axis, ensuring urea water is supplied to regions where hydrogen is not easily adsorbed.
Enhances the efficiency of urea water usage for NOx reduction by preventing adsorption of hydrogen in the catalyst's upper region, thereby maintaining effective NOx purification performance and reducing urea water consumption.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an exhaust treatment device for an internal combustion engine that uses hydrogen as fuel. [Background technology]
[0002] An exhaust treatment device is known that has a selective reduction catalyst that is provided in the exhaust passage of an internal combustion engine and purifies NOx, and a urea injection valve that is positioned upstream of the catalyst in the exhaust gas and injects urea water toward the catalyst (for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-32970 Summary of the Invention [Problem to be solved by the invention]
[0004] In internal combustion engines that use hydrogen as fuel, hydrogen may be contained in the exhaust gas as unburned gas. When hydrogen is contained in the exhaust gas, the hydrogen is adsorbed onto the catalyst. When the catalyst adsorbs hydrogen, it becomes unable to reduce NOx even when urea water is injected. As a result, there is a risk that urea water will not be used efficiently for NOx reduction. [Means for solving the problem]
[0005] An exhaust treatment device that solves the above-described problems is applied to an internal combustion engine that uses hydrogen as fuel, and includes a selective catalytic reduction catalyst that is provided in an exhaust passage of the internal combustion engine and purifies NOx, and a urea injector that is arranged upstream of the catalyst in the exhaust gas and injects urea water into the catalyst. When an end face of the catalyst on the upstream side of the exhaust gas is defined as a front end face, the urea injector is arranged so that a region of the front end face up to a predetermined distance from the uppermost end of the front end face in the vertically upward direction does not include a spray region of urea water at the front end face that is defined by the distance from an injection hole of the urea injector to the front end face and a spray angle of the urea injector.
[0006] Hydrogen contained in exhaust gas has a smaller molecular weight and is lighter than other components contained in exhaust gas. Therefore, when passing through the catalyst, hydrogen tends to pass through in a biased manner toward the upper side of the catalyst in the vertical direction. Therefore, even if urea water is supplied to the upper vertical region of the catalyst, hydrogen is adsorbed in that upper region, and the urea water cannot be efficiently used for NOx reduction. Therefore, in this configuration, the urea injector is positioned so that the urea water spray region is not included in the region up to a predetermined distance from the uppermost end of the catalyst front end face in the vertical upward direction. Therefore, urea water is not supplied to the region of the catalyst where hydrogen is easily adsorbed, and urea water is supplied to the region of the catalyst where hydrogen is not easily adsorbed. As a result, urea water can be efficiently used for NOx reduction. [Brief explanation of the drawings]
[0007] [Figure 1] 1 is a schematic diagram illustrating a configuration of an embodiment of an exhaust treatment device. [Figure 2] 1A is a schematic diagram showing a spray area of the urea injector according to the embodiment, which is determined by the distance from the nozzle hole of the urea injector to the front end face of the catalyst and the spray angle of the urea injector, and FIG. [Figure 3] FIG. 10 is a schematic diagram showing the arrangement of urea injectors in a modified example of the embodiment. [Figure 4]FIG. 10 is a schematic diagram showing the arrangement of urea injectors in a modified example of the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0008] An embodiment of an exhaust treatment device will be described below with reference to Figures 1 and 2. The exhaust treatment device of this embodiment is applied to the exhaust passage of an internal combustion engine that uses hydrogen as fuel. In Figures 1 and 2, arrow U indicates the vertically upward direction, and arrow D indicates the vertically downward direction.
[0009] <Configuration of exhaust treatment device> As shown in Fig. 1, the exhaust treatment device for an internal combustion engine of this embodiment is provided with a selective catalytic reduction catalyst 30 (hereinafter referred to as SCR catalyst 30) that is provided in an exhaust passage 20 and purifies NOx contained in the exhaust EX. The exhaust treatment device also has a urea injector 40 that is disposed upstream of the SCR catalyst 30 in the exhaust gas and injects urea water toward the SCR catalyst 30. The SCR catalyst 30 adsorbs ammonia and other substances generated from the urea water. The adsorbed ammonia and other substances are then used to reduce NOx in the exhaust gas, thereby purifying the NOx.
[0010] The SCR catalyst 30 is cylindrical, and is supported on the inner wall of the exhaust passage 20 with its outer circumferential surface wrapped in a support mat 50 . A curved portion 22 is provided in the exhaust passage 20 on the exhaust upstream side of the SCR catalyst 30. The curved portion 22 is provided with a bracket 24 to which the urea injector 40 is attached.
[0011] An injection hole 42 for injecting urea water is provided at the tip of the urea injection valve 40. The injection hole 42 is exposed to the inside of the exhaust passage 20. <Spray Area of Urea Injector 40> The urea injector 40 is disposed so that the central axis C2 of the spray H injected from the urea injector 40 is offset vertically downward by a specified amount OF from the central axis C1 of the SCR catalyst 30. As a result, the spray H injected from the urea injector 40 is injected avoiding an upper vertical region at the front end face 31, which is the end face on the exhaust upstream side of the SCR catalyst 30. The central axis of the urea injector 40 in this embodiment is coaxial with the central axis C2.
[0012] With reference to FIG. 2, the spray area of the urea water on the front end surface 31 will be described in detail. As shown in FIG. 2(a), the spray area NR of the urea water on the front end face 31 is determined by the distance L1 from the nozzle hole of the urea injector 40 to the front end face 31 and the spray angle α of the urea injector 40.
[0013] As shown in FIG. 2(b), the region of the front end face 31 extending from the uppermost end Tp of the front end face 31 in the vertically upward direction to a predetermined distance L2 is defined as a first region HR. More specifically, a line segment passing through the top end Tp and the central axis C1 on the front end face 31 is defined as a straight line RL. A chord of the front end face 31 that is perpendicular to the straight line RL and whose length of a perpendicular line dropped from the top end Tp is the distance L2 is defined as a chord G. An arc that includes the top end Tp is defined as an arc K. In this case, the first region HR is the region enclosed by the chord G and the arc K.
[0014] The urea injector 40 is disposed so that the urea water spray area NR is not included in the first area HR. Here, the area of the first region HR is defined as the first area S1, and the area of the front end face 31 is defined as the second area S2. The percentage (%) of hydrogen contained in the exhaust gas is defined as the hydrogen percentage B. In this embodiment, the hydrogen percentage B is the average value of the percentage of hydrogen contained in the exhaust gas, but it may also be the maximum or minimum value of the percentage of hydrogen contained in the exhaust gas. The ratio of the first area S1 to the second area S2 is a value corresponding to the hydrogen percentage B. For example, the ratio of the first area S1 to the second area S2 is the same as the hydrogen percentage B.
[0015] <Action and effect> The operation and effects of this embodiment will be described. (1) Hydrogen contained in exhaust gas has a smaller molecular weight and is lighter than other components contained in exhaust gas. Therefore, when passing through the SCR catalyst 30, the hydrogen tends to pass through the SCR catalyst 30 while being biased toward the upper side in the vertical direction of the SCR catalyst 30. Therefore, as shown in FIG. 2(a), the upper region Hab, which is the upper region of the SCR catalyst 30 in the direction in which the central axis C1 extends, tends to become a region that adsorbs hydrogen. Note that the range of the upper region Hab on the front end face 31 corresponds to the first region HR described above. Because hydrogen is adsorbed in the upper region Hab, even if urea water is injected into the upper region of the front end face 31 of the SCR catalyst 30 in the vertical direction, more specifically, into the range of the first region HR, the urea water cannot be efficiently used for NOx reduction. This could result in, for example, a decrease in NOx purification performance or an increase in urea water consumption.
[0016] In this regard, in this embodiment, the urea injector 40 is positioned so that the urea-water spray area NR is not included in the first area HR. Therefore, urea water is not supplied to the area of the SCR catalyst 30 where hydrogen is easily adsorbed, and urea water is supplied to the area where hydrogen is not easily adsorbed. This makes it possible to efficiently use urea water during NOx reduction.
[0017] (2) The urea injector 40 is disposed so that the central axis C2 of the spray injected from the urea injector 40 is offset vertically downward from the central axis C1 of the SCR catalyst 30. Therefore, the urea water injected from the urea injector 40 is injected while avoiding the upper region on the front end face 31 of the SCR catalyst 30. Therefore, the urea water spray region NR can be prevented from being included in the first region HR.
[0018] (3) The ratio of the area of the first region HR (first area) to the area of the front end face 31 (second area S2) is the same as the ratio of hydrogen contained in the exhaust, and is a value corresponding to the hydrogen ratio B. Therefore, it is possible to appropriately set the first region HR, which is likely to adsorb hydrogen.
[0019] The above embodiment can be modified as follows: The above embodiment and the following modifications can be combined with each other within the scope of technical compatibility.
[0020] The urea injector 40 is positioned so that the central axis C2 of the spray injected from the urea injector 40 is offset vertically downward from the central axis C1 of the SCR catalyst 30, thereby preventing the urea water spray area NR from being included in the first area HR. However, the urea injector 40 may be positioned in other ways. Modified examples are shown in Figures 3 and 4.
[0021] As shown in FIG. 3, the urea injector 40 may be disposed so that the spray H is injected from the vertically upper side (vertically upward side) of the central axis C1 of the SCR catalyst 30. As shown in FIG. 4, the urea injector 40 may be disposed so that the spray H is injected from the vertically lower side (vertically downward side) of the central axis C1 of the SCR catalyst 30.
[0022] The ratio of the area of the first region HR (first area) to the area of the front end face 31 (second area S2) was the same as the ratio of hydrogen contained in the exhaust. Alternatively, the ratio of the area of the first region HR (first area) to the area of the front end face 31 (second area S2) may be increased or decreased by a predetermined value based on the ratio of hydrogen contained in the exhaust.
[0023] Although the central axis of the urea injector 40 is coaxial with the central axis C2, the central axis of the urea injector 40 and the central axis C2 may be different from each other. The urea injector 40 is provided in the curved portion 22 of the exhaust passage 20, but may be provided in another location. [Explanation of symbols]
[0024] 20...Exhaust passage 22...Bend 24…Bracket 30...Catalyst 31…Front end surface 40...Urea injector 42...Nozzle 50...holding mat
Claims
1. An exhaust treatment device applied to an internal combustion engine fueled by hydrogen, the exhaust treatment device comprising: a selective reduction catalyst that is provided in an exhaust passage of the internal combustion engine and purifies NOx; and a urea injector that is disposed upstream of the catalyst in the exhaust and injects urea water into the catalyst, When the end face of the catalyst on the exhaust upstream side is defined as the front end face, The urea injector is disposed so that a region of the front end surface up to a predetermined distance from the uppermost end of the front end surface in the vertically upward direction does not include a spray region of urea water on the front end surface, the spray region being defined by a distance from an injection hole of the urea injector to the front end surface and a spray angle of the urea injector. Exhaust treatment device for internal combustion engines.
2. The catalyst is cylindrical, The urea injector is disposed so that the central axis of the spray injected from the urea injector is offset vertically downward from the central axis of the catalyst. The exhaust treatment device for an internal combustion engine according to claim 1.
3. The urea injector is disposed so that the spray is injected from above in a vertical direction relative to the central axis of the catalyst. The exhaust treatment device for an internal combustion engine according to claim 1.
4. The urea injector is disposed so that the spray is injected from below in a vertical direction with respect to the central axis of the catalyst. The exhaust treatment device for an internal combustion engine according to claim 1.
5. When the area of the region of the front end surface from the uppermost end of the front end surface in the vertically upward direction to a predetermined distance is defined as a first area, The ratio of the first area to the area of the front end face is a value corresponding to the ratio of hydrogen contained in the exhaust gas. The exhaust treatment device for an internal combustion engine according to any one of claims 1 to 4.
Citation Information
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