Marine internal combustion engine with SCR device

By aligning the gravity direction with the mixer's extension and injecting reducing agents centrally, the SCR device in marine engines ensures uniform mixing and a compact design, addressing uneven mixing issues and optimizing engine performance.

JP7808482B2Active Publication Date: 2026-01-29JAPAN ENGINE CORP
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Patent Information

Application Number
JP2022019860
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-10
Publication Date
2026-01-29
Estimated Expiration
2042-02-10

AI Technical Summary

Technical Problem

Existing marine internal combustion engines with SCR devices face issues with uneven mixing of exhaust gas and reducing agents due to gravity, leading to inefficiencies and the need for a more compact and optimized design.

Method used

The SCR device is configured with a mixer extending from the upper side to the lower side of the engine, aligning the gravity direction with the mixer's extension, and the reducing agent is injected from a central position perpendicular to the mixer's cross-section, ensuring uniform mixing without gravity-induced unevenness.

Benefits of technology

This configuration achieves uniform mixing of exhaust gas and reducing agents, resulting in a more compact SCR device that can be optimized for various ship types, reducing design complexity and maintaining reactor performance.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To uniformly mix exhaust gas and a reductant in a marine internal combustion engine with an SCR device.SOLUTION: An engine 1 includes a main engine 10 for advancing a vessel in a prescribed propulsion direction, and an SCR device 90 for denitrating exhaust gas from the main engine 10. The SCR device 90 includes a mixer 92 in which an injection nozzle 92b for injecting a reductant to the exhaust gas is stored, and a reactor 94 disposed in a downstream side of the mixer 92 and bringing the exhaust gas and the reductant into contact with a catalyst 94b. The mixer 92 is arranged along a front surface 10a of the main engine 10, and extends from an upper side to a lower side in a height direction of the main engine 10.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present disclosure relates to a marine internal combustion engine equipped with an SCR device. [Background technology]

[0002] For example, Patent Document 1 discloses an internal combustion engine having an exhaust gas aftertreatment system. This exhaust gas aftertreatment system is a so-called selective catalytic reduction (SCR) exhaust gas aftertreatment system, and includes, in order from the upstream side, an introduction device that introduces a reducing agent into exhaust gas, an introduction section that mixes the reducing agent introduced from the introduction device with exhaust gas, and a reaction chamber in which an SCR catalytic converter is disposed.

[0003] The introduction section according to Patent Document 1 is disposed above the internal combustion engine and is formed to extend in the longitudinal direction so as to be coaxial with the exhaust gas manifold of the internal combustion engine. The introduction device according to Patent Document 1 is configured to inject the reducing agent rearward in the longitudinal direction.

[0004] Furthermore, Patent Document 2 discloses an internal combustion engine equipped with an SCR device (SCR catalyst system) as another example of an internal combustion engine. This SCR device includes, from the upstream side, a mixing pipe that mixes urea into exhaust gas and vaporizes it, and an SCR reactor that reduces the exhaust gas mixed with the urea.

[0005] Here, the mixing pipe according to Patent Document 2 is disposed above the internal combustion engine, and is formed so as to extend along the longitudinal direction of the internal combustion engine, similar to the introduction section according to Patent Document 1. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Patent No. 6803790 [Patent Document 2] Patent No. 6713745 Summary of the Invention [Problem to be solved by the invention]

[0007] However, when a pipe (mixing section, mixing pipe) for mixing a reducing agent such as urea is extended in the front-to-rear direction as in Patent Documents 1 and 2, the reducing agent supplied into the pipe falls due to gravity.

[0008] As a result, the reducing agent supplied to the piping may be distributed more to the lower side than to the upper side in the direction of gravity, which may lead to uneven mixing of the exhaust gas and reducing agent.In order for the SCR device to function properly, it is necessary to mix the exhaust gas and reducing agent evenly.

[0009] The technology disclosed herein has been made in view of the above points, and its purpose is to uniformly mix exhaust gas and a reducing agent in a marine internal combustion engine equipped with an SCR device. [Means for solving the problem]

[0010] A first aspect of the present disclosure relates to a marine internal combustion engine with an SCR device. The marine internal combustion engine with an SCR device includes a main engine that propels a ship forward in a predetermined propulsion direction, and an SCR device that denitrifies exhaust gas from the main engine. The SCR device has a mixer that houses an injection nozzle that injects a reducing agent into the exhaust gas, and a reactor that is located downstream of the mixer and brings the exhaust gas and the reducing agent into contact with a catalyst.

[0011] According to the first aspect, the mixer is arranged along the outer surface of the main engine facing the propulsion direction, and is configured to extend from the upper side to the lower side in the height direction of the main engine.

[0012] According to the first aspect, the direction of gravity acting on the reducing agent injected from the injection nozzle coincides with the extension direction of the mixer. In other words, gravity acting on the reducing agent is perpendicular to the cross section of the mixer. This allows the exhaust gas and the reducing agent to be mixed uniformly without causing unevenness due to gravity.

[0013] Furthermore, extending the mixer downward as in the first embodiment contributes to making the main engine and the SCR device as a whole more compact than a configuration in which the mixer is extended upward, which makes it possible to install the SCR device on various ship types, and is advantageous in optimizing the SCR device for each ship type.

[0014] Furthermore, according to a second aspect of the present disclosure, the injection nozzle may inject the reducing agent downward in the height direction from a central position of the mixer as seen in a cross section perpendicular to the height direction.

[0015] The gravity acting on the reducing agent is perpendicular to the cross section. This, combined with the fact that the reducing agent is injected from the central position as in the second embodiment, makes it possible to uniformly mix the exhaust gas and the reducing agent without causing unevenness due to gravity.

[0016] According to a third aspect of the present disclosure, the mixer may have a mixing tube that houses the injection nozzle, the mixing tube being formed in a cylindrical shape having a central axis extending along the height direction, and the nozzle of the injection nozzle may be arranged to overlap with the central axis on the cross section.

[0017] According to the third aspect, by arranging the injection nozzle so that the injection port and the central axis of the mixing tube are aligned, it becomes possible to inject the reducing agent more isotropically, which is effective in uniformly mixing the exhaust gas and the reducing agent.

[0018] According to a fourth aspect of the present disclosure, the main engine may have a plurality of cylinders aligned in the propulsion direction, and an exhaust manifold connected to the plurality of cylinders and extending in the propulsion direction, and the mixer may be arranged to be aligned with the exhaust manifold in the propulsion direction.

[0019] According to the fourth aspect, by arranging the mixer and the exhaust manifold side by side in the propulsion direction, the piping connecting the mixer and the exhaust manifold can be made simpler in shape than when they are arranged offset in the ship's width direction, etc. This is advantageous in terms of making the SCR device more compact.

[0020] According to a fifth aspect of the present disclosure, an upper end of the mixer may be disposed lower than the exhaust manifold in the height direction.

[0021] According to the fifth aspect, the piping connecting the mixer and the exhaust manifold can be configured without bending it upward in the height direction. Since there is no need to bend it upward, the shape of the piping can be configured to be shorter along the extension direction (downward) of the mixer. This is advantageous for making the SCR device more compact.

[0022] Furthermore, according to a sixth aspect of the present disclosure, the reactor may be arranged adjacent to the mixer along the outer surface and configured to extend from the lower side to the upper side in the height direction.

[0023] According to the sixth aspect, the reactor and the mixer are arranged adjacent to each other along the outer surface, which allows for effective use of the space near the outer surface of the main engine, thereby contributing to a more compact SCR device.

[0024] According to a seventh aspect of the present disclosure, the marine internal combustion engine with an SCR device may include a turbocharger that is disposed on an upper surface of the main engine and into which gas purified in the reactor flows, and an upper end of the reactor may be disposed below the turbocharger in the height direction.

[0025] According to the seventh aspect, the piping connecting the reactor and the turbocharger can be realized without bending downward in the height direction. Since there is no need to bend downward, the shape of the piping can be configured to be shorter along the extension direction (upward) of the reactor. This is advantageous in terms of making the SCR device more compact.

[0026] Furthermore, by arranging the reactor below the turbocharger as in the seventh aspect, soot deposited on the catalyst in the reactor is less likely to reach the turbocharger due to the action of gravity, which is effective in maintaining the performance of the reactor and, ultimately, the SCR device. [Effects of the Invention]

[0027] As described above, according to the present disclosure, exhaust gas and a reducing agent can be mixed evenly in a marine internal combustion engine equipped with an SCR device. [Brief explanation of the drawings]

[0028] [Figure 1] FIG. 1 is a system diagram illustrating the schematic configuration of a marine internal combustion engine. [Figure 2] FIG. 2 is a front view showing a specific example of a marine internal combustion engine. [Figure 3] FIG. 3 is a left side view showing a specific example of a marine internal combustion engine. [Figure 4] FIG. 4 is a plan view showing a specific example of a marine internal combustion engine. [Figure 5] FIG. 5 is a perspective view illustrating the layout of an SCR device. [Figure 6] FIG. 6 is a vertical cross-sectional view illustrating the configuration of the mixer. [Figure 7] FIG. 7 is a cross-sectional view illustrating the configuration of the mixer. [Figure 8] FIG. 8 is a perspective view showing a specific example of the mixing mechanism. [Figure 9] FIG. 9 is a vertical cross-sectional view illustrating the configuration of the reactor. [Figure 10] FIG. 10 is a diagram corresponding to FIG. 5, showing a modified example of the SCR device. [Figure 11A] FIG. 11A is a view corresponding to FIG. 7, showing a first modified example of the mixer. [Figure 11B] FIG. 11B is a view corresponding to FIG. 7, showing a second modified example of the mixer. [Figure 11C] FIG. 11C is a view corresponding to FIG. 7, showing a third modified example of the mixer. DETAILED DESCRIPTION OF THE INVENTION

[0029] Hereinafter, an embodiment of the present disclosure will be described with reference to the drawings. Note that the following description is an example. Fig. 1 is a system diagram illustrating the schematic configuration of a marine internal combustion engine (hereinafter simply referred to as "engine") 1. Figs. 2, 3, and 4 are a front view, a left side view, and a plan view, respectively, showing a specific example of engine 1.

[0030] In the following description, the front, rear, left, right, top, and bottom of the ship will be referred to simply as front, rear, left, right, top, and bottom, respectively. Here, the forward / backward direction refers to the propulsion direction of the ship, and the opposite direction refers to the rear. The front / backward direction is also the length direction of the output shaft of the engine 1 (crankshaft 16, described below). The left side when viewing the ship from the front is referred to as the left, and the right side is referred to as the right. The left / right direction is also the width direction of the ship. The up / down direction is also the up / down direction of the ship, engine 1, and main engine 10, described below, and is also referred to as the "height direction."

[0031] The engine 1 is an in-line multi-cylinder marine diesel engine equipped with multiple cylinders 15. The engine 1 is configured as a uniflow scavenging two-stroke one-cycle engine, and is installed on large ships such as tankers, container ships, and car carriers. A crankshaft 16, which is the output shaft of the engine 1, is connected to the ship's propeller (not shown) via a propeller shaft (not shown) or the like. When the engine 1 is operating, its output is transmitted to the propeller, thereby propelling the ship.

[0032] In particular, the engine 1 according to the present disclosure is configured as a so-called crosshead type internal combustion engine in order to achieve a long stroke. Although detailed illustration is omitted, the engine 1 includes a piston rod that supports the piston from below and a connecting rod that is connected to the crankshaft, and the piston rod and connecting rod are connected by a crosshead.

[0033] The engine 1 is also configured as a so-called supercharged engine. That is, as shown in Fig. 1, the engine 1 is configured to include an exhaust turbocharger (hereinafter simply referred to as "supercharger") that is operated by exhaust gas flowing through an exhaust passage 40.

[0034] The engine 1 is also configured as a marine internal combustion engine with a so-called SCR device. That is, the engine 1 according to this embodiment is configured to include, in addition to a main engine 10 that drives the ship forward in a predetermined propulsion direction (forward), an SCR device 90 that denitrifies exhaust gas from the main engine 10, as shown in Fig. 1 .

[0035] (1) Overall structure The following describes the main parts of the engine 1. In the following description, when describing the outline of the engine 1, reference will be made to FIG. 1, and when describing the specific layout of the engine 1, reference will be made to FIGS. 2 to 4.

[0036] The main engine 10 has a plurality of cylinders 15 (six in the example shown in FIG. 1). A piston (not shown) is inserted into each cylinder 15 so that it can reciprocate. These cylinders 15 are aligned in the propulsion direction of the ship. In other words, the direction in which the cylinders are lined up in the main engine 10 coincides with the fore-and-aft direction described above.

[0037] 2 to 4, the main engine 10 according to this embodiment includes a bed plate 11 installed on the floor of the cabin or the like, a frame 12 arranged on the bed plate 11, a cylinder jacket 13 arranged on the frame 12, and a cylinder cover 14 fixed to the top of the cylinder jacket 13. The bed plate 11, the frame 12, and the cylinder jacket 13 are fastened together by a plurality of tie bolts and nuts extending in the height direction.

[0038] Here, the base plate 11 constitutes the crankcase of the engine 1 and rotatably supports the crankshaft 16. The frame 12 houses the connecting rods and crossheads. The cylinder jacket 13 supports a cylinder liner as an inner cylinder. The cylinder cover 14, together with the cylinder liner inserted into the cylinder jacket 13, constitutes the cylinder 15.

[0039] As shown in FIG. 1, the main engine 10 is connected to an intake passage 30 for feeding air into each cylinder 15, and an exhaust passage 40 for circulating exhaust gas from each cylinder 15.

[0040] More specifically, the intake passage 30 is provided with, in this order from the upstream side in the air flow direction, a compressor 5a, an air cooler (not shown), a scavenging trunk 31, and an intake pipe 32 connecting the scavenging trunk 31 and the cylinder 15. The compressor 5a supercharges the air by driving integrally with the turbine 5b, and sends the supercharged air to the cylinder 15 via the scavenging trunk 31 and the intake pipe 32.

[0041] On the other hand, in the exhaust passage 40, there are provided, in order from the upstream side, a first exhaust pipe 41, an exhaust manifold 42, an SCR device 90, a turbine 5b drivingly connected to the compressor 5a, a second exhaust pipe 43, and a boiler 44 that incinerates exhaust gas (see Figures 2 and 4 for the first exhaust pipe 41).

[0042] As shown in Fig. 4, a first exhaust pipe 41 is provided for each cylinder 15, and each is connected to an exhaust manifold 42. The exhaust manifold 42 is configured to collect exhaust gases from each cylinder 15, and extends in the front-to-rear direction as shown in Figs. 1 and 4. A first bypass pipe 45 is connected to one side of the exhaust manifold 42 (the left side in the illustrated example).

[0043] 1 , the SCR device 90 includes, in order from upstream to downstream, a third exhaust pipe 91 connected to the exhaust manifold 42, a mixer 92 accommodating an injection nozzle 92b that injects a reducing agent into the exhaust gas, a fourth exhaust pipe 93 connected to the mixer 92, a reactor 94 disposed downstream of the mixer 92 and bringing the exhaust gas and the reducing agent into contact with a catalyst 94b, and a fifth exhaust pipe 95 connected to the reactor 94. The SCR device 90 further includes a dosing unit 96 that supplies the reducing agent and compressed air to the mixer 92, and a pump unit 97 that supplies the reducing agent to the dosing unit 96. The third exhaust pipe 91 is provided with a first seal valve 64 that opens and closes the third exhaust pipe 91. Similarly, the fifth exhaust pipe 95 is provided with a second seal valve 65 that opens and closes the fifth exhaust pipe 95.

[0044] In the following description, a configuration using urea (more specifically, urea water) as the reducing agent will be described, but an ammonia precursor other than urea may also be used. Details of the SCR device 90 will be described later.

[0045] The turbine 5b, together with the compressor 5a provided in the intake passage 30, constitutes the turbocharger 5 of this embodiment. In this turbocharger 5, the compressor 5a and the turbine 5b are connected to each other and rotate synchronously with each other. When the compressor 5a is rotationally driven by the exhaust gas passing through the turbine 5b, the compressor 5a can supercharge the air.

[0046] A second exhaust pipe 43 is connected to the downstream end (exhaust gas outlet) of the turbine 5b. This second exhaust pipe 43 connects the turbine 5b to a boiler 44, and can guide the exhaust gas flowing out from the turbine 5b to the boiler 44. Note that instead of directly connecting the turbine 5b to the boiler 44 as shown in FIG. 1, the turbine 44 may be connected to a component other than the boiler 44, such as an exhaust gas economizer.

[0047] In addition, the exhaust passage 40 is provided with a first bypass pipe 45 that directly connects the exhaust manifold 42 and the turbine 5b, bypassing the SCR device 90, a second bypass pipe 46 that causes exhaust gas to bypass the turbine 5b, and a relief pipe 47. The first bypass pipe 45 is provided with an SCR bypass valve 61 that opens and closes the first bypass pipe 45. The second bypass pipe 46 is provided with a turbine bypass valve 62 that opens and closes the second bypass pipe 46. The relief pipe 47 is provided with a relief control valve 63 that opens and closes the relief pipe 47.

[0048] 1, the first bypass pipe 45 joins with the fifth exhaust pipe 95 at a location midway through. The second bypass pipe 46 branches off downstream of the joining point of the first bypass pipe 45 and the fifth exhaust pipe 95, bypasses the turbine 5b, and is connected to the second exhaust pipe 43. The relief pipe 47 is connected to the fifth exhaust pipe 95 upstream of the second seal valve 65, and is connected to the second exhaust pipe 43, bypassing the turbine 5b.

[0049] (2) Details of the SCR device Fig. 5 is a perspective view illustrating the layout of the SCR device 90. Figs. 6 and 7 are a vertical cross-sectional view and a horizontal cross-sectional view, respectively, illustrating the configuration of the mixer 92. Fig. 7 corresponds to the cross-section AA in Fig. 6. Fig. 8 is a perspective view showing a specific example of the mixing mechanism 92c, and Fig. 9 is a vertical cross-sectional view illustrating the configuration of the reactor 94. The specific layout and configuration of the SCR device 90 will be described in detail below with reference to Figs. 1 to 9.

[0050] -Third exhaust pipe 91- The third exhaust pipe 91 is configured as a pipe that connects the exhaust manifold 42 and the mixer 92. Specifically, as shown in Fig. 2, the third exhaust pipe 91 according to this embodiment has an upstream portion 91a that extends forward from the front surface of the exhaust manifold 42, and a downstream portion 91b that is continuous with the upstream portion 91a and extends downward.

[0051] Of these, an upstream portion 91a of the third exhaust pipe 91 extends coaxially with the exhaust manifold 42 in the front-rear direction, and then bends downward so as to describe an arc with a central angle of 90° in a side view. The SCR bypass valve 61 is provided in this upstream portion 91a.

[0052] On the other hand, the downstream portion 91b of the third exhaust pipe 91 extends downward from the lower end of the upstream portion 91a. The downstream portion 91b is connected to the upper end of the mixer 92.

[0053] The exhaust gas sent from the exhaust manifold 42 to the third exhaust pipe 91 flows forward in the longitudinal direction (the propulsion direction of the boat), then changes direction downward, and reaches the mixer 92 .

[0054] -Mixer 92- The mixer 92 is configured as an exhaust pipe that injects urea into the exhaust gas to mix them and vaporizes the reducing agent in the exhaust gas. In particular, the mixer 92 according to this embodiment is arranged along the outer surface 10a of the main engine 10 that faces in the propulsion direction (forward) of the ship, as shown in Figs. 2 and 5. The mixer 92 is also configured to extend from the upper side to the lower side in the height direction of the main engine 10. Hereinafter, this outer surface 10a will also be referred to as the "front surface."

[0055] 4, the mixer 92 is located in front of the front surface 10a and is spaced apart from the front surface 10a in the front-to-rear direction. The mixer 92 may be coupled to the front surface 10a.

[0056] 2, the upper end of the mixer 92 is disposed lower in the height direction than the exhaust manifold 42 and the turbocharger 5. Specifically, the upper end of the mixer 92 according to the present embodiment is located at approximately the same height in the height direction as the upper end of the cylinder jacket 13 (specifically, the boundary between the cylinder jacket 13 and the cylinder cover 14). On the other hand, the lower end of the mixer 92 is located at approximately the same height as the lower half of the frame 12.

[0057] In addition, in the left-right direction, the mixer 92 is disposed slightly offset from the left-right center of the main engine 10. For example, in this embodiment, the mixer 92 is located between the crankshaft 16 and the reactor 94 in the left-right direction (see FIG. 2).

[0058] In the left-right direction, the mixer 92 is disposed at the same position as the exhaust manifold 42 and the third exhaust pipe 91. That is, as shown in Fig. 4, the exhaust manifold 42, the third exhaust pipe 91, and the mixer 92 are disposed so as to be aligned along the front-rear direction, and are lined up in order toward the forward direction, which is the propulsion direction. This line-up direction coincides with the axial direction of the exhaust manifold 42, i.e., the direction in which the cylinders of the main engine 10 are lined up.

[0059] In more detail, as shown in FIG. 6, the mixer 92 according to this embodiment has a mixing pipe 92a through which exhaust gas flows, an injection nozzle 92b that is disposed inside the mixer 92 and that injects urea water as a reducing agent into the exhaust gas, and a mixing mechanism 92c that mixes the reducing agent with the exhaust gas (see also FIG. 2 for the mixing pipe 92a).

[0060] Of these, the mixing pipe 92a is a cylindrical pipe. More specifically, the mixing pipe 92a is formed in a cylindrical shape having a central axis Pc extending along the height direction, and accommodates the injection nozzle 92b. The mixing pipe 92a mixes exhaust gas (see arrow f1 in FIG. 6) flowing in from the upper end of the cylinder with the reducing agent injected from the injection nozzle 92b, and discharges the mixed gas from the lower end. The dimensions of the mixing pipe 92a are set so that the urea is discharged from the mixing pipe 92a in a sufficiently vaporized state.

[0061] The injection nozzle 92b is positioned with its injection port facing downward, and is configured to inject the reducing agent supplied from the dosing unit 96 downward together with the compressed air supplied from the same unit 96.

[0062] 7, the injection nozzle 92b according to this embodiment is disposed so as to inject the reducing agent downward in the height direction from the center position of the mixer 92 as viewed in a cross section perpendicular to the height direction. Specifically, the injection port 921 of this injection nozzle 92b is disposed so as to overlap with the central axis Pc of the mixing tube 92a in a cross section perpendicular to the height direction. By disposing in this manner, the reducing agent injected from the injection nozzle 92b is distributed uniformly in the radial direction (see arrow f2).

[0063] 6, the injection nozzle 92b is disposed above the center of the mixing tube 92a in the height direction. By disposing it in this manner, it is possible to ensure a longer section length from the injection nozzle 92b to the lower end of the mixing tube 92a.

[0064] The mixing mechanism 92c is disposed on the upstream side of the injection nozzle 92b in the height direction (in other words, between the upstream end of the mixing tube 92a and the injection nozzle 92b in the height direction). The mixing mechanism 92c is made up of a plurality of plate-like members 100 arranged in a direction perpendicular to the height direction, and can adjust the flow of the exhaust gas so that the exhaust gas is mixed uniformly with the reducing agent.

[0065] In detail, as shown in FIG. 8, each of the multiple plate-like members 100 according to this embodiment is formed as a rectangular plate, with the height direction as the short side, one direction perpendicular to the height direction (left-right direction in the illustrated example) as the long side, and another direction perpendicular to the height direction (front-back direction in the illustrated example) as the thickness direction.

[0066] Each plate-like member 100 has a first inclined plate portion 101 and a second inclined plate portion 102. Here, the first and second inclined plate portions 101, 102 each extend in a direction inclined with respect to the height direction (i.e., the flow direction of exhaust gas).

[0067] Specifically, the first inclined plate portion 101 extends approximately downward from the longitudinal peripheral edge of each plate-shaped member 100, and extends diagonally in the direction away from the plate-shaped member 100 in the front-to-rear direction (toward the front in the illustrated example) as it moves from top to bottom along the height direction.

[0068] On the other hand, the second inclined plate portion 102 is configured by a tongue-shaped portion formed by cutting out a part of each plate-shaped member 100 and bending the cut-out portion. As illustrated in Fig. 8, a plurality of tongue-shaped portions (three in the illustrated example) may be provided along the longitudinal direction of each plate-shaped member 100. Each tongue-shaped portion extends substantially upward from the corresponding plate-shaped member 100, and extends obliquely in a direction away from the plate-shaped member 100 in the front-rear direction (toward the front in the illustrated example) as it moves from the bottom to the top along the height direction.

[0069] In this way, the mixing mechanism 92c can be composed of one or more members inclined in the height direction, but the inclination direction of each member may be multidirectional rather than being limited to a specific direction, as in the case of the first and second inclined plate portions 101, 102 illustrated in Figure 8.

[0070] The exhaust gas sent from the third exhaust pipe 91 to the mixer 92 is mixed with urea, and the urea is discharged from the mixer pipe 92 a in a vaporized state, and reaches the fourth exhaust pipe 93 .

[0071] -4th exhaust pipe 93- The fourth exhaust pipe 93 is configured as a pipe that connects the mixer 92 and the reactor 94. Specifically, the fourth exhaust pipe 93 according to this embodiment is formed in a substantially J-shape when viewed from the front, as shown in Fig. 2, and can change the direction of the exhaust gas that flows downward from the lower end of the mixer 92 so that it flows upward.

[0072] The exhaust gas sent from the mixer 92 to the fourth exhaust pipe 93 changes direction in the fourth exhaust pipe 93 and reaches the reactor 94 .

[0073] -Reactor 94- The reactor 94 is configured as an exhaust pipe capable of purifying exhaust gas by bringing exhaust gas and a reducing agent into contact with a catalyst 94b. In particular, the reactor 94 according to this embodiment is arranged adjacent to the mixer 92 along the front surface 10a of the main engine 10, and is configured to extend from the lower side to the upper side in the height direction, as shown in Figures 2 to 5.

[0074] 4, the reactor 94 is located in front of the front surface 10a and is spaced apart from the front surface 10a in the front-to-rear direction. The reactor 94 may be coupled to the front surface 10a.

[0075] The upper end of the reactor 94 is disposed lower in the height direction than the exhaust manifold 42 and the turbocharger 5. Specifically, the upper end of the reactor 94 according to this embodiment is located at approximately the same height in the height direction as the upper end of the cylinder jacket 13 (specifically, the boundary between the cylinder jacket 13 and the cylinder cover 14). On the other hand, the lower end of the reactor 94 is located at approximately the same height as the center of the base plate 11 in the height direction.

[0076] In addition, in the left-right direction, the reactor 94 is disposed offset from the left-right center of the main engine 10. For example, in this embodiment, the mixer 92 is located on the left side of the reactor 94 in the left-right direction (see FIG. 2). The mixer 92 and the reactor 94 are disposed adjacent to each other in the left-right direction.

[0077] In the left-right direction, the reactor 94 is disposed at the same position as the turbocharger 5 and the fifth exhaust pipe 95. That is, as shown in Fig. 4, the turbocharger 5, the fifth exhaust pipe 95, and the reactor 94 are disposed so as to be aligned along the front-rear direction, and are lined up in order toward the forward direction as the propulsion direction. This line-up direction coincides with the extension direction of the fifth exhaust pipe 95, i.e., the direction in which the cylinders of the main engine 10 are lined up.

[0078] In more detail, as shown in FIG. 9, the reactor 94 according to this embodiment has a reaction tube 94a through which exhaust gas flows, a plurality of catalysts 94b (three in the illustrated example) that promote the reaction of the exhaust gas, a soot blower 94c that blows compressed air onto each catalyst 94b, a manhole 94d for inspection, and a heat insulating material 94e that covers the entire reactor 94 (see also FIG. 2 for the reaction tube 94a).

[0079] Among these, the reaction tube 94a is a substantially cylindrical pipe and is disposed with its central axis aligned along the height direction. The reaction tube 94a receives exhaust gas (see arrow f3 in FIG. 9) from its lower end and purifies it with the catalyst 94b before discharging it from its upper end. The dimensions of the reaction tube 94a are set according to the accommodation space for the catalyst 94b, etc.

[0080] The catalysts 94b may be, for example, an SCR catalyst, a slip catalyst, etc. When activated, the SCR catalyst can purify the exhaust gas by reacting (reducing) ammonia with NOx in the exhaust gas. The slip catalyst can oxidize and purify the unreacted ammonia discharged from the SCR catalyst.

[0081] The soot blower 94c branches off for each catalyst 94b, and blows compressed air (arrow f4 in FIG. 9) supplied from outside onto each catalyst 94b, thereby blowing away soot accumulated on them.

[0082] A manhole 94d is provided for each catalyst 94b, and can be opened and closed as necessary when checking the state of each catalyst 94b or when performing maintenance on each catalyst 94b.

[0083] The exhaust gas sent from the fourth exhaust pipe 93 to the reactor 94 is purified by the catalyst 94b, discharged from the reaction pipe 94a, and reaches the fifth exhaust pipe 95. At this time, as shown in Fig. 5, the flow direction A2 of the exhaust gas in the reactor 94 and the flow direction A1 of the exhaust gas in the mixer 92 are opposite to each other.

[0084] -5th exhaust pipe 95- The fifth exhaust pipe 95 is configured as a pipe that connects the reactor 94 and the turbocharger 5. Specifically, as shown in Fig. 2 , the fifth exhaust pipe 95 according to this embodiment has an upstream portion 95a that extends upward from the upper surface of the reactor 94, and a downstream portion 95b that is continuous with the upstream portion 95a and extends rearward.

[0085] Of these, an upstream portion 95a of the fifth exhaust pipe 95 extends coaxially with the reaction pipe 94a along the height direction, and then bends backward so as to describe an arc with a central angle of 90° in side view.

[0086] On the other hand, the downstream section 95b of the fifth exhaust pipe 95 extends rearward in a substantially straight line from the rear end of the upstream section 95a. This downstream section 95b is connected to the turbine 5b of the turbocharger 5. In addition, a first bypass pipe 45 is connected to a midpoint of the downstream section 95b, as shown in FIGS. 3 and 4.

[0087] The exhaust gas sent from the reactor 94 to the fifth exhaust pipe 95 flows upward along the height direction, then changes direction and flows rearward, and reaches the turbocharger 5.

[0088] (3) Control system The engine 1 also includes a control unit 100 that controls the operation of the engine 1. The control unit 100 includes a central processing unit (CPU), a memory, and an input / output bus, and is electrically connected to each part of the engine 1.

[0089] For example, when the SCR device 90 is not operating, the control unit 100 outputs control signals to each valve to open the SCR bypass valve 61 and close the first seal valve 64 and the second seal valve 65. In this case, exhaust gas that flows into the exhaust passage 40 from each cylinder 15 bypasses the SCR device 90. The exhaust gas that bypasses the SCR device 90 passes through or bypasses the turbocharger 5 depending on the opening of the turbine bypass valve 62, and then passes through the second exhaust pipe 43 and the boiler 44 in that order, and is incinerated in the boiler 44.

[0090] On the other hand, when the SCR device 90 is operating, the control unit 100 outputs control signals to each valve to close the SCR bypass valve 61 and open the first seal valve 64 and the second seal valve 65. In this case, exhaust gas that flows into the exhaust passage 40 from each cylinder 15 passes through the SCR device 90. The exhaust gas that passes through the SCR device 90 is mixed with a reducing agent in a mixer 92 and vaporized, and then comes into contact with a catalyst 94b in a reactor 94 and purified. The exhaust gas purified by the SCR device 90 passes through or bypasses the turbocharger 5 depending on the opening degree of the turbine bypass valve 62, and then passes through the second exhaust pipe 43 and the boiler 44 in that order.

[0091] (4) Performance of SCR device As described above, according to the embodiment, the direction of gravity acting on the urea injected from the injection nozzle 92b coincides with the extension direction of the mixer 92 as shown in Fig. 6. In other words, gravity acting on the reducing agent is in a direction perpendicular to the cross section shown in Fig. 7. This, combined with the fact that the reducing agent is injected from the center position within the mixing tube 92a, makes it possible to uniformly mix the exhaust gas and the reducing agent without causing unevenness due to gravity.

[0092] 5, extending the mixer 92 downward contributes to making the main engine 10 and the SCR device 90 more compact (particularly in terms of height) than a configuration in which the mixer 92 is extended upward. This makes it possible to mount the SCR device 90 on various ship types, which is advantageous in optimizing the SCR device 90 for each ship type.

[0093] 7, by arranging the injection port 921 of the injection nozzle 92b so that it overlaps with the central axis Pc of the mixing tube 92a, it becomes possible to inject the reducing agent more isotropically, which is effective in uniformly mixing the exhaust gas and the reducing agent.

[0094] 4, by arranging the mixer 92 and the exhaust manifold 42 side by side facing in the propulsion direction (forward), the third exhaust pipe 91 can have a simpler shape than when they are arranged offset in the ship's width direction (left and right direction). This is advantageous in terms of making the SCR device 90 more compact.

[0095] 1 and 4, the third exhaust pipe 91 connecting the exhaust manifold 42 and the mixer 92 can be configured without bending it upward in the height direction when viewed from the flow direction. Since there is no need to bend it upward, the shape of the third exhaust pipe 91 can be configured to be shorter along the extension direction (downward) of the mixer 92. This is advantageous in making the SCR device 90 more compact.

[0096] 5, the reactor 94 and the mixer 92 according to this embodiment are disposed adjacent to each other along the front surface 10a of the main engine 10. This allows the space near the front surface 10a of the main engine 10 to be used effectively, which in turn contributes to making the SCR device 90 more compact.

[0097] 3 and 4, the fifth exhaust pipe 95 connecting the reactor 94 and the turbocharger 5 can be realized without bending it downward in the height direction when viewed from the flow direction. Since it is no longer necessary to bend it downward, the shape of the fifth exhaust pipe 95 can be configured to be shorter along the extension direction (upward) of the reactor 94. This is advantageous in making the SCR device 90 more compact.

[0098] Furthermore, by disposing the reactor 94 below the turbocharger 5, the soot deposited on the catalyst 94b in the reactor 94 is less likely to reach the turbocharger 5 due to the action of gravity. This is effective in maintaining the performance of the reactor 94 and, ultimately, the SCR device 90.

[0099] In addition, the propeller shaft described above extends rearward from the rear surface of the main engine 10. Therefore, arranging the mixer 92 and the reactor 94 along the front surface 10a of the main engine 10 is also effective in avoiding interference between the propeller shaft and the SCR device 90.

[0100] Furthermore, in the case of conventional SCR devices 90, the mixer 92 and reactor 94 have been arranged in various positions depending on the ship type. In such cases, it was necessary to change the design of the third exhaust pipe 91, fourth exhaust pipe 93, fifth exhaust pipe 95, etc. each time depending on the ship type so that the pressure loss of the exhaust gas occurring in the exhaust pipe would be within an acceptable range. Coupled with the time and effort required to design the support structure for each exhaust pipe, conventional configurations required a great deal of effort.

[0101] In contrast to this, by configuring the main engine 10 and the SCR device 90 as a set as in the above embodiment, it is possible to fix the shapes and dimensions of the third exhaust pipe 91, the fourth exhaust pipe 93, the fifth exhaust pipe 95, etc. This makes it possible to fix the pressure loss that can occur in each exhaust pipe regardless of the hull form, which is advantageous in reducing the effort required for design and optimizing and compacting the entire engine 1.

[0102] (5) Other embodiments Figure 10 is a diagram corresponding to Figure 5 and shows a modified example of the SCR device. Also, Figure 11A is a diagram corresponding to Figure 7 and shows a first modified example of the mixer 92, Figure 11B is a diagram corresponding to Figure 7 and shows a second modified example of the mixer 92, and Figure 11C is a diagram corresponding to Figure 7 and shows a third modified example of the mixer 92.

[0103] In the above embodiment, the mixer 92 and the reactor 94 are configured as separate units, but the present disclosure is not limited to such a configuration. As in an SCR device 90' ​​illustrated in Figure 10, the mixer 92' and the reactor 94' may be configured as an integrated unit.

[0104] In the case of this SCR device 90', a partition is provided inside the housing, with the right side of the partition corresponding to the mixer 92' and the left side corresponding to the reactor 94'. Even when this modified example is adopted, the flow direction of the exhaust gas in the mixer 92' and the flow direction in the reactor 94' will be opposite to each other, as in the above embodiment.

[0105] Furthermore, the mixer 92 according to the embodiment is equipped with the mixing mechanism 92c illustrated in FIG. 6, but the configuration of the mixing mechanism 92c is not limited to that illustrated in FIG.

[0106] For example, as in the evaporator 92' according to the first modified example, the mixing mechanism 92c' may be configured by a single plate extending perpendicularly to the height direction, or as in the evaporator 92'' according to the second modified example, the mixing mechanism 92c'' may be configured by a Venturi tube disposed below the injection nozzle 92b (see FIGS. 11A and 11B). Alternatively, as in the evaporator 92'' according to the third modified example shown in FIG. 3 As shown in the figure, the mixing mechanism 92c is formed by a conical member whose diameter tapers downward. 3 may be configured.

[0107] Furthermore, the injection nozzle 92b in the above embodiment was configured so that the nozzle 921 and the central axis Pc overlap on a cross section perpendicular to the height direction, but the present disclosure is not limited to such a configuration.

[0108] For example, the nozzle 921 may be disposed at the center of the mixer 92, but the center position may not be precisely aligned with the central axis Pc, and the nozzle 921 and the central axis Pc may not overlap. In this case, it is preferable to dispose the nozzle 921 near the central axis Pc. In other words, the "center position of the mixer 92" in this disclosure includes not only the intersection of the central axis Pc and the transverse cross section, but also any position within the area near the central axis Pc. Furthermore, it is not essential to dispose the nozzle 921 at the center of the mixer 92.

[0109] Note that the "region near the central axis Pc" referred to here refers to one of the regions closer to the central axis Pc than the inner wall portion of the mixer 92 (more specifically, the inner wall portion of the mixing tube 92a) when the cross section is divided into two regions in a radial direction extending radially from the central axis Pc.

[0110] The term "central axis Pc of the mixer 92" may also be broadly defined. In other words, the "center" here is not limited to the central point of a circular cross section, but includes the center of symmetry in a semicircular cross section (the so-called "center of rotational symmetry"), the geometric center in the same cross section (the so-called "center of gravity"), and the geometric center of various cross-sectional shapes, including a rectangular shape. In other words, the mixing tube 92a according to the present disclosure is not limited to a cylindrical pipe, but may be a semi-cylindrical pipe or a rectangular pipe. The cross-sectional shape of the mixing tube 92a includes any shape. [Explanation of symbols]

[0111] 1. Engine (marine internal combustion engine) 5. Turbocharger 10 Main engine 10a Front (outside) 15 cylinders 30 Intake passage 40 Exhaust passage 42 Exhaust manifold 90 SCR device 92 Mixer 92a mixing tube 92b Injection nozzle 921 spout 94 Reactor 94b Catalyst PC center axis

Claims

1. a main engine for propelling the vessel in a predetermined propulsion direction; an SCR device that denitrifies exhaust gas from the main engine, The SCR device is a mixer accommodating an injection nozzle for injecting a reducing agent into the exhaust gas; a reactor disposed downstream of the mixer and bringing the exhaust gas and the reducing agent into contact with a catalyst; the mixer is arranged along an outer surface of the main engine facing the propulsion direction, and is configured to extend from an upper side to a lower side in a height direction of the main engine, The mixer is separate from the reactor, and a mixing tube extending along the height direction and accommodating the injection nozzle; a mixing mechanism for mixing the reducing agent with the exhaust gas, The injection nozzle is disposed above the center of the mixing tube in the height direction and downstream of the mixing mechanism. A marine internal combustion engine equipped with an SCR device.

2. 2. The marine internal combustion engine with an SCR device according to claim 1, The injection nozzle injects the reducing agent downward in the height direction from a central position of the mixer as viewed in a cross section perpendicular to the height direction. A marine internal combustion engine equipped with an SCR device.

3. 3. The marine internal combustion engine with an SCR device according to claim 2, the mixer has a mixing tube that houses the injection nozzle; The mixing tube is formed in a cylindrical shape having a central axis extending along the height direction, The nozzle hole of the injection nozzle is arranged so as to overlap with the central axis on the cross section. A marine internal combustion engine equipped with an SCR device.

4. 4. The marine internal combustion engine with an SCR device according to claim 1, The main engine comprises: A plurality of cylinders aligned in the propulsion direction; an exhaust manifold connected to the plurality of cylinders and extending in the propulsion direction; The mixer is arranged to be aligned with the exhaust manifold in the propulsion direction. A marine internal combustion engine equipped with an SCR device.

5. 5. The marine internal combustion engine with an SCR device according to claim 4, An upper end of the mixer is disposed lower than the exhaust manifold in the height direction. A marine internal combustion engine equipped with an SCR device.

6. 6. The marine internal combustion engine with an SCR device according to claim 1, The reactor is disposed adjacent to the mixer along the outer surface and is configured to extend from the lower side to the upper side in the height direction. A marine internal combustion engine equipped with an SCR device.

7. 7. The marine internal combustion engine with an SCR device according to claim 6, a turbocharger disposed on an upper surface of the main engine and into which the gas purified in the reactor flows, The upper end of the reactor is disposed lower than the turbocharger in the height direction. A marine internal combustion engine equipped with an SCR device.

Citation Information

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