Exhaust device for internal combustion engine
11248504 ยท 2022-02-15
Assignee
Inventors
Cpc classification
F01N1/166
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/141
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/163
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2882
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2490/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2340/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2590/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2340/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2490/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2230/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62K11/04
PERFORMING OPERATIONS; TRANSPORTING
F01N2490/155
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2470/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/089
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An exhaust muffler includes a first muffler section having a tubular member made up of an inner pipe to which an exhaust pipe is connected and an outer pipe covering the inner pipe, and a connector connecting the tubular member and a second muffler section to each other, and the second muffler section having an outer shell, a first partition wall, a second partition wall, and a third partition wall. Exhaust gases delivered from the exhaust pipe are discharged from the first muffler section and the second muffler section out of the exhaust muffler. The second muffler section has a cross-sectional area larger than a cross-sectional area of the tubular member. The exhaust muffler includes a first expansion chamber, a second expansion chamber, and a third expansion chamber. The second muffler section includes a fluid communication pipe extending through the first partition wall and the second partition wall for leading exhaust gases from the first expansion chamber into the second expansion chamber, and an exhaust passage pipe held in fluid communication with the third expansion chamber and extending through the second partition and the third partition wall. The second partition wall has a fluid communication hole defined therein that provides fluid communication between the second expansion chamber and the third expansion chamber. There is thus provided an engine exhaust device capable of increasing a silencing capability by increasing the length of a route through which the exhaust gases flow while maintaining the length of the exhaust device.
Claims
1. An exhaust device for an internal combustion engine, for discharging exhaust gases from an internal combustion engine supported on a vehicle body frame of a saddle-type vehicle, said exhaust device comprising: an exhaust pipe connected to said internal combustion engine; and an exhaust muffler connected to a downstream side of said exhaust pipe, wherein said exhaust muffler includes a first muffler section connected to said exhaust pipe and a second muffler section connected to a downstream side of said first muffler section, to cause exhaust gases delivered from said exhaust pipe to pass through said first muffler section and to be discharged from said second muffler section out of said exhaust muffler, wherein said first muffler section includes a tubular member made up of an inner pipe and an outer pipe covering said inner pipe, and a connector connecting said outer pipe of said tubular member and an outer shell of said second muffler section to each other, wherein said second muffler section includes an outer shell, a first partition wall partitioning a front portion of an inner space in said outer shell, a second partition wall partitioning a space behind said first partition wall, and a third partition wall partitioning a space behind said second partition wall, wherein said second muffler section has a cross-sectional area larger than a cross-sectional area of said tubular member of said first muffler section, wherein said exhaust muffler includes: a first expansion chamber for receiving incoming exhaust gases from said exhaust pipe, said first expansion chamber being surrounded by said outer pipe, said connector, and said inner pipe of said first muffler section, and said outer shell and said first partition wall of said second muffler section; a second expansion chamber surrounded by said outer shell, said second partition wall, and said third partition wall of said second muffler section; and a third expansion chamber surrounded by said outer shell, said first partition wall, and said second partition wall of said second muffler section, wherein said second muffler section includes: a fluid communication pipe extending through said first partition wall and said second partition wall for leading exhaust gases from said first expansion chamber into said second expansion chamber; and an exhaust passage pipe held in fluid communication with said third expansion chamber and extending through said second partition wall and said third partition wall, wherein said second partition wall has a fluid communication hole defined therein that provides fluid communication between said second expansion chamber and said third expansion chamber, wherein said first expansion chamber has a length larger than the sum of a length of said second expansion chamber and a length of said third expansion chamber in the direction of a flow of exhaust gases in said exhaust pipe, said inner pipe, and said exhaust passage pipe, and wherein: said inner pipe is connected to a downstream end of said exhaust pipe; said exhaust passage pipe extends through said first partition wall and is connected to a downstream end of said inner pipe; said first expansion chamber is defined between said inner pipe and said outer pipe of said first muffler section; said exhaust pipe has a plurality of first through holes defined therein that is held in fluid communication with said first expansion chamber; and said inner pipe houses therein a valve for changing an amount of exhaust gases flowing from said exhaust pipe through said first through holes into said first expansion chamber, said valve being disposed downstream of said first through holes.
2. The exhaust device for an internal combustion engine according to claim 1, wherein: said exhaust passage pipe and said third expansion chamber are held in fluid communication with each other by a plurality of second through holes defined in said exhaust passage pipe; and said first through holes have a diameter larger than a diameter of said second through holes.
3. The exhaust device for an internal combustion engine according to claim 2, wherein said second through holes have a total cross-sectional area larger than a total cross-sectional area of said first through holes.
4. The exhaust device for an internal combustion engine according to claim 1, wherein said first through holes are positioned on an upstream end side of said first muffler section, upstream of a position at one half of the distance between an upstream end of said first muffler section and a valve shaft of said valve in the direction of flow of exhaust gases in said first muffler section.
5. The exhaust device for an internal combustion engine according to claim 1, wherein said outer tube has an inside diameter ranging from 1.5 to 2.0 times an inside diameter of said inner pipe.
6. The exhaust device for an internal combustion engine according to claim 2, wherein said outer tube has an inside diameter ranging from 1.5 to 2.0 times an inside diameter of said inner pipe.
7. The exhaust device for an internal combustion engine according to claim 1, wherein said fluid communication pipe has an inside diameter equal to or smaller than one half of an inside diameter of said exhaust passage pipe.
8. The exhaust device for an internal combustion engine according to claim 2, wherein said fluid communication pipe has an inside diameter equal to or smaller than one half of an inside diameter of said exhaust passage pipe.
9. The exhaust device for an internal combustion engine according to claim 3, wherein said fluid communication pipe has an inside diameter equal to or smaller than one half of an inside diameter of said exhaust passage pipe.
10. An exhaust device for an internal combustion engine, for discharging exhaust gases from an internal combustion engine supported on a vehicle body frame of a saddle-type vehicle, said exhaust device comprising: an exhaust pipe connected to said internal combustion engine; and an exhaust muffler connected to a downstream side of said exhaust pipe, wherein said exhaust muffler includes a first muffler section connected to said exhaust pipe and a second muffler section connected to a downstream side of said first muffler section, to cause exhaust gases delivered from said exhaust pipe to pass through said first muffler section and to be discharged from said second muffler section out of said exhaust muffler, wherein said first muffler section includes a tubular member made up of an inner pipe and an outer pipe covering said inner pipe, and a connector connecting said outer pipe of said tubular member and an outer shell of said second muffler section to each other, wherein said second muffler section includes an outer shell, a first partition wall partitioning a front portion of an inner space in said outer shell, a second partition wall partitioning a space behind said first partition wall, and a third partition wall partitioning a space behind said second partition wall, wherein said second muffler section has a cross-sectional area larger than a cross-sectional area of said tubular member of said first muffler section, wherein said exhaust muffler includes: a first expansion chamber for receiving incoming exhaust gases from said exhaust pipe, said first expansion chamber being surrounded by said outer pipe, said connector, and said inner pipe of said first muffler section, and said outer shell and said first partition wall of said second muffler section; a second expansion chamber surrounded by said outer shell, said second partition wall, and said third partition wall of said second muffler section; and a third expansion chamber surrounded by said outer shell, said first partition wall, and said second partition wall of said second muffler section, wherein said second muffler section includes: a fluid communication pipe extending through said first partition wall and said second partition wall for leading exhaust gases from said first expansion chamber into said second expansion chamber; and an exhaust passage pipe held in fluid communication with said third expansion chamber and extending through said second partition wall and said third partition wall, wherein said second partition wall has a fluid communication hole defined therein that provides fluid communication between said second expansion chamber and said third expansion chamber, wherein said first expansion chamber has a length larger than the sum of a length of said second expansion chamber and a length of said third expansion chamber in the direction of a flow of exhaust gases in said exhaust pipe, said inner pipe, and said exhaust passage pipe, and wherein: said inner pipe is connected to a downstream end of said exhaust pipe; said exhaust passage pipe extends through said first partition wall and is connected to a downstream end of said inner pipe; said first expansion chamber is defined between said inner pipe and said outer pipe of said first muffler section; said inner pipe has a plurality of first through holes defined therein; and said inner pipe houses therein a valve for changing an amount of exhaust gases discharged through said first through holes into said first expansion chamber, said valve being disposed downstream of said first through holes.
11. The exhaust device for an internal combustion engine according to claim 10, wherein: said exhaust passage pipe and said third expansion chamber are held in fluid communication with each other by a plurality of second through holes defined in said exhaust passage pipe; and said first through holes have a diameter larger than a diameter of said second through holes.
12. The exhaust device for an internal combustion engine according to claim 10, wherein said outer tube has an inside diameter ranging from 1.5 to 2.0 times an inside diameter of said inner pipe.
13. The exhaust device for an internal combustion engine according to claim 10, wherein said fluid communication pipe has an inside diameter equal to or smaller than one half of an inside diameter of said exhaust passage pipe.
14. The exhaust device for an internal combustion engine according to claim 10, wherein said first through holes are positioned on an upstream end side of said first muffler section, upstream of a position at one half of the distance between an upstream end of said first muffler section and a valve shaft of said valve in the direction of flow of exhaust gases in said first muffler section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS OF THE INVENTION
(20) An exhaust device 20 for an internal combustion engine according to a first embodiment of the present invention for use on a saddle-type vehicle will be described below with reference to
(21)
(22) The motorcycle 1 includes a vehicle body frame 2 constructed as follows. A pair of left and right main frames 2b and 2b is fixed to a head pipe 2a and extends rearward and substantially horizontally and is bent downward in surrounding relation to an internal combustion engine E of the motorcycle 1. Seat rails 2c are mounted on upper rear portions of the main frames 2b and extend rearward while spreading to the left and right.
(23) In the vehicle body frame 2, a front fork 3 is pivotally supported on the head pipe 2a, and a handle 4 extending to the left and right is mounted on an upper end of the front fork 3. A front wheel 5 is rotatably supported on a lower end of the front fork 3. A swing arm 6 has a front end pivotally supported by a pivot shaft 2d mounted on lower portions of the main frames 2b and extends rearward, and a rear wheel 7 is rotatably supported on a rear end of the swing arm 6 by a rear wheel drive axle 6a. A rear cushion 8 is interposed between the swing arm 6 and a lower portion of the vehicle body frame 2. A fuel tank 9 is mounted on the main frames 2b and the seat rails 2c, and a rider's seat 10 is supported on the seat rails 2c behind the fuel tank 9. A cowl 70 extending from a front upper portion of the motorcycle 1 to side lower portions thereof is attached to the vehicle body of the motorcycle 1.
(24) The internal combustion engine E supported on the vehicle body frame 2 includes an in-line four-cylinder, four-stroke internal combustion engine, for example, and includes a cylinder block 12 and a cylinder head 13 that are stacked successively on a crankcase 11 and fastened integrally together by bolts (not depicted), with the cylinder head 13 being covered with a cylinder head cover 14 disposed on its upper portion. The internal combustion engine E has a crankshaft 15 oriented in the widthwise directions of the vehicle body, is surrounded by the vehicle body frame 2, and has cylinders 16 of the internal combustion engine E slightly inclined forward. Rotary driver power of the crankshaft 15 is transmitted through the rear wheel drive axle 6a to the rear wheel 7 by a drive belt, not shown. The pivot shaft 2d by which the swing arm 6 is pivotally supported is disposed at a higher position than the rear wheel drive axle 6a as the vehicle is viewed in side elevation of
(25) To the cylinders 16 of the internal combustion engine E, there are connected an intake manifold (not depicted) having a fuel injection valve (not depicted), a throttle body 17, a connecting tube (not depicted), and an air cleaner 18 arranged in succession. Ambient air that is drawn in from the air cleaner 18 is mixed with a fuel injected from the fuel injection valve, producing an air-fuel mixture that is delivered to the cylinders 16 of the internal combustion engine E in which the air-fuel mixture is burned.
(26) An exhaust manifold 19 is connected to the cylinders 16 of the internal combustion engine E. The exhaust manifold 19 includes pipes connected to the respective cylinders 16, extends downward, is bent and extends rearward, and has a downstream end connected to an exhaust pipe 21. The exhaust pipe 21 has a downstream end 21e connected to an exhaust muffler 22. The exhaust pipe 21 and the exhaust muffler 22 jointly make up the exhaust device 20. The exhaust muffler 22 includes a first muffler section 23 connected to the exhaust pipe 21 and a second muffler section 30 connected to a rear portion of the first muffler section 23. Exhaust gases discharged from the cylinders 16 of the internal combustion engine E are delivered from the exhaust manifold 19 to the exhaust device 20, from which the exhaust gases are discharged into the ambient air. The exhaust device 20 includes an exhaust device mount member 38 by which the exhaust device 20 is mounted on the vehicle body frame 2 in a manner to extend obliquely rearward and upward at a position on the right-hand side of the motorcycle 1.
(27) As shown in
(28) As depicted in
(29) As depicted in
(30) As depicted in
(31) As depicted in
(32) The tubular member 24 includes the inner pipe 25 connected to the exhaust pipe 21 and an outer pipe 26 covering the inner pipe 25. The inner pipe 25 and the outer pipe 26 are double-walled pipes disposed substantially concentrically with each other. As depicted in
(33) As depicted in
(34) The outer pipe 26 is made up of a plurality of divided pipes including a first divided outer pipe 26a positioned upstream, a second divided outer pipe 26b connected by welding to a downstream end 26a.sub.2 of the first divided outer pipe 26a, and the front cover 29 covering an upstream side of the first divided outer pipe 26a. An upstream end 26b.sub.1 of the second divided outer pipe 26b is fitted in the downstream end 26a.sub.2 of the first divided outer pipe 26a. These fitted ends are fixed to each other by welding. As depicted in
(35) The front cover 29 closing the gap between an upstream end 26a.sub.1 of the first divided outer pipe 26a and the exhaust pipe 21 has, as depicted in
(36) As shown in
(37) As depicted in
(38) As depicted in
(39) As depicted in
(40) As depicted in
(41) As depicted in
(42) As depicted in
(43) As shown in
(44) The first through holes 21d are positioned upstream of an area at one half of the distance between the upstream end of the first muffler section 23 and the exhaust valve shaft 51 of the valve 50 in the direction of a flow of exhaust gases in the first muffler section 23.
(45) As depicted in
(46) As depicted in
(47) As
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(49) As depicted in
(50) An upstream end 31a.sub.1 of the first exhaust passage pipe 31a and the downstream end 25b.sub.2 of the second divided inner pipe 25b are of substantially the same diameter, and the downstream end 25b.sub.2 of the second divided inner pipe 25b is fitted over the upstream end 31a.sub.1 of the first exhaust passage pipe 31a. These fitted ends are not welded, but are telescopically connected to each other.
(51) An upstream end 31b.sub.1 of the second exhaust passage pipe 31b and a downstream end 31a.sub.2 of the first exhaust passage pipe 31a are of substantially the same diameter, and the downstream end 31a.sub.2 of the first exhaust passage pipe 31a is fitted in the upstream end 31b.sub.1 of the second exhaust passage pipe 31b. These fitted ends are not welded, but are telescopically connected to each other.
(52) As depicted in
(53) The exhaust passage pipe 31 is inserted in the exhaust passage pipe insertion holes 34b, 35b, and 36b in the first partition wall 34, the second partition wall 35, and the rear wall 36 and fixed to and supported by the first partition wall 34, the second partition wall 35, and the rear wall 36. The fluid communication pipe 37 is inserted in the fluid communication pipe insertion holes 34c and 35c in the first partition wall 34 and the second partition wall 35 and fixed to and supported by the first partition wall 34 and the second partition wall 35.
(54) As depicted in
(55) As shown in
(56) Since the diameters and numbers of the first through holes 21d and the second through holes 31e are set as described above, the diameter d7 of the first through holes 21d defined in the inner pipe 25 of the first muffler section 23 is larger than the diameter d8 of the second through holes 31e, and a total area A1 of the first through holes 21d is smaller than a total area A2 of the second through holes 31e.
(57) The tubular member 24 of the first muffler section 23 is of a substantially circular cross-sectional shape, as depicted in
(58) The tubular member 24 of the first muffler section 23 is disposed on a line segment L interconnecting the pivot shaft 2d and the rear wheel drive axle 6a at a point that is closer to the pivot shaft 2d than a point which is spaced from the pivot shaft 2d by a distance that is two thirds of the length of the line segment L.
(59) The first muffler section 23 and the second muffler section 30 of the exhaust muffler 22 are sub-assembled separately and then assembled together.
(60) Flows of exhaust gases in the exhaust device 20 according to the present embodiment will be described below with reference to
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(62) Thereafter, the pressure wave passes from the first compartment 45a through the fluid communication holes 27b in the annular plate member 27 into the second compartment 45b, then from the second compartment 45b through the fluid communication pipe 37 that is open into the second compartment 46 into the second expansion chamber 46. Then, the pressure wave passes from the second expansion chamber 46 through the fluid communication holes 35d in the second partition wall 35 into the third expansion chamber 47. Thereafter, the pressure wave passes from the third expansion chamber 47 through the second through holes 31e in the exhaust passage pipe 31 into the exhaust passage pipe 31, and is discharged into the ambient air from the downstream end 31d of the exhaust passage pipe 31. While the exhaust valve 50 is closed, therefore, the exhaust gases emitted from the internal combustion engine E pass through the inner pipe 25 and the exhaust passage pipe 31, while the pressure wave of the exhaust gases passes through the expansion chambers 45, 46, and 47, so that the exhaust sounds are reduced.
(63) The exhaust valve 50 is controlled so as to change the opening on the basis of the output power of the internal combustion engine E. The opening of the exhaust valve 50 is adjusted to cause the exhaust gases to flow in a manner to match the characteristics of the internal combustion engine E, thereby adjusting the flow rate of the exhaust gases. As the pressure wave is caused to pass into the expansion chambers (first expansion chamber 45) upstream of the exhaust valve 50, the noise of the exhaust gases that increases in proportion to the output power is effectively silenced. The exhaust muffler structure described above is able to separate an exhaust output route and a sound route from each other, so that the output power can be adjusted by a simple structure while a satisfactory silencing capability is achieved. Since the exhaust valve 50 is of the butterfly type, the output power of the internal combustion engine E can be set to a desired level and the silencing capability for the exhaust sounds can be set to a desired level by changing the opening of the exhaust valve 50.
(64) Inasmuch as the exhaust device 20 for the internal combustion engine according to the embodiment of the present invention is of the above structure, it offers the following advantages.
(65) In the exhaust device 20 according to the present embodiment, exhaust gases emitted from the internal combustion engine E and having passed through the exhaust pipe 21 are led from the first expansion chamber 45 disposed in the tubular member 24 as a multi-walled pipe through the fluid communication pipe 37 across the third expansion chamber 47 into the second expansion chamber 46, from which the exhaust gases are led through the fluid communication holes 35d defined in the second partition wall 35 into the third expansion chamber 47, and then discharged out of the exhaust muffler 22 through the exhaust passage pipe 31 that is held in fluid communication with the third expansion chamber 47. Therefore, the length of the route through which the exhaust gases flow is increased without involving an increase in the length of the exhaust device 20 in its entirety, resulting in an increased silencing capability. Furthermore, since the exhaust gases are discharged into the second expansion chamber 46 after having passed through the long slender fluid communication pipe 37, the energy of the exhaust gases is reduced efficiently.
(66) Moreover, the inner pipe 25 is connected to the downstream end 21e of the exhaust pipe 21, the exhaust passage pipe 31 is connected to the downstream end 25b.sub.2 of the inner pipe 25, the exhaust pipe 21 has the first through holes 21d held in fluid communication with the first expansion chamber 45, and the inner pipe 25 houses therein the exhaust valve 50 for changing an amount of exhaust gases flowing from the exhaust pipe 21 through the first through holes 21d into the first expansion chamber 45. Therefore, exhaust gases are led from an upstream side of the tubular member 24 as a multi-walled pipe into the first expansion chamber 45, so that the volume of the first expansion chamber 45 can effectively be used. In addition, the proportion of exhaust gases discharged after having passed from the exhaust pipe 21 through the inner pipe 25 and the exhaust passage pipe 31 and the proportion of exhaust gases discharged after having passed through the first expansion chamber 45, the second expansion chamber 46, and the third expansion chamber 47 can be changed by the exhaust valve 50 to control the output power of the engine. As exhaust gases flowing from the exhaust pipe 21 into the exhaust muffler 22 flow through the first through holes 21d into the first expansion chamber 45, the flow of exhaust gases is constricted for an increased silencing capability.
(67) Moreover, the exhaust passage pipe 31 and the third expansion chamber 47 are held in fluid communication with each other through the second through holes 31e defined in the exhaust passage pipe 31, and the diameter d7 of the first through holes 21d is larger than the diameter d8 of the second through holes 31e, so that exhaust gases are well discharged from an upstream side of the exhaust muffler 22.
(68) Furthermore, as the total area of the second through holes 31e is larger than the total area of the first through holes 21d, exhaust gases in the exhaust muffler 22 are easily discharged through the second through holes 31e.
(69) In addition, the inside diameter d3 of the outer pipe 26 is in the range of 1.5 to 2.0 times the inside diameter d4 of the inner pipe 25. Consequently, while the volume of the first expansion chamber 45 defined between the inner pipe 25 and the outer pipe 26 is sufficiently maintained, the diameter of the tubular member 24 connected to the exhaust pipe 21 is not much larger than the diameter of the exhaust pipe 21, but the tubular member 24 is of a shape blending into the exhaust pipe 21. The tubular member 24 is thus placed in the conventional layout of the exhaust pipe, and hence can be designed for a better layout configuration.
(70) Furthermore, as the inside diameter d5 of the fluid communication pipe 37 is equal to or smaller than one half of the inside diameter d6 of the exhaust passage pipe 31, exhaust gases are sufficiently discharged from the larger-diameter exhaust passage pipe 31, and exhaust gases from the first expansion chamber 45 are discharged through the slender and long fluid communication pipe 37 into the second expansion chamber 46, the energy of exhaust gases is reduced further efficiently for a better silencing capability.
(71) Moreover, the length L1 of the first expansion chamber 45 is larger than the sum of the length L2 of the second expansion chamber 46 and the length L3 of the third expansion chamber 47 in the direction of the flow of exhaust gases in the exhaust pipe 21, the inner pipe 25, and the exhaust passage pipe 31. Therefore, as the length of the first expansion chamber 45 defined in the tubular member 24 which is of a smaller cross-sectional area is larger than the sum of the lengths L2 and L3 of the second expansion chamber 46 and the third expansion chamber 47 that are defined in the second muffler section 30 which is of a larger cross-sectional area, the first expansion chamber 45 has a sufficient volume and the exhaust device 20 has a neat appearance.
(72) The first through holes 21d are positioned on an upstream end side of the first muffler section 23, upstream of the position at one half of the distance between the upstream end of the first muffler section 23 and the exhaust valve shaft 51 of the exhaust valve 50 in the direction of the flow of exhaust gases in the first muffler section 23. Therefore, exhaust gases are discharged into an upstream side of the first expansion chamber 45, whereby the first expansion chamber 45 can be used effectively.
(73) A second embodiment will next be described below. According to the first embodiment described above, the first through holes 21d are formed in the exhaust pipe 21 as holes through which exhaust gases in the exhaust pipe 21 and the first divided inner pipe 25a flow into the first expansion chamber 45 upstream of the exhaust valve 50. According to the second embodiment, however, as depicted in
(74) According to the second embodiment, the inner pipe 125 is connected to a downstream end 121e of the exhaust pipe 121, the exhaust passage pipe 31 is connected to a downstream end 125b.sub.2 of the inner pipe 125, the inner pipe 125 has the first through holes 125c held in fluid communication with the first expansion chamber 45, and the inner pipe 125 houses the exhaust valve 50 for changing the amount of exhaust gases flowing from the exhaust pipe 121 through the first through holes 125c into the first expansion chamber 45. Consequently, the exhaust gases are led from an upstream side of the tubular member 24 as a multi-walled pipe into the first expansion chamber 45, so that the volume of the first expansion chamber 45 can effectively be used. In addition, the proportion of exhaust gases discharged after having passed from the exhaust pipe 121 through the inner pipe 125 and the exhaust passage pipe 31 and the proportion of exhaust gases discharged after having passed through the first expansion chamber 45, the second expansion chamber 46, and the third expansion chamber 47 can be changed by the exhaust valve 50 to control the output power of the engine. As exhaust gases flowing from the inner pipe 125 into the exhaust muffler 22 flow through the first through holes 125c into the first expansion chamber 45, the flow of exhaust gases is constricted for an increased silencing capability.
(75) Although the embodiments of the present invention have been described in detail above, the present invention is not limited to the above embodiments, but various other changes and modifications may be made therein. The exhaust device 20 according to the present invention is not limited to use on the motorcycle 1, but is also widely applicable to other types of saddle-type vehicles.
REFERENCE SIGNS LIST
(76) E . . . Internal combustion engine, d3 . . . Inside diameter, d4 . . . Inside diameter, d5 . . . Inside diameter, d6 . . . Inside diameter, d7 . . . Diameter, d8 . . . Diameter, L1 . . . Length of first expansion chamber, L2 . . . Length of second expansion chamber, L3 . . . Length of third expansion chamber,
(77) 1 . . . Two-wheel motorcycle, 2 . . . Vehicle body frame, 2d . . . Pivot shaft, 6 . . . Swing arm, 6a . . . Rear wheel drive axle,
(78) 20 . . . Exhaust device, 21 . . . Exhaust pipe, 21d . . . First through hole, 21e . . . Downstream end, 22 . . . Exhaust muffler, 22a . . . Front end, 23 . . . First muffler section, 23a . . . Curved portion, 24 . . . Tubular member, 25 . . . Inner pipe, 25a . . . First divided inner pipe, 25b . . . Second divided inner pipe, 25b.sub.2 . . . Downstream end, 26 . . . Outer pipe, 27 . . . Annular plate member, 27b . . . Fluid communication hole, 28 . . . Connector,
(79) 30 . . . Second muffler section, 32 . . . Second muffler body, 31c.sub.1 . . . First opening, 31e . . . Second through hole, 34 . . . First partition wall, 35 . . . Second partition wall, 36 . . . Rear wall,
(80) 40 . . . Exhaust passage pipe, 40a . . . Upstream end, 41 . . . Front exhaust passage pipe, 41a . . . First exhaust passage pipe, 41b . . . Second exhaust passage pipe, 42 . . . Rear exhaust passage pipe, 42a . . . Third exhaust passage pipe, 42b . . . Fourth exhaust passage pipe, 45 . . . First expansion chamber, 46 . . . Second expansion chamber, 47 . . . Third expansion chamber,
(81) 50 . . . Exhaust valve,
(82) 60 . . . Valve actuator,
(83) 121 . . . Exhaust pipe, 121d . . . First through hole, 121e . . . Downstream end, 125 . . . Inner pipe, 125d . . . First through hole