EP4361410A1 - Work vehicle - Google Patents

Work vehicle Download PDF

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Publication number
EP4361410A1
EP4361410A1 EP22203935.6A EP22203935A EP4361410A1 EP 4361410 A1 EP4361410 A1 EP 4361410A1 EP 22203935 A EP22203935 A EP 22203935A EP 4361410 A1 EP4361410 A1 EP 4361410A1
Authority
EP
European Patent Office
Prior art keywords
exhaust pipe
outlet
exhaust
partition member
flow
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP22203935.6A
Other languages
German (de)
French (fr)
Inventor
Masaru Shinya
Tatsuya Nishimura
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Kubota Corp
Original Assignee
Kubota Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kubota Corp filed Critical Kubota Corp
Priority to EP22203935.6A priority Critical patent/EP4361410A1/en
Publication of EP4361410A1 publication Critical patent/EP4361410A1/en
Pending legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N3/00Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust
    • F01N3/02Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for cooling, or for removing solid constituents of, exhaust
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N13/00Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00
    • F01N13/08Other arrangements or adaptations of exhaust conduits
    • F01N13/082Other arrangements or adaptations of exhaust conduits of tailpipe, e.g. with means for mixing air with exhaust for exhaust cooling, dilution or evacuation
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N13/00Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00
    • F01N13/20Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00 having flared outlets, e.g. of fish-tail shape
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N3/00Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust
    • F01N3/08Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous
    • F01N3/10Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust
    • F01N3/24Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust characterised by constructional aspects of converting apparatus
    • F01N3/28Construction of catalytic reactors
    • F01N3/2892Exhaust flow directors or the like, e.g. upstream of catalytic device
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N3/00Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust
    • F01N3/08Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous
    • F01N3/10Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust
    • F01N3/24Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust characterised by constructional aspects of converting apparatus
    • F01N3/30Arrangements for supply of additional air
    • F01N3/34Arrangements for supply of additional air using air conduits or jet air pumps, e.g. near the engine exhaust port
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2240/00Combination or association of two or more different exhaust treating devices, or of at least one such device with an auxiliary device, not covered by indexing codes F01N2230/00 or F01N2250/00, one of the devices being
    • F01N2240/20Combination or association of two or more different exhaust treating devices, or of at least one such device with an auxiliary device, not covered by indexing codes F01N2230/00 or F01N2250/00, one of the devices being a flow director or deflector
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2260/00Exhaust treating devices having provisions not otherwise provided for
    • F01N2260/02Exhaust treating devices having provisions not otherwise provided for for cooling the device
    • F01N2260/022Exhaust treating devices having provisions not otherwise provided for for cooling the device using air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2260/00Exhaust treating devices having provisions not otherwise provided for
    • F01N2260/20Exhaust treating devices having provisions not otherwise provided for for heat or sound protection, e.g. using a shield or specially shaped outer surface of exhaust device
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2270/00Mixing air with exhaust gases
    • F01N2270/02Mixing air with exhaust gases for cooling exhaust gases or the apparatus
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2470/00Structure or shape of gas passages, pipes or tubes
    • F01N2470/24Concentric tubes or tubes being concentric to housing, e.g. telescopically assembled
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2470/00Structure or shape of gas passages, pipes or tubes
    • F01N2470/30Tubes with restrictions, i.e. venturi or the like, e.g. for sucking air or measuring mass flow
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2590/00Exhaust or silencing apparatus adapted to particular use, e.g. for military applications, airplanes, submarines
    • F01N2590/08Exhaust or silencing apparatus adapted to particular use, e.g. for military applications, airplanes, submarines for heavy duty applications, e.g. trucks, buses, tractors, locomotives

Definitions

  • the present invention relates to a configuration of an engine exhaust in a work vehicle.
  • a muffler is provided at a lower portion of the mechanical body due to restrictions on the height of the mechanical body, or the like.
  • combustibles such as fallen leaves may accumulate on the ground, so it is desirable to lower the temperature of the engine exhaust discharged from the muffler.
  • a tractor which is an example of a work vehicle, may be provided with a configuration as disclosed in patent literature 1 as a configuration for lowering the temperature of engine exhaust.
  • a first exhaust pipe from which engine exhaust is sent and a second exhaust pipe provided with an inlet having a larger outer diameter than an outlet of the first exhaust pipe are provided, wherein the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity such that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe.
  • An object of the present invention is to configure a work vehicle so that when the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity, the temperature of the engine exhaust may be lowered by a large amount of outside air being drawn into the flow of engine exhaust and mixed into the engine exhaust without squeezing the outlet of the first exhaust pipe more than necessary.
  • the work vehicle of the present invention is provided with a first exhaust pipe from which engine exhaust is sent, and a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, and, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions and a partition member is provided partitioning the adjacent divided regions at intervals.
  • the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions by a partition member and the adjacent divided regions are partitioned at intervals by the partition member.
  • the flow of the engine exhaust is divided into a plurality of flows corresponding to the divided regions while passing through the plurality of divided regions due to the partition member.
  • the plurality of flows of engine exhaust become independent flows, and after this, the plurality of flows of the engine exhaust are mixed with outside air and then converge.
  • the region of the outlet of the first exhaust pipe is narrowed by the partition member, the flow speed of the plurality of flows of engine exhaust is increased.
  • the peripheral part of the divided region serves as the boundary surface, and thus, the sum of boundary surfaces of the plurality of flows of engine exhaust becomes the boundary surface of the engine exhaust when the partition member is provided.
  • the boundary surface of the engine exhaust when the partition member is not provided is the peripheral part of the outlet of the first exhaust pipe.
  • the boundary surface of engine exhaust when the partition member is provided is larger than the boundary surface of the engine exhaust when the partition member is not provided.
  • the partition member by providing the partition member, it is possible to increase the boundary surface of the engine exhaust while increasing the flow speed of the engine exhaust appropriately, and thus, it is possible to configure so that a large amount of outside air is drawn into the flow of engine exhaust, introduced into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixed with the engine exhaust, so that and the temperature of the engine exhaust can be reduced.
  • the partition member is attached to the outlet of the first exhaust pipe.
  • the partition member is attached across one portion the peripheral part and another portion of the peripheral part of the outlet, and therefore the outlet of the first exhaust pipe is reinforced by the partition member.
  • the partition member is formed so that, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the areas of the plurality of divided regions are mutually the same.
  • the areas of the plurality of divided regions due to the partition member are mutually the same, and the boundary surfaces of each of the plurality of flows of engine exhaust are substantially the same, and therefore, outside air can be expected to mix in each of the plurality of flows of engine exhaust substantially evenly and the temperatures of the engine exhaust of each of the plurality of flows of engine exhaust can be expected to decrease substantially evenly.
  • the partition member seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, is disposed and formed radially facing outward from the center of the outlet of the first exhaust pipe.
  • the partition member is disposed and formed radially, it is possible to form the partition member in a simple manner while giving the partition member sufficient strength.
  • the partition member have a plurality of opening portions formed open to a flat-shaped member.
  • the partition member since the partition member has a plurality of opening portions formed in an open flat shape, it is possible to form the partition member in a simple manner while giving the partition member sufficient strength.
  • the partition member is formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • the temperature of the engine exhaust will be reduced substantially evenly due to the outside air mixing with the engine exhaust along the line-symmetrical partition member.
  • the work vehicle of the present invention is provided with a first exhaust pipe from which engine exhaust is sent, and a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, and a notch part extending from an end part of the outlet of the first exhaust pipe to an opposite side of the second exhaust pipe is formed on the peripheral part of outlet of the first exhaust pipe.
  • a notch part is formed on the peripheral part of the outlet of the first exhaust pipe so as to extend from the end part of the outlet of the first exhaust pipe to the opposite side of the second exhaust pipe.
  • the engine exhaust when the engine exhaust is discharged from the outlet of the first exhaust pipe, the engine exhaust is also discharged from the notch part, so the peripheral part of the notch part also serves as the boundary surface.
  • the peripheral part of the notch part is long due to the notch part extending from the end part of the outlet of the first exhaust pipe to the opposite side of the second exhaust pipe.
  • the boundary surface of the engine exhaust when the notch part is not provided is the peripheral part of the outlet of the first exhaust pipe.
  • the boundary surface of engine exhaust when the notch part is provided is larger than the boundary surface of the engine exhaust when the notch part is not provided.
  • the notch part by providing the notch part, it is possible to increase the boundary surface of the engine, and thus, it is possible to configure so that a large amount of outside air is drawn into the flow of engine exhaust, introduced into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixed with the engine exhaust, so that the temperature of the engine exhaust can be reduced.
  • a plurality of the notch part is formed across the entire periphery of the peripheral part of the outlet of the first exhaust pipe.
  • the peripheral part of the notch part serving as the boundary surface is increased, and therefore, the boundary surface of the engine exhaust when a notch part is provided can be further increased. Since the plurality of notch parts is formed across the entire periphery of the peripheral part of the outlet of the first exhaust pipe, the boundary surface is substantially evenly increased across the entire periphery of the peripheral part of the outlet of the first exhaust pipe. Thus, it can be expected that outside air will be mixed in from the entire periphery of the flow of engine exhaust substantially evenly and it can be expected that the temperature of the engine exhaust will be reduced substantially evenly.
  • the notch part is formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • the temperature of the engine exhaust will be reduced substantially evenly due to the outside air mixing with the engine exhaust along the line-symmetrical notch part.
  • the work vehicle of the present invention is provided with a first exhaust pipe from which engine exhaust is sent, and a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions and a partition member is provided partitioning the adjacent divided regions at intervals, and a notch part extending from an end part of the outlet of the first exhaust pipe to an opposite side of the second exhaust pipe is formed on the peripheral part of the outlet of the first exhaust pipe.
  • the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions by a partition member and the adjacent divided regions are partitioned at intervals by the partition member.
  • a notch part is formed on the peripheral part of outlet of the first exhaust pipe so as to extend from the end part of the outlet of the first exhaust pipe to the opposite side of the second exhaust pipe.
  • the flow of the engine exhaust is divided into a plurality of flows corresponding to the divided regions while passing through the plurality of divided regions due to the partition member.
  • the plurality of flows of engine exhaust become independent flows, and after this, the plurality of flows of the engine exhaust are mixed with outside air and then converge.
  • the region of the outlet of the first exhaust pipe is narrowed by the partition member, the flow speed of the plurality of flows of engine exhaust is increased.
  • the peripheral part of the divided region serves as the boundary surface, and thus, the sum of boundary surfaces of the plurality of flows of engine exhaust becomes the boundary surface of the engine exhaust when the partition member is provided.
  • the peripheral part of the notch part When the engine exhaust is discharged from the outlet of the first exhaust pipe, the engine exhaust is also discharged from the notch part, so the peripheral part of the notch part also serves as the boundary surface.
  • the peripheral part of the notch part is long due to the notch part extending from the end part of the outlet of the first exhaust pipe to the opposite side of 2.
  • the boundary surface of engine exhaust when the partition member is provided and the boundary surface of the engine exhaust when the notch part is provided are summed.
  • the boundary surface of the engine exhaust when the partition member and notch part are not provided is the peripheral part of the outlet of the first exhaust pipe.
  • the boundary surface of engine exhaust when the partition member and notch part are provided is larger than the boundary surface of the engine exhaust when the partition member and notch part are not provided.
  • the partition member and notch part by providing the partition member and notch part, it is possible to increase the boundary surface of the engine exhaust while increasing the flow speed of the engine exhaust appropriately, and thus, it is possible to configure so that a large amount of outside air is drawn into the flow of engine exhaust, introduced into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixed with the engine exhaust, so that and the temperature of the engine exhaust can be reduced.
  • the partition member is attached on the first exhaust pipe across a portion further separated on the opposite side of the second exhaust pipe than the end part of the opposite side of the second exhaust pipe of the notch part, and the end part of the outlet of the first exhaust pipe, and that the partition member protrude from the end part of the outlet of the first exhaust pipe towards the second exhaust pipe side.
  • the partition member formed in a long shape in the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, and therefore, when the flow of engine exhaust is divided into a plurality of flows by the partition member as described above, the plurality of flows of engine exhaust each easily become independent flows.
  • the partition member and the notch part are formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • the temperature of the engine exhaust will be reduced substantially evenly due to the outside air mixing with the engine exhaust along the line-symmetrical partition member and notch part.
  • the cross-sectional shape of the partition member is formed in a wedge shape tapering upstream of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • the cross-sectional shape of the partition member is wedge-shaped, and therefore, the flow of engine exhaust is guided along the partition member, spaces in which engine exhaust cannot flow in regions downstream of the partition member are more easily generated, and these spaces are more easily expanded further downstream.
  • the outside air is more easily mixed into a space wherein the engine exhaust cannot flow, it can be expected that the temperature of the engine exhaust is efficiently decreased.
  • FIGS. 1 to 9 illustrate a tractor that is an example of a work vehicle, wherein F shows a forward direction, B shows a backward direction, U shows an upward direction, and D shows a downward direction.
  • a mechanical body 3 is supported by right and left front wheels 1 and right and left rear wheels 2.
  • a diesel-type engine 4 is provided at a front portion of the mechanical body 3
  • a driving unit 5 is provided at back portion of the mechanical body 3
  • a driver's seat 6 and a steering wheel 7 for the front wheels 1 are provided in the driving unit 5.
  • An arch-shaped ROPS frame 8 is provided between the engine 4 and the driving unit 5.
  • exhaust of the engine 4 is fed to an exhaust purification device (not illustrated) (DPF) to remove particulates from the exhaust of the engine 4.
  • DPF exhaust purification device
  • scR exhaust purification device 9
  • the exhaust purification device 9 is disposed along the left-right direction between the engine 4 and the driving unit 5 (steering wheel 7), and a round pipe shaped exhaust pipe 10 is extended downward from a right portion of the engine purification device 9.
  • a round pipe shaped first exhaust pipe 11 is connected to the exhaust pipe 10 and extended downward, and a round pipe shaped second exhaust pipe 12 is supported along the vertical direction on the bottom of the first exhaust pipe 11.
  • the exhaust of the engine 4 is fed from the exhaust purification device (not illustrated) (DPF) to the exhaust purification device 9 (SCR) and sent from the exhaust pipe 10 to the first exhaust pipe 11, sent from an outlet 13 of a lower portion of the first exhaust pipe 11 to an inlet 14 of an upper portion of the second exhaust pipe 12 and discharged from an outlet 15 of a lower portion of the second exhaust pipe 12 .
  • DPF exhaust purification device
  • SCR exhaust purification device 9
  • triangular notch parts 18 are formed at intervals of 90 degrees on a peripheral part of the outlet 13 of the first exhaust pipe 11.
  • two triangular notch parts 19 smaller than the notch parts 18 are formed on each of the four portions between the adjacent notch parts 18, forming a total of eight notch parts 19.
  • a plurality of notch parts 19 are thereby formed across the entire periphery of the peripheral port of the outlet 13 of the first exhaust pipe 11.
  • the notch parts 18, 19 are formed with point symmetry with respect to a center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ).
  • the notch parts 19 are formed with line symmetry with respect to virtual straight lines E1, E2, E3, E4.
  • Notch parts 18, 19 are formed to extend upward from end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11 (opposite side of the second exhaust pipe 12). Regarding end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11, the end part 13a adjacent to the notch parts 18 extends farther downward (to the second exhaust pipe 12 side) than the end part 13b between notch parts 19.
  • a plate material is folded into a triangular cross-section to form partition members 16, 17 and the partition members 16, 17 are combined so as to cross orthogonally and mutually connect.
  • the partition members 16, 17 are inserted into the notch parts 18 of the outlet 13 of the first exhaust pipe 11 and attached to the outlet 13 of the first exhaust pipe 11.
  • the orthogonally crossing portions of the partition members 16, 17 are disposed at the center of the outlet 13 of the first exhaust pipe 11. Seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11, the partition members 16, 17 are disposed and formed radially facing outward from the center of the outlet 13 of the first exhaust pipe 11.
  • the partition members 16, 17 being formed by the plate material being bent to have a triangular cross-section, seen from the direction orthogonal to the direction A1 (see FIG. 2 ) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 4 ), the cross-sectional shape of the partition members 16, 17 is formed in a wedge shape tapering upstream of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11.
  • the partition members 16, 17 are formed with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ).
  • the partition members 16, 17 are formed with line symmetry with respect to virtual straight lines E1, E2, E3, E4.
  • Outer ends 16a, 17a of the partition members 16, 17 protrude radially outward from the outer peripheral portion of the outlet 13 of the first exhaust pipe 11.
  • the upper end parts 16b, 17b of the partition members 16, 17 are positioned above the upper end part 19a of the notch part 19 (opposite side of the second exhaust pipe 12) (see FIG. 4 ), and the lower end parts 16c, 17c of the partition members 16, 17 protrude downward from the end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11 (to the second exhaust pipe 12 side) (see FIG. 4 ).
  • the partition members 16, 17 are attached on the first exhaust pipe across a portion further separated on the opposite side of the second exhaust pipe 12 than the end part 19a of the opposite side of the second exhaust pipe 12 of the notch part 19, and the end part 13a of the outlet 13 of the first exhaust pipe 11, and the partition members 16, 17 protrude from the end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11 towards the second exhaust pipe 12 side.
  • the region of the outlet 13 of the first exhaust pipe 11 is divided by the partition members 16, 17 into four divided regions B 1.
  • a region of the notch part 19 is also included in the four divided regions B1, and the adjacent divided regions B1 are partitioned by the partition members 16, 17 with intervals C1 of the width of the partition members 16, 17.
  • the areas of the four divided regions B1 are mutually the same.
  • the cross-sectional shape of the partition members 16, 17 is formed in a wedge shape that tapers upstream of the flow of the exhaust discharged from the outlet 13 of the first exhaust pipe 11, and thus, the region of the outlet 13 of the first exhaust pipe 11 is narrowed by the partition members 16, 17 and flow of the exhaust of the engine 4 is obstructed by the partition member 16, 17, causing the flow speed of the four flows of exhaust of the engine 4 to increase.
  • a negative pressure space in which exhaust of the engine 4 cannot flow is more easily generated in the region downstream of the partition members 16, 17, and this negative pressure space is more easily expanded downstream.
  • the boundary surface which is the portions at which the flow of exhaust of the engine 4 contacts outside air, is the sum of a portion L1 corresponding to the lower end part 16c of the partition member 16, a portion L2 corresponding to the lower end part 17c of the partition member 17, two portions L3 corresponding to the peripheral parts of the two notch parts 19, and three portions L4 corresponding to end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11.
  • the boundary surface when the partition members 16, 17 and the notch parts 19 are provided is the sum of the boundary surfaces of the four flows corresponding to the divided regions B1 of the exhaust of the engine 4.
  • the second exhaust pipe 12 is formed to have a larger diameter than the first exhaust pipe 11, and the inlet 14 of the second exhaust pipe 12 is formed to have a larger outer diameter than the outlet 13 of the first exhaust pipe 11.
  • the outlet 15 of the second exhaust pipe 12 is formed so as to face laterally outward to the right from the mechanical body 3.
  • the outlet 13 of the first exhaust pipe 11 and the inlet 14 of the second exhaust pipe 12 are disposed in close proximity so that the outlet of the first exhaust pipe 11 (end parts 16c, 17c of the partition members 16, 17) and the outlet 14 of the second exhaust pipe 12 are disposed at small intervals C2.
  • the outlet 13 of the first exhaust pipe 11 and the partition members 16, 17 are disposed in the interior of the inlet 14 of the second exhaust pipe 12.
  • the peripheral part of the outlet 13 of the first exhaust pipe 11 and the peripheral part of the inlet 14 of the second exhaust pipe 12 are disposed at intervals C3.
  • the outer end parts 16a, 17a of the partition members 16, 17 and the peripheral part of the inlet 14 of the second exhaust pipe 12 are disposed at intervals C4 narrower than the intervals C3.
  • the exhaust of the engine 4 is discharged from the outlet 13 of the first exhaust pipe 11, is sent to the inlet 14 of the second exhaust pipe 12, enters the interior of the second exhaust pipe 12, and is exhausted from the outlet 15 of the lower portion of the second exhaust pipe 12.
  • a negative pressure space in which exhaust of the engine 4 cannot flow is more easily generated in the region downstream of the partition members 16, 17, and outside air more easily mixes in this negative pressure space.
  • the boundary surface when the partition members 16, 17 and the notch parts 19 are provided is the sum of the boundary surfaces of the four flows corresponding to the divided regions B1 of the exhaust of the engine 4.
  • the notch part 19 may be removed.
  • the outlet 13 of the first exhaust pipe 11 may be disposed along the direction A1 (see FIG. 2 ) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 so as to slightly enter the interior of the inlet 14 of the second exhaust pipe 12.
  • Partition members 16, 17 may be provided in the inlet 14 of the second exhaust pipe 12 and the outlet 13 of the first exhaust pipe 11 may be disposed in close proximity to the partition members 16, 17.
  • the invention may also be configured so that the partition members 16, 17 are configured to combine and mutually connect at angles other than 90 degrees so that the areas of the four divided regions B1 are not mutually the same while forming the partition members 16, 17 with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 (see FIG. 2 ) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11.
  • the cross-sectional shape of the partition members 16, 17 may be formed in a wedge shape that is 1/2 of an elongated ellipse instead of a triangular wedge shape.
  • the outer surfaces of the partition members 16, 17 are not linear but arcuate in cross section, and therefore it can be expected that the flow of exhaust of the engine 4 along the outer surfaces of the partition members 16, 17 will be smooth.
  • a partition member 20 may be configured by a flat-shaped member and the partition member 20 formed so that a plurality of arm portions 20a extend radially outward from the center of the outlet 13 of the first exhaust pipe 11 form the center of the partition member 20.
  • the arm portions 20a of the partition member 20 are disposed with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ).
  • the partition member 20 When imagining virtual straight lines E1, E2 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ), the partition member 20 is formed with line symmetry with respect to virtual straight lines E1, E2.
  • the virtual straight line E1 may be imagined so that it passes through a different arm portion 20a than the arm portion 20a illustrated in FIG. 7 of the partition member 20.
  • the virtual straight line E2 may be imagined so that it passes through a different gap of arm portions 20a than the gap of arm portions 20a illustrated in FIG. 7 of the partition member 20.
  • One divided region B 1 is formed by two adjacent arm portions 20a of the partition member 20 and the peripheral part of the outlet 13 of the first exhaust pipe 11. By setting the angles between adjacent arm portions 20a of the partition member 20 to be mutually the same, the areas of the plurality of divided regions B 1 are made mutually the same.
  • the number of arm portions 20a of the partition member 20 is assumed to be 3, 4, 5, and various other numbers.
  • the angles between adjacent arm portions 20a of the partition member 20 may be set to be mutually different, to configure so that the areas of the plurality of divided regions B1 are not mutually the same.
  • a notch part 19 illustrated in FIGS. 4 and 5 may be formed on the outlet 13 of the first exhaust pipe 11.
  • the partition member 20 may be configured by a flat-shaped member, and a plurality of circular opening portions 20b of the same inner diameter opened to form the partition member 20.
  • One divided region B 1 is formed by one opening portion 20b of the partition member 20. Because the opening portions 20b of the partition member 20 have the same inner diameter, the areas of the plurality of divided regions B1 are mutually the same.
  • the opening portions 20b of the partition member 20 are disposed with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ).
  • the partition member 20 When imagining virtual straight lines E1, E2 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ), the partition member 20 is formed with line symmetry with respect to virtual straight lines E1, E2.
  • the virtual straight line E1 may be imagined so that it passes through a different inside opening portion 20b than the inside opening portion 20b illustrated in FIG. 8 of the partition member 20.
  • the virtual straight line E2 may be imagined so that it passes through a different outside opening portion 20b than the outside opening portion 20b illustrated in FIG. 8 of the partition member 20.
  • the inner diameters of the plurality of opening portions 20b of the partition member 20 may be set to be mutually different to configure so that the areas of the plurality of divided regions B 1 are not mutually the same.
  • the partition members 16, 17, 20 may be removed to form a plurality of notch parts 19 across the entire periphery of the peripheral portion of the outlet 13 of the first exhaust pipe 11.
  • the notch parts 19 may be configured so that a mixture of different sizes are present, such as large notch parts 19 and small notch parts 19.
  • the notch parts 19 are formed with point symmetry with respect to the center D1 (see FIGS. 7 and 8 ) of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2 ).
  • the notch parts 19 are formed with line symmetry with respect to virtual straight lines E1, E2.
  • the virtual straight line E1 may be imagined to that it passes through an end part of the second exhaust pipe 12 side of a different notch part 19 than the notch part 19 illustrated in FIG. 9 .
  • the virtual straight line E2 may be imagined to that it passes through the center part of a different notch part 19 than the notch part 19 illustrated in FIG. 9 .
  • notch parts 19 of various shapes such as U-shaped, rectangular, and semicircular may be formed, and a mixture of notch parts 19 with different shapes may be configured.
  • the present invention may be applied not only to tractors but also to agricultural work vehicles such as combine harvesters and ridden rice planters, construction work vehicles such as backhoes and wheel loaders, and work vehicles for transporting materials and the like.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Health & Medical Sciences (AREA)
  • Toxicology (AREA)
  • Exhaust Silencers (AREA)

Abstract

[Problem] In a work vehicle, to lower the temperature of engine exhaust when an outlet of a first exhaust pipe and an inlet of a second exhaust pipe are disposed in close proximity.
[Resolution Means] A first exhaust pipe from which engine exhaust is sent and a second exhaust pipe provided with an inlet 14 having a larger outer diameter than an outlet 13 of the first exhaust pipe are provided, wherein the outlet 13 of the first exhaust pipe and the inlet 14 of the second exhaust pipe 12 are disposed in close proximity such that the outlet 13 of the first exhaust pipe is disposed in the interior the inlet 14 of the second exhaust pipe 12. Seen from the direction of flow of exhaust discharged from the outlet 13 of the first exhaust pipe, partition members 16, 17 are provided dividing a region of the outlet 13 of the first exhaust pipe into a plurality of divided regions B 1 and partitioning adjacent divided regions B 1 at intervals.

Description

    [Field of Art]
  • The present invention relates to a configuration of an engine exhaust in a work vehicle.
  • [Background Art]
  • For example, among work vehicles such as tractors used in orchards, livestock barns, and the like, in some work vehicles provided with an engine, a muffler is provided at a lower portion of the mechanical body due to restrictions on the height of the mechanical body, or the like. In these cases, in use environments such as orchards and livestock barns, combustibles such as fallen leaves may accumulate on the ground, so it is desirable to lower the temperature of the engine exhaust discharged from the muffler.
  • A tractor, which is an example of a work vehicle, may be provided with a configuration as disclosed in patent literature 1 as a configuration for lowering the temperature of engine exhaust.
  • In patent literature 1, a first exhaust pipe from which engine exhaust is sent and a second exhaust pipe provided with an inlet having a larger outer diameter than an outlet of the first exhaust pipe are provided, wherein the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity such that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe.
  • When engine exhaust exits from the outlet of the first exhaust pipe and enters the interior of the second exhaust pipe from the inlet of the second exhaust pipe, outside air is drawn into the flow of the engine exhaust due to an ejector effect, brought into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixes with the engine exhaust. The temperature of the engine exhaust is thereby lowered by the outside air.
  • [Prior Art Literature] [Patent Literature]
  • [Patent Literature 1] JP 2016-153304 A
  • [Summary of Invention] [Problem to Be Solved by Invention]
  • In the above configuration, in order to bring in a large amount of outside air in order to lower the temperature of the engine exhaust, it is preferable to increase the flow speed of the engine exhaust at the outlet of the first exhaust pipe, and for the outlet of the first exhaust pipe, it is preferable to increase a portion (boundary surface) where the engine exhaust flow contacts the outside air.
  • In patent literature 1, in order to increase the flow speed of the engine exhaust at the outlet of the first exhaust pipe, the outlet of the first exhaust pipe is squeezed to a flat shape to increase the flow speed of the engine exhaust. However, if the outlet of the first exhaust pipe is squeezed too much, the disadvantage of increased engine exhaust back pressure increases.
  • In order to increase the portion (boundary surface) where the engine exhaust flow contacts the outside air, increasing the diameters of the outlet of the first exhaust pipe and the inlet of the second exhaust pipe, and providing many configurations wherein the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity are considered, but these lead to larger or more complicated structures, and so are not preferable.
  • An object of the present invention is to configure a work vehicle so that when the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity, the temperature of the engine exhaust may be lowered by a large amount of outside air being drawn into the flow of engine exhaust and mixed into the engine exhaust without squeezing the outlet of the first exhaust pipe more than necessary.
  • [Means for Solving Problem]
  • The work vehicle of the present invention is provided with a first exhaust pipe from which engine exhaust is sent, and a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, and, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions and a partition member is provided partitioning the adjacent divided regions at intervals.
  • According to the present invention, in a configuration wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions by a partition member and the adjacent divided regions are partitioned at intervals by the partition member.
  • According to the present invention, when the engine exhaust is discharged from the outlet of the first exhaust pipe, the flow of the engine exhaust is divided into a plurality of flows corresponding to the divided regions while passing through the plurality of divided regions due to the partition member. Immediately after the partition member, the plurality of flows of engine exhaust become independent flows, and after this, the plurality of flows of the engine exhaust are mixed with outside air and then converge. At the same time, because the region of the outlet of the first exhaust pipe is narrowed by the partition member, the flow speed of the plurality of flows of engine exhaust is increased.
  • According to the present invention, in each of the plurality of flows of engine exhaust, the peripheral part of the divided region serves as the boundary surface, and thus, the sum of boundary surfaces of the plurality of flows of engine exhaust becomes the boundary surface of the engine exhaust when the partition member is provided.
  • In contrast, the boundary surface of the engine exhaust when the partition member is not provided is the peripheral part of the outlet of the first exhaust pipe.
  • Therefore, the boundary surface of engine exhaust when the partition member is provided is larger than the boundary surface of the engine exhaust when the partition member is not provided.
  • As described above, according to the present invention, by providing the partition member, it is possible to increase the boundary surface of the engine exhaust while increasing the flow speed of the engine exhaust appropriately, and thus, it is possible to configure so that a large amount of outside air is drawn into the flow of engine exhaust, introduced into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixed with the engine exhaust, so that and the temperature of the engine exhaust can be reduced.
  • In the present invention, it is suitable that the partition member is attached to the outlet of the first exhaust pipe.
  • According to the present invention, at the outlet of the first exhaust pipe, the partition member is attached across one portion the peripheral part and another portion of the peripheral part of the outlet, and therefore the outlet of the first exhaust pipe is reinforced by the partition member.
  • In the present invention, it is suitable that the partition member is formed so that, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the areas of the plurality of divided regions are mutually the same.
  • According to the present invention, when the flow of engine exhaust is divided into a plurality of flows by the partition member as described above, the areas of the plurality of divided regions due to the partition member are mutually the same, and the boundary surfaces of each of the plurality of flows of engine exhaust are substantially the same, and therefore, outside air can be expected to mix in each of the plurality of flows of engine exhaust substantially evenly and the temperatures of the engine exhaust of each of the plurality of flows of engine exhaust can be expected to decrease substantially evenly.
  • Thus, when the flows of the engine exhaust converge after being divided into a plurality of flows by the partition member, it can be expected that the temperature of the engine exhaust will decrease substantially evenly.
  • In the present invention, it is suitable that the partition member, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, is disposed and formed radially facing outward from the center of the outlet of the first exhaust pipe.
  • According to the present invention, since the partition member is disposed and formed radially, it is possible to form the partition member in a simple manner while giving the partition member sufficient strength.
  • In the present invention, it is suitable that the partition member have a plurality of opening portions formed open to a flat-shaped member.
  • According to the present invention, since the partition member has a plurality of opening portions formed in an open flat shape, it is possible to form the partition member in a simple manner while giving the partition member sufficient strength.
  • In the present invention, it is suitable that the partition member is formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • According to the present invention, it can be expected that the temperature of the engine exhaust will be reduced substantially evenly due to the outside air mixing with the engine exhaust along the line-symmetrical partition member.
  • The work vehicle of the present invention is provided with a first exhaust pipe from which engine exhaust is sent, and a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, and a notch part extending from an end part of the outlet of the first exhaust pipe to an opposite side of the second exhaust pipe is formed on the peripheral part of outlet of the first exhaust pipe.
  • According to the present invention, in a configuration wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, a notch part is formed on the peripheral part of the outlet of the first exhaust pipe so as to extend from the end part of the outlet of the first exhaust pipe to the opposite side of the second exhaust pipe.
  • According to the present invention, when the engine exhaust is discharged from the outlet of the first exhaust pipe, the engine exhaust is also discharged from the notch part, so the peripheral part of the notch part also serves as the boundary surface. In this case, the peripheral part of the notch part is long due to the notch part extending from the end part of the outlet of the first exhaust pipe to the opposite side of the second exhaust pipe.
  • In contrast, the boundary surface of the engine exhaust when the notch part is not provided is the peripheral part of the outlet of the first exhaust pipe.
  • Therefore, the boundary surface of engine exhaust when the notch part is provided is larger than the boundary surface of the engine exhaust when the notch part is not provided.
  • As described above, according to the present invention, by providing the notch part, it is possible to increase the boundary surface of the engine, and thus, it is possible to configure so that a large amount of outside air is drawn into the flow of engine exhaust, introduced into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixed with the engine exhaust, so that the temperature of the engine exhaust can be reduced.
  • In the present invention, it is suitable that a plurality of the notch part is formed across the entire periphery of the peripheral part of the outlet of the first exhaust pipe.
  • According to the present invention, the peripheral part of the notch part serving as the boundary surface is increased, and therefore, the boundary surface of the engine exhaust when a notch part is provided can be further increased. Since the plurality of notch parts is formed across the entire periphery of the peripheral part of the outlet of the first exhaust pipe, the boundary surface is substantially evenly increased across the entire periphery of the peripheral part of the outlet of the first exhaust pipe. Thus, it can be expected that outside air will be mixed in from the entire periphery of the flow of engine exhaust substantially evenly and it can be expected that the temperature of the engine exhaust will be reduced substantially evenly.
  • In the present invention, it is suitable that the notch part is formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • According to the present invention, it can be expected that the temperature of the engine exhaust will be reduced substantially evenly due to the outside air mixing with the engine exhaust along the line-symmetrical notch part.
  • The work vehicle of the present invention is provided with a first exhaust pipe from which engine exhaust is sent, and a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions and a partition member is provided partitioning the adjacent divided regions at intervals, and a notch part extending from an end part of the outlet of the first exhaust pipe to an opposite side of the second exhaust pipe is formed on the peripheral part of the outlet of the first exhaust pipe.
  • According to the present invention, in a configuration wherein, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions by a partition member and the adjacent divided regions are partitioned at intervals by the partition member. A notch part is formed on the peripheral part of outlet of the first exhaust pipe so as to extend from the end part of the outlet of the first exhaust pipe to the opposite side of the second exhaust pipe.
  • According to the present invention, when the engine exhaust is discharged from the outlet of the first exhaust pipe, the flow of the engine exhaust is divided into a plurality of flows corresponding to the divided regions while passing through the plurality of divided regions due to the partition member. Immediately after the partition member, the plurality of flows of engine exhaust become independent flows, and after this, the plurality of flows of the engine exhaust are mixed with outside air and then converge. At the same time, because the region of the outlet of the first exhaust pipe is narrowed by the partition member, the flow speed of the plurality of flows of engine exhaust is increased. When the engine exhaust is discharged from the outlet of the first exhaust pipe, the engine exhaust is also discharged from the notch part.
  • According to the present invention, in each of the plurality of flows of engine exhaust, the peripheral part of the divided region serves as the boundary surface, and thus, the sum of boundary surfaces of the plurality of flows of engine exhaust becomes the boundary surface of the engine exhaust when the partition member is provided.
  • When the engine exhaust is discharged from the outlet of the first exhaust pipe, the engine exhaust is also discharged from the notch part, so the peripheral part of the notch part also serves as the boundary surface. In this case, the peripheral part of the notch part is long due to the notch part extending from the end part of the outlet of the first exhaust pipe to the opposite side of 2.
  • According to the present invention, the boundary surface of engine exhaust when the partition member is provided and the boundary surface of the engine exhaust when the notch part is provided are summed.
  • In contrast, the boundary surface of the engine exhaust when the partition member and notch part are not provided is the peripheral part of the outlet of the first exhaust pipe.
  • Therefore, the boundary surface of engine exhaust when the partition member and notch part are provided is larger than the boundary surface of the engine exhaust when the partition member and notch part are not provided.
  • As described above, according to the present invention, by providing the partition member and notch part, it is possible to increase the boundary surface of the engine exhaust while increasing the flow speed of the engine exhaust appropriately, and thus, it is possible to configure so that a large amount of outside air is drawn into the flow of engine exhaust, introduced into the interior of the second exhaust pipe from the inlet of the second exhaust pipe, and mixed with the engine exhaust, so that and the temperature of the engine exhaust can be reduced.
  • In the present invention, it is suitable that the partition member is attached on the first exhaust pipe across a portion further separated on the opposite side of the second exhaust pipe than the end part of the opposite side of the second exhaust pipe of the notch part, and the end part of the outlet of the first exhaust pipe, and that the partition member protrude from the end part of the outlet of the first exhaust pipe towards the second exhaust pipe side.
  • According to the present invention, the partition member formed in a long shape in the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, and therefore, when the flow of engine exhaust is divided into a plurality of flows by the partition member as described above, the plurality of flows of engine exhaust each easily become independent flows. This is advantageous in that the peripheral parts of the divided regions of each of the plurality of flows of engine exhaust serve as the boundary surface.
  • In the present invention, it is suitable that the partition member and the notch part are formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • According to the present invention, it can be expected that the temperature of the engine exhaust will be reduced substantially evenly due to the outside air mixing with the engine exhaust along the line-symmetrical partition member and notch part.
  • In the present invention, it is suitable that, seen from the direction orthogonal to the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the cross-sectional shape of the partition member is formed in a wedge shape tapering upstream of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  • According to the present invention, when the flow of engine exhaust is divided into a plurality of divided regions by the partition member, the cross-sectional shape of the partition member is wedge-shaped, and therefore, the flow of engine exhaust is guided along the partition member, spaces in which engine exhaust cannot flow in regions downstream of the partition member are more easily generated, and these spaces are more easily expanded further downstream. Thus, because the outside air is more easily mixed into a space wherein the engine exhaust cannot flow, it can be expected that the temperature of the engine exhaust is efficiently decreased.
  • [Brief Description of Drawings]
    • [FIG. 1] A side view of a tractor.
    • [FIG. 2] A side view in the vicinity of an exhaust purification device, a first exhaust pipe, and a second exhaust pipe.
    • [FIG. 3] A plan view of the vicinity of an outlet of a first exhaust pipe, an inlet of a second exhaust pipe, and a partition member.
    • [FIG. 4] A side view of the vicinity of an outlet of a first exhaust pipe and a partition member.
    • [FIG. 5] A bottom view of the vicinity of an outlet of a first exhaust pipe and a partition member.
    • [FIG. 6] Schematic diagram illustrating divided regions.
    • [FIG. 7] A perspective view of the vicinity of an outlet of a first exhaust pipe and partition member in a third embodiment of the present invention.
    • [FIG. 8] A perspective view of the vicinity of an outlet of a first exhaust pipe and partition member in a fourth embodiment of the present invention.
    • [FIG. 9] A perspective view of the vicinity of an outlet of a first exhaust pipe and notch part in a fifth embodiment of the present invention.
    [Embodiments of Invention]
  • FIGS. 1 to 9 illustrate a tractor that is an example of a work vehicle, wherein F shows a forward direction, B shows a backward direction, U shows an upward direction, and D shows a downward direction.
  • (Overall Configuration of Tractor)
  • As illustrated in FIG. 1, a mechanical body 3 is supported by right and left front wheels 1 and right and left rear wheels 2. A diesel-type engine 4 is provided at a front portion of the mechanical body 3, a driving unit 5 is provided at back portion of the mechanical body 3, and a driver's seat 6 and a steering wheel 7 for the front wheels 1 are provided in the driving unit 5. An arch-shaped ROPS frame 8 is provided between the engine 4 and the driving unit 5.
  • (Disposition of the First Exhaust Pipe and Second Exhaust Pipe)
  • As illustrated in FIGS. 1 and 2, exhaust of the engine 4 is fed to an exhaust purification device (not illustrated) (DPF) to remove particulates from the exhaust of the engine 4. Next, the exhaust of the engine 4 is fed from the exhaust purification device (DPF) to an exhaust purification device 9 (scR), and nitrogen oxide is removed from the exhaust of the engine 4.
  • The exhaust purification device 9 is disposed along the left-right direction between the engine 4 and the driving unit 5 (steering wheel 7), and a round pipe shaped exhaust pipe 10 is extended downward from a right portion of the engine purification device 9. A round pipe shaped first exhaust pipe 11 is connected to the exhaust pipe 10 and extended downward, and a round pipe shaped second exhaust pipe 12 is supported along the vertical direction on the bottom of the first exhaust pipe 11.
  • With the above configuration, the exhaust of the engine 4 is fed from the exhaust purification device (not illustrated) (DPF) to the exhaust purification device 9 (SCR) and sent from the exhaust pipe 10 to the first exhaust pipe 11, sent from an outlet 13 of a lower portion of the first exhaust pipe 11 to an inlet 14 of an upper portion of the second exhaust pipe 12 and discharged from an outlet 15 of a lower portion of the second exhaust pipe 12 .
  • (Configuration of the Notch Parts Formed on the Outlet of the First Exhaust Pipe)
  • As illustrated in FIGS. 4 and 5, four triangular notch parts 18 are formed at intervals of 90 degrees on a peripheral part of the outlet 13 of the first exhaust pipe 11.
  • At the peripheral part of the outlet 13 of the first exhaust pipe 11, two triangular notch parts 19 smaller than the notch parts 18 are formed on each of the four portions between the adjacent notch parts 18, forming a total of eight notch parts 19. A plurality of notch parts 19 are thereby formed across the entire periphery of the peripheral port of the outlet 13 of the first exhaust pipe 11.
  • The notch parts 18, 19 are formed with point symmetry with respect to a center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2).
  • As illustrated in FIGS. 5 and 6, when imagining virtual straight lines E1, E2, E3, E4 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A 1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the notch parts 19 are formed with line symmetry with respect to virtual straight lines E1, E2, E3, E4.
  • Notch parts 18, 19 are formed to extend upward from end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11 (opposite side of the second exhaust pipe 12). Regarding end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11, the end part 13a adjacent to the notch parts 18 extends farther downward (to the second exhaust pipe 12 side) than the end part 13b between notch parts 19.
  • (Configuration of a Partition Member Provided at the Outlet of the First Exhaust Pipe)
  • As illustrated in FIGS. 3, 4, and 5, a plate material is folded into a triangular cross-section to form partition members 16, 17 and the partition members 16, 17 are combined so as to cross orthogonally and mutually connect. The partition members 16, 17 are inserted into the notch parts 18 of the outlet 13 of the first exhaust pipe 11 and attached to the outlet 13 of the first exhaust pipe 11.
  • Seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the orthogonally crossing portions of the partition members 16, 17 are disposed at the center of the outlet 13 of the first exhaust pipe 11. Seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11, the partition members 16, 17 are disposed and formed radially facing outward from the center of the outlet 13 of the first exhaust pipe 11.
  • Due to the partition members 16, 17 being formed by the plate material being bent to have a triangular cross-section, seen from the direction orthogonal to the direction A1 (see FIG. 2) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 4), the cross-sectional shape of the partition members 16, 17 is formed in a wedge shape tapering upstream of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11.
  • The partition members 16, 17 are formed with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2).
  • As illustrated in FIGS. 5 and 6, when imagining virtual straight lines E1, E2, E3, E4 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the partition members 16, 17 are formed with line symmetry with respect to virtual straight lines E1, E2, E3, E4.
  • Even in a configuration in which the partition members 16, 17 and the notch part 19 are combined, the configuration in which the partition members 16, 17 and the notch part 19 are combined is formed with line symmetry with respect to the virtual straight lines E1, E2, E3, E4.
  • Outer ends 16a, 17a of the partition members 16, 17 protrude radially outward from the outer peripheral portion of the outlet 13 of the first exhaust pipe 11. The upper end parts 16b, 17b of the partition members 16, 17 are positioned above the upper end part 19a of the notch part 19 (opposite side of the second exhaust pipe 12) (see FIG. 4), and the lower end parts 16c, 17c of the partition members 16, 17 protrude downward from the end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11 (to the second exhaust pipe 12 side) (see FIG. 4).
  • Thus, the partition members 16, 17 are attached on the first exhaust pipe across a portion further separated on the opposite side of the second exhaust pipe 12 than the end part 19a of the opposite side of the second exhaust pipe 12 of the notch part 19, and the end part 13a of the outlet 13 of the first exhaust pipe 11, and the partition members 16, 17 protrude from the end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11 towards the second exhaust pipe 12 side.
  • (Relationship Between the Partition Members and Notch Parts and the Outlet of the First Exhaust Pipe)
  • As illustrated in FIGS. 5 and 6, seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the region of the outlet 13 of the first exhaust pipe 11 is divided by the partition members 16, 17 into four divided regions B 1. A region of the notch part 19 is also included in the four divided regions B1, and the adjacent divided regions B1 are partitioned by the partition members 16, 17 with intervals C1 of the width of the partition members 16, 17.
  • Thus, seen from the direction A1 (see FIG. 2) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11, the areas of the four divided regions B1 are mutually the same.
  • When exhaust of the engine 4 is sent to the first exhaust pipe 11, the exhaust of the engine 4 is divided into four flows corresponding to the divided regions B1 at the outlet 13 of the first exhaust pipe 11 while passing through the divided regions B1 due to the partition members 16, 17. Immediately after the partition members 16, 17, the four flows of exhaust of the engine 4 become independent flows, and after this, the four flows of exhaust of the engine 4 are mixed with outside air and then converge.
  • At the same time, the cross-sectional shape of the partition members 16, 17 is formed in a wedge shape that tapers upstream of the flow of the exhaust discharged from the outlet 13 of the first exhaust pipe 11, and thus, the region of the outlet 13 of the first exhaust pipe 11 is narrowed by the partition members 16, 17 and flow of the exhaust of the engine 4 is obstructed by the partition member 16, 17, causing the flow speed of the four flows of exhaust of the engine 4 to increase. A negative pressure space in which exhaust of the engine 4 cannot flow is more easily generated in the region downstream of the partition members 16, 17, and this negative pressure space is more easily expanded downstream.
  • In the flow corresponding to the divided regions B1 of the exhaust of the engine 4, the boundary surface, which is the portions at which the flow of exhaust of the engine 4 contacts outside air, is the sum of a portion L1 corresponding to the lower end part 16c of the partition member 16, a portion L2 corresponding to the lower end part 17c of the partition member 17, two portions L3 corresponding to the peripheral parts of the two notch parts 19, and three portions L4 corresponding to end parts 13a, 13b of the outlet 13 of the first exhaust pipe 11.
  • Thus, the boundary surface when the partition members 16, 17 and the notch parts 19 are provided is the sum of the boundary surfaces of the four flows corresponding to the divided regions B1 of the exhaust of the engine 4.
  • (Relationship Between the First Exhaust Pipe and the Second Exhaust Pipe)
  • As illustrated in FIG. 3, the second exhaust pipe 12 is formed to have a larger diameter than the first exhaust pipe 11, and the inlet 14 of the second exhaust pipe 12 is formed to have a larger outer diameter than the outlet 13 of the first exhaust pipe 11. The outlet 15 of the second exhaust pipe 12 is formed so as to face laterally outward to the right from the mechanical body 3.
  • As illustrated in FIG. 2, in a side view (direction orthogonal to the direction A1 of the flow exhaust discharged from the outlet 13 of the first exhaust pipe 11), the outlet 13 of the first exhaust pipe 11 and the inlet 14 of the second exhaust pipe 12 are disposed in close proximity so that the outlet of the first exhaust pipe 11 (end parts 16c, 17c of the partition members 16, 17) and the outlet 14 of the second exhaust pipe 12 are disposed at small intervals C2.
  • As illustrated in FIG. 3, seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the outlet 13 of the first exhaust pipe 11 and the partition members 16, 17 are disposed in the interior of the inlet 14 of the second exhaust pipe 12.
  • The peripheral part of the outlet 13 of the first exhaust pipe 11 and the peripheral part of the inlet 14 of the second exhaust pipe 12 are disposed at intervals C3. The outer end parts 16a, 17a of the partition members 16, 17 and the peripheral part of the inlet 14 of the second exhaust pipe 12 are disposed at intervals C4 narrower than the intervals C3.
  • With the above configuration, the exhaust of the engine 4 is discharged from the outlet 13 of the first exhaust pipe 11, is sent to the inlet 14 of the second exhaust pipe 12, enters the interior of the second exhaust pipe 12, and is exhausted from the outlet 15 of the lower portion of the second exhaust pipe 12.
  • As described above (relationship between the partition members and notch parts and the outlet of the first exhaust pipe), by providing the partition members 16, 17 and notch parts 19, the flow speed of exhaust of the engine 4 can be appropriately increased.
  • A negative pressure space in which exhaust of the engine 4 cannot flow is more easily generated in the region downstream of the partition members 16, 17, and outside air more easily mixes in this negative pressure space.
  • The boundary surface when the partition members 16, 17 and the notch parts 19 are provided is the sum of the boundary surfaces of the four flows corresponding to the divided regions B1 of the exhaust of the engine 4.
  • Thus, a large amount of outside air is drawn into the flow of exhaust of the engine 4, brought into the interior of the second exhaust pipe 12 from between the peripheral part of the outlet 13 of the first exhaust pipe 11 and the inlet 14 of the second exhaust pipe 12, mixed into the exhaust of the engine 4, and the temperature of the exhaust of the engine 4 is lowered.
  • (First Alternative Mode of Carrying Out Invention)
  • In the configuration illustrated in FIGS. 2 to 5, the notch part 19 may be removed.
  • In a side view, in order to overlap the outlet 13 of the first exhaust pipe 11 and the inlet 14 of the second exhaust pipe 12, the outlet 13 of the first exhaust pipe 11 may be disposed along the direction A1 (see FIG. 2) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 so as to slightly enter the interior of the inlet 14 of the second exhaust pipe 12.
  • Partition members 16, 17 may be provided in the inlet 14 of the second exhaust pipe 12 and the outlet 13 of the first exhaust pipe 11 may be disposed in close proximity to the partition members 16, 17.
  • The invention may also be configured so that the partition members 16, 17 are configured to combine and mutually connect at angles other than 90 degrees so that the areas of the four divided regions B1 are not mutually the same while forming the partition members 16, 17 with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 (see FIG. 2) of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11.
  • (Second Alternative Mode of Carrying Out Invention)
  • The cross-sectional shape of the partition members 16, 17 may be formed in a wedge shape that is 1/2 of an elongated ellipse instead of a triangular wedge shape.
  • According to this configuration, the outer surfaces of the partition members 16, 17 are not linear but arcuate in cross section, and therefore it can be expected that the flow of exhaust of the engine 4 along the outer surfaces of the partition members 16, 17 will be smooth.
  • (Third Alternative Mode of Carrying Out Invention)
  • As illustrated in FIG. 7, a partition member 20 may be configured by a flat-shaped member and the partition member 20 formed so that a plurality of arm portions 20a extend radially outward from the center of the outlet 13 of the first exhaust pipe 11 form the center of the partition member 20.
  • In the configuration illustrated in FIG. 7, the arm portions 20a of the partition member 20 are disposed with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2).
  • When imagining virtual straight lines E1, E2 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the partition member 20 is formed with line symmetry with respect to virtual straight lines E1, E2. The virtual straight line E1 may be imagined so that it passes through a different arm portion 20a than the arm portion 20a illustrated in FIG. 7 of the partition member 20. The virtual straight line E2 may be imagined so that it passes through a different gap of arm portions 20a than the gap of arm portions 20a illustrated in FIG. 7 of the partition member 20.
  • One divided region B 1 is formed by two adjacent arm portions 20a of the partition member 20 and the peripheral part of the outlet 13 of the first exhaust pipe 11. By setting the angles between adjacent arm portions 20a of the partition member 20 to be mutually the same, the areas of the plurality of divided regions B 1 are made mutually the same.
  • In this case, the number of arm portions 20a of the partition member 20 is assumed to be 3, 4, 5, and various other numbers. The angles between adjacent arm portions 20a of the partition member 20 may be set to be mutually different, to configure so that the areas of the plurality of divided regions B1 are not mutually the same. In addition to the partition member 20, a notch part 19 illustrated in FIGS. 4 and 5 may be formed on the outlet 13 of the first exhaust pipe 11.
  • (Fourth Alternative Mode of Carrying Out Invention)
  • As illustrated in FIG. 8, the partition member 20 may be configured by a flat-shaped member, and a plurality of circular opening portions 20b of the same inner diameter opened to form the partition member 20.
  • One divided region B 1 is formed by one opening portion 20b of the partition member 20. Because the opening portions 20b of the partition member 20 have the same inner diameter, the areas of the plurality of divided regions B1 are mutually the same.
  • In the configuration illustrated in FIG. 8, the opening portions 20b of the partition member 20 are disposed with point symmetry with respect to the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2).
  • When imagining virtual straight lines E1, E2 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the partition member 20 is formed with line symmetry with respect to virtual straight lines E1, E2. The virtual straight line E1 may be imagined so that it passes through a different inside opening portion 20b than the inside opening portion 20b illustrated in FIG. 8 of the partition member 20. The virtual straight line E2 may be imagined so that it passes through a different outside opening portion 20b than the outside opening portion 20b illustrated in FIG. 8 of the partition member 20. In this case, the inner diameters of the plurality of opening portions 20b of the partition member 20 may be set to be mutually different to configure so that the areas of the plurality of divided regions B 1 are not mutually the same.
  • (Fifth Alternative Mode of Carrying Out Invention)
  • As illustrated in FIG. 9, the partition members 16, 17, 20 may be removed to form a plurality of notch parts 19 across the entire periphery of the peripheral portion of the outlet 13 of the first exhaust pipe 11.
  • In the plurality of notch parts 19, instead of forming all the notch parts 19 at the same size, the notch parts 19 may be configured so that a mixture of different sizes are present, such as large notch parts 19 and small notch parts 19.
  • In the configuration illustrated in FIG. 9, the notch parts 19 are formed with point symmetry with respect to the center D1 (see FIGS. 7 and 8) of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2).
  • When imagining virtual straight lines E1, E2 passing through the center D1 of the outlet 13 of the first exhaust pipe 11 seen from the direction A1 of the flow of exhaust discharged from the outlet 13 of the first exhaust pipe 11 (see FIG. 2), the notch parts 19 are formed with line symmetry with respect to virtual straight lines E1, E2.
  • The virtual straight line E1 may be imagined to that it passes through an end part of the second exhaust pipe 12 side of a different notch part 19 than the notch part 19 illustrated in FIG. 9. The virtual straight line E2 may be imagined to that it passes through the center part of a different notch part 19 than the notch part 19 illustrated in FIG. 9.
  • Instead of triangular notch parts 19, notch parts 19 of various shapes such as U-shaped, rectangular, and semicircular may be formed, and a mixture of notch parts 19 with different shapes may be configured.
  • [Industrial Applicability]
  • The present invention may be applied not only to tractors but also to agricultural work vehicles such as combine harvesters and ridden rice planters, construction work vehicles such as backhoes and wheel loaders, and work vehicles for transporting materials and the like.

Claims (13)

  1. A work vehicle comprising a first exhaust pipe from which engine exhaust is sent, and
    a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein,
    seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, and,
    seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions and a partition member is provided partitioning the adjacent divided regions at intervals.
  2. The work vehicle according to claim 1, wherein the partition member is attached to the outlet of the first exhaust pipe.
  3. The work vehicle according to claim 1 or 2, wherein the partition member is formed so that, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the areas of the plurality of divided regions are mutually the same.
  4. The work vehicle according to any one of claims 1 to 3, wherein the partition member, seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, is disposed and formed radially facing outward from the center of the outlet of the first exhaust pipe.
  5. The work vehicle according to any one of claims 1 to 3, wherein the partition member has a plurality of opening portions formed open to a flat-shaped member.
  6. The work vehicle according to any one of claims 1 to 5, wherein the partition member is formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  7. A work vehicle comprising a first exhaust pipe from which engine exhaust is sent, and
    a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein,
    seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe, and
    a notch part extending from an end part of the outlet of the first exhaust pipe to an opposite side of the second exhaust pipe is formed on the peripheral part of outlet of the first exhaust pipe.
  8. The work vehicle according to claim 7, wherein a plurality of the notch part is formed across the entire periphery of the peripheral part of the outlet of the first exhaust pipe.
  9. The work vehicle according to claim 7 or 8, wherein the notch part is formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  10. A work vehicle comprising a first exhaust pipe from which engine exhaust is sent, and
    a second exhaust pipe provided with an inlet having an outer diameter larger than the outlet of the first exhaust pipe, wherein,
    seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the outlet of the first exhaust pipe and the inlet of the second exhaust pipe are disposed in close proximity so that the outlet of the first exhaust pipe is disposed in the interior of the inlet of the second exhaust pipe,
    seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the region of the outlet of the first exhaust pipe is divided into a plurality of divided regions and a partition member is provided partitioning the adjacent divided regions at intervals, and
    a notch part extending from an end part of the outlet of the first exhaust pipe to an opposite side of the second exhaust pipe is formed on the peripheral part of the outlet of the first exhaust pipe.
  11. The work vehicle according to claim 10, wherein
    the partition member is attached on the first exhaust pipe across a portion further separated on the opposite side of the second exhaust pipe than the end part of the opposite side of the second exhaust pipe of the notch part, and the end part of the outlet of the first exhaust pipe, and
    the partition member protrudes from the end part of the outlet of the first exhaust pipe towards the second exhaust pipe side.
  12. The work vehicle according to claim 10 or 11, wherein the partition member and the notch part are formed with line symmetry with respect to a virtual straight line passing through the center of the outlet of the first exhaust pipe seen from the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe.
  13. The work vehicle according to any one of claims 1 to 6, or 10 to 12, wherein, from the direction orthogonal to the direction of the flow of exhaust discharged from the outlet of the first exhaust pipe, the cross-sectional shape of the partition member is formed in a wedge shape tapering upstream of the flow of exhaust discharged from the outlet of the first exhaust pipe.
EP22203935.6A 2022-10-26 2022-10-26 Work vehicle Pending EP4361410A1 (en)

Priority Applications (1)

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EP22203935.6A EP4361410A1 (en) 2022-10-26 2022-10-26 Work vehicle

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Application Number Priority Date Filing Date Title
EP22203935.6A EP4361410A1 (en) 2022-10-26 2022-10-26 Work vehicle

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Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102009046253A1 (en) * 2009-10-30 2011-05-05 Deere & Company, Moline Device for cooling an exhaust gas flow
DE102011014908A1 (en) * 2011-03-24 2011-11-10 Daimler Ag Tail pipe arrangement for exhaust system of vehicle, comprises inlet, by which surrounding air is introduced into exhaust flow for cooling exhaust flow
US20120145268A1 (en) * 2010-12-08 2012-06-14 Caterpillar Inc. Exhaust Ejector For An Internal Combustion Engine
US20130205759A1 (en) * 2012-02-14 2013-08-15 Jeffrey L. Gardner Exhaust assembly
US20140020638A1 (en) * 2011-04-07 2014-01-23 Volvo Construction Equipment Ab Exhaust gas temperature reduction device for an engine of construction equipment
JP2016153304A (en) 2011-07-29 2016-08-25 株式会社クボタ Exhaust device of working vehicle
JP2022102298A (en) * 2020-12-25 2022-07-07 株式会社クボタ Exhaust gas diffusion device

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102009046253A1 (en) * 2009-10-30 2011-05-05 Deere & Company, Moline Device for cooling an exhaust gas flow
US20120145268A1 (en) * 2010-12-08 2012-06-14 Caterpillar Inc. Exhaust Ejector For An Internal Combustion Engine
DE102011014908A1 (en) * 2011-03-24 2011-11-10 Daimler Ag Tail pipe arrangement for exhaust system of vehicle, comprises inlet, by which surrounding air is introduced into exhaust flow for cooling exhaust flow
US20140020638A1 (en) * 2011-04-07 2014-01-23 Volvo Construction Equipment Ab Exhaust gas temperature reduction device for an engine of construction equipment
JP2016153304A (en) 2011-07-29 2016-08-25 株式会社クボタ Exhaust device of working vehicle
US20130205759A1 (en) * 2012-02-14 2013-08-15 Jeffrey L. Gardner Exhaust assembly
JP2022102298A (en) * 2020-12-25 2022-07-07 株式会社クボタ Exhaust gas diffusion device

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