WO2021205827A1 - リンク機構 - Google Patents
リンク機構 Download PDFInfo
- Publication number
- WO2021205827A1 WO2021205827A1 PCT/JP2021/010687 JP2021010687W WO2021205827A1 WO 2021205827 A1 WO2021205827 A1 WO 2021205827A1 JP 2021010687 W JP2021010687 W JP 2021010687W WO 2021205827 A1 WO2021205827 A1 WO 2021205827A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- valve
- diameter portion
- diameter
- connecting pin
- rod
- 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.)
- Ceased
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02B—INTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
- F02B37/00—Engines characterised by provision of pumps driven at least for part of the time by exhaust
- F02B37/12—Control of the pumps
- F02B37/18—Control of the pumps by bypassing exhaust from the inlet to the outlet of turbine or to the atmosphere
- F02B37/183—Arrangements of bypass valves or actuators therefor
- F02B37/186—Arrangements of actuators or linkage for bypass valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02B—INTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
- F02B37/00—Engines characterised by provision of pumps driven at least for part of the time by exhaust
- F02B37/12—Control of the pumps
- F02B37/18—Control of the pumps by bypassing exhaust from the inlet to the outlet of turbine or to the atmosphere
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C11/00—Pivots; Pivotal connections
- F16C11/04—Pivotal connections
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H21/00—Gearings comprising primarily only links or levers, with or without slides
- F16H21/10—Gearings comprising primarily only links or levers, with or without slides all movement being in, or parallel to, a single plane
- F16H21/40—Gearings comprising primarily only links or levers, with or without slides all movement being in, or parallel to, a single plane for interconverting rotary motion and oscillating motion
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C2229/00—Setting preload
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C2360/00—Engines or pumps
- F16C2360/23—Gas turbine engines
- F16C2360/24—Turbochargers
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02T—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
- Y02T10/00—Road transport of goods or passengers
- Y02T10/10—Internal combustion engine [ICE] based vehicles
- Y02T10/12—Improving ICE efficiencies
Definitions
- Patent Document 1 discloses a link mechanism for opening and closing a wastegate port.
- the link mechanism includes a rod, a link plate, a connecting pin, a spring member, and a retaining ring.
- the connecting pin connects the rod and the link plate so as to be relatively rotatable.
- the spring member is inserted through the connecting pin and arranged between the link plate and the rod. The spring member urges the link plate and the rod in a direction that separates them from each other.
- Retaining rings are attached to connecting pins. Retaining rings prevent the link plate and rod from falling off the connecting pin.
- the object of the present disclosure is to provide a link mechanism capable of suppressing the falling off of a link member.
- the link mechanism of the present disclosure includes a first link member in which a first hole is formed, a second link member in which a second hole is formed, and a first link member or a second link member.
- the rotating shaft of the rotating body attached to the first link member, the spring member arranged between the first link member and the second link member, and the second link member and the spring member located on the opposite side of the first link member.
- a large diameter part having an outer diameter larger than the inner diameter of the first hole and the second hole, a medium diameter part having an outer diameter smaller than the large diameter part, and at least a part of which is arranged in the first hole, and a middle diameter part.
- a connecting pin having a small diameter portion having an outer diameter smaller than that of the diameter portion and having a small diameter portion at least partially arranged in the second hole is provided.
- the connecting pin is as follows.
- the formulas 1.15 ⁇ D2 / D1 ⁇ 2 and 1.1 ⁇ n / d ⁇ 5 may be satisfied.
- the connecting pin may be composed of a first member including a small diameter portion and a second member arranged radially outside the first member and including a medium diameter portion and a large diameter portion.
- FIG. 1 is a schematic cross-sectional view of the turbocharger.
- FIG. 2 is an external view of the turbine housing.
- FIG. 3 is a view taken along the line III of FIG.
- FIG. 4 is an explanatory diagram for explaining a connection structure between the valve and the mounting plate.
- FIG. 5 is an internal view of the turbine housing after the valve shown in FIG. 3 has rotated in the direction of arrow a.
- FIG. 6 is a schematic cross-sectional view of the link mechanism according to the present embodiment.
- FIG. 7 is an explanatory diagram for explaining the dimensional relationship of the valve-side connecting pin.
- FIG. 8 is a schematic cross-sectional view of the link mechanism of the first modification.
- FIG. 9 is a schematic cross-sectional view of the link mechanism of the second modification.
- FIG. 1 is a schematic cross-sectional view of the turbocharger TC.
- the direction of arrow L shown in FIG. 1 will be described as the left side of the turbocharger TC.
- the arrow R direction shown in FIG. 1 will be described as the right side of the turbocharger TC.
- the supercharger TC includes a supercharger main body 1.
- the turbocharger main body 1 includes a bearing housing 3, a turbine housing 5, and a compressor housing 7.
- the turbine housing 5 is connected to the left side of the bearing housing 3 by a fastening mechanism 9.
- the compressor housing 7 is connected to the right side of the bearing housing 3 by a fastening bolt 11.
- a protrusion 3a is provided on the outer peripheral surface of the bearing housing 3.
- the protrusion 3a is provided on the turbine housing 5 side.
- the protrusion 3a projects in the radial direction of the bearing housing 3.
- a protrusion 5a is provided on the outer peripheral surface of the turbine housing 5.
- the protrusion 5a is provided on the bearing housing 3 side.
- the protrusion 5a projects in the radial direction of the turbine housing 5.
- the bearing housing 3 and the turbine housing 5 are band-fastened by the fastening mechanism 9.
- the fastening mechanism 9 is composed of, for example, a G coupling.
- the fastening mechanism 9 sandwiches the protrusions 3a and 5a.
- a bearing hole 3b is formed in the bearing housing 3.
- the bearing hole 3b penetrates the supercharger TC in the left-right direction.
- a bearing is arranged in the bearing hole 3b.
- a shaft 13 is inserted through the bearing.
- the bearing rotatably supports the shaft 13.
- the bearing is a plain bearing.
- the bearing is not limited to this, and the bearing may be a rolling bearing.
- a turbine impeller 15 is provided at the left end of the shaft 13.
- the turbine impeller 15 is rotatably housed in the turbine housing 5.
- a compressor impeller 17 is provided at the right end of the shaft 13.
- the compressor impeller 17 is rotatably housed in the compressor housing 7.
- An intake port 19 is formed in the compressor housing 7.
- the intake port 19 opens on the right side of the turbocharger TC.
- the intake port 19 is connected to an air cleaner (not shown).
- the diffuser flow path 21 is formed by the facing surfaces of the bearing housing 3 and the compressor housing 7.
- the diffuser flow path 21 boosts air.
- the diffuser flow path 21 is formed in an annular shape.
- the diffuser flow path 21 communicates with the intake port 19 via the compressor impeller 17 on the inner side in the radial direction.
- a compressor scroll flow path 23 is formed in the compressor housing 7.
- the compressor scroll flow path 23 is formed in an annular shape.
- the compressor scroll flow path 23 is located, for example, radially outside the shaft 13 with respect to the diffuser flow path 21.
- the compressor scroll flow path 23 communicates with the intake port of an engine (not shown) and the diffuser flow path 21.
- the intake air is pressurized and accelerated in the process of flowing between the blades of the compressor impeller 17.
- the pressurized and accelerated air is boosted in the diffuser flow path 21 and the compressor scroll flow path 23.
- the boosted air is guided to the intake port of the engine.
- a discharge port 25 is formed in the turbine housing 5.
- the discharge port 25 opens on the left side of the turbocharger TC.
- the discharge port 25 is connected to an exhaust gas purification device (not shown).
- An internal space 27 is formed inside the turbine housing 5.
- the internal space 27 opens to the discharge port 25.
- the internal space 27 is formed on the downstream side (discharge port 25 side) of the turbine impeller 15.
- the turbine housing 5 is formed with a communication passage 29 and a turbine scroll flow path 31.
- the turbine scroll flow path 31 is formed in an annular shape.
- the turbine scroll passage 31 is located, for example, radially outside the shaft 13 with respect to the communication passage 29.
- the turbine scroll flow path 31 communicates with the gas inflow port 33 (see FIG. 2).
- Exhaust gas discharged from an engine exhaust manifold (not shown) is guided to the gas inflow port 33.
- the communication passage 29 communicates the turbine scroll flow path 31 and the discharge port 25 (internal space 27) via the turbine impeller 15.
- the exhaust gas guided from the gas inflow port 33 to the turbine scroll flow path 31 is guided to the discharge port 25 via the communication passage 29, the turbine impeller 15, and the internal space 27.
- the exhaust gas guided to the discharge port 25 rotates the turbine impeller 15 in the distribution process.
- the rotational force of the turbine impeller 15 is transmitted to the compressor impeller 17 via the shaft 13.
- the compressor impeller 17 rotates, the air is boosted as described above. In this way, air is guided to the intake port of the engine.
- FIG. 2 is an external view of the turbine housing 5.
- the turbine housing 5 is provided with a valve device 100.
- the valve device 100 includes an actuator 110, a link mechanism 120, and a rotating structure 130.
- the actuator 110 and the link mechanism 120 are arranged outside the turbine housing 5.
- the actuator 110 includes a motor.
- the motor includes a rotor (rotating body) 111 and a stator (not shown).
- the rotating shaft 113 of the rotor 111 is connected to the link mechanism 120.
- the actuator 110 rotates the rotation shaft 113 around the central axis (in the direction of arrow a and arrow b in FIG. 2).
- the link mechanism 120 includes a rod 140, an actuator-side link plate 150A, a valve-side link plate 150B, an actuator-side connecting pin 160A, a valve-side connecting pin 160B, an actuator-side spring member 170A, and a valve-side spring member 170B. including.
- a pin hole 151A and a shaft hole 153A are formed in the actuator side link plate 150A.
- the actuator side connecting pin 160A is inserted into the pin hole 151A.
- the rotating shaft 113 of the rotor 111 is inserted into the shaft hole 153A.
- the rotating shaft 113 is fixed to the actuator-side link plate 150A.
- the rotation shaft 113 rotates integrally with the actuator-side link plate 150A.
- the actuator-side link plate 150A rotates around the central axis of the rotating shaft 113 in the directions of arrow a and arrow b in FIG.
- the rod 140 is formed with an actuator-side insertion hole 141A and a valve-side insertion hole 141B.
- the actuator side connecting pin 160A is inserted into the actuator side insertion hole 141A.
- a valve-side connecting pin 160B is inserted into the valve-side insertion hole 141B.
- One end of the rod 140 is connected to the actuator side link plate 150A via the actuator side connecting pin 160A, and the other end is connected to the valve side link plate 150B via the valve side connecting pin 160B.
- the actuator side connecting pin 160A is inserted into the actuator side insertion hole 141A and the pin hole 151A.
- the actuator-side connecting pin 160A connects the rod 140 and the actuator-side link plate 150A so as to be relatively rotatable.
- the actuator-side connecting pin 160A is fixed to the actuator-side link plate 150A.
- the actuator-side connecting pin 160A rotatably holds the rod 140.
- the actuator-side connecting pin 160A is subjected to surface hardening treatment such as electroless nickel treatment and nitriding treatment. Thereby, the wear resistance of the actuator side connecting pin 160A can be improved.
- the actuator side spring member 170A is inserted through the actuator side connecting pin 160A.
- the actuator-side spring member 170A is arranged between the rod 140 and the actuator-side link plate 150A.
- the actuator side spring member 170A has, for example, a disk shape.
- the actuator side spring member 170A is a countersunk spring.
- the present invention is not limited to this, and the actuator side spring member 170A may be composed of other spring members such as coil springs and leaf springs.
- One end of the actuator-side spring member 170A contacts the rod 140, and the other end of the actuator-side spring member 170A contacts the actuator-side link plate 150A.
- the actuator-side spring member 170A urges the rod 140 and the actuator-side link plate 150A in a direction in which they are separated from each other. By arranging the actuator-side spring member 170A between the rod 140 and the actuator-side link plate 150A, vibration transmission between the rod 140 and the actuator-side link plate 150A is suppressed.
- a pin hole 151B and a shaft hole 153B are formed in the valve side link plate 150B.
- a valve-side connecting pin 160B is inserted into the pin hole 151B.
- the rotating shaft 131 of the rotating structure 130 is inserted into the shaft hole 153B.
- the rotating shaft 131 is fixed to the valve side link plate 150B.
- the rotating shaft 131 rotates integrally with the valve-side link plate 150B.
- the valve-side link plate 150B rotates around the central axis of the rotating shaft 131 in the direction of arrow a and the direction of arrow b in FIG.
- the valve side connecting pin 160B is configured in the same manner as the actuator side connecting pin 160A.
- the valve-side connecting pin 160B is inserted into the valve-side insertion hole 141B and the pin hole 151B.
- the valve-side connecting pin 160B connects the rod 140 and the valve-side link plate 150B so as to be relatively rotatable.
- the valve-side connecting pin 160B is fixed to the valve-side link plate 150B.
- the valve-side connecting pin 160B rotatably holds the rod 140.
- the valve side spring member 170B is configured in the same manner as the actuator side spring member 170A.
- the valve-side spring member 170B is inserted through the valve-side connecting pin 160B.
- the valve-side spring member 170B is arranged between the rod 140 and the valve-side link plate 150B.
- One end of the valve-side spring member 170B contacts the rod 140, and the other end contacts the valve-side link plate 150B.
- the valve-side spring member 170B urges the rod 140 and the valve-side link plate 150B in a direction that separates them from each other.
- the actuator-side link plate 150A rotates around the central axis of the rotating shaft 113 in the direction of arrow a or the direction of arrow b in FIG.
- the actuator-side link plate 150A rotates in the direction of arrow a in FIG. 2
- the rod 140 moves in the direction of arrow c in FIG.
- the valve-side link plate 150B rotates around the central axis of the rotating shaft 131 in the direction of arrow a in FIG.
- FIG. 3 is a view taken along the line III of FIG.
- FIG. 3 is an internal view of the turbine housing 5.
- the rotating structure 130 is arranged in the internal space 27 of the turbine housing 5.
- the rotating structure 130 includes a rotating shaft 131, a mounting plate 133, and a valve (rotating body) 135.
- a through hole 5b is formed in the turbine housing 5.
- the bearing member 180 is inserted through the through hole 5b.
- the bearing member 180 has a cylindrical shape.
- a rotating shaft 131 is inserted through the bearing member 180.
- the bearing member 180 rotatably supports the rotating shaft 131.
- the mounting plate 133 is integrally attached to the rotating shaft 131.
- the mounting plate 133 is welded to the rotating shaft 131 and rotates integrally with the rotating shaft 131.
- the valve 135 is mounted on the side of the mounting plate 133 opposite to the side connected to the rotating shaft 131.
- the mounting plate 133 holds the valve 135.
- FIG. 4 is an explanatory diagram for explaining the connection structure between the valve 135 and the mounting plate 133.
- the valve 135 includes a main body portion 135a and a shaft portion 135b.
- a position regulating member 137 is attached to the shaft portion 135b of the valve 135.
- the main body 135a has a contact surface 135c.
- the shaft portion 135b is formed on the side opposite to the side on which the contact surface 135c of the main body portion 135a is formed.
- the shaft portion 135b extends in a direction orthogonal to the contact surface 135c.
- the position regulating member 137 has a disk shape.
- the position regulating member 137 has a hole 137a.
- An insertion hole 133a is formed in the mounting plate 133.
- the shaft portion 135b of the valve 135 is inserted into the insertion hole 133a of the mounting plate 133.
- the shaft portion 135b is inserted into the hole 137a of the position regulating member 137.
- the position regulating member 137 is arranged on the side opposite to the main body portion 135a with respect to the mounting plate 133.
- the position regulating member 137 is attached (fixed) to (fixed) to the shaft portion 135b by, for example, caulking.
- the mounting plate 133 is sandwiched between the main body 135a and the position regulating member 137.
- the position regulating member 137 prevents the valve 135 from falling off from the mounting plate 133.
- a bypass flow path 35 and a wastegate port 37 are formed in the turbine housing 5.
- One end of the bypass flow path 35 is connected to the turbine scroll flow path 31, and the other end is connected to the internal space 27 via the wastegate port 37.
- the bypass flow path 35 communicates the turbine scroll flow path 31 with the internal space 27.
- the bypass flow path 35 and the wastegate port 37 are located radially outside the turbine impeller 15.
- the bypass flow path 35 guides a part of the exhaust gas flowing through the turbine scroll flow path 31 to the internal space 27 by bypassing the turbine impeller 15.
- the wastegate port 37 is formed on the seat surface 39 to which the valve 135 (contact surface 135c) can come into contact with the inner wall forming the internal space 27 of the turbine housing 5.
- the wastegate port 37 is formed on the downstream side (discharge port 25 side) of the turbine impeller 15.
- the wastegate port 37 communicates the bypass flow path 35 with the internal space 27.
- the valve 135 is a valve body having an outer diameter larger than the inner diameter of the wastegate port 37.
- the valve 135 is a wastegate valve in this embodiment.
- the valve 135 closes the wastegate port 37 in a state of being in contact with the seat surface 39. When the wastegate port 37 is closed, the exhaust gas flowing through the turbine scroll flow path 31 does not flow out to the internal space 27 via the bypass flow path 35 and the wastegate port 37.
- the valve 135 opens the wastegate port 37 in a state of being separated from the seat surface 39.
- the wastegate port 37 is opened, a part of the exhaust gas flowing through the turbine scroll flow path 31 flows out to the internal space 27 via the bypass flow path 35 and the wastegate port 37.
- FIG. 5 is an internal view of the turbine housing 5 after the valve 135 shown in FIG. 3 has rotated in the direction of arrow a.
- the valve 135 rotates in the direction of arrow a
- the valve 135 moves in a direction away from the seat surface 39.
- the wastegate port 37 is in an open state.
- the valve 135 rotates around the central axis of the rotary shaft 131 in the direction of arrow b in FIG. do.
- the valve 135 rotates in the direction of arrow b, the valve 135 moves in a direction close to the seat surface 39, as shown in FIG.
- the wastegate port 37 is closed.
- FIG. 6 is a schematic cross-sectional view of the link mechanism 120 according to the present embodiment.
- FIG. 6 shows a schematic cross-sectional view of a rod (first link member) 140, a valve side link plate (second link member) 150B, a valve side connecting pin 160B, and a valve side spring member 170B.
- the configuration of the valve-side link plate 150B, the valve-side connecting pin 160B, and the valve-side spring member 170B is substantially the same as the configuration of the actuator-side link plate 150A, the actuator-side connecting pin 160A, and the actuator-side spring member 170A. Is the same as.
- valve-side link plate 150B the valve-side connecting pin 160B, and the valve-side spring member 170B will be described in detail. Details of the configurations of the actuator-side link plate 150A, the actuator-side connecting pin 160A, and the actuator-side spring member 170A will be omitted.
- the valve side connecting pin 160B is formed with a large diameter portion 161, a medium diameter portion 163, and a small diameter portion 165.
- One end of the medium diameter portion 163 is continuous with the large diameter portion 161 and the other end is continuous with the small diameter portion 165.
- the large diameter portion 161, the medium diameter portion 163, and the small diameter portion 165 are integrally formed.
- the large diameter portion 161 has a roughly cylindrical shape.
- the large diameter portion 161 has a constant outer diameter.
- the outer diameter of the large diameter portion 161 is larger than the inner diameter of the valve side insertion hole (first hole) 141B of the rod 140.
- the large diameter portion 161 is located on the side opposite to the valve side link plate 150B and the valve side spring member 170B with respect to the rod 140.
- the medium diameter portion 163 has a roughly cylindrical shape.
- the middle diameter portion 163 has a constant outer diameter.
- the central axis of the medium diameter portion 163 roughly coincides with the central axis of the large diameter portion 161.
- the outer diameter of the medium diameter portion 163 is smaller than the outer diameter of the large diameter portion 161.
- the outer diameter of the medium diameter portion 163 is equal to or less than the inner diameter of the valve side insertion hole 141B of the rod 140.
- the outer diameter of the middle diameter portion 163 is smaller than the inner diameter of the valve side insertion hole 141B of the rod 140.
- the outer peripheral surface of the medium diameter portion 163 is separated from the inner peripheral surface of the valve side insertion hole 141B.
- the outer peripheral surface of the medium diameter portion 163 may be in contact with the inner peripheral surface of the valve side insertion hole 141B.
- the outer diameter of the middle diameter portion 163 is larger than the inner diameter of the pin hole 151B of the valve side link plate 150B.
- At least a part of the medium diameter portion 163 is arranged in the valve side insertion hole 141B.
- the rod 140 is not fixed to the medium diameter portion 163 and can rotate relative to the medium diameter portion 163.
- the medium diameter portion 163 functions as a sliding portion that slides with the valve side insertion hole 141B of the rod 140.
- the valve side spring member 170B is arranged on the radial outer side of the medium diameter portion 163.
- a large-diameter stepped surface 167 is formed between the large-diameter portion 161 and the medium-diameter portion 163.
- the large-diameter stepped surface 167 has a roughly annular shape.
- the large-diameter stepped surface 167 is continuous with the large-diameter portion 161 and the medium-diameter portion 163.
- the large-diameter stepped surface 167 is a surface that is approximately orthogonal to the central axes of the large-diameter portion 161 and the medium-diameter portion 163.
- the large-diameter stepped surface 167 functions as a sliding portion that slides on the outer surface of the rod 140.
- the small diameter portion 165 has a roughly cylindrical shape.
- the small diameter portion 165 has a constant outer diameter.
- the central axis of the small diameter portion 165 roughly coincides with the central axis of the medium diameter portion 163.
- the outer diameter of the small diameter portion 165 is smaller than the outer diameter of the middle diameter portion 163.
- the outer diameter of the small diameter portion 165 is equal to or less than the inner diameter of the pin hole (second hole) 151B of the valve side link plate 150B.
- the outer diameter of the small diameter portion 165 is approximately equal to the inner diameter of the pin hole 151B.
- the inner diameter of the pin hole 151B is smaller than the inner diameter of the valve side insertion hole 141B. At least a part of the small diameter portion 165 is arranged in the pin hole 151B.
- a small diameter stepped surface 169 is formed between the medium diameter portion 163 and the small diameter portion 165.
- the small-diameter stepped surface 169 has a roughly circular ring shape.
- the small-diameter stepped surface 169 is continuous with the medium-diameter portion 163 and the small-diameter portion 165.
- the small-diameter stepped surface 169 is a surface that is approximately orthogonal to the central axes of the medium-diameter portion 163 and the small-diameter portion 165.
- the small-diameter stepped surface 169 is a surface substantially parallel to the large-diameter stepped surface 167.
- the small-diameter stepped surface 169 is a contact surface (butting surface) that comes into contact with the valve-side link plate 150B when the valve-side connecting pin 160B is inserted into the valve-side insertion hole 141B and the pin hole 151B.
- the position of the valve-side connecting pin 160B in the central axial direction is determined.
- the small diameter portion 165 is fixed to the valve side link plate 150B in a state where the small diameter step surface 169 is in contact with the valve side link plate 150B.
- the tip of the small diameter portion 165 is crimped to the valve side link plate 150B in a state where the small diameter stepped surface 169 is in contact with the valve side link plate 150B.
- the small diameter portion 165 is fixed to the valve side link plate 150B.
- the present invention is not limited to this, and the small diameter portion 165 may be fixed to the valve side link plate 150B by welding or press fitting into the valve side link plate 150B.
- the rod 140 is pressed by the valve-side spring member 170B in a direction away from the valve-side link plate 150B.
- the rod 140 comes into contact with the large-diameter stepped surface 167 and presses the large-diameter stepped surface 167 in a direction away from the valve-side link plate 150B.
- the pressing force applied to the large-diameter stepped surface 167 is determined according to the distance between the valve-side link plate 150B and the rod 140.
- the distance between the valve-side link plate 150B and the rod 140 is determined by the distance between the small-diameter stepped surface 169 and the large-diameter stepped surface 167 in the central axis direction of the valve-side connecting pin 160B. Therefore, the urging force of the valve-side spring member 170B can be adjusted by adjusting the distance between the small-diameter stepped surface 169 and the large-diameter stepped surface 167.
- FIG. 7 is an explanatory diagram for explaining the dimensional relationship of the valve side connecting pin 160B.
- the outer diameter of the medium diameter portion 163 is represented by D1
- the outer diameter of the large diameter portion 161 is represented by D2.
- Half of the difference between the outer diameter D1 and the outer diameter D2 (that is, the radial width of the large diameter stepped surface 167) is represented by d.
- the height of the large diameter portion 161 in the central axis direction is represented by n.
- the gap between the rod 140 and the valve side link plate 150B in the central axis direction of the valve side connecting pin 160B is from the gap between the rod 140 and the medium diameter portion 163 in the radial direction of the valve side connecting pin 160B. big. Therefore, when the rod 140 is tilted with respect to the central axis of the valve side connecting pin 160B, the rod 140 comes into contact with the medium diameter portion 163 before coming into contact with the valve side link plate 150B. As a result, when the rod 140 is tilted with respect to the central axis of the valve-side connecting pin 160B, it is possible to prevent the valve-side spring member 170B from being crushed by the rod 140. As a result, it is possible to suppress the reduction of the urging force (reaction force) of the valve side spring member 170B.
- the outer diameter D2 of the large diameter portion 161 is larger than the outer diameter D1 of the medium diameter portion 163.
- the relational expression between the outer diameter D1 and the outer diameter D2 is 1.15 ⁇ D2 / D1 ⁇ 2.
- the width d of the large-diameter stepped surface 167 becomes smaller. That is, as the value obtained by dividing the outer diameter D2 by the outer diameter D1 approaches 1, the pressure receiving area of the large diameter stepped surface 167 pressed by the rod 140 becomes smaller. The smaller the pressure receiving area of the large-diameter stepped surface 167, the larger the pressure applied per unit area.
- the value of the height n of the large diameter portion 161 is larger than the value of the width d of the large diameter stepped surface 167.
- the relational expression between the width d and the height n is 1.1 ⁇ n / d ⁇ 5.
- the smaller the value obtained by dividing the height n by the width d the smaller the height n with respect to the width d.
- the thickness of the large diameter portion 161 becomes thinner, and the durability of the large diameter portion 161 decreases.
- the value obtained by dividing the height n by the width d is less than 1.1, the durability of the large diameter portion 161 tends to decrease when the large diameter stepped surface 167 is pressed by the rod 140.
- the valve side connecting pin 160B has a small diameter portion 165 fixed to the valve side link plate 150B.
- the valve-side connecting pin 160B has a medium-diameter portion 163 inserted into the valve-side insertion hole 141B of the rod 140.
- the valve-side connecting pin 160B has a large diameter portion 161 located on the opposite side of the rod 140 from the valve-side link plate 150B and the valve-side spring member 170B.
- the large diameter portion 161 has an outer diameter larger than that of the valve side insertion hole 141B of the rod 140.
- the valve side connecting pin 160B is integrally formed with a large diameter portion 161 instead of the retaining ring provided on the conventional connecting pin.
- the volume of the large diameter portion 161 is formed to be larger than the volume of the conventional retaining ring. Therefore, the large-diameter portion 161 of the valve-side connecting pin 160B can improve durability and wear resistance as compared with the conventional retaining ring. Therefore, when the rod 140 is rotationally slid around the medium diameter portion 163 while being pressed by the valve side spring member 170B, it is possible to prevent the rod 140 from falling off from the valve side connecting pin 160B.
- the valve side connecting pin 160B is provided with a small diameter stepped surface 169.
- height management between the rod 140 and the valve-side link plate 150B becomes easy.
- the distance between the rod 140 and the valve-side link plate 150B can be set (managed) with high accuracy.
- the load of the valve side spring member 170B can be set (managed) with high accuracy. Since it is not necessary to assemble the retaining ring to the valve side connecting pin 160B, the assemblability of the link mechanism 120 can be improved.
- the outer diameter D1 of the medium diameter portion 163 and the outer diameter D2 of the large diameter portion 161 satisfy the relational expression of 1.15 ⁇ D2 / D1 ⁇ 2.
- the width d of the large-diameter stepped surface 167 and the height n of the large-diameter portion 161 satisfy the relational expression of 1.1 ⁇ n / d ⁇ 5.
- FIG. 8 is a schematic cross-sectional view of the link mechanism 220 of the first modification.
- the link mechanism 220 of the first modification includes a rod (second link member) 240 and a valve side link plate (first link member) 250B in place of the rod 140 and the valve side link plate 150B of the above embodiment.
- the valve-side connecting pin 160B is arranged upside down from the valve-side connecting pin 160B of the above embodiment.
- the actuator-side insertion hole 141A, the actuator-side connecting pin 160A, the actuator-side link plate 150A, and the actuator-side spring member 170A of the rod 240 are configured such that the valve-side insertion hole 241B and the valve-side connecting pin 160B of the rod 240.
- the configuration of the valve side link plate 250B and the valve side spring member 170B is substantially the same. Therefore, detailed description of the configurations of the actuator-side insertion hole 141A, the actuator-side connecting pin 160A, the actuator-side link plate 150A, and the actuator-side spring member 170A of the rod 240 will be omitted. Other than that, the configuration is the same as that of the link mechanism 120 of the above embodiment.
- a valve side insertion hole (second hole) 241B is formed in the rod 240.
- a valve-side connecting pin 160B is inserted into the valve-side insertion hole 241B.
- a pin hole (first hole) 251B is formed in the valve side link plate 250B.
- a valve-side connecting pin 160B is inserted into the pin hole 251B.
- the inner diameter of the pin hole 251B is larger than the inner diameter of the valve side insertion hole 241B.
- the outer diameter of the large diameter portion 161 is larger than the inner diameter of the pin hole 251B of the valve side link plate 250B.
- the large diameter portion 161 is located on the side opposite to the rod 240 and the valve side spring member 170B with respect to the valve side link plate 250B.
- the outer diameter of the medium diameter portion 163 is equal to or less than the inner diameter of the pin hole 251B of the valve side link plate 250B.
- the outer diameter of the middle diameter portion 163 is smaller than the inner diameter of the pin hole 251B.
- the outer peripheral surface of the medium diameter portion 163 is separated from the inner peripheral surface of the pin hole 251B. However, the outer peripheral surface of the medium diameter portion 163 may be in contact with the inner peripheral surface of the pin hole 251B.
- the outer diameter of the middle diameter portion 163 is larger than the inner diameter of the valve side insertion hole 241B of the rod 240. At least a part of the medium diameter portion 163 is arranged in the pin hole 251B.
- the valve-side link plate 250B is not fixed to the medium-diameter portion 163 and can slide around the medium-diameter portion 163.
- the medium diameter portion 163 functions as a sliding portion that slides with the pin hole 251B of the valve side link plate 250B.
- the large-diameter stepped surface 167 functions as a sliding portion that slides on the outer surface of the valve-side link plate 250B.
- the outer diameter of the small diameter portion 165 is equal to or less than the inner diameter of the valve side insertion hole 241B of the rod 240. In the first modification, the outer diameter of the small diameter portion 165 is approximately equal to the inner diameter of the valve side insertion hole 241B. At least a part of the small diameter portion 165 is arranged in the valve side insertion hole 241B.
- the small-diameter stepped surface 169 is a contact surface (butting surface) that comes into contact with the rod 240 when the valve-side connecting pin 160B is inserted into the pin hole 251B and the valve-side insertion hole 241B. When the small-diameter stepped surface 169 comes into contact with the rod 240, the position of the valve-side connecting pin 160B in the central axial direction is determined.
- the small diameter portion 165 is fixed to the rod 240 in a state where the small diameter stepped surface 169 is in contact with the rod 240.
- the tip of the small diameter portion 165 is crimped to the rod 240 in a state where the small diameter stepped surface 169 is in contact with the rod 240.
- the small diameter portion 165 is fixed to the rod 240.
- the present invention is not limited to this, and the small diameter portion 165 may be fixed to the rod 240 by welding or press-fitting the rod 240.
- valve-side link plate 250B is pressed by the valve-side spring member 170B in a direction away from the rod 240.
- the valve-side link plate 250B comes into contact with the large-diameter stepped surface 167 and presses the large-diameter stepped surface 167 in a direction away from the rod 240.
- the pressing force applied to the large-diameter stepped surface 167 is determined according to the distance between the valve-side link plate 250B and the rod 240.
- the distance between the valve-side link plate 250B and the rod 240 is determined by the distance between the small-diameter stepped surface 169 and the large-diameter stepped surface 167 in the central axis direction of the valve-side connecting pin 160B. Therefore, the urging force of the valve-side spring member 170B can be adjusted by adjusting the distance between the small-diameter stepped surface 169 and the large-diameter stepped surface 167.
- the valve side connecting pin 160B has a small diameter portion 165 fixed to the rod 240.
- the valve-side connecting pin 160B has a medium diameter portion 163 inserted into the pin hole 251B of the valve-side link plate 250B.
- the valve-side connecting pin 160B has a large diameter portion 161 located on the side opposite to the rod 240 and the valve-side spring member 170B with respect to the valve-side link plate 250B.
- the large diameter portion 161 has an outer diameter larger than that of the pin hole 251B of the valve side link plate 250B.
- FIG. 9 is a schematic cross-sectional view of the link mechanism 320 of the second modification.
- the link mechanism 320 of the second modification includes a valve-side connecting pin 360B instead of the valve-side connecting pin 160B of the above embodiment.
- the configuration of the actuator side connecting pin 160A is the same as the configuration of the valve side connecting pin 360B. Therefore, detailed description of the configuration of the actuator-side connecting pin 160A will be omitted.
- the configuration is the same as that of the link mechanism 120 of the above embodiment.
- the valve side connecting pin 360B is composed of a first member 361 and a second member 363.
- the first member 361 includes a small diameter portion 361a.
- the small diameter portion 361a has a substantially cylindrical shape.
- the small diameter portion 361a has a constant outer diameter.
- the outer diameter of the small diameter portion 361a is equal to or less than the inner diameter of the pin hole (second hole) 151B of the valve side link plate (second link member) 150B.
- the outer diameter of the small diameter portion 361a is approximately equal to the inner diameter of the pin hole 151B.
- a part of the small diameter portion 361a is arranged in the pin hole 151B.
- the second member 363 is arranged radially outside the small diameter portion 361a.
- the second member 363 includes a large diameter portion 363a and a medium diameter portion 363b.
- the large diameter portion 363a has a substantially cylindrical shape.
- the large diameter portion 363a has a constant outer diameter and inner diameter.
- the outer diameter of the large diameter portion 363a is larger than the outer diameter of the small diameter portion 361a.
- the inner diameter of the large diameter portion 363a is approximately equal to the outer diameter of the small diameter portion 361a.
- a small diameter portion 361a is arranged inside the large diameter portion 363a in the radial direction.
- the central axis of the large diameter portion 363a roughly coincides with the central axis of the small diameter portion 361a.
- the outer diameter of the large diameter portion 363a is larger than the inner diameter of the valve side insertion hole (first hole) 141B of the rod (first link member) 140.
- the large diameter portion 363a is located on the side opposite to the valve side link plate 150B and the valve side spring member 170B with respect to the rod 140.
- the medium diameter portion 363b has a roughly cylindrical shape.
- the medium diameter portion 363b has a constant outer diameter and inner diameter.
- the outer diameter of the medium diameter portion 363b is smaller than the outer diameter of the large diameter portion 161 and larger than the outer diameter of the small diameter portion 361a.
- the inner diameter of the medium diameter portion 363b is approximately equal to the outer diameter of the small diameter portion 361a.
- a small diameter portion 361a is arranged inside the medium diameter portion 363b in the radial direction.
- the central axis of the medium diameter portion 163 roughly coincides with the central axes of the small diameter portion 361a and the large diameter portion 363a.
- the outer diameter of the medium diameter portion 363b is equal to or less than the inner diameter of the valve side insertion hole 141B of the rod 140.
- the outer diameter of the middle diameter portion 363b is smaller than the inner diameter of the valve side insertion hole 141B.
- the outer peripheral surface of the medium diameter portion 363b is separated from the inner peripheral surface of the valve side insertion hole 141B.
- the outer peripheral surface of the medium diameter portion 363b may be in contact with the inner peripheral surface of the valve side insertion hole 141B.
- the outer diameter of the middle diameter portion 363b is larger than the inner diameter of the pin hole 151B of the valve side link plate 150B. At least a part of the medium diameter portion 363b is arranged in the valve side insertion hole 141B.
- the rod 140 is not fixed to the medium diameter portion 363b and can slide around the medium diameter portion 363b.
- a large-diameter stepped surface 363c is formed between the large-diameter portion 363a and the medium-diameter portion 363b.
- the large-diameter stepped surface 363c has a roughly annular shape.
- the large-diameter stepped surface 363c is continuous with the large-diameter portion 363a and the medium-diameter portion 363b.
- the large-diameter stepped surface 363c is a surface that is approximately orthogonal to the central axes of the large-diameter portion 363a and the medium-diameter portion 363b.
- a small-diameter stepped surface 363d is formed on the end surface of the medium-diameter portion 363b on the side separated from the large-diameter portion 363a.
- the small-diameter stepped surface 363d has a roughly circular ring shape.
- the small-diameter stepped surface 363d is a surface that is approximately orthogonal to the central axis of the medium-diameter portion 363b.
- the small-diameter stepped surface 363d is a surface substantially parallel to the large-diameter stepped surface 363c.
- the small-diameter stepped surface 363d is a contact surface (butting surface) that comes into contact with the valve-side link plate 150B when the valve-side connecting pin 360B is inserted into the valve-side insertion hole 141B and the pin hole 151B.
- the position of the valve-side connecting pin 360B in the central axial direction is determined.
- the small diameter portion 361a is fixed to the valve side link plate 150B in a state where the small diameter stepped surface 363d is in contact with the valve side link plate 150B.
- the tip of the small diameter portion 361a is crimped to the valve side link plate 150B in a state where the small diameter stepped surface 363d is in contact with the valve side link plate 150B, and the base end portion of the small diameter portion 361a is the second member. It is crimped to the large diameter portion 363a of 363.
- the first member 361 is fixed to the valve side link plate 150B and the second member 363.
- the first member 361, the second member 363, and the valve-side link plate 150B are integrally configured.
- the present invention is not limited to this, and the small diameter portion 361a may be fixed to the valve side link plate 150B and the second member 363 by welding or press fitting into the valve side link plate 150B and the second member 363.
- the valve side connecting pin 360B has a small diameter portion 361a fixed to the valve side link plate 150B.
- the valve-side connecting pin 360B has a medium-diameter portion 363b inserted into the valve-side insertion hole 141B of the rod 140.
- the valve-side connecting pin 360B has a large diameter portion 363a located on the opposite side of the rod 140 from the valve-side link plate 150B and the valve-side spring member 170B.
- the large diameter portion 363a has an outer diameter larger than that of the valve side insertion hole 141B of the rod 140.
- the valve side connecting pin 360B is composed of a plurality of members (first member 361 and second member 363).
- first member 361 and second member 363 the shape and size of the second member 363 can be changed to change the shape and size of the first member. 361 can be diverted as it is.
- the valve-side connecting pin 360B of the second modification can reduce the cost when applied to various link mechanisms 320 (for example, the type of rod 140 or valve-side spring member 170B).
- the link mechanisms 120, 220, and 320 can be applied to other valve devices that open and close the opening.
- the link mechanisms 120, 220, and 320 may be applied to a valve device that opens and closes an opening that communicates with two turbine scroll flow paths in the turbine housing of a twin scroll turbocharger.
- the link mechanisms 120, 220, and 320 may be applied to, for example, a variable vane mechanism in which the communication opening degree of the communication passage 29 of the turbine housing 5 is variable. In that case, the link mechanisms 120, 220, 320 may operate a rotating structure that rotates the nozzle vanes of the variable vane mechanism.
- the link mechanism 320 of the second modification may be combined with the link mechanism 220 of the first modification. That is, instead of the valve-side connecting pin 160B of the first modification, the valve-side connecting pin 360B of the second modification may be applied.
- the link mechanism 120 of the above embodiment, the link mechanism 220 of the first modification, and the link mechanism 320 of the second modification may be combined with each other.
- the valve side connecting pin 360B of the second modification may be applied instead of the actuator side connecting pin 160A.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Supercharger (AREA)
- Transmission Devices (AREA)
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202180007121.7A CN114787533A (zh) | 2020-04-07 | 2021-03-16 | 连杆机构 |
| DE112021000284.8T DE112021000284T5 (de) | 2020-04-07 | 2021-03-16 | Gelenkmechanismus |
| JP2022514360A JP7351411B2 (ja) | 2020-04-07 | 2021-03-16 | リンク機構 |
| US17/807,210 US12006859B2 (en) | 2020-04-07 | 2022-06-16 | Link mechanism |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2020-069164 | 2020-04-07 | ||
| JP2020069164 | 2020-04-07 |
Related Child Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US17/807,210 Continuation US12006859B2 (en) | 2020-04-07 | 2022-06-16 | Link mechanism |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2021205827A1 true WO2021205827A1 (ja) | 2021-10-14 |
Family
ID=78023727
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2021/010687 Ceased WO2021205827A1 (ja) | 2020-04-07 | 2021-03-16 | リンク機構 |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US12006859B2 (https=) |
| JP (1) | JP7351411B2 (https=) |
| CN (1) | CN114787533A (https=) |
| DE (1) | DE112021000284T5 (https=) |
| WO (1) | WO2021205827A1 (https=) |
Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0280215U (https=) * | 1988-12-09 | 1990-06-20 |
Family Cites Families (12)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2006097693A (ja) * | 2005-11-28 | 2006-04-13 | Hitachi Ltd | 内燃機関用排気バイパス弁機構 |
| JP2012149611A (ja) * | 2011-01-20 | 2012-08-09 | Isuzu Motors Ltd | 可変容量ターボチャージャ及びその製造方法 |
| JP5889629B2 (ja) | 2011-12-22 | 2016-03-22 | 株式会社デンソー | 内燃機関の排気装置 |
| US9057455B2 (en) * | 2012-01-20 | 2015-06-16 | Hamilton Sundstrand Corporation | Crank |
| JP5516615B2 (ja) * | 2012-02-03 | 2014-06-11 | 株式会社安川電機 | パラレルリンクロボット |
| JP6354847B2 (ja) | 2014-08-29 | 2018-07-11 | 株式会社Ihi | 流量可変バルブ機構及び過給機 |
| JP6938164B2 (ja) | 2017-02-10 | 2021-09-22 | 三菱重工業株式会社 | ウェイストゲートバルブ装置及びウェイストゲートバルブ装置を備えるターボチャージャ |
| JP2019100251A (ja) * | 2017-12-01 | 2019-06-24 | 日立オートモティブシステムズ株式会社 | 内燃機関の可変圧縮比機構のアクチュエータ |
| JP6965756B2 (ja) * | 2018-01-10 | 2021-11-10 | トヨタ自動車株式会社 | ターボチャージャのウェイストゲートバルブ |
| JP2020069164A (ja) | 2018-10-31 | 2020-05-07 | 株式会社三洋物産 | 遊技機 |
| CN209179871U (zh) * | 2018-12-24 | 2019-07-30 | 江铃控股有限公司 | 增压器旁通阀用执行器、涡轮增压器及汽车 |
| US10533491B1 (en) * | 2019-03-25 | 2020-01-14 | Borgwarner Inc. | Connecting assembly and turbocharger including the connecting assembly |
-
2021
- 2021-03-16 JP JP2022514360A patent/JP7351411B2/ja active Active
- 2021-03-16 WO PCT/JP2021/010687 patent/WO2021205827A1/ja not_active Ceased
- 2021-03-16 CN CN202180007121.7A patent/CN114787533A/zh active Pending
- 2021-03-16 DE DE112021000284.8T patent/DE112021000284T5/de active Pending
-
2022
- 2022-06-16 US US17/807,210 patent/US12006859B2/en active Active
Patent Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0280215U (https=) * | 1988-12-09 | 1990-06-20 |
Also Published As
| Publication number | Publication date |
|---|---|
| JPWO2021205827A1 (https=) | 2021-10-14 |
| US12006859B2 (en) | 2024-06-11 |
| US20220307410A1 (en) | 2022-09-29 |
| DE112021000284T5 (de) | 2022-09-15 |
| CN114787533A (zh) | 2022-07-22 |
| JP7351411B2 (ja) | 2023-09-27 |
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