WO2009123351A1 - 防振装置 - Google Patents
防振装置 Download PDFInfo
- Publication number
- WO2009123351A1 WO2009123351A1 PCT/JP2009/057056 JP2009057056W WO2009123351A1 WO 2009123351 A1 WO2009123351 A1 WO 2009123351A1 JP 2009057056 W JP2009057056 W JP 2009057056W WO 2009123351 A1 WO2009123351 A1 WO 2009123351A1
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- WIPO (PCT)
- Prior art keywords
- diaphragm
- cylindrical
- cylindrical portion
- liquid chamber
- rubber
- Prior art date
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Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60K—ARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
- B60K5/00—Arrangement or mounting of internal-combustion or jet-propulsion units
- B60K5/12—Arrangement of engine supports
- B60K5/1208—Resilient supports
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- 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
- F16F—SPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
- F16F13/00—Units comprising springs of the non-fluid type as well as vibration-dampers, shock-absorbers, or fluid springs
- F16F13/04—Units comprising springs of the non-fluid type as well as vibration-dampers, shock-absorbers, or fluid springs comprising both a plastics spring and a damper, e.g. a friction damper
- F16F13/06—Units comprising springs of the non-fluid type as well as vibration-dampers, shock-absorbers, or fluid springs comprising both a plastics spring and a damper, e.g. a friction damper the damper being a fluid damper, e.g. the plastics spring not forming a part of the wall of the fluid chamber of the damper
- F16F13/08—Units comprising springs of the non-fluid type as well as vibration-dampers, shock-absorbers, or fluid springs comprising both a plastics spring and a damper, e.g. a friction damper the damper being a fluid damper, e.g. the plastics spring not forming a part of the wall of the fluid chamber of the damper the plastics spring forming at least a part of the wall of the fluid chamber of the damper
- F16F13/10—Units comprising springs of the non-fluid type as well as vibration-dampers, shock-absorbers, or fluid springs comprising both a plastics spring and a damper, e.g. a friction damper the damper being a fluid damper, e.g. the plastics spring not forming a part of the wall of the fluid chamber of the damper the plastics spring forming at least a part of the wall of the fluid chamber of the damper the wall being at least in part formed by a flexible membrane or the like
- F16F13/105—Units comprising springs of the non-fluid type as well as vibration-dampers, shock-absorbers, or fluid springs comprising both a plastics spring and a damper, e.g. a friction damper the damper being a fluid damper, e.g. the plastics spring not forming a part of the wall of the fluid chamber of the damper the plastics spring forming at least a part of the wall of the fluid chamber of the damper the wall being at least in part formed by a flexible membrane or the like characterised by features of partitions between two working chambers
Definitions
- the present invention relates to a vibration isolator that is used when mounting a vibration generating unit such as an automobile engine on a vibration receiving unit such as a vehicle body.
- This device includes a cylindrical first mounting member connected to a vibration receiving unit such as a vehicle body, a second mounting member connected to a vibration generating unit such as an engine, a first mounting member, and a second mounting member.
- a rubber elastic body that is elastically connected and closes the upper opening end of the first mounting member, a diaphragm that closes the lower opening end of the second mounting member, and the rubber elastic body and the diaphragm are formed.
- the partition member and the diaphragm described above are entirely made of rubber.
- a partition member is fitted into the inside of the first mounting member from the lower opening end, and a diaphragm is fitted after the partition member. Then, a cup-shaped holder is placed on the first mounting member from below, and the diaphragm is pressed from below by this holder.
- the partition member and the diaphragm in the stacked state are sandwiched between the rubber elastic body and the holder, and the vibration isolator having the above-described configuration is assembled.
- the vibration isolator having the above-described configuration since all the partition members are made of rubber, it is possible to suppress the generation of abnormal noise due to cavitation.
- the present invention takes the above-described conventional problems into consideration, and is a vibration isolator capable of stabilizing characteristics while ensuring sealing properties even when a partition member that is entirely composed of an elastic body is used.
- the purpose is to provide.
- the vibration isolator includes a cylindrical first mounting member connected to any one of the vibration generating unit and the vibration receiving unit, and any one of the vibration generating unit and the vibration receiving unit.
- a second attachment member connected to the first attachment member, a rubber elastic body elastically connecting the first attachment member and the second attachment member and closing an open end on one side of the first attachment member;
- a diaphragm that closes the opening end on the other side of one mounting member, a liquid chamber that is formed between the rubber elastic body and the diaphragm and encloses a liquid, and a part of the partition wall is formed of the rubber elastic body.
- a partition member that divides the main liquid chamber whose internal volume is changed by deformation of the rubber elastic body and a sub liquid chamber in which a part of the partition wall is formed of the diaphragm.
- the partition member is entirely made of an elastic body, and the first mounting member has a protruding portion protruding radially inward, and a first cylindrical portion disposed on the other side of the protruding portion, Is provided.
- an annular hard member made of a hard body harder than the elastic body is attached to the inside of the first tubular portion, and the hard member is disposed coaxially with the first tubular portion.
- a second cylindrical part and a support part that is arranged inside the second cylindrical part and supports the partition member are provided.
- One of the first and second cylindrical portions is disposed inside the other cylindrical portion, and the other cylindrical shape of the first mounting member and the hard member is disposed.
- One member provided with a portion includes a locking portion that locks one end of the one cylindrical portion, and one end of the one cylindrical portion that is bent radially inward.
- the crimping part which latches a part is formed, respectively.
- the one cylindrical portion is sandwiched between the locking portion and the crimping portion, and the partition member is sandwiched between the protruding portion and the support portion.
- the second cylindrical portion is disposed inside the first cylindrical portion, and the locking portion and the crimping portion are formed on the first mounting member, It is preferable that the second cylindrical portion is sandwiched between the locking portion and the caulking portion.
- a thin film diaphragm rubber that is deformable in accordance with a change in the liquid pressure in the sub liquid chamber is formed inside the hard member, and the hard member is a diaphragm of the diaphragm. It is preferable that it is a ring.
- the hard member includes an annular bottom wall portion, an outer peripheral wall-like second cylindrical portion standing on an outer edge portion of the bottom wall portion, and the bottom wall portion.
- An inner peripheral wall-like support portion erected on the inner edge portion is formed in a concave shape in a cross-sectional view, and the open end of the concave hard member in the cross-sectional view is closed by the partition member, and the partition member and the The space surrounded by the bottom wall portion, the second cylindrical portion, and the support portion is preferably an orifice passage that communicates the main liquid chamber and the sub liquid chamber.
- the orifice passage is formed by assembling the partition member to the hard member that is concave in cross section. Therefore, the orifice member in which the orifice passage is formed is not necessary, the number of parts is reduced, the configuration is simplified, and the number of assembling steps is reduced.
- a rubber layer is interposed between the first cylindrical portion and the second cylindrical portion.
- the rubber layer acts as a cushioning material, and the impact caused by the contact between the first mounting member (first cylindrical portion) and the hard member (second cylindrical portion) is suppressed, and the impact at the time of bubble collapse due to the cavitation phenomenon Is not easily propagated to the first mounting member, and further, the sealing performance between the first cylindrical portion and the second cylindrical portion is improved.
- the vibration isolator according to the present invention even if the clamping force of the one cylindrical portion by the locking portion and the caulking portion is increased, the clamping force of the partition member by the support portion and the protruding portion does not change. Even when a partition member composed entirely of an elastic body is used, the sealing property is improved and the sealing of the liquid chamber is secured, and the deformation of the partition member of the total elastic body is suppressed to stabilize the characteristics. Can do.
- FIG. 1 is a cross-sectional view of a vibration isolator 1 according to the present embodiment
- FIG. 2 is an enlarged cross-sectional view of a part of the vibration isolator 1.
- the lower side in FIG. 1 is the bounce side, that is, the direction in which a static load (initial load) is input when the vibration isolator 1 is installed, and the upper side in FIG. It is the opposite side of the load input direction.
- the bound side (the other side) is the lower side
- the rebound side (the one side) is the upper side.
- the axial direction of the inner cylinder 7 described later direction perpendicular to the paper surface in FIG.
- axis L is the front-rear direction, and the horizontal direction (lateral direction in FIG. 1) perpendicular to the axial direction of the inner cylinder 7 is defined. Left and right direction. Further, a symbol L shown in FIG. 1 indicates a central axis of an outer cylinder 6 to be described later, and is simply referred to as an axis L hereinafter.
- the vibration isolator 1 is used when an engine, which is an example of a vibration generating unit, is mounted on a vehicle body, which is an example of a vibration receiving unit, and is a device for attenuating the vibration of the vibration generating unit.
- the vibration isolator 1 has a configuration in which a partition member 4 and a diaphragm 5 are assembled to a main rubber 2. More specifically, the vibration isolator 1 is disposed above the outer cylinder 6 and an outer cylinder 6 (corresponding to a cylinder member in the present invention) connected to a vehicle body (not shown) via a vehicle body bracket (not shown).
- An inner cylinder 7 (corresponding to a mounting member in the present invention) connected to an engine (not shown) via an engine bracket (not shown), and rubber elasticity for elastically connecting the outer cylinder 6 and the inner cylinder 7
- the main body rubber 2 is composed of an outer cylinder 6, an inner cylinder 7, and a rubber elastic body 8.
- the outer cylinder 6 is a substantially cylindrical metal fitting whose both ends are open. As an outline of the structure, the outer cylinder 6 has an annular recess 60 (the projecting portion and the present invention in the present invention) disposed in an intermediate portion of the outer cylinder 6 in the axis L direction. A cylindrical upper cylindrical portion 61 formed above the hollow portion 60, and a cylindrical lower cylindrical portion 62 formed below the hollow portion 60. (Corresponding to the first cylindrical portion of the present invention).
- the recessed portion 60 is a protruding portion that protrudes radially inward from the upper cylindrical portion 61 and the lower cylindrical portion 62, and an outer peripheral wall portion 53 of a diaphragm ring 50 (corresponding to a hard member in the present invention) to be described later. It functions as a locking portion that locks the upper end of (corresponding to the second cylindrical portion in the present invention). More specifically, the recessed portion 60 is a protruding portion that is bent and deformed radially inward so as to restrict the cylindrical outer cylinder 6, and is provided between the upper cylindrical portion 61 and the lower cylindrical portion 62. It is formed over the entire circumference of the cylinder 6.
- the lower cylindrical portion 62 is a cylindrical portion having a diameter larger than that of the upper cylindrical portion 61, and the diaphragm 5 (diaphragm ring 50) is fitted inside the lower cylindrical portion 62.
- a rubber elastic body 8 is bonded to the inner peripheral surface of the upper cylindrical portion 61, and the inner side of the upper cylindrical portion 61 is closed by the rubber elastic body 8.
- a covering rubber 63 (corresponding to a rubber layer in the present invention) formed integrally with the rubber elastic body 8 is formed on the inner peripheral surfaces of the hollow portion 60 and the lower cylindrical portion 62 over the entire circumference.
- the inner space of the outer cylinder 6 has a shape reduced in a stepped shape at a position corresponding to the inside of the recess 60.
- the lower end of the outer cylinder 6 (lower cylindrical portion 62) is bent radially inward at a predetermined angle (for example, 45 degrees) and is caulked to the lower end of the outer peripheral wall 53 of the diaphragm ring 50 described later.
- a crimping portion 64 is formed which is fixed by the above.
- the caulking portion 64 is formed over the entire circumference of the outer cylinder 6, and a convex portion 65 is provided on the inner peripheral surface of the caulking portion 64 so as to extend over the entire circumference.
- the inner cylinder 7 is a hollow member that extends in a direction orthogonal to the axis L and has a substantially rectangular through hole 70 in a cross-sectional view in which both ends are opened.
- Coated rubbers 71 and 72 are respectively formed on the outer peripheral surface of the cylinder 7.
- a protrusion 74 protruding downward is provided at the lower portion of the inner cylinder 7.
- the rubber elastic body 8 is a substantially dome-shaped rubber elastic body that closes the opening end on the upper end side of the outer cylinder 6, and is interposed between the upper cylindrical portion 61 of the outer cylinder 6 and the protrusion 74 of the inner cylinder 7. ing. That is, the outer peripheral surface of the rubber elastic body 8 is vulcanized and bonded to the upper cylindrical portion 61 of the outer cylinder 6, and the upper portion of the rubber elastic body 8 is vulcanized and bonded to the protrusion 74 of the inner cylinder 7.
- the diaphragm 5 is a member that closes the opening end on the lower end side of the outer cylinder 6, and is a diaphragm ring 50 (corresponding to a hard member in the present invention) fitted inside the lower cylindrical portion 62 of the outer cylinder 6. And a diaphragm rubber 51 formed inside the diaphragm ring 50.
- the diaphragm ring 50 is an annular ring metal fitting arranged with the axis L as the center axis, and is an annular hard metal made of a hard body harder than the rubber elastic body constituting the rubber elastic body 8 and the partition member 4. It is a member. More specifically, as shown in FIGS. 1 and 2, the diaphragm ring 50 is erected on an annular bottom wall portion 52 disposed along a vertical plane of the axis L, and an outer edge portion of the bottom wall portion 52. A cylindrical outer peripheral wall portion 53 and a cylindrical inner peripheral wall portion 54 (corresponding to a support portion in the present invention) erected on the inner edge portion of the annular ring portion 53 so as to have a concave shape in a sectional view. Is formed. That is, the diaphragm ring 50 has a configuration in which a concave groove 57 composed of a bottom wall portion 52, an outer peripheral wall portion 53, and an inner peripheral wall portion 54 extends in the circumferential direction.
- the outer peripheral wall portion 53 is disposed inside the lower cylindrical portion 62 of the outer cylinder 6 and is sandwiched between the recessed portion 60 and the caulking portion 64 of the outer cylinder 6. More specifically, the upper end surface of the outer peripheral wall portion 53 is brought into contact with the lower surface of the covering rubber 63 covering the hollow portion 60, and the lower end surface of the outer peripheral wall portion 53 is covered with a covering rubber 55 of the diaphragm ring 50 described later. Via the inner circumferential surface of the crimping portion 64.
- the inner peripheral wall portion 54 has a length dimension in the axis L direction shorter than that of the outer peripheral wall portion 53, and the partition member 4 is provided between the upper end surface of the inner peripheral wall portion 54 and the lower surface of the covering rubber 63 that covers the recessed portion 60. There is a gap in between. Further, the inner peripheral wall portion 54 is formed with a sub liquid chamber side orifice opening (not shown) that communicates an orifice passage 10 and a sub liquid chamber 9B described later.
- the secondary liquid chamber side orifice opening is a cutout portion formed by cutting out a part of the inner peripheral wall portion 54, and the inner side of the concave groove 57 of the diaphragm ring 50 and the sub liquid chamber 9B are connected via the secondary liquid chamber side orifice opening. It is communicated.
- a covering rubber 55 (corresponding to a rubber layer in the present invention) formed integrally with the diaphragm rubber 51 is formed. More specifically, the covering rubber 55 is vulcanized and bonded to the upper and lower surfaces of the bottom wall portion 52, the inner and outer peripheral surfaces of the outer peripheral wall portion 53, and the inner and outer peripheral surfaces of the inner peripheral wall portion 54 over the entire circumference. ing. A convex portion 56 that is hooked on the convex portion 65 of the outer cylinder 6 is formed on the outer surface of the covering rubber 55 over the entire circumference. Specifically, the convex portion 56 of the diaphragm ring 50 is formed at a corner portion of the bottom rubber portion 52 and the outer peripheral wall portion 53 of the covering rubber 55.
- the diaphragm rubber 51 is a thin-film rubber that can be deformed in accordance with a change in the liquid pressure (internal pressure) in the sub liquid chamber 9B, and swells upward in a round dish shape.
- the outer peripheral portion of the diaphragm rubber 51 is integrated with the covering rubber 55 of the diaphragm ring 50 over the entire periphery, and the inside of the diaphragm ring 50 is closed by the diaphragm rubber 51. More specifically, the outer peripheral portion of the diaphragm rubber 51 is connected to the corner portion of the bottom wall portion 52 and the inner peripheral wall portion 54 of the covering rubber 55.
- the liquid chamber 9 formed between the rubber elastic body 8 and the diaphragm 5 is a sealed space in which a liquid is sealed.
- the partition member 4 disposed inside the liquid chamber 9 is connected to the main liquid chamber 9A on the rebound side. It is partitioned into a secondary liquid chamber 9B on the bound side.
- the main liquid chamber 9 ⁇ / b> A is a chamber in which a part of the partition wall (upper wall) is formed of the rubber elastic body 8, and the internal volume of the main liquid chamber 9 ⁇ / b> A changes due to deformation of the rubber elastic body 8.
- the sub liquid chamber 9B is a chamber in which a part of the partition wall (lower wall) is formed by the diaphragm 5, and the inner volume of the sub liquid chamber 9B is changed by the diaphragm rubber 51 due to the change of the liquid pressure (internal pressure) in the sub liquid chamber 9B. Changes as a result of deformation.
- the partition member 4 is a disk-like member having a circular shape in a plan view and disposed perpendicularly to the axis L, and is an elastically easily deformable member entirely composed of a rubber elastic body. More specifically, the partition member 4 includes a circular base portion 40 and a substantially circular protrusion 41 having a smaller diameter than the base portion 40 and protruding from the lower surface of the central portion.
- the base portion 40 is fitted inside the upper end portion of the outer peripheral wall portion 53 of the diaphragm ring 50, and the outer peripheral surface of the base portion 40 is in close contact (contact) with the inner peripheral surface of the upper end portion of the outer peripheral wall portion 53. .
- the base portion 40 is formed with a main liquid chamber side orifice opening 42 that communicates an orifice passage 10 (described later) and the main liquid chamber 9A.
- the orifice opening 42 on the main liquid chamber side is a cutout portion formed by cutting out a part of the outer peripheral portion of the base portion 40, and the inside of the groove 57 of the diaphragm ring 50 and the main liquid via the orifice opening 42 on the main liquid chamber side.
- the chamber 9A is in communication.
- the protrusion 41 is fitted inside the upper end portion of the inner peripheral wall portion 54 of the diaphragm ring 50, and the outer peripheral surface of the protrusion 41 is in close contact (contact) with the inner peripheral surface of the upper end portion of the inner peripheral wall portion 54. .
- the partition member 4 having the above-described configuration is sandwiched between the recessed portion 60 of the outer cylinder 6 and the inner peripheral wall portion 54 of the diaphragm ring 50. More specifically, the upper surface of the outer peripheral portion of the base portion 40 is brought into contact with the lower surface of the covering rubber 63 covering the hollow portion 60, and the lower surface of the base portion 40 on the outer periphery of the protruding portion 41 is covered with the diaphragm ring 50. The rubber 55 is in contact with the upper end surface of the inner peripheral wall portion 54.
- a substantially rectangular orifice passage 10 is formed as viewed in cross section connecting the main liquid chamber 9A and the sub liquid chamber 9B.
- the orifice passage 10 extends in the circumferential direction of the outer cylinder 6 and the diaphragm ring 50 in a space surrounded by the partition member 4, the bottom wall portion 52, the outer peripheral wall portion 53, and the inner peripheral wall portion 54.
- the orifice passage 10 communicates with the main liquid chamber 9A through the main liquid chamber side orifice opening 42 formed in the partition member 4 and is not shown in the sub liquid chamber side orifice opening formed in the inner peripheral wall portion 54.
- the orifice passage 10 is a liquid path for causing a liquid column resonance (resonance phenomenon) in the liquid flowing through the orifice passage 10 when vibration is input to the vibration isolator 1 and attenuating the vibration.
- the frequency is set (tuned) so as to correspond to the frequency and amplitude of the shake vibration that is a resonance vibration in a low frequency range (for example, 8 Hz to 12 Hz).
- a process of forming the main body rubber 2 composed of the outer cylinder 6, the inner cylinder 7, and the rubber elastic body 8 is performed. More specifically, the outer cylinder 6 and the inner cylinder 7 are arranged at predetermined positions in a mold for molding the rubber elastic body 8, the covering rubbers 71 and 72 of the inner cylinder 7, and the covering rubber 63 of the outer cylinder 6, respectively. At the same time, an adhesive is applied to the inner peripheral surface of the outer cylinder 6, the outer peripheral surface of the inner cylinder 7, and the inner peripheral surface of the through hole 70 of the inner cylinder 7. Thereafter, vulcanized rubber is poured into the mold, and the rubber elastic body 8 and the covering rubbers 63, 71, 72 are respectively vulcanized and molded. Then, the mold is removed after the rubber elastic body 8 and the like are cured. Thereby, the main body rubber 2 is manufactured.
- a step of forming the diaphragm 5 composed of the diaphragm ring 50 and the diaphragm rubber 51 is performed. More specifically, the diaphragm ring 50 is disposed at a predetermined position in a mold for molding the diaphragm rubber 51 and the covering rubber 55 of the diaphragm ring 50, and an adhesive is applied to the surface of the diaphragm ring 50. Thereafter, vulcanized rubber is poured into the mold, and the diaphragm rubber 51 and the covering rubber 55 are respectively vulcanized and molded. Then, the mold is removed after the diaphragm rubber 51 and the like are cured. Thereby, the diaphragm 5 is manufactured.
- the process of assembling the partition member 4 to the diaphragm 5 described above is performed. More specifically, the base portion 40 of the partition member 4 is press-fitted and fitted inside the upper end portion of the outer peripheral wall portion 53 of the diaphragm ring 50, and the partition member is placed inside the upper end portion of the inner peripheral wall portion 54 of the diaphragm ring 50.
- the four protrusions 41 are press-fitted and fitted. Accordingly, the base portion 40 is placed on the upper end surface of the inner peripheral wall portion 54, and the outer peripheral surface of the base portion 40 is in close contact with the inner peripheral surface of the outer peripheral wall portion 53, thereby forming the orifice passage 10.
- a sub liquid chamber side orifice (not shown) formed in the main liquid chamber side orifice opening 42 and the diaphragm ring 50 formed in the partition member 4 so that the flow path length of the orifice passage 10 becomes a predetermined length. Position relative to the aperture.
- the process of assembling the diaphragm 5 assembled with the partition member 4 as described above to the main rubber 2 is performed. More specifically, the diaphragm ring 50 is press-fitted and fitted inside the lower cylindrical portion 62, and the covering rubber 55 on the outer peripheral surface of the outer peripheral wall portion 53 of the diaphragm ring 50 is attached to the inner peripheral surface of the lower cylindrical portion 62. The upper end surface of the outer peripheral wall portion 53 of the diaphragm ring 50 and the upper surface of the outer peripheral portion of the base portion 40 of the partition member 4 are brought into contact with the lower end surface of the covering rubber 63 of the recess 60.
- the upper end of the outer peripheral wall portion 53 is locked to the recess portion 60, and the outer peripheral portion of the partition member 4 is sandwiched between the recess portion 60 and the inner peripheral wall portion 54.
- the lower end portion (caulking portion 64) of the lower cylindrical portion 62 is bent inward in the radial direction, and the convex portion 65 of the caulking portion 64 and the convex portion 56 of the covering rubber 55 of the diaphragm ring 50 are hooked.
- the lower end portion of the lower cylindrical portion 62 and the lower end portion of the outer peripheral wall portion 53 are fixed by caulking. Thereby, the outer peripheral wall part 53 is clamped between the hollow part 60 and the caulking part 64.
- a step (drawing process) of reducing the diameter of the lower cylindrical portion 62 of the outer cylinder 6 in the radial direction is performed. More specifically, the lower cylindrical portion 62 is reduced in diameter by applying pressure to the lower cylindrical portion 62 from the radially outer side to the radially inner side by, for example, an eight-way diaphragm. As a result, a precompression force is applied to the covering rubbers 55 and 63 (rubber layers) interposed between the lower cylindrical portion 62 and the outer peripheral wall portion 53, and the lower cylindrical portion 62 and the outer peripheral wall portion 53 are The sealing performance between the two is improved. This sealing property is appropriately adjusted by adjusting the amount of diameter reduction by the above-described drawing.
- a step of enclosing the liquid in the liquid chamber 9 is performed. More specifically, the inside of the liquid chamber 9 formed inside the outer cylinder 6 is evacuated, and liquid is injected into the liquid chamber 9 in the vacuum state from a liquid injection port (not shown) to fill the liquid chamber 9 with the liquid. Thereafter, the liquid inlet is closed to seal the liquid chamber 9. Thus, the manufacture of the vibration isolator 1 is completed.
- vibration from the engine in the vehicle is transmitted to the inner cylinder 7 via an engine bracket (not shown), and further transmitted from the inner cylinder 7 to the rubber elastic body 8. Is elastically deformed.
- the rubber elastic body 8 acts as a vibration absorbing main body, and the vibration is absorbed by the vibration absorbing action based on the internal friction or the like of the rubber elastic body 8 and propagates from the outer cylinder 6 to the vehicle body side via a vehicle body bracket (not shown). Vibration is reduced.
- the rubber elastic body 8 is elastically deformed by the shake vibration and is relatively moved into the main liquid chamber 9A.
- a large fluid pressure change occurs, and the fluid pressure in the main fluid chamber 9A periodically repeats large elevations.
- the liquid in the liquid chamber 9 flows through the orifice passage 10 between the main liquid chamber 9A and the sub liquid chamber 9B. Since the orifice passage 10 is tuned so as to cope with the shake vibration, the liquid in the liquid chamber 9 passes between the main liquid chamber 9A and the sub liquid chamber 9B through the orifice passage 10 as described above. Liquid column resonance occurs in the liquid flowing through the orifice passage 10. For this reason, the shake vibration input to the vibration isolator 1 is attenuated by the liquid column resonance in the orifice passage 10, and the shake vibration transmitted to the vehicle body side is reduced.
- the partition members 4 are all made of rubber, and the impact at the time of bubble collapse of the cavitation phenomenon is absorbed, so that the generation of noise due to the cavitation phenomenon can be suppressed.
- the vibration isolator 1 described above, even if the clamping force of the outer peripheral wall portion 53 by the recess portion 60 and the caulking portion 64 is increased, the clamping force of the partition member 4 by the inner peripheral wall portion 54 and the recess portion 60. Does not change. Therefore, even when the partition member 4 composed entirely of a rubber elastic body is used, the deformation of the rubber partition member 4 is suppressed while improving the sealing performance and ensuring the sealing performance of the liquid chamber 9. The characteristics can be stabilized.
- the outer peripheral wall portion 53 of the diaphragm 5 is disposed inside the lower cylindrical portion 62 of the outer cylinder 6, and the recessed portion 60 and the crimping portion 64 are formed in the outer cylinder 6, respectively.
- the outer peripheral wall portion 53 of the diaphragm 5 is sandwiched between the hollow portion 60 and the caulking portion 64, it is easy to improve the sealing performance between the outer cylinder 6 and the diaphragm 5. That is, as described above, the sealing performance can be improved by drawing the lower cylindrical portion 62, so that only the sealing performance is easily improved without changing the tightness of the partition member 4 of the total rubber. Can be made.
- the hard member is the diaphragm ring 50 of the diaphragm 5
- the number of parts constituting the vibration isolator 1 is reduced, and the configuration of the vibration isolator 1 is simplified.
- assembly time is reduced. Therefore, the cost of the vibration isolator 1 can be reduced, and the productivity of the vibration isolator 1 can be improved.
- the diaphragm ring 50 (hard member) is formed in a concave shape in cross-sectional view, and the open end of the diaphragm ring 50 is closed by the partition member 4, and the partition member 4 and the bottom wall Since the orifice passage 10 is formed by the portion 52, the outer peripheral wall portion 53, and the inner peripheral wall portion 54, an orifice member or the like in which the orifice passage is formed becomes unnecessary, and the number of parts constituting the vibration isolator 1 is reduced, thereby preventing the vibration.
- the configuration of the vibration device 1 is simplified and the number of assembling steps is reduced. Therefore, the cost of the vibration isolator 1 can be reduced, and the productivity of the vibration isolator 1 can be improved.
- the covering rubbers 55 and 63 are interposed between the outer peripheral wall portion 53 of the diaphragm ring 50 and the lower cylindrical portion 62 of the outer cylinder 6, these covering rubbers
- the rubber 55, 63 serves as a cushioning material, and the impact caused by the contact between the outer peripheral wall portion 53 and the lower cylindrical portion 62 is suppressed, and the impact at the time of bubble collapse due to the cavitation phenomenon is less likely to be transmitted to the outer tube 6. Can be sufficiently suppressed.
- the adhesion is enhanced by the covering rubbers 55 and 63, the sealing performance between the outer peripheral wall portion 53 and the lower cylindrical portion 62 is improved, and the sealing performance of the liquid chamber 9 can be ensured.
- the present invention is not limited to the above-described embodiment, and can be appropriately changed without departing from the gist thereof.
- an engine (not shown) that is a vibration source is connected to the inner cylinder 7 via an engine-side bracket
- a vehicle body (not shown) that is a vibration receiver is connected to the outer cylinder 6 on the vehicle body side.
- the vibration receiving portion is connected to the inner cylinder 7 (mounting member)
- the vibration generating source is connected to the outer cylinder 6 (cylinder member) via the engine side bracket or the like. May be.
- the vibration isolator 1 applied as an engine mount of a vehicle is described.
- the vibration isolator according to the present invention can be applied to other than the engine mount.
- the vibration isolator according to the present invention can be applied as a mount of a generator mounted on a construction machine, or can be applied as a mount of a machine installed in a factory or the like.
- the inner cylinder 7 extends in a direction orthogonal to the axis L, and the press-fitting portion of the engine side bracket is press-fitted inside the inner cylinder 7.
- the inner cylinder 7 may be arrange
- a bracket may be attached.
- the diaphragm 5 having the diaphragm rubber 51 having a shape in which the central portion bulges upward is provided.
- the diaphragm according to the present invention is not limited to the above-described configuration, and a bulging portion is not formed at the central portion of the diaphragm rubber, and the diaphragm rubber is in a relaxed state and is stretched inside the diaphragm ring 50. It is also possible to do.
- the vacuum injection method is adopted in which after the main body rubber 2, the partition member 4, and the diaphragm 5 are assembled, the liquid chamber 9 is evacuated to inject the liquid.
- the submerged assembly method for filling the liquid chamber 9 with the liquid by assembling the main body rubber 2, the partition member 4, and the diaphragm 5 in the liquid filled in the liquid chamber 9 is performed. It is also possible to adopt.
- the compression-type vibration isolator 1 is installed and installed so that the main liquid chamber 9A is positioned on the upper side in the vertical direction and the sub liquid chamber 9B is positioned on the lower side in the vertical direction.
- the present invention is applied to a suspension type vibration isolator that is installed and installed so that the main liquid chamber 9A is positioned on the lower side in the vertical direction and the sub liquid chamber 9B is positioned on the upper side in the vertical direction. Is also possible.
- the outer cylinder 6 is formed with the recessed portion 60 that is reduced in diameter radially inward, and the recessed portion 60 sandwiches the outer peripheral wall portion 53 and the partition member 4. Yes.
- the above-mentioned hollow part 60 Other shapes are used as a latching part which latches the upper end of the outer peripheral wall part 53, or a protrusion part for clamping the partition member 4.
- a locking part or a protruding part may be formed.
- the above-described locking portion or protruding portion may be the outer cylinder 106 in which a step portion 160 is formed between the upper cylindrical portion 61 and the lower cylindrical portion 62.
- the flange part 260 projected from the inner peripheral surface of the outer cylinder 206 may be formed.
- a locking portion for locking the upper end of the outer peripheral wall portion 53 and a protruding portion for holding the partition member 4 may be separately formed.
- a stepped locking portion 360 ⁇ / b> A is formed in an intermediate portion of the outer cylinder 306, and a tapered protrusion that is gradually reduced in diameter toward the lower end at the upper end of the outer cylinder 306. 360B may be formed.
- the partition member 4 is supported by the inner peripheral wall portion 54 (support portion) provided upright on the inner edge portion of the bottom wall portion 52 of the diaphragm ring 50, and the inner peripheral wall portion 54 and the recessed portion 60 are supported.
- the present invention is not limited to the one provided with the support portion having the above-described configuration.
- a flange-like support portion 154 may be provided on the inner peripheral surface of the outer peripheral wall portion 53 of the diaphragm ring 150. Note that FIG.
- the outer peripheral wall portion 53 (second cylindrical portion) of the diaphragm ring 50 is arranged inside the lower cylindrical portion 62 (first cylindrical portion) of the outer cylinder 6, and the outer cylinder 6, a recess 60 and a caulking portion 64 are formed, and an outer peripheral wall 53 is sandwiched between the recess 60 and the caulking portion 64.
- the first cylindrical portion may be disposed inside the second cylindrical portion.
- the lower cylindrical part 62 of the outer cylinder 406 can be fitted inside the outer peripheral wall part 53 of the diaphragm ring 250.
- the bottom wall portion 52 of the diaphragm ring 250 serves as a locking portion, and the lower end of the lower cylindrical portion 62 is brought into contact with the upper surface of the bottom wall portion 52. Further, a caulking portion 257 is formed at the upper end portion of the outer peripheral wall portion 53, and the caulking portion 257 is caulked and fixed to the upper end portion of the lower cylindrical portion 62. As a result, the lower cylindrical portion 62 is sandwiched between the bottom wall portion 52 and the caulking portion 257 described above. However, in this case, since it is difficult to draw the outer peripheral wall portion 53 as in the above-described embodiment, the sealing performance cannot be easily improved. Therefore, it is preferable that the outer peripheral wall portion 53 is disposed inside the lower cylindrical portion 62 as in the above-described embodiment.
- the outer cylinder 6 is provided with the recess 60 between the upper cylindrical part 61 and the lower cylindrical part 62.
- the upper cylindrical part 61 is It can be omitted.
- a flange portion 560 protruding portion, locking portion protruding radially inward is provided at the upper end of the outer tube 506 (first tubular portion 562), and the outer tube 506 (first portion)
- a crimping portion 64 may be provided at the lower end of the cylindrical portion 62).
- the hard member is the diaphragm ring 50 of the diaphragm 5.
- the hard member can be provided separately from the diaphragm 5.
- the open end of the diaphragm ring 50 (hard member) that is concave when viewed in cross section is closed by the partition member 4, and the partition member 4, the bottom wall portion 52, the outer peripheral wall portion 53, and the inner peripheral wall portion. 54, the orifice passage 10 is formed.
- the present invention is not limited to the hard member having the shape described above, and may be a hard member having another shape.
- a rigid member that does not constitute the orifice passage 10 may be used.
- an orifice member in which the orifice passage is formed may be separately installed, or the orifice passage may be formed in the partition member 4. is there.
- the covering rubber 63 is formed on the inner peripheral surface of the lower cylindrical portion 62, and the covering rubber 55 is formed on the outer peripheral surface of the outer peripheral wall portion 53. Covering rubber 55 and 63 are interposed between the wall portion 53 and the wall portion 53.
- the covering rubber may be formed only on one of the lower cylindrical portion 62 and the outer peripheral wall portion 53, or between the lower cylindrical portion 62 and the outer peripheral wall portion 53. It is also possible to adopt a configuration in which no rubber layer is interposed.
- the partition member that is entirely composed of an elastic body is used.
- the characteristics can be stabilized while the sealing performance is secured.
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Abstract
Description
本願は、2008年4月4日に日本に出願された特願2008-98084号に基づき優先権を主張し、その内容をここに援用する。
なお、本実施の形態では、図1における下側がバウンド側、つまり防振装置1を設置した際に静荷重(初期荷重)が入力される方向で、図1における上側がリバウンド側、つまり前記静荷重の入力方向の反対側である。以下の説明においてバウンド側(他方側)を下側とし、リバウンド側(一方側)を上側とする。また、本実施の形態では、後述する内筒7の軸線方向(図1における紙面に垂直な方向)を前後方向とし、内筒7の軸線方向に直交する水平方向(図1における横方向)を左右方向とする。さらに、図1に示す符号Lは後述する外筒6の中心軸線を示しており、以下、単に軸線Lと記す。
図1に示すように、防振装置1は、本体ゴム2に仕切り部材4及びダイヤフラム5がそれぞれ組み付けられた構成になっている。詳しく説明すると、防振装置1は、図示せぬ車体ブラケットを介して図示せぬ車体に連結される外筒6(本発明における筒部材に相当する。)と、外筒6の上方に配設されて図示せぬエンジンブラケットを介して図示せぬエンジンに連結される内筒7(本発明における取付部材に相当する。)と、外筒6と内筒7とを弾性的に連結するゴム弾性体8と、外筒6の下端に設けられたダイヤフラム5と、ゴム弾性体8とダイヤフラム5との間に形成された液室9を主液室9Aと副液室9Bとに区画する仕切り部材4と、を備える。なお、上記した本体ゴム2は、外筒6と内筒7とゴム弾性体8とから構成されている。
続いて、下側筒状部62の下端部(カシメ部64)を径方向内側に折り曲げて、カシメ部64の凸部65とダイヤフラムリング50の被覆ゴム55の凸部56とを掛止させ、下側筒状部62の下端部と外周壁部53の下端部とをカシメにより固定する。これにより、外周壁部53が窪み部60とカシメ部64との間に挟持される。このとき、カシメ部64の折り曲げ具合を調整することにより、窪み部60とカシメ部64とによる外周壁部53の挟着力を強め、シール性を向上させることが可能である。また、上述したようにカシメ部64の折り曲げ具合を変化させて外周壁部53の挟着力を強くしても、内周壁部54と窪み部60とによる仕切り部材4の挟着力は強くならず、仕切り部材4に与える影響は殆んど無い。
以上により、防振装置1の製造が完了する。
例えば、上記した実施の形態では、内筒7に、振動発生源である図示せぬエンジンがエンジン側ブラケットを介して連結され、外筒6に、振動受部である図示せぬ車体が車体側ブラケット等を介して連結されているが、本発明は、内筒7(取付部材)に振動受部が連結され、外筒6(筒部材)にエンジン側ブラケット等を介して振動発生源が連結されていてもよい。
また、上記した実施の形態では、断面視して凹状のダイヤフラムリング50(硬質部材)の開放端が仕切り部材4によって閉塞され、仕切り部材4と底壁部52と外周壁部53と内周壁部54とによってオリフィス通路10が形成されているが、本発明は、上記した形状の硬質部材に限定されるものではなく、他の形状の硬質部材であってもよい。例えば、オリフィス通路10を構成しない硬質部材であってもよく、この場合、オリフィス通路が形成されたオリフィス部材を別途設置してもよく、或いは、仕切り部材4にオリフィス通路を形成することも可能である。
また、上記した実施の形態では、下側筒状部62の内周面に被覆ゴム63が形成され、外周壁部53の外周面に被覆ゴム55が形成され、下側筒状部62と外周壁部53との間に被覆ゴム55,63が介在された構成になっている。しかしながら、本発明では、下側筒状部62及び外周壁部53のうちの何れか一方にのみ被覆ゴムが形成されてもよく、或いは、下側筒状部62と外周壁部53との間にゴム層が介在されていない構成にすることも可能である。
Claims (5)
- 振動発生部および振動受部のうちの何れか一方に連結される筒状の第一取付部材と、
前記振動発生部および前記振動受部のうちの何れか他方に連結される第二取付部材と、
前記第一取付部材と前記第二取付部材とを弾性的に連結するとともに前記第一取付部材の一方側の開口端を閉塞するゴム弾性体と、
前記第一取付部材の他方側の開口端を閉塞するダイヤフラムと、
前記ゴム弾性体と前記ダイヤフラムとの間に形成されて液体が封入された液室を、隔壁の一部が前記ゴム弾性体で形成されて前記ゴム弾性体の変形により内容積が変化する主液室と、隔壁の一部が前記ダイヤフラムで形成された副液室と、に区画する仕切り部材と、
を備えた防振装置において、
前記仕切り部材は、全体が弾性体で構成され、
前記第一取付部材には、径方向内側に突出した突出部と、突出部よりも前記他方側に配設された第一筒状部と、が備えられ、
第一筒状部の内側には、前記弾性体よりも硬い硬質体で構成された環状の硬質部材が装着され、
硬質部材には、前記第一筒状部と同軸上に配置された第二筒状部と、第二筒状部の内側に配置されて前記仕切り部材を支持する支持部と、が備えられ、
前記第一及び第二筒状部のうちの何れか一方の筒状部は他方の筒状部の内側に配置され、
前記第一取付部材及び前記硬質部材のうち、前記他方の筒状部を備える一方の部材には、前記一方の筒状部の何れか一方の端部を係止する係止部と、径方向内側に折り曲げられて前記一方の筒状部の何れか他方の端部を係止するカシメ部と、がそれぞれ形成され、
前記一方の筒状部は、前記係止部と前記カシメ部との間に挟持され、
前記仕切り部材は、前記突出部と前記支持部との間に挟持されている防振装置。 - 前記第二筒状部が前記第一筒状部の内側に配置され、前記第一取付部材に前記係止部及び前記カシメ部がそれぞれ形成され、前記係止部と前記カシメ部との間に前記第二筒状部が挟持されている請求項1記載の防振装置。
- 前記硬質部材の内側には、副液室内の液圧の変化に応じて変形可能な薄膜状のダイヤフラムゴムが形成され、
前記硬質部材が、前記ダイヤフラムのダイヤフラムリングとなっている請求項1記載の防振装置。 - 前記硬質部材は、環状の底壁部と、底壁部の外縁部に立設された外周壁状の第二筒状部と、前記底壁部の内縁部に立設された内周壁状の支持部と、により断面視して凹状に形成され、
前記硬質部材の開放端が前記仕切り部材によって閉塞され、仕切り部材と前記底壁部と前記第二筒状部と前記支持部とによって囲まれた空間が、前記主液室と前記副液室とを連通するオリフィス通路となっている請求項1記載の防振装置。 - 前記第一筒状部と前記第二筒状部との間にゴム層が介在されている請求項1記載の防振装置。
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
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CN2009801115480A CN101981342B (zh) | 2008-04-04 | 2009-04-06 | 防振装置 |
US12/936,046 US8485506B2 (en) | 2008-04-04 | 2009-04-06 | Vibration isolating apparatus |
EP09726822.1A EP2273150B1 (en) | 2008-04-04 | 2009-04-06 | Vibration isolating apparatus |
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JP2008-098084 | 2008-04-04 | ||
JP2008098084A JP5264255B2 (ja) | 2008-04-04 | 2008-04-04 | 防振装置 |
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PCT/JP2009/057056 WO2009123351A1 (ja) | 2008-04-04 | 2009-04-06 | 防振装置 |
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US (1) | US8485506B2 (ja) |
EP (1) | EP2273150B1 (ja) |
JP (1) | JP5264255B2 (ja) |
CN (1) | CN101981342B (ja) |
WO (1) | WO2009123351A1 (ja) |
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US20120080829A1 (en) * | 2009-04-27 | 2012-04-05 | Bridgestone Corporation | Vibration absorption device |
EP2525116A4 (en) * | 2010-01-12 | 2015-05-13 | Bridgestone Corp | ANTI-VIBRATORY DEVICE |
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JP5427616B2 (ja) * | 2010-01-12 | 2014-02-26 | 株式会社ブリヂストン | 防振装置 |
JP2011144829A (ja) * | 2010-01-12 | 2011-07-28 | Bridgestone Corp | 防振装置 |
US9091322B2 (en) * | 2011-11-01 | 2015-07-28 | Cummins Power Generation, Inc. | Generator set mount |
JP5865780B2 (ja) * | 2012-05-24 | 2016-02-17 | 株式会社ブリヂストン | 防振装置 |
US9541155B2 (en) * | 2013-08-09 | 2017-01-10 | Sumitomo Riko Company Limited | Mounting member for vibration damping device and vibration damping device using the same |
JP6157000B2 (ja) * | 2013-11-15 | 2017-07-05 | 住友理工株式会社 | 防振装置 |
WO2015145672A1 (ja) * | 2014-03-27 | 2015-10-01 | 住友理工株式会社 | 防振装置 |
JP6388787B2 (ja) * | 2014-04-28 | 2018-09-12 | 株式会社ブリヂストン | 弾性ストッパ部材及び防振装置 |
JP6431437B2 (ja) * | 2015-04-27 | 2018-11-28 | 株式会社ブリヂストン | 防振装置 |
JP6615485B2 (ja) * | 2015-04-28 | 2019-12-04 | 山下ゴム株式会社 | 液封防振装置 |
JP6595371B2 (ja) * | 2016-02-29 | 2019-10-23 | 住友理工株式会社 | 防振装置 |
JP6813998B2 (ja) * | 2016-09-06 | 2021-01-13 | 山下ゴム株式会社 | 防振装置 |
US10794446B2 (en) * | 2018-03-12 | 2020-10-06 | Sumitomo Riko Company Limited | Vibration damping device |
KR20200142181A (ko) * | 2019-06-12 | 2020-12-22 | 현대자동차주식회사 | 유체 봉입형 엔진 마운트 |
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Also Published As
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JP5264255B2 (ja) | 2013-08-14 |
CN101981342A (zh) | 2011-02-23 |
CN101981342B (zh) | 2012-12-12 |
EP2273150A4 (en) | 2015-11-25 |
JP2009250332A (ja) | 2009-10-29 |
US8485506B2 (en) | 2013-07-16 |
EP2273150B1 (en) | 2016-11-09 |
EP2273150A1 (en) | 2011-01-12 |
US20110031663A1 (en) | 2011-02-10 |
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