Compression-type mass damper, and suspension system and vehicle using the same
10228037 ยท 2019-03-12
Assignee
Inventors
Cpc classification
B60G2800/162
PERFORMING OPERATIONS; TRANSPORTING
F16F2226/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2236/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G15/04
PERFORMING OPERATIONS; TRANSPORTING
B60G9/02
PERFORMING OPERATIONS; TRANSPORTING
B60G9/003
PERFORMING OPERATIONS; TRANSPORTING
B60G13/16
PERFORMING OPERATIONS; TRANSPORTING
F16F2224/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2226/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F7/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60G9/00
PERFORMING OPERATIONS; TRANSPORTING
B60G11/04
PERFORMING OPERATIONS; TRANSPORTING
B60G15/04
PERFORMING OPERATIONS; TRANSPORTING
B60G13/16
PERFORMING OPERATIONS; TRANSPORTING
B60G9/02
PERFORMING OPERATIONS; TRANSPORTING
F16F7/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A compression-type mass damper may include a damping mass formed with an open space, the damping mass enclosing an outer surface of a target through the open space and absorbing vibration of the target, a weight body enclosed by the damping mass, the weight body applying weight to the damping mass, and a compression plate enclosed by the damping mass, the compression plate applying a fixing force to the open space.
Claims
1. A compressive mass damper, comprising: a damping mass formed with an open space, the damping mass enclosing an outer surface of a target through the open space and absorbing vibration of the target; a weight body enclosed by the damping mass, the weight body applying weight to the damping mass; and a compression plate enclosed by the damping mass, the compression plate applying a fixing force to the open space, wherein a damper stud passes through the damping mass and is fixed to the compression plate to restrict separation of the weight body.
2. The compressive mass damper of claim 1, wherein the damping mass is made of elastic material, and the weight body and the compression plate are made of metal.
3. The compressive mass damper of claim 1, wherein the weight body and the compression plate are formed along with the damping mass by injection molding.
4. The compressive mass damper of claim 1, wherein the damping mass comprises: a compression body having the open space and provided with the compression plate; a mass body including the weight body over the open space; and an elastic body integrally coupling the compression body with the mass body and absorbing the vibration.
5. The compressive mass damper of claim 4, wherein the compression body is provided with a plurality of protrusions, wherein the protrusions are exposed to the open space and brought into contact with the target.
6. The compressive mass damper of claim 5, wherein each of the protrusions has a hemispherical shape.
7. The compressive mass damper of claim 4, wherein the elastic body has a reversed trapezoidal cross-section extending from the mass body to the compression body and is formed with a void.
8. The compressive mass damper of claim 7, wherein the void has a reversed trapezoidal cross-section.
9. The compressive mass damper of claim 4, wherein the weight body has a shape corresponding to a shape of the mass body and is formed with a mass charging space.
10. The compressive mass damper of claim 9, wherein a weight of the weight body is adjusted by changing size and shape of the mass charging space.
11. The compressive mass damper of claim 1, wherein the compression plate has a shape corresponding to a shape of the compression body.
12. The compressive mass damper of claim 1, wherein the damper stud passes both through a stud passing hole that is concentric with a stud receiving space of the mass body and through a shaft hole of the weight body, and is fixed to a stud fixing hole of the compression plate.
13. The compressive mass damper of claim 12, wherein the damper stud is fixed to the stud fixing hole by a fixing boss that is provided on an end of a stud shaft passing through the stud passing hole and the shaft hole.
14. A compressive mass damper, comprising: a damping mass formed with an open space, the damping mass enclosing an outer surface of a target through the open space and absorbing vibration of the target; a weight body enclosed by the damping mass, the weight body applying weight to the damping mass; and a compression plate enclosed by the damping mass, the compression plate applying a fixing force to the open space, wherein a compression body of the damping mass is provided with a plurality of protrusions which are exposed to the open space and brought into contact with the target.
15. A compressive mass damper, comprising: a damping mass formed with an open space, the damping mass enclosing an outer surface of a target through the open space and absorbing vibration of the target; a weight body enclosed by the damping mass, the weight body applying weight to the damping mass; and a compression plate enclosed by the damping mass, the compression plate applying a fixing force to the open space, wherein a weight of the weight body is adjusted by changing size and shape of the mass charging space.
16. A compressive mass damper, comprising: a damping mass formed with an open space, the damping mass enclosing an outer surface of a target through the open space and absorbing vibration of the target; a weight body enclosed by the damping mass, the weight body applying weight to the damping mass; and a compression plate enclosed by the damping mass, the compression plate applying a fixing force to the damping mass which is compressed onto the target by a deformation to apply the fixing force to the open space.
17. A suspension system for a vehicle, comprising: a compressive mass damper as in any one of claims 1, 14, 15, and 16; and a leaf spring to which the compressive mass damper is fixed in such a way that the leaf spring is enclosed by the compressive mass damper in a lateral direction of the leaf spring.
18. The suspension system of claim 17, wherein the leaf spring includes an eye part provided with a bushing, and the compressive mass damper is fixed to a portion of the leaf spring other than the eye part.
19. A vehicle, comprising: a compressive mass damper as in any one of claims 1, 14, 15, and 16; and a suspension system including a leaf spring to which the compressive mass damper is fixed in such a way that the compressive mass damper encloses an outer surface of the leaf spring, the suspension system being configured to avoid, using the compressive mass damper, influence of a resonant frequency of vibration transmitted from a road and a resonant frequency of vibration generated from an engine and a drive system and transmitted to a vehicle body.
20. The vehicle of claim 19, wherein the suspension system is applied to a commercial vehicle.
21. The vehicle of claim 19, wherein a rear axle configured to transmit power to a wheel mounted with the suspension system includes a bolting mass damper coupled to the rear axle by a bolt, the bolting mass damper being configured to absorb vibration of the rear axle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF SPECIFIC EMBODIMENTS
(7) It is understood that the term vehicle or vehicular or other similar term as used herein is inclusive of motor vehicles in general such as passenger automobiles including sports utility vehicles (SUV), buses, trucks, various commercial vehicles, watercraft including a variety of boats and ships, aircraft, and the like, and includes hybrid vehicles, electric vehicles, plug-in hybrid electric vehicles, hydrogen-powered vehicles and other alternative fuel vehicles (e.g. fuels derived from resources other than petroleum). As referred to herein, a hybrid vehicle is a vehicle that has two or more sources of power, for example both gasoline-powered and electric-powered vehicles.
(8) The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms a, an and the are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms comprises and/or comprising, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. As used herein, the term and/or includes any and all combinations of one or more of the associated listed items. Throughout the specification, unless explicitly described to the contrary, the word comprise and variations such as comprises or comprising will be understood to imply the inclusion of stated elements but not the exclusion of any other elements. In addition, the terms unit, -er, -or, and module described in the specification mean units for processing at least one function and operation, and can be implemented by hardware components or software components and combinations thereof.
(9) Further, the control logic of the present invention may be embodied as non-transitory computer readable media on a computer readable medium containing executable program instructions executed by a processor, controller or the like. Examples of computer readable media include, but are not limited to, ROM, RAM, compact disc (CD)-ROMs, magnetic tapes, floppy disks, flash drives, smart cards and optical data storage devices. The computer readable medium can also be distributed in network coupled computer systems so that the computer readable media is stored and executed in a distributed fashion, e.g., by a telematics server or a Controller Area Network (CAN).
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(11) Referring to
(12) Referring to
(13) In an embodiment, the mass body 20 has, in a central portion thereof, a stud receiving space 20-1 and a stud passing hole 20-2 which are concentrically formed. The mass body 20 has an approximately rectangular parallelepiped structure having a predetermined thickness and encloses the damper body 50. In particular, the stud receiving space 20-1 is formed by removing a central portion of the mass body 20 in a circular shape and is used as space in which the damper stud 70 is received. The stud passing hole 20-2 passes through a portion of the mass body 20 that is not formed with the stud receiving space 20-1. The stud passing hole 20-2 is used as a passage through the damper stud 70 is coupled to the compression plate 60.
(14) In an embodiment, the compression body 30 includes an outer body 33 has a planar shape and is integrally formed with the mass body 20 by the elastic body 40. The compression body 30 includes an outer body 33 which forms an open space to enclose and compress the target element. An inner body 31 is formed in a central portion of the open space, and the damper stud 70 is disposed on the inner body 31. Particularly, unlike the outer body 33, the inner body 31 protrudes to enter a void 40-1 that is internal space of the elastic body 40, thus making it possible for the compression plate 60 to be fixed to the damper stud 70 by the protruding portion of the inner body 31. Further, the inner body 31 has a center hole 31-1 therein so that a portion of the compression plate 60 that is fixed with the damper stud 70 can be open through the center hole 31-1. The outer body 33 has protrusions on an inner surface thereof so that when the outer body 33 is compressed onto the target element, contact force therebetween can be enhanced. In an embodiment, the protrusions include bottom protrusions 35-1 which protrude from a bottom surface of the outer body 33, and side protrusions 35-2 which protrude from a side surface of the outer body 33. The bottom protrusions 35-1 and the side protrusions 35-2 are protrusions which are arranged in a row, and each of which has a hemispherical, rectangular, trapezoidal or triangular cross-section.
(15) In an embodiment, the elastic body 40 integrally couples the mass body 20 with the compression body 30, and has the void 40-1, which is a hollow space, to facilitate elastic deformation due to a load. Particularly, the elastic body 40 has a reversed trapezoidal cross-section in which a side thereof adjacent to the mass body 20 is longer than a side thereof adjacent to the compression body 30. Thereby, the void 40-1 also forms the hollow space having a reversed trapezoidal cross-section.
(16) Referring to
(17) Referring to
(18) Referring to
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(20) Particularly, the compression between the damping mass 10 and the leaf spring 110 can be realized by a press machine. Referring to
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(22) In an embodiment, the compression-type mass damper 1 encloses and compresses the leaf spring 110 in the lateral direction of the leaf spring 110. Therefore, when the suspension system 100 acts as a path through which a resonant frequency of vibration from a road and a resonant frequency of vibration from an engine/drive system is transmitted to the vehicle body after being amplified, the compression-type mass damper 1 prevents the influence of the resonant frequency through the leaf spring 110, thus markedly mitigating the resonant frequency amplification of the suspension system 100. These results have been proven by the result of a practical vehicle test in which noise is reduced by the maximum 14 dB.
(23) In an embodiment, the bushings 120-1, 120-2 and 120-3 are installed in an eye part which is formed on each of both ends of the leaf spring 110. The first, second and third bushings 120-1, 120-2 and 120-3 have different kinds of structures and shapes whereby the stiffness of a vehicle body connection part can be changed such that vibrations can be reduced. In particular, when the first, second and third bushings 120-1, 120-2 and 120-3 are used along with the compression-type mass damper 1, the junction between the vehicle body and the eye part of the leaf spring 110 can be configured such that a change in stiffness thereof is minimized.
(24) In an embodiment, the bolt-type mass damper 1-1 is coupled to the rear axle 200 by a bolt, whereby a resonance phenomenon of a vibration source through the engine/drive system can be avoided on the rear axle 200.
(25) As described above, a compression-type mass damper according to an embodiment of the present invention includes a damping mass 10 which absorbs vibrations, a weight body 50 which applies weight to the damping mass 10, a compression plate 60 which provides fixing force in an open space of the damping mass 10, and a damper stud 70 which is fixed to the compression plate 60 through the damping mass 10. The compression-type mass damper 1 is compressed onto and fixed to an outer surface of a leaf spring 110 in a pressing manner through the open space of the damping mass 10 and thus is used as a component of a suspension system 100. The suspension system 100 is applied to a vehicle 100-1 and is able to avoid, without reduction in stiffness of the suspension system 100, influence of a resonant frequency of vibration transmitted from a road and a resonant frequency of vibration transmitted from an engine/drive system to a vehicle body. In particular, the resonant frequency avoidance of the suspension system 100 leads to a reduction in NVH, thus meeting applicable governmental regulations.
(26) While the present invention has been described with respect to the specific embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the following claims.