ANTI-VIBRATION MOUNT USING COMBINATION OF MULTIPLE SPRINGS
20220316550 ยท 2022-10-06
Assignee
Inventors
Cpc classification
F16F15/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2238/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2228/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Proposed is an anti-vibration mount using combination of multiple springs in which a main spring is provided between an upper frame and a lower frame to reduce vibration, and an auxiliary spring is provided at each of the side portions of the upper frame such that the direction and magnitude of a force applied by the auxiliary spring change according to the compressed degree of the main spring, so the effect of an air spring is realized only with the combination of the main and auxiliary springs which are coil springs. The anti-vibration mount includes: the upper frame allowing an object to be installed thereon; the lower frame provided under the upper frame by being spaced apart therefrom; the main spring provided between the upper frame and the lower frame; and the auxiliary spring elastically supporting each of opposite sides of the upper frame and the lower frame.
Claims
1. An anti-vibration mount using combination of multiple springs, the anti-vibration mount comprising: an upper frame allowing an object to be installed thereon; a lower frame provided under the upper frame by being spaced apart therefrom; a main spring provided between the upper frame and the lower frame; and an auxiliary spring elastically supporting each of opposite sides of the upper frame and the lower frame.
2. The anti-vibration mount of claim 1, wherein a support bracket is formed at each of opposite sides of the lower frame by protruding upward therefrom, and a spring guide is elastically provided inside the auxiliary spring, wherein a first end part of the spring guide is hinged to an upper end of the support bracket, and a second end part of the spring guide is hinged to the upper frame.
3. The anti-vibration mount of claim 2, wherein the spring guide comprises: a first guide allowing an end part thereof to be hinged to the upper frame; and a second guide allowing an end part thereof to be hinged to the upper end of the support bracket, wherein the first guide is installed slidably in a through hole formed through the second guide.
4. The anti-vibration mount of claim 3, wherein a first support plate is formed at the end part of the first guide, the first support palate supporting a first end part of the auxiliary spring, and a second support plate is formed at the end part of the second guide, the second support plate supporting a second end part of the auxiliary spring.
5. The anti-vibration mount of claim 3, wherein a link member is provided at a center part of a lower surface of the upper frame, and the end part of the first guide is hinged to each of opposite sides of a lower end of the link member.
6. The anti-vibration mount of claim 5, wherein a bump stop is provided at a center part of the lower frame so as to support the lower end of the link member.
7. The anti-vibration mount of claim 1, wherein a damper is provided inside the main spring.
Description
DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
Best Mode
[0027] Hereinafter, an exemplary embodiment of the present disclosure will be described further in detail with reference to the accompanying drawings. The same reference numerals are used for the same elements in the drawings, and duplicate descriptions for the same elements are omitted. In addition, it should be understood that the present disclosure may be implemented in various different forms and is not limited to the described embodiment.
[0028]
[0029] The present disclosure relates to the anti-vibration mount using combination of multiple springs, and as illustrated in
[0030] Here, an object is installed on the upper frame 100 such that the vibration of the object is prevented, and the lower frame 200 is fixed on a support part supporting the object to be prevented from vibrating. Although the upper frame 100 is illustrated to have a rectangular shape in
[0031] In this case, auxiliary springs 320 elastically supporting opposite sides of the upper frame 100 and the lower frame 200, respectively, are provided, wherein the auxiliary springs 320 are installed to be symmetrical to each other.
[0032] That is, a first end part of each of the auxiliary springs 320 is located to be biased to the center part of the upper frame 100, and a second end part of the auxiliary spring 320 is located to be biased to an edge of the lower frame 200.
[0033] Accordingly, when each of the main springs 310 is compressed by a load of the object, the angle and compressed degree of the auxiliary spring 320 change, so the direction and magnitude of a force applied by the auxiliary spring 320 are changed.
[0034] In addition, as illustrated in
[0035] Here, the support bracket 210 may include multiple pairs of support brackets. For convenience of description, as illustrated in the drawing, the support bracket 210 is configured as a pair of support bracket. The pair of support brackets 210 is installed to be symmetrical to each other as the auxiliary springs 320 are installed to be symmetrical to each other.
[0036] In this case, a spring guide 330 is elastically provided inside the auxiliary spring 320. A first end part of the spring guide 330 is hinged to the upper end of the support bracket 210, and a second end part of the spring guide 330 is hinged to the upper frame 100.
[0037] Meanwhile, the spring guide 330 is composed of a first guide 340 configured to have a bar shape and a second guide 350 configured to have a pipe shape. The first guide 340 is slidably inserted to a through hole formed through the second guide 350 in a longitudinal direction thereof, so the length of the spring guide 330 changes.
[0038] Here, a first hinge bracket 344 is formed at an end part of the first guide 340 and is hinged to the upper frame 100, and a second hinge bracket 354 is formed at an end part of the second guide 350 and is hinged to a second hinge part 212 formed at the upper end of the support bracket 210.
[0039] In this case, a first support plate 342 is formed at the end part of the first guide 340 by protruding outward therefrom, the first support plate supporting a first end part of the auxiliary spring 320, and a second support plate 352 is formed at an end part of the second guide 350 by protruding outward therefrom, the second support plate supporting a second end part of the auxiliary spring 320.
[0040] Accordingly, when the upper frame 100 is moved downward by the load of an object installed on the upper frame 100, the angle of the spring guide 330 changes while the length of the spring guide 330 decreases, so the direction and magnitude of a force applied to the upper frame 100 by the auxiliary spring 320 change.
[0041] Correlation between loads acting on the main spring 310 and the auxiliary spring 320 and the displacements thereof is illustrated in
[0042] That is, in the graph of
[0043] More specifically, an A position of
[0044] That is, when the load is 0 as in the A position, the main spring 310 and the auxiliary spring 320 are completely stretched, and when the load increases, the main spring 310 and the auxiliary spring 320 are compressed, so the vertical forces thereof act due to the restoring forces of the main and auxiliary springs which are coil springs.
[0045] In this case, the main spring 310 is vertically installed, so the vertical force of the main spring 310 acts only upwards, and thus is indicated as a straight line in the graph. However as the main spring 310 is compressed by the load, the auxiliary spring 320 has an angle changed as illustrated in
[0046] Here, as illustrated in
[0047] Accordingly, the sum of the forces applied by the main spring 310 and the auxiliary spring 320 in the directions perpendicular to the load is shown as line E, which is the same as the state of an air spring illustrated in
[0048] That is, when the main spring 310 and the auxiliary spring 320 are in the state of the B position while an object is installed on the anti-vibration mount by adjusting the load of the object appropriately or by adjusting the elastic forces of the main spring 310 and the auxiliary spring 320 to match the load, the stiffnesses of the main spring 310 and the auxiliary spring 320 corresponding to the inclinations of the graph are close to 0. Accordingly, the lower limit of a frequency band in which vibration generated by the object can be reduced is lowered, so low-frequency vibration can also be significantly reduced like the use of an air spring.
[0049] Therefore, in the anti-vibration mount of the present disclosure, only the combination of the coil springs may perform the same operation as the vibration-reducing operation of an air spring, and thus many auxiliary devices for installing the air spring are not required to be installed, thereby greatly reducing manufacturing costs, realizing a simple structure, and greatly reducing entire volume.
[0050] Of course, when the load of an object is changed, the coil spring is required to be correspondingly changed, but the anti-vibration mount is easily installed at low cost and is used in continental railways in which objects having the same loads are moved for a long time or at places at which changes of loads are not large.
[0051] Meanwhile, a link member 140 is provided at the center part of the lower surface of the upper frame 100, and a first hinge part 144 is formed at each of the opposite sides of the lower end of the link member 140, so the first hinge bracket 344 formed at the end part of the first guide 340 is hinged to the lower end of the link member 140.
[0052] Here, the link member 140 may be formed at the center part of the lower surface of the upper frame 100 by protruding downward therefrom, or may be separately manufactured to be fixed to the lower surface of the upper frame 100.
[0053] In addition, the link member 140 is illustrated to be formed at the center part of the lower surface of the upper frame 100 in the drawing. However, as described above, the link member 140 may be formed and may allow the spring guide 330 to be connected thereto, or without the installation of the link member 140, a hinge part may be formed at the upper frame 100 and the upper end of the spring guide 330 may be directly hinged to the upper frame 100.
[0054] In addition, a damper 312 is provided inside the main spring 310, wherein the lower end of the damper 312 is fixed to the lower frame 200 and the upper end of the damper 312 is installed under the upper frame 100.
[0055] Accordingly, the damper 312 improves an impact-reducing performance of the coil spring by adding damping characteristics insufficient in the coil spring to the coil spring, and also allows vibration energy to dissipate more quickly.
[0056] In this case, a bump stop 220 is provided at the center part of the upper surface of the lower frame 200. The bump stop 220 is made of a material having high elasticity such as rubber or synthetic rubber, and thus supports a lower end of a link member 140 when the link member 140 is moved downward by the load of an object, so impact applied to the bump stop 220 during the collision of the bump stop 220 with the link member 140 is buffered.
[0057] Meanwhile, an installation recess 110 is formed at the center part of the upper frame 100 so as to install an object therein. A busing 120 is installed in the installation recess 110 and minute vibrations applied in the horizontal direction are attenuated by the bushing 120.
[0058] Although the exemplary embodiment of the present disclosure has been described above, the scope of the present disclosure is not limited thereto, and extends to those that are within a range substantially equal to the embodiment of the present disclosure. The embodiment of the present disclosure may be variously modified by those skilled in the art to which the present disclosure belongs without departing from the spirit of the present disclosure.
Industrial Applicability
[0059] The present disclosure relates generally to the anti-vibration mount using combination of multiple springs. More particularly, the present disclosure relates to the anti-vibration mount using combination of multiple springs in which the main spring is provided between the upper frame and the lower frame to reduce vibration, and the auxiliary spring is provided at each of the side portions of the upper frame such that the direction and magnitude of a force applied by the auxiliary spring change according to the compressed degree of the main spring, so the effect of an air spring is realized only with the combination of the coil springs.