VARIABLE SHOCK-ABSORBING DAMPER FOR FURNITURE HINGE, WITH BUILT-IN PRESSURE CONTROL MEANS
20170016260 ยท 2017-01-19
Assignee
Inventors
Cpc classification
F16F9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E05F3/00
FIXED CONSTRUCTIONS
E05F5/006
FIXED CONSTRUCTIONS
F16F9/512
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3415
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E05F3/00
FIXED CONSTRUCTIONS
F16F9/512
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A shock-absorbing damper for absorbing the impact force generated during the opening/closing of a furniture door, the damper including: a load pin in a housing to move back and forth during the opening/closing of the furniture door; a main valve coupled to the load pin to form a first flow path; a check valve coupled to a guide bar of the main valve in a manner to form a second flow path; a guider coupled to the main valve to guide the fluid flow; and a pressure adjuster interposed between the main valve and the check valve to vary the first flow path. The pressure adjuster and the guider are provided in the shock-absorbing damper to vary a flow path corresponding to an opening/closing load of the furniture door, thereby opening/closing the furniture door at a set speed regardless of the size or weight.
Claims
1-4. (canceled)
5. A variable shock-absorbing damper for a furniture hinge, which includes a pressure adjustment means built in the furniture hinge to buffer and absorb an external load occurring in the process of opening and closing a furniture door, the damper comprising: a housing configured to have accommodated therein a working fluid of the shock-absorbing damper; a load pin fittingly coupled to the housing and configured to reciprocate in the process of opening and closing the furniture door; a main valve coupled to the load pin and including a first flow path defined therein; a check valve slidably coupled to a guide bar of the main valve so as to allow a second flow path to be defined between the guide bar and the check valve; a guider configured to be expanded or returned to its original position by a pressure of the working fluid while being coupled to the main valve to guide a fluid flow; and a pressure adjuster interposed between the main valve and the check valve and configured to be deformed according to the pressure of the fluid to vary the first flow path.
6. The variable shock-absorbing damper according to claim 5, wherein the main valve comprises a semi-circular groove concavely formed at a position where the first flow path is defined so as to partly accommodate a body of the pressure adjuster.
7. The variable shock-absorbing damper according to claim 5, wherein the check valve comprises a semi-circular groove concavely formed in a position confronting the first flow path so as to partly accommodate a body of the pressure adjuster.
8. The variable shock-absorbing damper according to claim 5, wherein the guider comprises a body coupled to a coupling hole of the main valve by means of a fitting protrusion, and a skirt integrally formed on the outer circumferential surface of the body through a connection member so that the skirt is expanded or returned to its original position according to the pressure of the fluid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The above and other objects, features and advantages of the present invention will be apparent from the following detailed description of the preferred embodiments of the invention in conjunction with the accompanying drawings, in which:
[0018]
[0019]
[0020]
[0021]
[0022]
TABLE-US-00001 *Explanation on reference numerals of main elements in the drawings* 10: housing 12, 13: first and second hollow parts 14: stepped part 20: load pin 30: main valve 32: first flow path 34: guide bar 36: head 37: coupling hole 38: semi-circular groove 40: check valve 42: second flow path 44: body 46: semi-circular groove 50: guider 52: body 54: skirt 60: pressure adjuster 82: end cap 84: seal plate 86: seal 88: spring
BEST MODE FOR CARRYING OUT THE INVENTION
[0023] Now, a preferred embodiment of a shock-absorbing damper according to the present invention will be described hereinafter in detail with reference to the accompanying drawings.
[0024] As shown in
[0025] Herein, the shock-absorbing damper 1 according to the present invention serves to absorb a load occurring in the process of opening and closing the furniture door in a state of being built in the furniture hinge 100. The shock-absorbing damper 1 is characterized in that the first and second flow paths 32 and 42 are varied to fit the load of the furniture door so that the opening and closing speed of the furniture door can be always maintained uniformly.
[0026] In addition, the housing 10 serves to support the entire load of the shock-absorbing damper 1. The housing 10 includes a first hollow part 12 that accommodates the working fluid therein and a second hollow part 13 that accommodates the load pin 20 therein. The first hollow part 12 and the second hollow part 13 are divided by a stepped part 14.
[0027] In this case, the second hollow part 13 accommodates an elastic means A which will be described later, and the first hollow part 12 accommodates a buffer means B which will be described later.
[0028] Further, the elastic means A serves to elastically support the load pin 20 and includes an end cap 82 accommodated in the second hollow part 13 and a seal 86 that prevents leakage of the working fluid. A spring 88 is interposed between the end cap 82 and the seal 86 so that the end cap 82 and the seal 86 are maintained elastically.
[0029] In this case, the seal 86 is supported by the seal plate 84, particularly is retracted to the left on the drawing sheet by an amount corresponding to the amount of insertion of the load pin 20.
[0030] In addition, the buffer means B serves to absorb a load applied to the load pin 20 to perform a buffer function. The buffer means B includes the main valve 30 that is mounted at a front end of the load pint 20 to reciprocate, the check valve 40 that is operated during the reciprocating motion of the main valve 30, the guider 50, and the pressure adjuster 60.
[0031] Besides, the load pin 20 serves to support by the elastic means A and the buffer means B in a state of being inserted into the second hollow part 13 of the housing 10. The load pin 20 is configured such that it is compressed in the process of closing the furniture door as shown in
[0032] In addition, the main valve 30 is coupled to the front end of the load pin 20 to reciprocate together with the load pin 20. The main valve 30 includes a head 36 brought into close contact with the inner wall surface, a plurality of first flow paths 32 formed in the head 36, and a guide bar 34 integrally formed on a side of the head 36.
[0033] Further, the main valve 30 has a plurality of semi-circular grooves 38 concavely formed at positions where the first flow paths 32 are defined so as to partly accommodate a body of the pressure adjuster 60.
[0034] In addition, a plurality of second flow paths 42 is defined on the outer circumference surface of the guide bar 34, preferably between the outer circumference surface of the guide bar 34 and the inner circumferential surface of the check vale 40.
[0035] Further, the check valve 40 is slidably coupled to the guide bar 34 to reciprocate. The check valve 40 includes a body 44 coupled to the outer circumference surface of the guide bar 34 to define the second flow paths 42 and a semi-circular groove 46 concavely formed on a side surface of the body 44 so as to partly accommodate a body of the pressure adjuster 60.
[0036] Of course, the check valve 40 has an insertion hole formed at the center thereof, the insertion hole having a size corresponding to an outer diameter of the guide bar 34.
[0037] In this case, the semi-circular groove 46 is formed at a position confronting the first flow path 32. In particular, the semi-circular groove 46 is formed in a shape corresponding to that of the semi-circular groove 38 of the main valve 30.
[0038] In addition, the guider 50 is coupled to the main valve 30 to reciprocate together with the main valve 30.
[0039] The guider 50 includes a body 52 coupled to a coupling hole 37 of the main valve 30 by means of a fitting protrusion 56 and a skirt 54 made of a flexible material and integrally formed on the outer circumferential surface of the body 52 through a connection member 54-5 so that the skirt 54 is expanded or returned to its original position according to the pressure of the fluid.
[0040] Moreover, the pressure adjuster 60 is inserted between the main valve 30 and the check valve 40, preferably is fittingly inserted into the semi-circular grooves 38 and 46. The pressure adjuster 60 is deformed in shape to fit the pressure of the working fluid in a state of being accommodated in the semi-circular grooves 38 and 46 to perform a function of varying the first flow path 32.
[0041] Of course, the pressure adjuster 60 is preferably formed in a cylindrical shape so as to be brought into close contact with the first flow path 32.
[0042] In addition, the pressure adjuster 60 is preferably formed of a flexible material so as to increase the efficiency according to the variation of the first flow path 32.
[0043] Hereinafter, the operation according to the present invention will be described.
[0044] First, as shown in
[0045] In other words, the working fluid contained in the hosing 10 is moved in the arrow direction on the drawing sheet via the second flow path 42 that defines a gap between the check valve 40 and the guide bar 34 and the first flow path 32 of the main valve 30.
[0046] At this time, the check valve 40 is brought into close contact with the main valve 30. For this reason, the pressure adjuster 60 is brought into close contact with the first flow path 32, and thus the load pin 20 is compressed at a set speed to fit pressure of the working fluid.
[0047] On the other hand, as shown in
[0048] In other words, the check valve 40 brought into close contact with the main valve 30 is separated from the main valve 30, and simultaneously the pressure adjuster 60 brought into close contact with the first flow path 32 is separated from the first flow path 32. Thus, the load pin 20 returns to its original position at a set speed.
[0049] Further, in the returning process of the load pin 20, the skirt 54 of the guider 50 is expanded by the working fluid returning through the first and second flow paths 32 and 42. Thus, the working fluid returns at the set speed.
[0050] Meanwhile, although a pressure of more than a prescribed value is applied to the load pin 20, the pressure adjuster 60 is deformed as shown in
[0051] In other words, the pressure adjuster 60 is deformed by a pressure corresponding to the pressure applied to the load pin 20 to substantially block the first flow path 32 so that although an abnormal pressure is exerted to the furniture door, the closing speed of the furniture door can be constantly maintained.
[0052] While the present invention has been described in connection with the exemplary embodiments illustrated in the drawings, they are merely illustrative embodiments, and the invention is not limited to these embodiments. It is to be understood that various equivalent modifications and variations of the embodiments can be made by a person having an ordinary skill in the art without departing from the spirit and scope of the present invention. Therefore, the true technical scope of the present invention should be defined by the technical spirit of the appended claims.