DAMPER
20240183209 ยท 2024-06-06
Inventors
Cpc classification
F16F13/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/365
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E05F5/006
FIXED CONSTRUCTIONS
F16F2230/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E05F3/12
FIXED CONSTRUCTIONS
Abstract
A damper includes a damper housing, a fluid chamber in the damper housing, a damping fluid in the fluid chamber, a piston displaceable in the fluid chamber, a piston rod connected to the piston, and a volume compensating device in the damper housing. The volume compensating device compensates for a displaceable volume of the damping fluid when the piston rod is immersed into the fluid chamber, and includes a seal to seal the fluid chamber relative to the piston rod and/or relative to an inner wall of the damper housing, a support element to guide the seal, a spring element to reset the seal after a damping stroke at least partially into an initial position. The spring element, the seal, and/or the support element form a common compensating member having an integral one-piece configuration. The compensating member is configured to bear loosely against a cover for closing the damper housing.
Claims
1. A damper, in particular for furniture fittings, comprising: a damper housing, at least one fluid chamber arranged in the damper housing, a damping fluid arranged in the fluid chamber, at least one piston, preferably linearly, displaceable in the at least one fluid chamber, a piston rod connected to the at least one piston, at least one cover for closing the damper housing, at least one volume compensating device arranged in the damper housing, the volume compensating device being configured to compensate for a displaceable volume of the damping fluid when the piston rod is immersed into the fluid chamber, wherein the at least one volume compensating device includes: at least one seal configured to seal the fluid chamber relative to the piston rod and/or relative to an inner wall of the damper housing, at least one support element configured to guide the at least one seal in the damper housing, at least one spring element configured to reset the at least one seal after a performed damping stroke at least over a region into an initial position, wherein the at least one spring element and the at least one seal and/or the at least one support element are formed together to a common compensating member so as to have an integral one-piece configuration, wherein the compensating member bears loosely or is configured to bear loosely against the at least one cover.
2. The damper according to claim 1, wherein: the at least one spring element is supported on the at least one cover, and/or the at least one cover includes an opening for the passage of the piston rod, and/or the at least one cover is configured to be substantially cylindrical, and/or the at least one cover includes an inner side facing into the damper housing, wherein on the inner side of the cover, at least one convex contour is arranged on which an end of the at least one spring element is pivotally supported, and/or wherein on the inner side of the cover, an inclined surface is arranged on which an outer side of the at least one spring element, in a compressed condition, can bear against.
3. The damper according to claim 1, wherein the compensating member and the at least one piston are arranged in the damper housing behind each other in a longitudinal direction of the piston rod.
4. The damper according to claim 1, wherein the at least one spring element, the at least one seal, and the at least one support element are formed together to a common compensating member so as to have an integral one-piece configuration.
5. The damper according to claim 1, wherein the compensating member is configured as an injection-molded member.
6. The damper according to claim 1, wherein the compensating member is formed of an elastically bendable or deformable material, preferably rubber or plastic.
7. The damper according to claim 1, wherein: the at least one spring element of the compensating member is configured substantially funnel-shaped in a cross-section, and/or the at least one seal of the compensating member is configured substantially U-shaped in a cross-section, preferably wherein a first limb of the U-shape bears against the piston rod and/or a second limb of the U-shape bears against the inner wall of the damper housing, and/or the at least one seal of the compensating member includes at least one sealing lip glidingly guided along the inner wall of the damper housing, and/or the at least one support element of the compensating member is configured substantially wedge-shaped in a cross-section, preferably wherein a tip of the wedge-shape is supportable on the inner wall of the damper housing.
8. The damper according to claim 1, wherein an outer contour of the compensating member, in a resting condition, is configured substantially rotationally symmetrical.
9. The damper according to claim 1, wherein the compensating member is arranged in the damper housing between the at least one fluid chamber and an air chamber.
10. The damper according to claim 1, wherein the compensating member: includes at least one, preferably central, opening for the passage of the piston rod, and/or is displaceably supported on the piston rod.
11. The damper according to claim 1, wherein the compensating member is at least partially compressible when the damping stroke is performed.
12. The damper according to claim 1, wherein the at least one spring element of the compensating member: is at least partially pre-stressed in the initial position, and/or includes a free end facing towards the cover, the free end being configured to be supported on an inner wall of the damper housing, preferably in all operating positions of the compensating member, and/or includes a substantially closed circumferential surface in a radial direction, and/or has a length in axial direction, the length being not more than twice as large than the length of the remaining components of the compensating member.
13. The damper according to claim 1, wherein at least one streaming channel is provided which, upon a displacement of the piston, can be streamed through by the damping fluid.
14. A furniture fitting, in particular a hinge for movably supporting a furniture part on a furniture carcass, wherein the furniture fitting includes the damper according to claim 1.
15. The furniture fitting according to claim 14, wherein the furniture fitting includes at least two fitting portions hingedly connected to each other, wherein the at least one damper is at least partially, preferably entirely, arranged in one of the two fitting portions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Further details and advantages of the present invention will be explained with the following description of figures, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE INVENTION
[0026]
[0027] The furniture fittings 4 include a first fitting portion 5 configured to be fixed to the furniture carcass 2, and a second fitting portion 6 configured to be fixed to the movable furniture part 3. The first fitting portion 5 and the second fitting portion 6 are hingedly connected to each other.
[0028] The furniture fitting 4 includes at least one damper 10 (not shown here) configured to dampen a relative movement of the two fitting portions 5, 6 to each other. By the damper 10, at least a closing movement of the furniture part 3 until reaching the fully closed end position relative to the furniture carcass 2 can be dampened.
[0029]
[0030] By a mounting plate 8, the first fitting portion 5 is to be fixed to the furniture carcass 2. The mounting plate 8 and the first fitting portion 5 are configured as components separate from each other. In a first mounting step, the mounting plate 8 is to be fixed to the furniture carcass 2. In a further mounting step, the first fitting portion 5 is lockable to the mounting plate 8 without the use of a tool via a locking device 9 (
[0031] By a first adjustment device 9a, the first fitting portion 5 is adjustable relative to the mounting plate 8 in a longitudinal direction (L) of the mounting plate 8. By a second adjustment device 9b, an inclination of the first fitting portion 5 relative to the mounting plate 8 is adjustable.
[0032]
[0033] By a damper 10, a relative movement of the two fitting portions 5, 6 to each other can be dampened. The damper 10 includes a damper housing 11 which, in the shown embodiment, is integrated into the first fitting portion 5. Of course, it is also possible to arrange the damper housing 11 on or within the second fitting portion 6.
[0034]
[0035] The piston 13 can be linearly displaceably guided within the fluid chamber 12. Alternatively, it is possible that the piston 13 performs a linear movement and/or a rotational movement within the fluid chamber 12 when performing a damping stroke.
[0036] In the shown embodiment, an overload safety device 21 with a spring-loaded ball 21a is provided.
[0037] The overload safety device 21 is configured such that at least one overload channel 25 of the piston 13 is closed when a damping stroke is performed below a predetermined threshold value of a pressure application to the piston 13. In such a normal operation, the damping fluid can only stream between a streaming channel 23a formed between the piston 13 and an inner wall 22 of the damper housing 11, and/or through possible further streaming channels of the piston 13, so as to generate a braking force for the piston 13 immersing into the fluid chamber 12.
[0038] Above the predetermined threshold value of a pressure application to the piston 13, the spring-loaded ball 21a is movable against a force of a spring so as to unblock the overload channel 25 of the piston 13. In such an overload case, the damping fluid can stream through the overload channel 25 and through a streaming channel 23b of the piston 13. As a result, a rapid pressure reduction within the fluid chamber 12 can be brought about and a damage of the damper 10 can be prevented.
[0039] Such overload safety devices 21 are well-known according to the prior art and need not to be described in greater detail here. The overload safety device 21 can also be entirely omitted.
[0040] By a volume compensating device 15, a displaceable volume of the damping fluid can be compensated for when the piston rod 14 is immersed into the fluid chamber 12. The volume compensating device 15 is necessary, because the additional volume of the immersing piston rod 14 must be compensated for so as to prevent a bouncing-back movement of the piston rod 14 and a damage of the damper housing 11.
[0041] The volume compensating device 15 includes at least one seal 16 which is movable against a force of a spring element 18 when the damping stroke is performed. In this way, the volume of the fluid chamber 12 can be enlarged in a damping stroke, depending on the immersing piston rod 14. By virtue of the seal 16, the fluid chamber 12 can be sealed relative to the piston rod 14 and/or relative to an inner wall 22 of the damper housing 11.
[0042] The seal 16 can be guided in the damper housing 11 via at least one support element 17. In this way, the seal 16 can be stably guided, in addition to a sealing lip 16c (
[0043] After the damping stroke has been performed, the seal 16 can be at least partially resetted in a direction of the initial position by a spring element 18.
[0044] According to the invention, the at least one spring element 18, jointly with the at least one seal 16 and/or jointly with the at least one support element 17, is formed together to a common compensating member 19 so as to have an integral one-piece configuration.
[0045] The compensating member 19 and the at least one piston 13 can be arranged in the damper housing 11 behind each other in a longitudinal direction of the piston rod 14.
[0046] In the shown figures, the compensating member 19 is arranged in the damper housing 11 between the at least one fluid chamber 12 and an air chamber 26.
[0047] According to a preferred embodiment, the at least one spring element 18, the at least one seal 16, and the at least one support element 17 are formed together to a common compensating member 19 so as to have an integral one-piece configuration.
[0048] According to a preferred embodiment, the at least one spring element 18 of the compensating member 19 is partially pre-stressed in the initial position. Accordingly, the spring element 18 is thus already assembled into the damper housing 11 with a certain bias. The bias of the spring element 18 is again dissipated over the time due to a possible loss of the hydraulic damping fluid. In other words, the seal 16 can move up by a force of the spring element 18 in a direction of the piston 13 upon a loss of the damping fluid. Therefore, the loss of the damping fluid can be compensated for, and the volume of the fluid chamber 12 can be held constant.
[0049]
[0050] The compensating member 19 bears or is configured to bear against the at least one cover 24.
[0051] According to preferred embodiments, [0052] the at least one spring element 18 is supported on the at least one cover 24, and/or [0053] the at least one cover 24 includes an opening for the passage of the piston rod 14, and/or [0054] the at least one cover 24 is configured substantially cylindrical.
[0055] By a return spring 20, the piston 13 is pre-stressed in a direction of the extended position. Therefore, the piston 13 can be at least partially resetted again in a direction of an extended ready-position after a damping stroke. However, the return spring 20 can also be arranged outside the damper housing 11, or can be entirely omitted.
[0056]
[0057] At least one streaming channel 23a, 23b is provided which, upon a displacement of the piston 13, can be streamed through by the damping fluid. With the embodiment shown in
[0058]
[0059]
[0060] With possible embodiments, [0061] the at least one spring element 18 of the compensating member 19 is configured substantially funnel-shaped in a cross-section, and/or [0062] the at least one seal 16 of the compensating member 19 is configured substantially U-shaped in a cross-section, preferably wherein a first limb 16a of the U-shape bears against the piston rod 14 and/or a second limb 16b of the U-shape bears against the inner wall 22 of the damper housing 11, and/or [0063] the at least one seal 16 of the compensating member 19 includes at least one sealing lip 16c glidingly guided along the inner wall 22 of the damper housing 11, preferably wherein the at least one sealing lip 16c and the at least one support element 17 are spaced apart from each other in a longitudinal direction of the piston rod 14, and/or [0064] the at least one support element 17 of the compensating member 19 is configured substantially wedge-shaped in a cross-section, preferably wherein a tip of the wedge-shape is supportable on the inner wall 22 of the damper housing 11.
[0065] According to further embodiments, the compensating member 19 [0066] includes at least one, preferably central, opening 27 for the passage of the piston rod 14, and/or [0067] is displaceably supported on the piston rod 14.
[0068]
[0069] The volume compensating device 15 includes a compensating member 19 having an integral one-piece configuration, the compensating member 19 including the seal 16, the support element 17 and the spring element 18.
[0070] The cover 24 has an inner side 28 facing into the damper housing 11, and at least one convex contour 29 is arranged on the inner side 28 of the cover 24. An end 31 of the at least one spring element 18 is pivotally supported on the convex contour 29, and/or an inclined surface 30 is arranged on the inner side 28 of the cover 24, and an outer side of the at least one spring element 18, in a compressed condition, can bear against the inclined surface 30.
[0071] Due to the convex contour 29 arranged on the inner side 28 of the cover 24, it can be ensured that the end 31 of the spring element 18 bearing loosely against the cover 24 has a defined pivoting axis on the cover 24 when the damping stroke is performed. In this way, an unnecessary sliding friction of the spring element 18 on the cover 24 can be prevented.
[0072] Due to the inclined surface 30 arranged on the inner side 28, it can be ensured that the spring element 18 receives a defined bearing surface on the cover 24 when the damping stroke is performed, and/or that a preferred direction for the bulging of the spring element 18 can be determined.
[0073]
[0074] It can be seen that the end 31 of the spring element 18 bearing against the inner side 28 of the cover 24, when the damping stroke is performed, has been pivoted about an axis formed by the convex contour 29, and/or that a partial portion, preferably a free end 31, of the spring element 18, in a compressed condition, bears against the inclined surface 30 of the cover 24.
[0075]
[0076] As with all other embodiments of the invention, the at least one spring element 18 of the compensating member 19 [0077] includes a substantially closed circumferential surface in a radial direction, and/or [0078] has a length L in an axial direction, the length L being not more than twice as large than the length of the remaining components of the compensating member 19.
[0079]