DAMPING HINGE
20220186539 · 2022-06-16
Inventors
Cpc classification
E05F5/06
FIXED CONSTRUCTIONS
International classification
Abstract
Provided is a damping hinge for controlled closing of a door or gate. The damping hinge includes a first clamp plate configured to be mounted to a fixed supporting panel; a second clamp plate configured to be mounted to a panel of the door or gate, wherein the second clamp plate is connected with the first clamp plate for relative rotation about a hinge axis; and a damping mechanism arranged on at least one of the first clamp plate and the second clamp plate including a damper arranged substantially parallel to the hinge axis and configured to impact relative rotation of the second clamp plate towards the first clamp plate during closing of the hinge. The damping mechanism may be arranged such that the damping mechanism may be located outside of a plane of the respective panel and adjacent or next to an outer or facing surface of that panel.
Claims
1. A damping hinge for controlled closing of a door or gate, comprising: a first clamp plate configured to be mounted to a fixed supporting panel; a second clamp plate configured to be mounted to a panel of the door or gate, wherein the second clamp plate is connected with the first clamp plate for relative rotation thereto about a hinge axis; and a damping mechanism arranged on at least one of the first clamp plate and the second clamp plate, the damping mechanism including a linear damper arranged substantially parallel to the hinge axis and configured to retard or control relative rotation of the second clamp plate towards the first clamp plate during closing of the hinge.
2. The damping hinge according to claim 1, wherein the damping mechanism is arranged on the first clamp plate or the second clamp plate such that the damping mechanism will be located outside of a plane of the respective panel and adjacent or next to an outer or facing surface of that panel.
3. The damping hinge according to claim 1, comprising a damper base provided on the said clamp plate on which the damping mechanism is arranged, wherein the damping mechanism is arranged on the damper base.
4. The damping hinge according to claim 3, wherein the damper base is arranged in a hollow or cavity formed in said clamp plate such that the damping mechanism is positioned adjacent or next to an outer or facing surface of the respective panel.
5. The damping hinge according to claim 1, wherein one end of the linear damper is operatively fixed and an opposite end of the damper is provided with a movable pressure member or block which is movable in a vertical direction, and wherein the movable pressure member or block of the damping mechanism on said first or second clamp plate has a surface which engages with a surface of an actuating member that extends from the other clamp plate for effecting movement of the movable pressure member or block in the vertical direction upon relative rotation of the second clamp plate towards the first clamp plate to transmit a force to the damper during closing of the door or gate.
6. The damping hinge according to claim 5, wherein the movable pressure member includes a follower roller configured for rolling engagement with the actuating member, the engagement between the actuating member and follower roller causing movement of the movable pressure member vertically upon relative rotation of the second clamp plate towards the first clamp plate about the hinge axis to transmit force to the damper which, in turn, retards or controls closing of the hinge.
7. The damping hinge according to claim 6, wherein an outer surface of the follower roller is configured for rolling engagement with a surface of the actuating member in the manner of a cam follower, and wherein the surface of the actuating member is an inclined surface.
8. The damping hinge according to claim 7, wherein the movable pressure member has at least one guide roller in rolling engagement with a wall or a surface of the clamp plate, on which the linear damper is arranged, for rolling movement in the vertical direction to transmit the force to the linear damper.
9. The damping hinge according to claim 8, wherein the at least one guide roller is in rolling engagement with the follower roller, the at least one guide roller having a larger diameter portion in rolling engagement with the follower roller and a smaller diameter portion in rolling engagement with the wall or surface of the clamp plate, on which the linear damper is arranged, for rolling movement in the vertical direction.
10. A damping hinge for controlled closing of a glass door or gate, comprising: a first clamp plate configured to be mounted to a supporting structure; a second clamp plate configured to be mounted to a panel of the door or gate, wherein the second clamp plate is connected with the first clamp plate for relative rotation thereto about a vertical hinge axis; a damping mechanism arranged on the first clamp plate or the second clamp plate and having a linear damper that extends substantially parallel to the hinge axis, wherein one end of the damper is operatively fixed and an opposite end of the damper is operatively connected to a movable pressure member that is movable vertically to transmit force to the damper; and an actuating member that extends towards the clamp plate on which the damping mechanism is arranged from the other clamp plate to operatively engage with the movable pressure member; wherein the movable pressure member has a follower roller configured for rolling engagement with the actuating member, the engagement between the actuating member and follower roller causing movement of the movable pressure member vertically upon relative rotation of the second clamp plate towards the first clamp plate about the hinge axis to transmit force to the damper which, in turn, retards or controls closing of the hinge.
11. The damping hinge according to claim 10, wherein an outer surface of the roller is configured for rolling engagement with a surface of the actuating member in the manner of a cam follower.
12. The damping hinge according to claim 11, wherein the surface of the actuating member is an inclined surface.
13. The damping hinge according to claim 10, wherein the damping mechanism is arranged such that the linear damper is positioned outside of a plane of the panel adjacent or next to an outer or facing surface of the panel.
14. The damping hinge according to claim 10, wherein the damping mechanism is arranged on each of the first clamp plate and second clamp plate, wherein each damping mechanism includes the linear damper which is arranged vertically.
15. A damping hinge for controlled closing of a door or gate, comprising: a first clamp plate configured to be mounted to a fixed supporting panel; a second clamp plate configured to be mounted to a panel of the door or gate, wherein the second clamp plate is connected with the first clamp plate for relative rotation thereto about a hinge axis; and a damping mechanism arranged on at least one of the first clamp plate and the second clamp plate including a damper arranged substantially parallel to the hinge axis and configured to retard or control relative rotation of the second clamp plate towards the first clamp plate during closing of the hinge; wherein a movable pressure member provided at one end of the damper is movable in a vertical direction to transmit a force to the damper during closing of the door or gate, wherein the movable pressure member includes a follower roller configured to engage with a surface of an actuating member extending from the other clamp plate to effect the vertical movement of the movable pressure member upon relative rotation of the second clamp plate towards the first clamp plate.
16. The damping hinge according to claim 15, wherein the movable pressure member is configured for rolling movement in the clamp plate, on which the linear damper is arranged, in the vertical direction to transmit the force to the damper.
17. The damping hinge according to claim 15, wherein the movable pressure member includes at least one guide roller in rolling engagement with a wall or a surface of the clamp plate, on which the linear damper is arranged, for rolling movement in the vertical direction to transmit the force to the damper.
18. The damping hinge according to claim 17, wherein the at least one guide roller is in rolling contact or rolling engagement with the follower roller.
19. The damping hinge according to claim 17, wherein the at least one guide roller has a larger diameter portion in rolling engagement with the follower roller and a smaller diameter portion in rolling engagement with the wall or surface of the clamp plate, on which the linear damper is arranged, for rolling movement in the vertical direction.
20. The damping hinge according to claim 15, further comprising a damping adjustment device having an element, such as an adjustment screw, for setting an effective stroke or a working stroke of the damper.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0035] For a more complete understanding of the disclosure, exemplary embodiments of the disclosure are explained in more detail in the following description with reference to the accompanying drawing figures, in which like reference signs designate like parts, and in which:
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DETAILED DESCRIPTION
[0073] The accompanying drawings are included to provide a further understanding of the present disclosure and are incorporated in and constitute a part of this specification. The drawings illustrate some embodiments of the disclosure and together with the description serve to explain the principles of the disclosure. Other embodiments of the disclosure and many attendant aspects of the disclosure will be readily appreciated as they become better understood with reference to the following detailed description.
[0074] It will be appreciated that common and/or well understood elements that may be useful or necessary in a commercially feasible embodiment are not necessarily depicted in order to facilitate a more abstracted view of the embodiments. The elements of the drawings are not necessarily illustrated to scale relative to each other.
[0075] Referring to
[0076] It will be appreciated that the following three cases apply where one or more damping mechanisms 3 are arranged in the first clamp plate 4 and/or the second clamp plate 5: (i) a damping mechanism 3 is arranged in the first clamp plate 4; or, (ii) a damping mechanism 3 is arranged in the second clamp plate 5; or, (iii) damping mechanisms 3 are arranged in both the first and second clamp plates 4, 5. Therefore, a first inclined surface on the movable pressure block in abutting connection with a second inclined surface on the other clamp plate can be understood as follows: In the case (i) above, the first inclined surface 34 on the movable pressure block 32 in the first clamp plate 4 is in abutting connection with the second inclined surface 35 on the second clamp plate 5; e.g. the second inclined surface 35 is provided on an extension 35′ on the second clamp plate 5; or, the case (ii) above, the first inclined surface 34 of the movable pressure block 32 in the second clamp plate 5 is in abutting connection with the second inclined surface 35 of the first clamp plate 4; e.g., the second inclined surface 35 is provided on an extension 35′ on the first clamp plate 4; or, in the case (iii) above, the first inclined surface 34 of the movable pressure block 32 on the first clamp plate 4 is in abutting connection with the second inclined surface 35 of the fixed pressure block 31 on the second clamp plate 5, and the first inclined surface 34 of the movable pressure block 32 on the second clamp plate assembly 5 is in abutting connection with the second inclined surface 35 of the fixed pressure block 31 on the first clamp plate assembly 4. Moreover, abutting connection can be understood as follows: The first inclined surface 34 abuts against the second inclined surface 35 from above; or the second inclined surface 35 abuts against the first inclined surface 34 from above. The phrase “from above” in this context is to be understood with respect to an in-use orientation of the hinge when the hinge is installed on a door or gate.
[0077] Furthermore, in an embodiment, the first inclined surface 34 and the second inclined surface 35 are spiral inclined surfaces configured for abutting contact with each other, with the spiral angle of the spiral inclined surfaces being in the range of 5° to 85° or fractions thereof. The spiral diameters of the spiral inclined surfaces 34, 35 are typically equal to the rotational diameters of the positions where the spiral inclined surfaces are located.
[0078] It should be noted that the spiral inclined surfaces which are configured for abutting contact with each other can refer to an upper inclined surface and a lower inclined surface that are cut along or follow the same spiral tangent, wherein one inclined surface may serve as the first inclined surface and the other inclined surface may serve as the second inclined surface.
[0079] From the above description, when the first clamp plate 4 and the second clamp plate 5 rotate relative to one another about the hinge axis, e.g., as the door closes, the first spiral inclined surface 34 and the second spiral inclined surface 35 are pressed upon each other to make the movable pressure block 32 continuously compress the damper. That is to say that the inclined surfaces 34, 35 rotate horizontally and, on the movable pressure block 32, move vertically at the same time. The spiral inclined surfaces may be simulated according to the movement paths of the inclined surfaces to cause the first inclined surface and the second inclined surface to always be in surface contact when pressed against each other. Compared with line-to-line or point-to-point contact, the resulting stress with surface contact is more uniform, the squeezing effect is more ideal, and wear damage to the two inclined surfaces can be minimized or avoided, thereby improving the damping effect and service life of the damper.
[0080] Furthermore, the total length of the first inclined surface and the second inclined surface may be either greater or less than the maximum rotation distance between the first clamp plate and the second clamp plate.
[0081] From the above description, when the first and second clamp plates 4, 5 are opened to the maximum extent, the first inclined surface 34 may still be in surface contact with the second inclined surface 35, so that the first clamp plate and the second clamp plate can be damped when they start to close, thereby providing a better damping effect. At the same time, compared to solutions where squeezing contact only occurs later during the rotation process, there is no phase of the hinge movement in this embodiment where the rotational force builds up until it reaches a certain level at which point only then does contact occur. This makes the whole closing process of the damping hinge much smoother and avoids damage to the two inclined surfaces which may otherwise be brought about by sudden application of stress.
[0082] Furthermore, the damper 33 may be a hydraulic damper which may include a vertical pressure rod 36. From the above description, the hydraulic damper 33 is used for damping, so that the damper has a good damping effect, makes less noise, is low in cost, convenient to install, highly practical, and easy to promote and use. Furthermore, the damping hinge may also include a damper base 2, in which a damper groove 21 can be formed and in which the damping mechanism 3 may be arranged.
[0083] From the above description, the damper groove has a fixing and limiting function as well as a protecting effect. In addition, with regard to the technical solution in which the entire damping mechanism 3 is arranged in the damper groove 21, setting the length of the damper groove to be smaller than that of the damping mechanism when the damper 33 is not compressed ensures that the damping mechanism 3 will not extend completely after being placed in the damping groove. This means that the damping mechanism 3 will apply a constant counter-force to the movable pressure block 32 and the fixed pressure block 31 to abut against both sides of the damper groove 21, thereby forming a clamping effect to a certain extent and giving an auxiliary fixing function. This acts to ensure stability of the damping mechanism 3 in the damper groove 21.
[0084] Furthermore, a holding slot 37 matched with the hydraulic damper may be formed in the fixed pressure block 31 of the damping hinge. A slide groove 38 may be formed along on a side of the fixed pressure block 31 that faces or is close to the moveable pressure block 32 and a slide rod 39 may extend from a side of the moveable pressure block 32 that faces or is close to the fixed pressure block 31. In this way, the slide rod 39 and slide groove 38 connect vertically and interact to guide movement of the moveable pressure block 32 along the slide groove 38.
[0085] From the above description, it will be appreciated that one end of the hydraulic damper 33 is mounted stationary in the holding slot, i.e., connected with the fixed pressure block 31, which has a dual purpose and effect of fixing or limiting, as well as protecting. The slide groove 38 in the fixed pressure block 31 is matched with the slide rod 39 on the movable pressure block 32. The slide rod 39 connects to the slide groove 38 vertically, so that the movable pressure block 32 acts in a vertical direction on the pressure rod 36 of the hydraulic damper 33. Moreover, the limiting from the holding slot and the guidance from the slide groove holding slot means that the pressure rod 36 of the damper is always compressed in a vertical direction, thereby improving the damping effect and service life of the damper.
[0086] Furthermore, the damping mechanisms 3 may be arranged both in the first clamp plate 4 and in the second clamp plate 5. The pressure rod 36 of the damper 33 on the first clamp plate 4 may be vertically connected to the movable pressure block 32; and the pressure rod 36 of the damper 33 on the second clamp plate 5 may be vertically connected to the bottom of the holding slot 37. The first inclined surface 34 of the movable pressure block 32 on the first clamp plate 4 is in abutting connection with the second inclined surface 35 which is provided on an extension 35′ from the fixed pressure block 31 on the second clamp plate 5. Each extension 35′ effectively operates as an actuator or an actuating member for moving the respective movable pressure block 32 via the abutting connection of the first and second inclined surfaces 34, 35.
[0087] It should be noted that, in the same way, the pressure rod 36 of the damper 33 on the second clamp plate 5 may be vertically connected to the movable pressure block 32 and the pressure rod 36 of the damper 33 on the first clamp plate assembly 4 may be vertically connected to the bottom of the holding slot 37.
[0088] Existing damping hinges generally adopt horizontal hydraulic dampers. Although the hydraulic dampers are sealed, daily use may cause hydraulic fluid to slightly overflow from openings due to compression and gravity acting on the horizontal hydraulic dampers, thus often resulting in fluid leakage.
[0089] From the above description, it will be noted that the damping mechanisms 3 on the first clamp plate and the second clamp plate may be rotationally symmetrical, so that the first inclined surfaces and the second inclined surfaces can work together as they exert pressure on one another. That is to say, when the movable pressure block of the clamp plate on one side is located above, the fixed pressure block of the clamp plate on the other side is also located above. On this basis, the pressure rods of the two clamp plate assemblies are kept in the same direction when connected to different pressure blocks and the pressure rods on both sides are kept upright. The openings of the hydraulic dampers are formed in the same sides as the corresponding pressure rods. That is to say, the hydraulic dampers in this embodiment open upwards. For this reason, and because the dampers are compressed vertically, hydraulic fluid leakage can be effectively avoided, which improves the damping effect and service life of the dampers.
[0090] From the above description, it will be appreciated that the damper mechanism 3 may be arranged on only one clamp plate and the second inclined surface 35 matched with the first inclined surface 34 is arranged on the other clamp plate. For example, the damping mechanism 3 may be arranged in the first clamp plate 4. In that case, the second inclined surface 35 may be arranged on an extending portion 35′ of the second clamp plate assembly 5, close to the first inclined surface 34. The fixed pressure block 31 may have a limit portion matched with the hydraulic damper 33 and the damper groove may be formed with a slide notch for holding both sides of the movable pressure block all the times. In this way, the movable pressure block 32 is always held in the slide notch in order to limit the motion of the movable pressure block 32 as it moves vertically, thereby achieving both limiting and guiding effects.
[0091] In a particular embodiment, the movable pressure block may include two symmetrical first inclined surfaces, and two respective second inclined surfaces may be connected to the first inclined surfaces from their arrangement on an extension portion of the second clamp plate assembly. In this way, although the damping mechanism may be arranged on only one clamp plate, the first clamp plate assembly and second clamp plate assembly may rotate relative to one another in two directions of the hinge through the configuration of the symmetrical inclined surfaces.
[0092] In an embodiment, the damping mechanism 3 is detachably connected to the damper base 2. From the above description, the detachable connection results in the damping mechanism being easy to detach, maintain, and replace, thereby improving user experience of the damping hinge.
[0093] Referring to
[0094] A damping hinge 1 according to this embodiment is suitable for connecting two portions of a machine, a vehicle, a door, a window, or other implements, and is also suitable for the rotation and controlled closing of glass doors.
[0095] The damping hinge is composed of a hinge body 1 which includes a first clamp plate 4, a second clamp plate 5, damping mechanisms 3 respectively arranged in the first clamp plate 4 and the second clamp plate 5, and damper bases 2 corresponding to the damping mechanisms 3. One of the first clamp plate 4 and the second clamp plate 5 may be mounted to a glass door (not shown) and the other of the first clamp plate 4 and the second clamp plate 5 may be mounted to a supporting structure, such as a fixed glass panel. Damper grooves 21 are formed in the damper bases 2, the damping mechanisms 3 are arranged in the damper grooves 21, and the length of the damper grooves 21 is set to be smaller than that of the damping mechanisms 3 when dampers 33 are not compressed, so that the damping mechanisms 3 will not extend completely after being placed in the damper grooves 21 and will apply a counter-thrust to movable pressure blocks and fixed pressure blocks to abut against two sides of the damper grooves 21 in order to achieve a clamping effect to a certain extent for auxiliary fixing, thereby ensuring the stability of the damping mechanisms 3 in the damper grooves 21.
[0096] In this embodiment, the dampers 33 are hydraulic dampers, and each hydraulic damper includes an upright pressure rod 36.
[0097] As shown in
[0098] As shown in
[0099] As shown in
[0100] As shown in
[0101] In another embodiment, the first inclined surface 34 and the second inclined surface 35 only engage in surface contact during part of the rotational movement between the first clamp plate 4 and the second clamp plate 5. That is to say, rotational movement between the first clamp plate 4 and the second clamp plate 5 of the hinge is divided into two stages: the first stage is when the rotation of the hinge is allowed to accelerate during closing of the hinge (e.g. from a fully open position) where the first inclined surface 34 and the second inclined surface 35 have not come into surface contact; the second stage is when the first inclined surface 34 and the second inclined surface 35 come into surface contact to achieve a damping effect. In this embodiment, the total length of the first inclined surface 34 and the second inclined surface 35 is either less than or equal to the maximum hinge rotation distance between the first clamp plate 4 and the second clamp plate 5.
[0102] As shown in the three embodiments of
[0103] At the same time, as shown in
[0104] Referring to
[0105] Based on Embodiment 1, as shown in
[0106] As shown in
[0107] In this embodiment, the pressure rods 36 of the dampers 33 on the left and right sides of the hinge (i.e., on each of the two clamp plates 4, 5) are connected to the movable pressure blocks 32. In other optional embodiments, the pressure rods 36 of the dampers 33 on the left and/or right sides may be connected to the fixed pressure blocks 31.
[0108] Referring to
[0109] Based on Embodiment 2, the connection of the pressure rods 36 of the dampers 33 and the pressure blocks 31, 32 of the damping hinge in this embodiment is limited and substituted as follows: The pressure rod 36 of the damper 33 in damping mechanism 3 on the first clamp plate assembly 4 is vertically connected to the movable pressure block 32, and the pressure rod 36 of the damper 33 in the damping mechanism 3 on the second clamp plate 5 is vertically connected to the bottom of the holding slot 37. As an alternative, the pressure rod 36 of the damper 33 in the damping mechanism 3 on the second clamp plate 5 is vertically connected to the movable pressure block 32 and the pressure rod 36 of the damper 33 in the damping mechanism 3 on the first clamp plate 4 is vertically connected to the bottom of the holding slot 37. In this way, the pressure rods 36 of the dampers 33 in the damping mechanisms 3 on the two clamp plates 4, 5 are kept in the same orientation when connected to their respective pressure blocks 31, 32, so that both pressure rods 36 on the left and right sides are kept in an upright position. As an opening of each hydraulic damper 33 is formed in a side where the pressure rod 36 is located, this means that the hydraulic dampers in this embodiment can be arranged to have upwards facing openings, and to be compressed vertically, thereby effectively preventing hydraulic leakage and improving the damping effect and service life of the dampers 33.
[0110] Referring to
[0111] Based on Embodiment 1, in this embodiment, the damping mechanism 3 and the damper base 2 corresponding to the damping mechanism 3 are arranged in either the first clamp plate 4 or the second clamp plate 5 of the damping hinge. That is, only one damping mechanism 3 is installed. The damping mechanism 3 and the damper base 2 corresponding to the damping mechanism 3 installed on the first clamp plate 4 will now serve as an example for explanation purposes. In this case, the first inclined surface 34 is only arranged on the movable pressure block 32 of the damping mechanism 3 and the second inclined surface 35 extends in a fixed manner on the second clamp plate 5 for corresponding to a position of the first inclined surface 34 so as to match with the first inclined surface 34.
[0112] On this basis, in this embodiment, the fixed pressure block 31 has a limit portion (not shown in the diagram) that is matched with the hydraulic damper and installed in a fixed position in the damper base 2. The damper groove 21 is desirably formed with a slide notch 22 so as to always clamp both sides of the movable pressure block 32. This means that the movable pressure block 32 will always move in a vertical direction.
[0113] Referring to
[0114] Based on Embodiment 4, the movable pressure block 32 of the damping hinge in this embodiment includes two symmetrical first inclined surfaces 34. An extending portion of the second clamp plate 5 is correspondingly fitted or provided with two second inclined surfaces 35 that are configured to connect or abut cooperatively with each of the first inclined surfaces 34, depending on the direction of relative rotation of the hinge.
[0115] Referring to
[0116] In this regard,
[0117] In addition, as shown in
[0118] In addition, there is no limitation on the specific structure of the automatic tension adjuster 62. All of the embodiments referring to adjustment devices that are externally accessible should be regarded as equivalent embodiments in this the application.
[0119] In summary, the damping hinge proposed according to this disclosure has the first inclined surface of each movable pressure block in abutting connection with the second inclined surface on the other clamp plate, so that the movable pressure block and damper can move vertically. Spiral inclined surfaces may be adopted to ensure that each first inclined surface and the second inclined surface are in surface contact all the times when they press against each other, so that a better compression effect can be achieved and damage to both inclined surfaces can be prevented. The dampers are limited by the holding slots in the fixed pressure blocks and are guided by the slide grooves to compress and extend vertically. When the pressure rods of dampers in the damping mechanisms of the two clamp plate assemblies are connected to different pressure blocks, the hydraulic dampers in this embodiment can be arranged to have upward facing openings and to be compressed vertically, thereby effectively preventing hydraulic fluid leakage. The adjustment slot that is externally accessible allows the user convenient access, so that the closing strength of the hinge can be adjusted without disassembling the tension adjuster. This significantly improves the damping effect and service life of the dampers. At the same time, the length of the damper grooves is arranged to be shorter than that of the damping mechanisms when the dampers are not compressed in order to secure the damping mechanisms. The holding slots may be configured to fix the hydraulic dampers in place. Detachable connections make for convenient disassembly, which provides for an improved safety, stability, and user experience of the damping mechanisms.
[0120] With reference now to
[0121] With reference to
[0122] Referring to
[0123] With particular reference also to
[0124] With reference now to
[0125] As seen in
[0126] Referring to
[0127] With reference to
[0128] It will also be noted that the wall or surface 24 of the cavity or groove 21 against which the guide rollers 81 bear and roll includes a vertically extending channel or slot 25. Although, as seen in
[0129] With reference now to drawing
[0130] Although specific embodiments of the disclosure are illustrated and described herein, it will be appreciated by those of ordinary skill in the art that a variety of alternative and/or equivalent implementations exist. It should be appreciated that the exemplary embodiment or exemplary embodiments are examples only and are not intended to limit the scope, applicability, or configuration in any way. Rather, the foregoing summary and detailed description will provide those skilled in the art with a convenient road map for implementing at least one exemplary embodiment, it being understood that various changes may be made in the function and arrangement of elements described in an exemplary embodiment without departing from the scope as set forth in the present disclosure and any legal equivalents. Generally, this application is intended to cover any adaptations or variations of the specific embodiments discussed herein.
[0131] It will also be appreciated that in this document, as the context requires, the terms “comprise”, “comprising”, “include”, “including”, “contain”, “containing”, “have”, “having”, and variations thereof, are intended to be understood in an inclusive (i.e. non-exclusive) sense, such that the system, method, process, device or apparatus described herein is not limited to the features or parts or elements or steps recited but may include other features, parts, elements or steps not expressly listed or inherent to such system, method, process, device or apparatus. Furthermore, the terms “a” and “an” used herein are intended to be understood as meaning one or more unless explicitly stated otherwise. Moreover, the terms “first”, “second”, “third”, etc. as used herein, for example, in respect of particular embodiments or in respect of the two clamp plates or in respect of the two surfaces in abutting connection, are used herein merely as identifying labels and are not intended to impose any numerical requirements on, or to establish a certain ranking of importance of, their objects.
TABLE-US-00001 Description Of Reference Labels 1 = hinge body 2 = damper base 21 = damper groove 22 = slide notch 23 = slot or groove on damper base 23′ = slot or groove on damper base 24 = wall or surface of damper groove 25 = guide channel in wall 3 = damping mechanism 31 = fixed pressure member or block 32 = movable pressure member or block 33 = damper 34 = first inclined surface 34′ = roller 35 = second inclined surface 35′ = extension or actuating member 36 = pressure rod 37 = holding slot 38 = slide groove 39 = slide rod 13 = stop block on fixed pressure block 13′ = stop block on fixed pressure block 4 = first clamp plate 41 = cavity or hollow in first clamp plate 42 = first rear plate element 5 = second clamp plate 51 = cavity or hollow in second clamp plate 52 = second rear plate element 6 = rotation shaft 61 = rotation pin 62 = automatic tension adjuster 63 = torsion spring 64 = adjustment slot 65 = adjustment block 66 = spring 67 = rotation block 68 = pawl base 7 = adjustable insert component 8 = roller axle or pin 81 = guide roller 82 = central portion 83 = lateral portion 9 = damping adjustment screw 91 = hole P = glass panel C = cutout or recess in glass panel S = facing surface of glass panel