Vacuum-compatible clamping and / or braking devices
The annular elastic element with projections and housing member design for pneumatic clamps and brakes addresses operational failures in vacuum and cleanroom environments by preventing fluid leakage and contamination, ensuring reliable operation.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-04-22
- Publication Date
- 2026-04-07
AI Technical Summary
Pneumatic clamp and brake devices fail to operate reliably in vacuum or cleanroom environments due to contamination and operational issues.
An annular elastic element with inner and outer projections and a housing member design that includes bulges and inclinations to form a sealed pressure chamber, preventing fluid leakage and contamination, and using suitable materials for high-humidity environments.
The solution enables reliable operation of pneumatic clamps and brakes in vacuum and cleanroom environments without compromising their dynamics, reducing contamination and enhancing sealing performance.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to an annular elastic element of a pneumatic clamp and / or brake device, a housing member, and a pneumatic clamp and / or brake device having such an annular elastic element.
Background Art
[0002] In the manufacture of tools or machine members, processing machines, particularly work spindles or other machine tools, are used. These machines process materials from workpieces, particularly to a desired shape, using tools attached to a shaft. The shaft may be the rotating axis or the swivel axis of such a machine. Further, the shaft is used to arrange a rotatable or swiveling table to place the tool or workpiece at an appropriate machining position or to move the workpiece at an appropriate rotational speed. A prerequisite for performing precise and efficient machining is, in particular, a high rotational speed of the shaft. Therefore, an emergency system or a safety system has the problem of stopping the shaft or holding and fixing it in a fixed position when a system failure or malfunction such as a power outage or a cable disconnection occurs.
[0003] At this time, general processing machines are equipped with electromagnetic, hydraulic or pneumatic clamp and / or brake devices. Such devices are provided with a friction lining that can be frictionally connected to the shaft by force transmission. This makes it possible to fix the shaft at different speeds.
[0004] In the case of a hydraulic clamping device, hydraulic oil is supplied to the chamber, and the rotating shaft or disk is clamped. Passive hydraulic clamps are also known. However, such hydraulic clamps have a long reaction time or a short reaction time requires very high costs. Further, hydraulic materials such as hydraulic valves and hydraulic pipes are expensive and require a relatively long time for assembly. Also, additional costs are required to maintain the cleanliness around the hydraulic clamp due to the hydraulic oil.
[0005] In the case of pneumatic clamps and / or brake devices, compressed air is generally supplied to the elastic elements, especially the elastic plates, which can overcome some of the drawbacks of the hydraulic clamp devices described above.
[0006] Patent documents 1 and 2 describe a pneumatic clamping device comprising two annular spring plates, which are introduced into the housing of the clamping device to form a pressure chamber, into which compressed air is supplied or the pressure chamber is ventilated, thereby changing the bending of the spring plates and switching between a closed state in which the clamping device is clamped, such as a rotatable shaft, and an open state in which the object to be clamped is free. However, in practice, it has become clear that such clamps cannot be operated without causing problems to the clamp and the environment in vacuum and cleanroom environments. [Prior art documents] [Patent Documents]
[0007] [Patent Document 1] European Patent No. 1585616 [Patent Document 2] European Patent No. 1651881 [Overview of the Initiative] [Problems that the invention aims to solve]
[0008] Based on the prior art described at the beginning, the object of this disclosure is to provide a means for enabling pneumatic clamp and / or brake devices to operate reliably in a vacuum or cleanroom. [Means for solving the problem]
[0009] This problem relates to an annular elastic element having the features described in claim 1, Claim 15 A housing member having the characteristics described above, Claim 18The problem is solved by a clamp and / or brake device having the features described above. Preferred embodiments are described in the dependent claims, specification and drawings.
[0010] The solution according to the present invention provides an annular elastic element for a clamping device and / or a braking device, the element comprising an annular spring plate having a first annular side surface and a second annular side surface, and a sealing element (hereinafter referred to herein as the "second sealing element" as it is located on the second side surface of the spring plate), the sealing element being located on the second side surface of the spring plate, the sealing element forming an inner projection in the region of the inner edge of the annular spring plate, and an outer projection in the region of the outer edge of the annular spring plate, the inner and / or outer projections of the sealing element each forming at least partially a bulge.
[0011] In this disclosure, the term “ring” should not necessarily be understood as a circular shape. Other ring shapes, such as angular ring shapes, are also included in this concept.
[0012] In accordance with the concept of "projection," the inner and outer projections protrude from or extend from one or more surfaces of the (second) sealing element. Preferably, the (second) sealing element is formed integrally with and / or integrally with the inner and / or outer projections.
[0013] The solution according to the present invention further provides a housing member for a clamp and / or brake device, the housing member having an annular recess for clamping an elastic element according to the present invention, the recess forming a first annular edge and a second annular edge of an annular opening of the housing member, the annular recess defining the inner surface of the housing member between the first annular edge and the second annular edge, the inner surface forming a first inclination in the region of the first annular edge and a second inclination in the region of the second annular edge, the inclinations being aligned such that the annular opening expands toward the first and second edges. The bulges and inclinations have the effect of forming a product in which the elastic element and the housing member according to the present invention relate to each other, because each bulge may be in contact with one of the inclinations.
[0014] The solution according to the present invention provides a clamp and / or brake device for clamping and / or brake an object to be clamped and / or braked, the device comprising a first elastic element and a second elastic element according to the present invention, a housing comprising a first, preferably according to the present invention, housing member having an inner surface, and a second, preferably according to the present invention, housing member having an inner surface, wherein the housing members are arranged relative to each other and fastened together such that the inner surfaces of the housing members together partition an internal space inside the housing, and one or more clamp elements, each clamp element having a clamping surface, and a spring disposed in the internal space comprising the first elastic element and the second elastic element, wherein the elastic element is disposed in the internal space such that a first pressure chamber is formed between the elastic element and the inner surface of the housing member, the first pressure chamber is provided for ventilation and for applying positive pressure of a pressure medium that can be supplied to the housing It is possible to do so, and the first elastic element is clamped in the internal space with its first side facing the inner surface of the first housing member, and the second elastic element is clamped in the internal space with its first side facing the inner surface of the second housing member, and the spring is configured such that the bending of at least one spring plate of the elastic element is variable when the first pressure chamber is ventilated or aerated or when positive pressure is applied to the first pressure chamber, so that the device includes a spring which switches between an open state in which the object to be clamped is separated from one or more clamping surfaces and a closed state in which at least one clamping surface transmits a clamping force and / or braking force to the object, and the bulge of the inner or outer projection of at least one elastic element is configured to establish contact with a first portion of the inner surface of one of the housing members, so that fluid connection between the first pressure chamber and the transition between the housing members is at least prevented.
[0015] The long-standing, unresolved problem of the prone operation of clamps and / or brakes in vacuum or cleanroom environments (clamp failure and / or contamination of the surrounding atmosphere by the clamps) has been overcome by aspects of the present invention. The following developments by the inventors, individually and in combination, contribute even more to overcoming this problem.
[0016] For example, the inner and / or outer projections of the (second) sealing element can each form at least partially a bulge (or curved or outwardly directed arch) preferably extending radially, thereby providing particularly good sealing at the transitions of the housing member for use in a vacuum or cleanroom. The bulge may be formed by applying additional (elastic) material to the remaining portion of the projection of the sealing element. The bulge may be made to contact, for example, in the gap region of the transition of the housing member, to seal the inner space within the housing member and to seal against the inner wall of the housing member (e.g., a sloped or long chamfered portion). Preferably, the bulge of the outer projection of the second sealing element extends radially outward, preferably beyond the outer edge of the spring plate. Preferably, the bulge of the inner projection of the second sealing element extends radially inward, preferably beyond the inner edge of the spring plate.
[0017] The bulge is particularly advantageous for sealing the first pressure chamber against the gap at the transition between adjacent housing members. The bulge has the effect of preventing little to no flow of the medium through the housing edge during the operation of the first pressure chamber.
[0018] Instead of, or in addition to, the inner and / or outer projections of the second sealing element preferably each have at least partially flat surfaces which can function as support surfaces, particularly for sealing, against, for example, the housing wall or other elastic elements. This makes the clamp or its second pressure chamber more tightly sealed to prevent or stop the pressure medium from flowing out of the second pressure chamber into the surroundings. The flat surfaces increase resistance to permeation of the pressure medium (especially gases) when the pressure medium is supplied to the second pressure chamber. The flat surfaces reduce or prevent overflow of the medium between the first and second pressure chambers. Preferably, the bulges are close to or adjacent to the flat surfaces. Preferably, the flat surfaces merge with the bulges.
[0019] The flat surface further assists the displacement of the bulge relative to the inner wall of the housing member, and also assists the bulge's actions as described above. This assistance is particularly pronounced when the flat surface is close to, adjacent to, and / or merges with the attached bulge, as described above. The flat surface and the respective attached bulge thus form a synergistic combination of features, although they can also exist independently.
[0020] For use in vacuum or cleanroom environments, the elastic material used in the elastic element may preferably be a suitable material that releases little to no material into the vacuum (high media resistance), is suitable for high temperatures, and / or has low gas permeability.
[0021] To further contribute to particularly good sealing performance when used in a vacuum environment or cleanroom, the elastic element according to the present invention may have a first connection seal for a first connection for supplying a pressure medium to a first pressure chamber, the first connection seal sealing the first connection. Preferably, the edge of the first connection seal may at least partially, preferably completely, surround the first connection opening and may have an O-ring shape.
[0022] In order to further contribute to particularly good sealing for use in a vacuum environment or a clean room, the elastic element according to the invention can have a second connection seal for a second connection for supplying a pressure medium to the second pressure chamber, and the second connection seal seals the second connection. Preferably, the edge of the second connection seal can at least partially, preferably completely, surround the second connection opening and can have the shape of an O-ring. Particularly preferably, the edge can form a connection projection of the second connection seal, and the connection projection at least partially forms an undercut at the edge of the second connection opening. The housing member can be gripped rearwardly by the undercut of the connection projection of the elastic element. The undercut of the second connection seal reinforces the seal to the outside and, in particular, reduces the risk that the second connection seal will lift off from the flat surface of the housing when supplying the first pressure chamber. Furthermore, the use of a sealant (adhesive) at this location can be avoided by the undercut. Such a sealant can have an adverse effect on the vacuum or the clean room.
[0023] In order to further contribute to particularly good sealing for use in a vacuum environment or a clean room, the housing member according to the invention or the device according to the invention can have a groove or notch, preferably circular, for receiving an O-ring. The groove or notch with an O-ring supports the above-described functions of the bulge and the first connection seal so that fluid does not flow in or out through the edge of the housing when the first pressure chamber is operating. Furthermore, a sealant (adhesive) between the housing halves, which is undesirable for use in a vacuum and a clean room, can be omitted.
[0024] In order to enable use even in a high-humidity environment by adding a clamp to the vacuum or the clean room, the inventors have developed a series of means described below, which can be used alone or in combination with the above-described means.
[0025] When operating the device under the influence of a liquid medium, especially in the area of the clamping surface, there is a possibility that the liquid medium may penetrate into the housing of the device. As a result of this possibility, during operation, the penetration of the medium into the first pressure chamber occurs, which leads to retention in the first pressure chamber. The penetration of the liquid medium leads to component failures due to leakage (e.g., rubber damage), contamination within the device, and deterioration of the response time of the device. The inventors recognize that the penetration of the liquid medium is mainly due to small gaps existing in the housing members of the device, particularly at the transition of the two clamping elements or the clamping surface of the housing member. During the opening process, for example, by supplying compressed air to the second pressure chamber, the second pressure chamber expands. At the same time, the first pressure chamber is vented. Due to the movement of an elastic element (e.g., a rubberized spring plate), air is pushed out of the first pressure chamber, resulting in a suction effect through the first pressure chamber. As a result of the penetration of the liquid medium into the first pressure chamber, usually, especially a continuous small leakage to the second pressure chamber occurs, and as long as the second pressure chamber is expanding, a certain flow of the liquid medium is brought about. This effect enhances the suction effect, accelerates the failure of the device, or causes an early malfunction in the device.
[0026] Given this background, the inventors recognized that by attaching a sealing element having a projection to the side of the elastic element facing the first pressure chamber, this suction action can be interrupted or suppressed, and the aforementioned failures or malfunctions can no longer occur in the device. In particular, by this means, the fluid connection between the first pressure chamber and the transition portion of the housing member or clamp element can be prevented without impairing the opening and closing function or its dynamics of the device. In the elastic element according to the present invention, a second sealing element is positioned on the second side surface of an annular spring plate, and the second sealing element has an inner projection in the region of the inner edge of the annular spring plate of the elastic element and an outer projection in the region of the outer edge of the annular spring plate. These two projections on the inner and outer edges of the spring plate are generally placed on the inner wall of the opposing second elastic element or housing and are used to form a second pressure chamber. Therefore, each of these two projections may preferably have a support surface. In accordance with the inventor's above understanding, the elastic element according to the present invention has a (first) sealing element on the other (first) side of a spring plate which may face a first pressure chamber, the sealing element forming a first projection which, the first projection, therefore protrudes into the first pressure chamber and is suitable for at least preventing fluid connection between the first pressure chamber and the transition portion of the housing member in the first pressure chamber.
[0027] The first projection is preferably formed between the inner and outer edges of the annular spring plate, and particularly preferably, the first projection is formed in the region of the inner or outer edge of the annular spring plate so as to be close to the gap between the clamping elements, depending on whether the clamping action is directed inward or outward. The first projection is preferably mounted on the first side of the annular spring plate so as to be attached to the region of the transition between the housing member or clamping elements and suitable for protruding into the first pressure chamber.
[0028] Therefore, the first projection protrudes from or extends beyond the surface of the first sealing element. Preferably, the first sealing element is formed integrally with and / or integrally with the first projection.
[0029] In a preferred embodiment of the elastic element, the first sealing element further preferably has a second projection on the first side surface, preferably in the region of the annular spring plate edge opposite to the edge where the first projection is located, the second projection serves to further interrupt or block the fluid connection between the first pressure chamber and the transition portion of the housing member or clamp element.
[0030] According to a preferred embodiment of the elastic element, the first and / or second sealing element is vulcanized on a spring plate, thereby being fixed particularly well.
[0031] Preferably, the first projection and / or the second projection each have at least a partially rounded surface to establish contact with the inner wall of the housing having any shape, thereby preventing or interrupting the fluid connection as described above.
[0032] In a preferred embodiment of the housing member or apparatus, the housing member has a recess or indentation on its inner surface, the recess or indentation preferably, in its shape, complementary to the surface of the first or second projection in contact, thereby making the aforementioned contact particularly effective (sealing).
[0033] The inventors recognize that both the first projection and the second optional projection of the first sealing element are also suitable for preventing or avoiding the outflow of pressurized medium (especially gas) that may be supplied to the first pressure chamber. This makes it easier to use the clamp in high-humidity environments, in addition to its use in vacuum or cleanroom environments.
[0034] For use in high-humidity environments, vacuums, or cleanrooms, the housing components may be made of suitable materials that are resistant to corrosion, preferably steel, in order to avoid the release of rust into the vacuum or cleanroom.
[0035] By using the methods described herein individually or in combination, a clamp can be provided that can reliably operate in a vacuum and / or cleanroom, and optionally in a high-humidity environment, without adversely affecting the dynamics of the clamp's opening and closing.
[0036] In a brief explanation, when describing features not included in the claims, these features are not essential features in the sense that they must be included in the claims, but they are particularly important preferred realizations of the subject matter described in the claims and can be combined with any of the claims, or optionally combined with each other. [Brief explanation of the drawing]
[0037] [Figure 1A] This figure schematically shows a cross-section of the inward-facing passive pneumatic clamp and / or brake device according to the present invention in the closed state. [Figure 1B] This figure schematically shows a cross-section of the outward-facing passive pneumatic clamp and / or brake device according to the present invention in the closed state. [Figure 2A] This figure schematically shows a cross-section of the inward-facing passive pneumatic clamp and / or brake device according to the present invention in the open state. [Figure 2B] This figure schematically shows a cross-section of the outward-facing passive pneumatic clamp and / or brake device according to the present invention in the open state. [Figure 3A] This figure schematically shows a cross-section of the inward-facing active pneumatic clamp and / or brake device according to the present invention in the open state. [Figure 3B] This figure schematically shows a cross-section of the outward-facing active pneumatic clamp and / or brake device according to the present invention in the open state. [Figure 4A] This figure schematically shows a cross-section of the inward-facing active pneumatic clamp and / or brake device according to the present invention in the closed state. [Figure 4B] This figure schematically shows a cross-section of the outward-facing active pneumatic clamp and / or brake device according to the present invention in the closed state. [Figure 5A] This figure shows a three-dimensional cross-section of a pneumatic clamp and / or brake device according to the present invention. [Figure 5B] This figure shows an example of deformation of the housing member extracted from Figure 5A. [Figure 5C] This figure shows an example of deformation of the housing member extracted from Figure 5A. [Figure 5D] This figure shows an example of deformation of the housing member extracted from Figure 5A. [Figure 6A] This figure shows an embodiment of the elastic element according to the present invention. [Figure 6B] This figure shows an embodiment of the elastic element according to the present invention. [Figure 6C] This figure shows an embodiment of the elastic element according to the present invention. [Figure 7] This figure shows a cross-section of an example of deformation of a housing member according to the present invention. [Figure 8] This figure shows a cross-section perpendicular to the clamping plane of the apparatus according to the present invention. [Figure 9] This is a top view of the elastic element according to the present invention. [Figure 10] This is a top view showing an example of a modified housing member of the housing member of the device according to the present invention. [Figure 11] This figure shows a portion of the region of the second connecting seal in a cross-section perpendicular to the clamp plane, corresponding to the position of cross-section XI of the elastic element and housing member shown in Figures 9 and 10, in an embodiment of the apparatus according to the present invention. [Figure 12]This figure shows a portion of the region of the first connecting seal in a cross-section perpendicular to the clamp plane, corresponding to the position of cross-section XII of the elastic element and housing member shown in Figures 9 and 10, in an embodiment of the apparatus according to the present invention. [Modes for carrying out the invention]
[0038] Components shown in multiple drawings are given the same reference numeral.
[0039] This disclosure relates to annular elastic elements and housing members for pneumatic clamps and / or brake devices, and pneumatic clamps and / or brake devices comprising such annular elastic elements.
[0040] In this specification, when referring to a “clamp” device or “clamping device,” “clamping force,” or “clamping” process, the “brake” device or “brakeing device,” “braking force,” or “braking” process are also included.
[0041] Figures 1A to 5A and Figure 8 schematically show cross-sections of such a clamping device 10 according to the present invention, which has a housing 3 including two housing members 3a and 3b, and a spring 1 disposed within the housing 3 including at least two annular elastic elements 1a and 1b according to the present invention.
[0042] In this case, the clamping device 10 according to the present invention includes: a first elastic element 1a and a second elastic element 1b according to the present invention; a housing 3 including a first housing member 3a having an inner surface and a second housing member 3b having an inner surface, wherein the housing members 3a and 3b are arranged relative to each other and fastened together such that the inner surfaces of the housing members 3a and 3b together partition an internal space 13 inside the housing 3; one or more clamping elements 8, each clamping element 8 having a clamping surface 7; a spring 1 disposed in the internal space 13, including the first elastic element 1a and the second elastic element 1b, wherein the elastic elements 1a and 1b are arranged in the internal space 13 such that a first pressure chamber 4 is formed between the elastic elements 1a and 1b and the inner surfaces of the housing members 3a and 3b. The first pressure chamber 4 is capable of ventilation and the application of positive pressure of a pressure medium that can be supplied to the housing 3. The first elastic element 1a is clamped in the internal space 13 with its first side facing the inner surface of the first housing member 3a, and the second elastic element 1b is clamped in the internal space 13 with its first side facing the inner surface of the second housing member 3b. The spring 1 is configured such that the bending of at least one spring plate of the elastic elements 1a and 1b is variable when the first pressure chamber 4 is ventilated or aerated, or when positive pressure is applied to the first pressure chamber 4. This allows the device 10 to switch between an open state in which the object 5 to be clamped is separated from one or more clamping surfaces 7, and a closed state in which at least one clamping surface 7 transmits clamping force and / or braking force to the object 5. The device 10 according to the present invention further includes the means described at the beginning, which enable reliable operation of the device in a vacuum and / or clean room. These methods will be explained in more detail in relation to Figures 6 to 12.
[0043] Figures 1A, 1B, 4A, and 4B each show the clamping device 10 in a closed state, where the clamping surface 7 of the clamping element 8 is in contact with the circumference of the object 5. The clamping element 8 is also called a clamping lip. The clamping element 8 may be formed integrally with the other members of the housing members 3a and 3b, or it may be a structurally separate member from the other members of the housing members 3a and 3b.
[0044] The clamping force or clamping action of the clamping surface 7 on the object 5 to be clamped occurs in the clamping plane formed by two vectors that form the radii of the annular elastic elements 1a, 1b or the annular recess 11, respectively (see Figure 5A). The axis 9 extends through the center point of the ring of the member described herein as annular, and may therefore be referred to as the principal axis of the clamping device 10, and may extend perpendicular to the clamping plane. Where “inner” and “outer” projections, edges, or ends are referred to herein, the inner edge, projection, or end is closer to the axis 9 than the corresponding outer edge, projection, or end. The same applies to other members.
[0045] The clamping device 10 may be formed to be rotationally symmetric with respect to the spindle 9. The spindle 9 may extend through an opening in the clamping device 10 (opening 14 in Figure 5B) at approximately or precisely at its center. In Figures 1A and 4A, the object to be clamped 5, for example, the rotatable shaft of a machine or table, is positioned within the opening 14, and therefore the clamping force of the clamping device is directed radially inward toward the spindle 9 (perpendicular to the spindle 9) in the clamping plane. In Figures 1B and 4B, the object to be clamped 5 is positioned outside the clamping device 10, and therefore the clamping force of the clamping device is directed radially outward toward the spindle 9 (perpendicular to the spindle 9) in the clamping plane.
[0046] In Figures 1A, 2A, 3A, and 4A, the clamping element 8 is located between the spring 1 and the opening 14 or the spindle 9. On the other hand, in Figures 1B, 2B, 3B, and 4B, the object to be clamped 5 encloses the clamping device 10 at least partially, so the clamping element 8 is located between the object 5 and the opening 14 or the spindle 9. In Figures 1B, 2B, 3B, and 4B, instead of the object to be clamped 5, it is possible to introduce a member into the opening 14 that at least partially fills the opening 14, through which the spindle 9 extends.
[0047] In each of Figures 1A to 5A, the spring 1 is clamped between two contact surfaces (101 and 102 in Figures 5C and 5D) within the housing 3 of the clamping device 10 and extends between the two contact surfaces. In the initial state in Figures 1A to 2B when the device 10 is not pressurized, the spring 1 may be slightly bent so as to be fixed within the housing 3 in that state, and the same can be applied to other states of the device 10, with the degree of bending of the spring 1 depending on which state the device 10 is in. When the device 10 is in a state where the spring 1 is bent (for example, more bent than the initial unpressurized state such as the open state), the ventilation of the inner pressure chamber 2 and the outer pressure chamber 4 of the spring 1 causes the spring 1 to at least partially relax while it presses against the radial contact surface, slightly expanding the gap. As a result, the housing 3 elastically deforms in the area of the clamp element 8 or the clamp surface 7, and the clamp surface 7 thereby comes into contact with the object 5 and is pressed against the object 5 with a (predetermined) clamping force to tightly clamp the object 5. As shown in Figures 1A and 1B, the object 5 is tightly clamped and the clamping device 10 is in the closed state. In the closed state of the device 10, the spring 1 may remain slightly bent even after partially relaxing in order to be fixed within the housing 3 in that state.
[0048] In this case, the clamping element 8 may be an elastic element such as a spring fork, and in the initial unpressurized state of the device 10, the elastic element is brought from a relaxed starting position to a position under tension by bending the spring fork 8 until, for example, equilibrium is achieved between the restoring force of the elastic element 8 and the elasticity of the spring 1 in the initial unpressurized state, due to the elasticity of the (slightly) bent spring 1. In this equilibrium state, the clamping surface 7 can press against the object 5.
[0049] In the closed state, there is an optional possibility to increase the clamping force by a predetermined value by supplying additional compressed air (e.g., at 4 bar or 6 bar) to the outer pressure chamber 4. This is suggested in Figures 1A and 1B by an optional additional compressed air pump (booster) 6 and the shaded area (compressed air) in the outer pressure chamber 4. The outer pressure chamber 4 may be connected to an air connection I (also called the "close") by an opening in the housing 3, and the compressed air pump 6 may be connected to the air connection I.
[0050] This makes it possible to operate the device 10 so that, for example, a switch is made between the damped movement of the supplied object 5 (when it is not pressurized) and the full clamping of the object (when it is fully pressurized).
[0051] Although two pressure chambers 2 and 4 are shown and described here as examples, the clamping device 10 can also operate with only one pressure chamber, which could be, for example, the inner pressure chamber 2 or the outer pressure chamber 4.
[0052] Figures 2A and 2B show the clamping device 10 of Figures 1A and 1B in the open state, respectively. In the open state, the clamping surface 7 does not contact the circumference of the object 5, or is separated from the circumference of the object 5. The inner pressure chamber 2 may be connected to an air connection section II (also called "open") by an opening in the housing 3, and a compressed air pump 6 may be connected to the air connection section II.
[0053] By supplying compressed air (e.g., 4 bar or 6 bar) to the inner pressure chamber 2 via the compressed air pump 6 and venting the outer pressure chamber 4, the spring 1 is bent or stretched more strongly (convexly) than in the closed state shown in Figures 1A and 1B, and the distance between the spring 1 or the two contact surfaces is shortened radially. To release the clamp, the clamp surface 7 is lifted away from the object 5. The object 5 is freely movable (e.g., rotatable around the axis 9 or linearly movable along the axis 9), and the clamping device 10 is open.
[0054] The device 10 can be switched between a closed state and an open state in both directions.
[0055] Such a pneumatic clamp 10 has many advantages compared to a hydraulic clamp.
[0056] By using a combination of an elastic member, in this case a spring 1 including elastic elements 1a and 1b, and compressed air, a very short reaction time can be obtained when switching between open and closed states, for example, and a secure clamping of object 5 is also provided. The spring 1 may preferably be plate-shaped, as shown in detail in Figure 5, and two overlapping elastic elements 1a and 1b form the spring 1 and the internal pressure chamber 2 of the spring 1 between the plates 1a and 1b. The plates 1a and 1b may be annular, as shown in Figure 5, and may optionally have additional radial slots, which makes it possible to change the inner diameter with particularly small force. The elastic elements 1a and 1b may be coated with rubber, at least in the area of the slots, to establish the sealing required for compressed air. The elastic elements 1a and 1b are generally pressure-resistant and configured to be elastically bendable, and are arranged within the housing 3 of the clamping device 10. Inside the spring 1, an inner pressure chamber 2 is formed between the elastic elements 1a and 1b, and an outer pressure chamber 4 is formed between each elastic element 1a and 1b and the housing 3 or housing members 3a and 3b of the clamping device 10. Figure 5 is a three-dimensional representation of a clamping device 10 similar to those in Figures 1A and 2A.
[0057] As shown in Figure 1A, ventilation or supply of compressed air to the outer pressure chamber 4 and ventilation to the inner pressure chamber 2 cause the spring 1 to relax at least partially, thereby applying a clamping force around the object 5 to be clamped, particularly the shaft 5. This provides a secure clamp, so that if energy or pressure is interrupted, the object 5 is clamped or the shaft 5 immediately stops. Such a pneumatic clamp 10 can achieve a holding torque of several hundred Nm to a maximum of several thousand Nm, depending on the dimensions, and the holding torque can be further increased by supplying additional compressed air to the outer pressure chamber 4, as indicated by the pressure pump 6 (booster) in Figure 1A. In this case, several bars (e.g., 4 bar or 6 bar) of compressed air are sufficient to provide several times the holding torque obtained without the booster. At this time, the fact that a slight lateral bend (perpendicular to the longitudinal axis) of plates 1a and 1b is used when switching the open and closed states of the clamp 10 generates a large elasticity that can be used to clamp or release the pre-tensioned clamping device 10 is utilized. Therefore, even a rapidly rotating machine shaft 5 can be securely clamped and released.
[0058] In the case of pneumatic materials, the cost and assembly costs are lower than those of hydraulic materials, and there are no additional costs for cleaning the equipment due to the use of compressed air. Such pneumatic clamps can also be made smaller in overall dimensions because applying the required clamping force only requires a small lateral bend and a small longitudinal extension of the spring (a small change in the longitudinal extension), and therefore a small volume of the pressure chamber.
[0059] In the case of pneumatic clamps, in principle, a distinction is made between passive clamping devices 10 as shown in Figures 1A to 2B and active clamping devices 10 as shown in Figures 3A to 4B.
[0060] Spring 1, in its initial unpressurized state, may be bent (laterally) with different strengths and therefore may be shortened radially to different degrees. The inner surface of housing 3 can adapt to or determine the bending of elastic elements 1a and 1b. Stopper surfaces corresponding to elastic elements 1a and 1b may be formed, for example, by the inner wall of housing. The inner wall of housing may be formed complementary (e.g., concave) to the (e.g. convex) bending of elastic elements 1a and 1b.
[0061] In a passive clamping device 10, the spring 1 is usually slightly elastically bent (e.g., convex) or pretensioned in its initial unpressurized state, and the clamping device 10 may be closed (Figures 1A and 1B). The clamping device 10 is opened only by a force acting from the inside, through the supply of compressed air to the inner pressure chamber 2 (Figures 2A and 2B). In many cases, since the spring 1 is slightly bent in its initial unpressurized state, the spring 1 transmits the elasticity provided by the energy stored in the spring 1 as a clamping force to the object 5 to be clamped, in the case of clamping or when the pressure drops.
[0062] In the active clamping device 10, the spring 1, in its initial unpressurized state (Figures 3A and 3B), is more strongly curved convexly than in the passive clamping device, particularly strongly outward in the lateral direction. As a result, the distance between the two radial contact surfaces becomes smaller, and the clamping device 10 opens. No clamping force acts on the object 5 through the clamping surface 7. Since the clamping surface 7 does not contact the object 5 or is separated from it, the object is free.
[0063] Due to the plastic deformation of the elastic elements 1a and 1b, the spring 1 can bend more strongly laterally outward in the same housing 3 in its initial unpressurized state than in the case of a passive clamping device, and therefore can be significantly shortened radially. This small radial extension of the elastic elements 1a and 1b in the initial unpressurized state can result in the clamping device 10 being open in the initial unpressurized state. Even in the case of plastic deformation, the spring is fixed to the housing because the elastic elements 1a and 1b are elastically bent and pressed against the contact surface. The internal space or recess of the housing can accommodate the greater curvature resulting from the plastic deformation in the initial state.
[0064] As shown in Figures 4A and 4B, in order to move the clamp to the closed state, it is necessary to actively induce a clamping force from the outside. Here, compressed air is introduced into the outer pressure chamber 4 by the compressed air pump 6, and compressed air is supplied to the spring 1 from the outside, thereby actively relaxing the spring 1, reducing the curvature of the spring 1, increasing the distance between the two contact surfaces, and causing the housing 3 to elastically deform in the area of the clamping element 8 or clamping surface 7, so that the clamping surface 7 comes into contact with the object 5, and a clamping force is applied to the object 5, thereby tightly clamping the object 5. The active clamping device 10 then enters the closed state.
[0065] Depending on the application area and prescribed safety regulations, active or passive clamping devices 10 are used. Generally, passive clamping devices are used when safety clamping is the primary requirement. In such pneumatic passive clamping systems, a predetermined clamping force can be generated even before pressurization, when the device is assembled in conjunction with the overall system. This clamping force is applied to the object 5 to be clamped. By applying positive or negative pressure, the force transmitted to the object can be increased, decreased, or completely stopped, opening up a variety of applications. In contrast, active clamping devices are generally used when the clamping device is intended to perform a deliberate work process, such as tool changing.
[0066] As shown in Figure 5A, the housing 3 of the clamping device 10 according to the present invention includes two housing members 3a and 3b, which are assembled by fastening each other with fastening means such as screws, and in the assembled state, the two housing members 3a and 3b define an internal space 13 between the housing members 3a and 3b within the housing 3, and a spring 1 is disposed within the internal space 13 together with the annular elastic elements 1a and 1b according to the present invention. As shown in Figures 5A to 5D, the housing members 3a and 3b each define a recess 11, which is similarly annular and used to receive the annular elastic elements 1a and 1b. At least a portion of the first contact surface 101 of the housing member is extendable perpendicularly to the radial direction R of the annular recess 11, and / or a portion of the second contact surface 102 of the housing member is extendable perpendicularly to the radial direction R of the annular recess 11.
[0067] An opening 14 (Figure 5B) extends through the center of the housing 3, into which an object 5 to be clamped, such as a shaft, can be introduced. The housing can extend up to 360° around the opening and at least partially surrounds the object 5 in at least one plane called the clamping plane. The central spindle 9 of the clamping device passes through the center of the opening 14 and extends perpendicular to the clamping plane. In the clamping devices shown in Figures 1A, 2A, 3A, 4A, and 5A, the spindle 9 passes through the center of the shaft along its longitudinal axis.
[0068] One or more clamping surfaces 7 exist along the circumferential direction of the housing 3 or the opening 14, and the clamping surfaces 7 can apply a clamping force to the outer circumference of the object 5 when the housing 3 is elastically deformed in the area of the clamping element 8 or the clamping surface 7, thereby clamping the object 5. In order to effectively open and close the clamping device 10 on the object 5 to be clamped without risking damage to the object 5, it is desirable that the clamping force is distributed symmetrically along the clamping surface 7 or along the circumference of the object 5. If the clamping force is distributed asymmetrically, the object 5 may be damaged. Preferably, one or both contact surfaces 101, 102 are formed circularly in the clamping plane. Preferably, the clamping surface 7 is formed circularly in the clamping plane. The clamping element 8 may be formed in annular shape. Each of the annular or circular members described herein, individually or in combination, may have the intersection of the main shaft 9 with the clamping plane as its center point (e.g., the center point of the opening 14).
[0069] Figure 5B shows an embodiment of the housing member according to the present invention (in this figure, the upper housing member 3a in Figure 5A), the housing member 3a having an annular recess 11 for clamping an annular elastic element 1a, and the housing member 3a having an inner surface defined by the recess 11 (see 105 in Figure 7). The annular recess 11 preferably defines an annular opening 12 in the housing member, the annular opening being formed between a first annular edge 12a and a second annular edge 12b of the housing member. The elastic element 1a is clampable between the first annular edge 12a and the second annular edge 12b.
[0070] When the elastic element 1a is inserted into the recess 11 through the opening 12 with its first side surface (see 16c in Figure 6C) facing the inner surface and clamped in the recess 11, a first pressure chamber 4 is formed between the inner surface and the elastic element 1a. In this case, the elastic element according to the present invention has the means mentioned at the beginning, which enables the member to be reliably used in a vacuum and / or cleanroom. These means will be described in more detail with reference to Figures 6 to 12.
[0071] As shown in Figures 5C and 5D, the illustrated elastic element 1a of the spring 1 extends from the first contact surface 101 within the housing member 3a to the second contact surface 102 within the housing member 3a, and can contact the second contact surface 102. In this case, the first contact surface 101 is positioned radially outward from the second contact surface 102 when viewed from the center point of the opening 14.
[0072] Figure 5C shows a portion of the housing member 3a shown in Figure 5B, where the upper plate 1a of the spring 1 collides with and preferably contacts the first contact surface 101. Figure 5D shows a portion of the housing member 3a shown in Figure 5B, where the upper plate 1a of the spring 1 collides with and preferably contacts the second contact surface 102. However, it is also possible for one or more additional members to exist radially between the elastic element 1a and one or more contact surfaces 101 and 102, and for the elastic element 1a to exert elastic force on the contact surfaces 101 and 102 through these members.
[0073] As is evident from Figures 5B and 5D, the elastic element 1a is clamped in the recess 11 between the inner surfaces of the housing member 3a. During assembly, each plate of the spring 1 is introduced into the recess 11 of the respective attached housing member through the opening 12 along the inner surface of the housing member 3a, in the direction of the main axis 9 of the clamping device 10, until each plate abuts against the stoppers 112 and 122 at each end of the two contact surfaces 101 and 102, and thus can no longer be introduced into the recess 11. Since the portion of the elastic element 1a extending in the clamping plane or radially in the annular recess is larger than the portion of the internal space defined by the housing member, the plate 1a may be bent or pre-tensioned in its initial unpressurized state.
[0074] Figures 6A to 6C illustrate in more detail embodiments of the elastic element means according to the present invention for use in a vacuum and / or cleanroom, as well as optional means for use in a high-humidity environment.
[0075] Figure 6A shows annular elastic elements 1a, 1b for a clamp and / or brake device 10 according to the present invention, the elements 1a, 1b comprising: an annular spring plate 16 having a first annular side surface 16c and a second annular side surface 16d; an optional (first) seal element 17, preferably positioned on the first side surface 16c of the spring plate 16; a (second) seal element 15, wherein the (second) seal element 15 is positioned on the second side surface 16d of the spring plate 16, and the (second) seal element 15 forms an inner projection 15a in the region of the inner edge 16a of the annular spring plate 16 and an outer projection 15b in the region of the outer edge 16b of the annular spring plate 16, and the inner and / or outer projections 15a, 15b of the (second) seal element 15 each form at least partially bulges 15c, 15d. Preferably, any (first) sealing element 17 forms a first projection 17a.
[0076] Figures 6B and 6C show that the first projection 17a is formed between the inner edge 16a and the outer edge 16b of the annular spring plate 16. Here, as an example, the first projection 17a is formed in the region of either the inner edge 16a or the outer edge 16b of the annular spring plate 16.
[0077] Figures 6A and 6B further show that the first sealing element 17 preferably forms an optional second projection 17b on the first side surface 16c in the region of the outer edge 16b of the annular spring plate 16.
[0078] The projections 15a, 15b, 17a, and 17b of the first and / or second sealing elements 15 and 17 may be at least partially annular and may extend annularly around the axis 9. The projections 15a, 15b, 17a, and 17b of the first and / or second sealing elements 15 and 17 may each be fixable to the spring plate 16 and preferably vulcanized, or may be detachably positioned from the spring plate 16, preferably as O-rings.
[0079] Figures 6A and 6C further show that the longitudinal axis of the first projection 17a of the first sealing element 17 extends perpendicularly to the first side surface 16c of the spring plate 16.
[0080] As shown in Figures 6B and 6C, the inner projections 15a and / or outer projections 15b of the second seal element 15 each have at least partially flat surfaces 15e and 15f, which function as support surfaces against, for example, the (inner) housing wall or other elastic elements to partition and seal the second pressure chamber 2. These figures also show that the inner projections and / or outer projections 15a and 15b of the second seal element 15 each form bulges 15c and 15d that extend at least partially radially.
[0081] Preferably, as shown in Figure 6B, the bulge 15d of the outer projection 15b of the second seal element 15 extends radially outward, preferably beyond the outer edge 16b of the spring plate 16. Preferably, the bulge 15d is close to or adjacent to a flat surface 15f. Preferably, the flat surface 15f merges with the bulge 15d.
[0082] Preferably, as shown in Figure 6C, the bulge 15c of the inner projection 15a of the second sealing element 15 extends radially inward, preferably beyond the inner edge 16a of the spring plate 16. Preferably, the bulge 15c is close to or adjacent to a flat surface 15e. Preferably, the flat surface 15e merges with the bulge 15c.
[0083] The first sealing element 17 and / or the second sealing element 15 may be manufactured individually or together from an elastic material, preferably rubber or other suitable material, and the sealing elements are fixed to the spring plate 16 (e.g., by vulcanization).
[0084] Figure 7 shows housing members 3a and 3b according to the present invention. These housing members have an advantageous and preferred fit with the elastic elements 1a and 1b according to the present invention.
[0085] The housing members 3a and 3b include annular recesses 11 for clamping annular elastic elements 1a and 1b, the recesses 11 forming a first annular edge 12a and a second annular edge 12b of the annular opening 12 of the housing members 3a and 3b, the annular recesses 11 define the inner surface 105 of the housing members 3a and 3b between the first annular edge 12a and the second annular edge 12b, the inner surface 105 forming a first inclination 103 (or long chamfer) in the region of the first annular edge 12a, and the inner surface 105 forming a second inclination 104 (or long chamfer) in the region of the second annular edge 12b, the inclinations 103 and 104 are aligned so that the annular opening 12 expands toward the first and second edges 12a and 12b.
[0086] The inner surface 105 can form a first contact surface 101 and a second contact surface 102, which are configured to clamp the spring plates 16 of the elastic elements 1a and 1b according to the present invention between them, the first inclination 103 is positioned between the first contact surface 101 and the first annular edge 12a, and the second inclination 104 is positioned between the second contact surface 102 and the second annular edge 12b. When the elastic elements 1a and 1b are clamped in the recess 11 with the first side surface 16c facing the inner surface 105, the bulges 15c and 15d preferably contact the inclinations 103 and 104 in a sealing manner.
[0087] As shown in Figure 7, the first contact surface 101 may form a first inclination 103 (or a long chamfer) or merge with the first inclination 103, and / or the second contact surface 102 may form a second inclination 104 (or a long chamfer) or merge with the second inclination 104, wherein the inclinations 103 and 104 are preferably aligned such that the annular opening 12 or recess 11 expands toward the first and second edges 12a and 12b, respectively (see Figures 7 and 5B). Each of these inclinations 103 and 104 largely prevents the bending force of the clamp element 8 from being transmitted to the clamp element 8 by the second seal element 15, and rather the spring plate 16 or inner edge 16a primarily transmits the force for clamping or braking the object 5 to the clamp element 8 and clamp surface 7. This protects the second seal element 15 and makes the opening and closing process of the device more reliable.
[0088] The bulges 15c and 15d are provided to block the spaces of inclined surfaces 103 and 104 and to contact inclined surfaces 103 and 104. The bulges 15c and 15d are advantageous for the sealing of the first pressure chamber 4 to the transition gap of the clamping elements 8 of adjacent housing members 3a and 3b. The bulges at the edges of the housing with inclined surfaces 103 and 104 are advantageous in that little or no medium flows in or out through the edges of the housing during the operation of the first pressure chamber 4.
[0089] On the one hand, the flat surfaces 15e and 15f increase the resistance to permeation of the pressurizing medium (especially gas) when the pressurizing medium is supplied to the second pressure chamber 2. The flat surfaces 15e and 15f reduce or prevent overflow of the medium between the first pressure chamber 4 and the second pressure chamber 2. Furthermore, the flat surfaces 15f and 15e assist the displacement of the bulges 15c and 15d relative to the slopes 103 and 104 of the housing, and therefore the action of the bulges described above. This assistance is particularly noticeable when the flat surfaces 15e or 15f are adjacent to and / or merge with the bulges 15c or 15d to which they are attached, as described in relation to Figures 6B and 6C. Thus, the flat surfaces and the bulges to which they are attached form a combination of features that act synergistically, although they may exist individually. When considering vacuum operation, the respective sealing elements 17a and 17b are considered additional barriers, assisting the sealing of the first pressure chamber 4 to the environment.
[0090] The housing members 3a and 3b may have grooves or notches 110, preferably circular, for receiving O-rings. The grooves or notches 110 may preferably completely surround the housing members 3a and 3b along the circumference of the housing member in the region of the first annular edge 12a, or between the outer edge 100b of the housing member and the first contact surface 101 or recess 11. Alternatively or additionally, the grooves or notches 110 may preferably completely surround the housing members 3a and 3b along the circumference of the housing member in the region of the second annular edge 12b, or between the inner edge 100a of the housing member and the second contact surface 102 or recess 11.
[0091] A first sealing element is provided to ensure additional preferred sealing for use in high-humidity environments. When the elastic elements 1a, 1b are clamped in the recess 11 with their first side surfaces 16c facing the inner surface 105, the first projection 17a of the first sealing element 17 preferably contacts a first portion of the inner surface 105 of the housing members 3a, 3b in a sealing manner. The first portion may have a recess or depression 106 in the housing members 3a, 3b. Preferably, the surface shapes of the first projection 17a and the first portion 106 are at least partially complementary to establish contact that seals particularly effectively. When the elastic elements 1a, 1b are clamped in the recess 11 with their first side surfaces 16c facing the inner surface 105, the second projection 17b of the first sealing element 17 preferably contacts another portion of the inner surface 105 of the housing members 3a, 3b in a sealing manner. This other portion may have a recess or depression 107 in the housing members 3a, 3b. Preferably, the surface shapes of the second projection 17b and portion 107 are at least partially complementary in order to establish contact that is particularly effective in sealing. Each of the two projections 17a, 17b obstructs or completely blocks the fluid connection between the first pressure chamber 4 and the surrounding housing, particularly in the transition region of the two adjacent housing members 3a, 3b.
[0092] Preferably, the housing members are made of a corrosion-resistant material.
[0093] Figure 8 shows a clamp and / or brake device 10 according to the present invention. Figure 8 shows a device 10 having an inward clamping action, for example, as shown in Figures 1A, 2A, and 5.
[0094] In Figure 8, the first projection 17a of the first sealing element 17 of at least one of the elastic elements 1a, 1b preferably contacts a first portion (e.g., 106) of the inner surface 105 of one of the housing members 3a, 3b in a sealed manner, thereby at least preventing fluid connection between the region of the first pressure chamber 4 and the transition between the housing members 3a, 3b. This contact may at least partially seal off a medium, preferably a fluid or liquid, flowing into the housing 3 from outside the device 10 through the gap in the transition between the housing members 3a, 3b or the clamp element 8.
[0095] In Figure 8, the region of the first pressure chamber 4 is located between the first projection 17a of the first sealing element 17 of at least one elastic element 1a, 1b and the outer edge 16b of the spring plate 16 of at least one elastic element 1a, 1b, or between the second projection 17b of the first sealing element 17 of at least one elastic element.
[0096] Any second projection 17b of the first sealing element 17 of at least one elastic element 1a, 1b establishes contact with a second portion (e.g., 107) of the inner surface 105 of the housing members 3a, 3b, the second portion of the inner surface 105 preferably located between the first contact surface 101 and the second contact surface 102 of the housing members 3a, 3b. This projection can also reduce fluid connection between the first pressure chamber 4 and the outer region of the clamp element 8. The inner surface 105 may have one or more recesses or depressions 106, 107, the shape of which is preferably complementary to the surface of the contacting projections 17a, 17b.
[0097] When Figures 6, 7, and 8 are combined, it is clear that the first contact surfaces 101 of each housing member 3a, 3b form a first inclination 103, and the second contact surfaces 102 of each housing member 3a, 3b form a second inclination 104. The bulge 15c of the inner projection 15a of the second sealing element 15 of the first elastic element contacts the second inclination 104 of the second contact surfaces 102 of the housing members 3a, 3b, and the bulge 15d of the outer projection 15b of the second sealing element 15 of the first elastic element contacts the first inclination 103 of the first contact surfaces 101 of the housing members 3a, 3b.
[0098] In Figure 8, the first elastic element 1a and the second elastic element 1b are clamped in the internal space 13 such that the flat surfaces 15e of the inner projections 15a of the second sealing elements 15 of the elastic elements 1a and 1b are in contact with each other, and / or the flat surfaces 15f of the outer projections 15b of the second sealing elements 15b of the elastic elements 1a and 1b are in contact with each other, thereby partitioning the second pressure chamber 2 and sealing the second pressure chamber 2 in particular while supplying the pressure medium.
[0099] Figure 9 shows embodiments of elastic elements 1a and 1b according to the present invention, having a first connecting seal 30 and / or a second connecting seal 20.
[0100] The annular spring plate 16 may be positioned between the portion of the second connecting seal 20 and the portion of the first connecting seal 30. The first connecting seal 30 and the second connecting seal 20 can be positioned on opposing portions of the inner edge 16a or outer edge 16b of the annular spring plate 16.
[0101] The first connecting seal 30 and / or the second connecting seal 20 may each be made from an elastic material, preferably rubber.
[0102] The first connecting seal 30 may be positioned at least partially radially inward or outward offset from the inner edge 16a and / or outer edge 16b (see Figure 9) of the spring plate 16 of the elastic elements 1a and 1b. The first connecting seal 30 may be a portion of the first sealing element 17 and / or the second sealing element 15. The first connecting seal 30 may project radially beyond the inner edge 16a or the outer edge 16b (see Figure 9).
[0103] The second connecting seal 20 may be positioned at least partially radially inward or outward offset from the inner edge 16a and / or outer edge 16b (see Figure 9) of the spring plate 16 of the elastic elements 1a and 1b. The second connecting seal 20 may be a portion of the first sealing element 17 and / or the second sealing element 15. The second connecting seal 20 may project radially beyond the inner edge 16a or the outer edge 16b (see Figure 9).
[0104] Figures 11 and 12 show cross-sectional portions of the apparatus 10 according to the present invention, respectively. The left and right halves of Figures 11 and 12 show cross-sections of the elastic elements 1a and 1b according to the present invention shown in Figure 9 attached to the housing members 3a and 3b according to Figure 10, respectively. In this case, the elastic elements 1a and 1b are clamped in the recess 11 between the inner edge 100a (or clamp element 8 having a clamping surface 7) and the outer edge 100b of the housing members 3a and 3b, such that the first connecting seal 30 contacts the area of the housing members 3a and 3b for the first connecting portion I, and the second connecting seal 20 contacts the area of the housing members 3a and 3b for the second connecting portion II. By doing this twice, two members according to the present invention are prepared and fastened to each other, as shown in Figures 11 and 12.
[0105] The portion of the cross-section of the device 10 shown in Figure 11 corresponds, at its location, to the cross-section XI of the elastic elements 1a, 1b and housing members 3a, 3b in the region of the second connection seal 20 shown in Figures 9 and 10. The second connection seal 20 has an edge along the second connection opening, which is used to seal the second connection portion II of the clamp and / or brake device 10 in order to supply a pressure medium to the second pressure chamber 2 of the clamp and / or brake device 10. The second connection seal 20 forms a connection projection 21 along the edge of the second connection opening, which at least partially, preferably completely, surrounds the second connection opening.
[0106] The connecting projection 21 of the second connecting seal 20 has an undercut 22 formed at least partially on the edge of the second connecting opening to reinforce the seal, particularly against leakage of the pressurized medium into the environment. The undercut 22 of the second connecting seal 20 reduces the risk of the second connecting seal 20 lifting off the flat surface of the housing, particularly when supplying the first pressure chamber 4. Furthermore, the undercut 22 can avoid the use of sealant (adhesive) at this location, as such sealants can have adverse effects on vacuum or cleanroom environments.
[0107] The second connecting seal 20 can form the inner or outer projections 15a, 15b of the second sealing element 15. The projections of the second sealing element 15 formed by the second connecting seal 20 may be located on the side surface of the second connecting opening 20 that is facing away from and / or opposite to the side surface of the second connecting opening 20 where the connecting projection 21 is formed by the second connecting seal 20.
[0108] The portion of the cross-section of the device 10 shown in Figure 12 corresponds, at that location, to the cross-section XII of the elastic elements 1a, 1b and housing members 3a, 3b in the region of the first connection seal 30 shown in Figures 9 and 10. The first connection seal 30 has an edge of the first connection opening, which is used to seal the first connection I of the clamp and / or brake device 10 in order to supply a pressure medium to the first pressure chamber 4 of the clamp and / or brake device 10. The edge of the first connection seal 30 surrounds the first connection opening at least partially, preferably completely.
[0109] The first connection seal 30 may include an O-ring surrounding the first connection opening. The bulge 15d of the projection 15b with inclination 103, together with the first connection seal 30 at the connection I, ensures that fluid does not flow in or out through the edge of the housing when supply is made to the first pressure chamber 4. In addition, this may eliminate the need for undesirable sealants (adhesives) between the housing halves, which can adversely affect vacuum or cleanroom environments.
[0110] By using the methods described herein individually or in combination, it is possible to provide a clamp that can reliably operate in a vacuum and / or cleanroom, and optionally in a high-humidity environment, without adversely affecting the opening and closing dynamics of the clamp.
[0111] The specification and drawings describe preferred embodiments of the subject matter claimed by the attached claims. Any features disclosed in the above specification, claims and drawings may be used individually and in any combination in various embodiments for the implementation of the subject matter claimed by the attached claims.
[0112] The various aspects and embodiments described above can be combined to provide further embodiments. These and other modifications can be made to the embodiments in light of the above detailed description. In general, the concepts used in the following claims should not be interpreted as limiting the claims to specific aspects and embodiments disclosed in the specification and claims, but rather as encompassing all possible embodiments, along with the entire scope of the equivalents for which these claims are entitled. [Additional note 1] Annular elastic elements (1a, 1b) for a clamp and / or brake device (10), An annular spring plate (16) having a first annular surface (16c) and a second annular surface (16d), A sealing element (15) disposed on the second side surface (16d) of the spring plate (16), wherein the sealing element (15) forms an inner projection (15a) in the region of the inner edge (16a) of the annular spring plate (16) and an outer projection (15b) in the region of the outer edge (16b) of the annular spring plate (16), In the elastic elements (1a, 1b) including, Elastic elements (1a, 1b) characterized in that the inner and / or outer projections (15a, 15b) of the sealing element (15) each form at least partially a bulge (15c, 15d). [Additional note 2] The elastic element (1a, 1b) according to Appendix 1, characterized in that the bulge (15c) of the inner projection (15a) of the sealing element (15) extends radially inward, preferably beyond the inner edge (16a) of the spring plate (16), and / or the bulge (15d) of the outer projection (15b) of the sealing element (15) extends radially outward, preferably beyond the outer edge (16b) of the spring plate (16). [Additional note 3] The elastic element (1a, 1b) according to appendix 1 or 2, characterized in that the inner and / or outer projections (15a, 15b) of the sealing element (15) each have at least a partially flat surface, the flat surface preferably being a support surface for sealing the pressure chamber (2). [Additional note 4] The elastic elements (1a, 1b) according to Appendix 3, characterized in that the bulge (15c) of the inner projection (15a) is close to or adjacent to the flat surface (15e) of the inner projection (15a), and / or the bulge (15d) of the outer projection (15b) is close to or adjacent to the flat surface (15f) of the outer projection (15b). [Additional note 5] The elastic element (1a, 1b) according to any one of appendices 1 to 4, characterized in that the sealing element (15) is a second sealing element (15), and the elastic element further includes a first sealing element (17), the first sealing element (17) being located on a first side surface (16c) of the spring plate (16). [Additional note 6] The elastic element (1a, 1b) according to appendix 5, characterized in that the first sealing element (17) forms a first projection (17a). [Additional note 7] The elastic element (1a, 1b) according to appendix 6, characterized in that a first projection (17a) is formed between the inner edge and the outer edge of an annular spring plate (16), preferably the first projection (17a) is formed in the region of the inner edge (16a) or the outer edge (16b) of the annular spring plate (16). [Additional note 8] An elastic element (1a, 1b) according to any one of appendices 1 to 7, characterized in that the inner and / or outer projections of the sealing element (15) each protrude from a second side surface (16d), preferably formed on the second side surface (16d), and / or the first projection (17a) of the sealing element (17) protrudes from a first side surface (16c), preferably formed on the first side surface (16c). [Additional note 9] The elastic element (1a, 1b) according to any one of appendices 5 to 8, wherein the first sealing element (17) further preferably forms a second projection (17b) between the inner and outer edges of the annular spring plate (16), and particularly preferably in the region of the outer edge (16b) of the annular spring plate (16) on the first side surface (16c). [Additional Note 10] The elastic element (1a, 1b) according to any one of the appendices 1 to 9, characterized in that each projection of the first and / or second sealing element (15, 17) is at least partially annular. [Additional Note 11] The elastic element (1a, 1b) according to any one of appendices 6 to 10, characterized in that the first projection (17a) and / or the second projection (17b) of the first sealing element (17) have at least a partially rounded surface. [Additional Note 12] The elastic element (1a, 1b) according to any one of appendices 1 to 11, characterized in that each projection of the first and / or second sealing element (15) is fixed to a spring plate (16) and preferably vulcanized, or is preferably arranged as an O-ring so as to be releasable from the spring plate (16). [Additional Note 13] The elastic elements (1a, 1b) according to any one of the appendices 1 to 12, characterized in that each projection of the first and / or second sealing elements (15, 17) extends along a plane that intersects with the plane on which the spring plate (16) extends in an annular manner. [Additional Note 14] An elastic element (1a, 1b) according to any one of appendices 6 to 13, characterized in that the first projection (17a) of the first sealing element (17) has a surface that is at least partially rounded. [Additional Note 15] An elastic element (1a, 1b) according to any one of appendices 6 to 14, characterized in that the longitudinal axis of the first projection (17a) of the first sealing element (17) extends substantially perpendicular to the first side surface of the spring plate (16). [Additional Note 16] The elastic element (1a, 1b) according to any one of appendices 1 to 15, characterized in that the inner and / or outer projections (15a, 15b) of the sealing element (15) each have at least partially flat surfaces, the surfaces preferably being support surfaces for sealing the pressure chamber (2). [Additional Note 17] An elastic element (1a, 1b) according to any one of appendices 1 to 16, characterized in that the outer projection of the sealing element (15) is formed at least partially on the second side surface of the spring plate (16), and / or the outer projection of the sealing element (15) is positioned at least partially radially outward from the outer edge of the annular spring plate (16), preferably outside the second side surface (16d) of the spring plate (16). [Additional Note 18] The elastic elements (1a, 1b) according to any one of the appendices 1 to 17, wherein the elastic elements (1a, 1b) further include a first connection seal (30), the first connection seal defining an edge of a first connection opening of the first connection seal (30), the edge being suitable for sealing a first connection (I) of the clamp and / or brake device (10) to supply a pressure medium to a first pressure chamber (4) of the clamp and / or brake device (10). [Additional Note 19] The elastic element (1a, 1b) according to appendix 18, characterized in that the edge of the first connection seal (30) at least partially, preferably completely, surrounds the first connection opening. [Additional Note 20] The elastic elements (1a, 1b) according to any one of the appendices 1 to 19, wherein the elastic elements (1a, 1b) further include a second connection seal (20), the second connection seal defining an edge of a second connection opening of the second connection seal (20), the edge being suitable for sealing a second connection (II) of the clamp and / or brake device (10) to supply a pressure medium to a second pressure chamber (2) of the clamp and / or brake device (10). [Additional Note 21] The elastic element (1a, 1b) according to appendix 20, characterized in that the second connecting seal (20) forms a connecting projection (21) along the edge of the second connecting opening, the connecting projection at least partially, preferably completely, surrounds the second connecting opening. [Additional Note 22] The elastic element (1a, 1b) according to appendix 21, characterized in that the connecting projection (21) of the second connecting seal (20) forms an undercut (22) at least partially on the edge of the second connecting opening. [Additional note 23] The elastic elements (1a, 1b) according to any one of the appendices 18 to 22, characterized in that the first connecting seal (30) and / or the second connecting seal (20) are portions of the first sealing element (17) and / or the second connecting element (15), respectively. [Additional note 24] An elastic element (1a, 1b) according to any one of appendices 3 to 23, characterized in that the flat surface (15e) of the inner projection (15a) merges with the bulge (15c) of the inner projection (15a), and / or the flat surface (15f) of the outer projection (15b) merges with the bulge (15d) of the outer projection (15b). [Additional note 25] The elastic element (1a, 1b) according to any one of the appendices 18 to 24, characterized in that the first connecting seal (30) is positioned at least partially radially offset with respect to the first side surface (16c) and / or the second side surface (16d) of the spring plate (16). [Additional note 26] The elastic element (1a, 1b) according to any one of appendices 20 to 25, characterized in that the second connecting seal (20) is positioned at least partially radially offset with respect to the first side surface (16c) and / or the second side surface (16d) of the spring plate (16). [Additional note 27] An elastic element (1a, 1b) according to any one of appendices 20 to 26, characterized in that an annular spring plate (16) is positioned between a portion of the second connecting seal (20) and a portion of the first connecting seal (30), and / or the first connecting seal (30) and the second connecting seal (20) are positioned on opposing portions of the inner or outer edge (16b) of the annular spring plate (16). [Additional note 28] The elastic element (1a, 1b) according to any one of appendices 20 to 27, characterized in that the second connecting seal (20) forms a portion of the inner or outer projection (15b) of the second sealing element (15), preferably the portion of the projection of the second sealing element (15) is positioned at least partially radially offset with respect to the second side surface (16d) of the spring plate (16). [Additional note 29] The elastic element (1a, 1b) according to appendix 28, characterized in that the projection portion of the second sealing element (15) formed by the second connecting seal (20) is located on the side surface of the second connecting opening (20) that is facing away from and / or opposite to the side surface of the second connecting opening (20) where the connecting projection (21) is formed by the second connecting seal (20). [Additional note 30] An elastic element (1a, 1b) according to any one of appendices 1 to 29, characterized in that its flat surface (15e, 15f) is a support surface for sealing the pressure chamber (2). [Additional Note 31] The elastic element (1a, 1b) according to any one of appendices 1 to 30, characterized in that the first sealing element (17) and / or the second sealing element (15) and / or the first connecting seal (30) and / or the second connecting seal (20) are each made of an elastic material, preferably rubber. [Additional note 32] Elastic elements (1a, 1b) as described in Appendix 31, wherein the elastic material is made of rubber. [Additional note 33] A housing member (3a, 3b) for a clamp and / or brake device (10), wherein the housing member (3a, 3b) includes an annular recess (11) for clamping an annular elastic element (1a, 1b) as described in any one of the appendices 1 to 32. The recess (11) forms the first annular edge (12a) and the second annular edge (12b) of the annular opening (12) of the housing members (3a, 3b). The annular recess (11) defines the inner surface (105) of the housing member (3a, 3b) between the first annular edge (12a) and the second annular edge (12b), The inner surface (105) forms a first inclination (103) in the region of the first annular edge (12a) and a second inclination (104) in the region of the second annular edge (12b), and the inclinations (103, 104) are aligned such that the annular opening (12) expands toward the first and second edges (12a, 12b) of the housing members (3a, 3b). [Additional note 34] The housing member according to Appendix 33, wherein the inner surface (105) forms a first contact surface (101) and a second contact surface (102), the first contact surface (101) and the second contact surface (102) are configured to clamp a spring plate (16) of an elastic element according to any one of Appendix 1 to 32 between the first contact surface (101) and the second contact surface (102), a first inclination (103) is positioned between the first contact surface (101) and a first annular edge (12a), and a second inclination (104) is positioned between the second contact surface (102) and a second annular edge (12b). [Additional note 35] The housing member according to appendix 33 or 34, wherein, when the elastic elements (1a, 1b) are clamped in the recess (11) with the first side surface (16c) facing the inner surface (105), the first projection (17a) of the first sealing element (17) is configured to establish contact with a first portion of the inner surface (105) of the housing member (3a, 3b), preferably the first portion of the inner surface (105) is located between a first contact surface (101) and a second contact surface (102). [Additional note 36] The housing member according to any one of the appendices 33 to 35, wherein the elastic elements (1a, 1b) are clampable between a first contact surface (101) of the housing member and a second contact surface (102) of the housing member, and the first portion of the inner surface (105) is located between the first contact surface (101) and the second contact surface (102). [Additional note 37] The housing member according to any one of the appendices 33 to 36, characterized in that an annular recess (11) defines an annular opening in the housing member, and the annular opening is formed between a first annular edge (12a) and a second annular edge (12b) of the housing member. [Additional note 38] A housing member according to any one of appendices 33 to 37, characterized in that the elastic elements (1a, 1b) are clampable between the first annular edge (12a) and the second annular edge (12b). [Additional note 39] The housing member according to any one of the appendices 33 to 38, characterized in that the contact portion is sealed to a medium, preferably a fluid such as a liquid, that flows into the recess (11) from the outside of the housing member (3a, 3b), preferably in the region of one of the contact surfaces (101, 102) or the annular edge portion (12a, 12b). [Additional note 40] The housing member according to any one of the appendices 33 to 39, characterized in that a first contact surface (101) forms a first inclination (103), a second contact surface (102) forms a second inclination (104), and the inclinations (103, 104) are aligned such that the annular opening expands toward the first and second edges (12a, 12b). [Additional note 41] The housing member according to any one of the appendices 33 to 40, characterized in that the housing member (3a, 3b) has a groove or notch (110), preferably a circular groove or notch (110), for receiving an O-ring. [Additional note 42] The housing member according to Appendix 41, characterized in that the groove or notch (110) preferably completely surrounds the housing member along its circumference between the outer edge (100b) of the housing member and the first contact surface (101), or in the region of the first annular edge (12a), and / or preferably completely surrounds the housing member between the inner edge (100a) of the housing member and the second contact surface (102), or in the region of the second annular edge (12b). [Additional note 43] A housing member according to any one of the appendices 33 to 42, characterized in that the housing member is made of a material that is resistant to corrosion. [Additional note 44] The housing member according to any one of the appendices 33 to 43, wherein, when the elastic elements (1a, 1b) are clamped in the recess (11) with the first side surface (16c) facing the inner surface (105), the second projection (17b) of the first sealing element (17) is configured to establish contact with a second portion of the inner surface (105) of the housing member, the second portion of the inner surface (105) being located between the first contact surface (101) and the second contact surface (102). [Additional note 45] The housing member according to any one of the appendices 33 to 44, wherein the first and / or second portions are recesses or depressions (106, 107) on the inner surface (105), and preferably the shape of the recesses or depressions (106, 107) is complementary to the surface of the contacting protrusion. [Additional note 46] A clamp and / or brake device (10) for clamping and / or braking an object to be clamped and / or braked, A first elastic element (1a) as described in any one of appendices 1 to 32 and a second elastic element (1b) as described in any one of appendices 1 to 32, A housing (3) comprising a first housing member (3a) having an inner surface (105), preferably as described in any one of appendices 33 to 45, and a second housing member (3b) having an inner surface (105), preferably as described in any one of appendices 33 to 45, wherein the housing members are arranged relative to each other such that the inner surfaces (105) of the housing members (3a, 3b) together divide the internal space inside the housing (3), and are fastened to each other. One or more clamping elements (8), each clamping element having a clamping surface (7), A spring (1) disposed in the internal space, comprising a first elastic element (1a, 1b) and a second elastic element (1a, 1b), wherein the elastic elements are disposed in the internal space such that a first pressure chamber (4) is formed between the elastic elements (1a, 1b) and the inner surface (105) of the housing member, the first pressure chamber (4) is capable of ventilation and applying positive pressure of a pressure medium that can be supplied to the housing, the first elastic element (1a, 1b) is clamped in the internal space with its first side surface (16c) facing the inner surface (105) of the first housing member (3a), and the second elastic element (1a, 1b The spring (1) is clamped in the internal space with the first side surface (16c) of the second elastic element facing the inner surface (105) of the second housing member (3b), and the spring (1) is configured such that the bending of at least one spring plate (16) of the elastic element (1a, 1b) is variable when the first pressure chamber (4) is ventilated or aerated, or when positive pressure is applied to the first pressure chamber (4), thereby the device (10) switches between an open state in which the object (5) to be clamped is separated from one or more clamp surfaces (7) and a closed state in which at least one clamp surface (7) transmits clamping force and / or braking force to the object (5), It includes, A clamp and / or brake device (10) wherein the bulges (15c, 15d) of the inner or outer projections (15a, 15b) of at least one elastic element (1a, 1b) are configured to establish contact with a first portion of the inner surface (105) of one of the housing members (3a, 3b), thereby preventing at least fluid connection between the first pressure chamber (4) and the transition between the housing members (3a, 3b). [Additional note 47] The apparatus according to Appendix 46, wherein a first projection (17a) of a first sealing element (17) of at least one elastic element (1a, 1b) is configured to establish contact with a second portion of the inner surface (105) of one of the housing members (3a, 3b), thereby preventing at least fluid connection between the region of the first pressure chamber (4) and the transition between the housing members (3a, 3b). [Additional note 48] The apparatus (10) according to appendix 46 or 47, characterized in that the contact portion is at least partially sealed to a medium, preferably a fluid or liquid, flowing from the periphery of the apparatus through the transition portion of the housing member, preferably in the region of at least one clamp surface (7), into the housing or the first pressure chamber (4). [Additional note 49] The apparatus (10) according to any one of the appendices 46 to 48, characterized in that the region of the first pressure chamber (4) is located between a first projection (17a) of a first seal element (17) of at least one elastic element and the inner or outer edge of a spring plate (16) of at least one elastic element, or a second projection (17b) of the first seal element (17) of at least one elastic element. [Additional Note 50] The apparatus (10) according to any one of the appendices 46 to 49, characterized in that a first housing member is gripped rearward by an undercut (22) of a connecting projection (21) of a first elastic element, and / or a second housing member is gripped rearward by an undercut (22) of a connecting projection (21) of a second elastic element. [Additional note 51] The apparatus (10) according to any one of the appendices 46 to 50, characterized in that the clamping and / or braking force is provided by the inner or outer edge of at least one spring plate (16) of the elastic element (1a, 1b) being supported by one inner surface of the inner surface (105), and the outer or inner edge (16a, 16b) of at least one spring plate (16) pressing against the clamping element. [Additional note 52] A clamp and / or brake device (10) as described in any one of the appendices 46 to 51, wherein the first pressure chamber (4) is located outside the spring (1). [Additional note 53] A clamp and / or brake device (10) according to any one of appendices 46 to 52, wherein the first spring plate (16) of the first elastic element is configured to reduce the bending of the first spring plate by applying positive pressure to the first pressure chamber, and when the inner or outer edge of the first spring plate (16) is supported by the inner surface (105) of the first housing member, the outer or inner edge of the first spring plate (16) presses against one of the clamp elements, thereby transmitting a clamping and / or braking force from the clamping surface of the clamp element to the object (5) to be clamped and / or braked, and the device (10) switches from an open state to a closed state. [Additional note 54] A clamp and / or brake device (10) as described in any one of the appendices 46 to 53, wherein the device (10) is configured such that, by ventilation of the first pressure chamber or by applying positive pressure to the first pressure chamber (4), one of the clamp elements of the clamp elements separates from a portion of one of the inner surfaces (105) and / or the bending of at least one spring plate (16) of the elastic element is reduced, thereby switching the device (10) from an open state to a closed state. [Additional note 55] A clamp and / or brake device (10) according to any one of the appendices 46 to 54, wherein the internal space includes a second pressure chamber (2), the second pressure chamber (2) being positioned between elastic elements inside the spring (1), and preferably the device (10) is configured such that by ventilation of the second pressure chamber (2) or by applying positive pressure to the second pressure chamber (4), one of the clamp elements (8) moves toward a portion of one of the inner surfaces (105) and / or the bending of at least one spring plate (16) of the elastic element increases, thereby switching the device (10) from a closed state to an open state. [Additional note 56] A clamp and / or brake device (10) according to any one of the appendices 46 to 55, wherein a spring plate (16) of at least one elastic element (1a, 1b) is clamped between a first contact surface (101) and a second contact surface (102) of the first housing member, and a first portion of the inner surface (105) is located between the first and / or second contact surfaces (101, 102) of the first housing member and the transition portion of the housing members (3a, 3b). [Additional note 57] A clamp and / or brake device (10) according to any one of appendices 46 to 56, characterized in that a first portion of the inner surface (105) forms first and second inclinations (103, 104), the bulges (15c, 15d) of the inner projection (15a) of at least one elastic element (1a, 1b) contact a second inclination of the second contact surface (102) of the first housing member, and the bulges (15c, 15d) of the outer projection (15b) of at least one elastic element (1a, 1b) contact a first inclination of the first contact surface (101) of the first housing member. [Additional note 58] A clamp and / or brake device (10) according to any one of the appendices 46 to 57, wherein a second elastic element (1a, 1b) is clamped between a first contact surface (101) and a second contact surface (102) of the second housing member, and a first portion of the inner surface (105) is located between the first contact surface (101) and the second contact surface (102) of the second housing member. [Additional note 59] A clamp and / or brake device (10) according to appendix 58, characterized in that the first contact surface (101) of the second housing member forms a first inclination (103), the second contact surface (102) of the second housing member forms a second inclination (104), the bulges (15c, 15d) of the inner projection (15a) of the second seal element (15) of the second elastic element contact the second inclination of the second contact surface (102) of the second housing member, and the bulges (15c, 15d) of the outer projection (15b) of the second seal element (15) of the second elastic element contact the first inclination of the first contact surface (101) of the second housing member. [Additional note 60] A clamp and / or brake device (10) according to any one of appendices 46 to 59, characterized in that a first elastic element (1a, 1b) and a second elastic element (1a, 1b) are clamped in an internal space such that the flat surfaces (15e, 15f) of the inner projections (15a) of the elastic elements are in contact with each other, and / or the flat surfaces (15e, 15f) of the outer projections (15b) of the elastic elements are in contact with each other, preferably thereby partitioning a second pressure chamber (2). [Additional note 61] A clamp and / or brake device (10) according to any one of the appendices 46 to 60, wherein a second projection (17b) of a first sealing element (17) of at least one elastic element is configured to establish contact with a second portion of the inner surface (105) of a housing member, preferably the second portion of the inner surface (105) is located between a first contact surface (101) and a second contact surface (102). [Additional note 62] A clamp and / or brake device (10) according to any one of appendices 46 to 61, wherein the first and / or second portions are recesses or indentations (106, 107) on the inner surface (105), and preferably the shape of the recesses or indentations (106, 107) is complementary to the surface of the contacting projection. [Additional note 63] A clamp and / or brake device (10) according to any one of the appendices 46 to 62, characterized in that a first connection seal (30) of at least one elastic element seals a first connection (I) of the clamp and / or brake device (10) to supply a pressure medium to a first pressure chamber (4). [Additional note 64] A clamp and / or brake device (10) according to any one of the appendices 46 to 63, characterized in that a second connection seal (20) of at least one elastic element seals a second connection (II) of the clamp and / or brake device (10) to supply a pressure medium to a second pressure chamber (2) of the clamp and / or brake device (10). [Additional note 65] A clamp and / or brake device (10) according to any one of appendices 46 to 64, characterized in that each housing member has a groove or notch (110), preferably a circular groove or notch (110), and two contacting O-rings are received in the groove or notch (110) between the housing members. [Additional note 66] The clamp and / or brake device (10) according to appendix 65, characterized in that the grooves or notches (110) of each housing member preferably complete a full circle along the circumference of the housing member between the outer edge (100b) of the housing member and the recess (11) or first contact surface (101). [Additional note 67] A clamp and / or brake device (10) as described in any one of appendices 46 to 66, characterized in that each housing member is made of a corrosion-resistant material. [Explanation of Symbols]
[0113] 1 Spring, 1a, 1b Elastic elements, 2, 4 Pressure chambers, 3 Housing, 3a, 3b Housing members, 5 Object, 6 Compressed air pump, 7 Clamp surface, 8 Clamp element, 9 Main shaft, 10 Clamp and / or brake device, 11 Recess, 12 Annular opening, 12a First annular edge, 12b Second annular edge, 13 Internal space, 14 Opening, 15 Second seal element, 15a Inner projection, 15b Outer projection, 15c, 15d Bulge, 15e, 15f Flat surface, 16 Spring plate, 16a Inner edge, 16b Outer edge, 16c First side, 16d Second side, 17 First seal element, 17a First projection, 17b Second projection, 20 Second connecting seal, 21 Connecting projection, 22 Undercut, 30 First connecting seal, 100a inner edge, 100b outer edge, 101 first contact surface, 102 second contact surface, 103 first inclination, 104 second inclination, 105 inner surface, 106,107 recess or recess, 110 groove or notch, 112,122 stopper, I first connection, II second connection, R radial direction, XI,XII cross section
Claims
1. A clamp and / or brake device (10) for clamping and / or braking an object to be clamped and / or braked, A first elastic element (1a) and a second elastic element (1b), wherein each of the first elastic element (1a) and the second elastic element (1b) is An annular spring plate (16) having a first annular surface (16c) and a second annular surface (16d), The sealing element (15) is disposed on the second side surface (16d) of the spring plate (16), and includes an inner projection (15a) formed in the region of the inner edge (16a) of the annular spring plate (16), and an outer projection (15b) formed in the region of the outer edge (16b) of the annular spring plate (16), The inner and / or outer projections (15a, 15b) of the sealing element (15) each form at least partially a bulge (15c, 15d), The first elastic element (1a) and the second elastic element (1b) are such that the bulge (15c) of the inner projection (15a) of the sealing element (15) extends radially inward, preferably beyond the inner edge (16a) of the spring plate (16), and the bulge (15d) of the outer projection (15b) of the sealing element (15) extends radially outward, preferably beyond the outer edge (16b) of the spring plate (16). A housing (3) including a first housing member (3a) and a second housing member (3b), wherein each of the first housing member (3a) and the second housing member (3b) is It includes an annular recess (11) for clamping one of the corresponding annular elastic elements (1a, 1b), The recess (11) forms the first annular edge (12a) and the second annular edge (12b) of the annular opening (12) of the housing members (3a, 3b). The annular recess (11) defines the inner surface (105) of the housing member (3a, 3b) between the first annular edge (12a) and the second annular edge (12b), The inner surface (105) forms a first inclination (103) in the region of the first annular edge (12a) and a second inclination (104) in the region of the second annular edge (12b), and the inclinations (103, 104) are positioned such that the annular opening (12) expands toward the first and second edges (12a, 12b). The inner surface (105) forms a first contact surface (101) and a second contact surface (102), and the first contact surface (101) and the second contact surface (102) are configured to clamp the spring plate (16) of the elastic element between the first contact surface (101) and the second contact surface (102), the first inclination (103) is positioned between the first contact surface (101) and the first annular edge (12a), and the second inclination (104) is positioned between the second contact surface (102) and the second annular edge (12b), The housing members (3a, 3b) are arranged relative to each other such that their inner surfaces (105) both divide the internal space inside the housing (3), and are fastened to each other, One or more clamping elements (8), each clamping element having a clamping surface (7), A spring (1) disposed in the internal space, including a first elastic element (1a, 1b) and a second elastic element (1a, 1b), The elastic element is arranged in the internal space such that a first pressure chamber (4) is formed between the elastic element (1a, 1b) and the inner surface (105) of the housing member, and the first pressure chamber (4) is capable of ventilation and applying positive pressure of a pressure medium that can be supplied to the housing. The first elastic elements (1a, 1b) are clamped within the internal space such that the first side surface (16c) of the first elastic element faces the inner surface (105) of the first housing member (3a), and the spring plate (16) of the first elastic element (1a) is clamped between the first contact surface (101) and the second contact surface (102) of the first housing member (3a). The second elastic elements (1a, 1b) are clamped within the internal space such that the first side surface (16c) of the second elastic element faces the inner surface (105) of the second housing member (3b), and the spring plate (16) of the second elastic element (1b) is clamped between the first contact surface (101) and the second contact surface (102) of the second housing member (3b). The spring (1) is configured such that the bending of at least one spring plate (16) of the elastic element (1a, 1b) is variable when the first pressure chamber (4) is ventilated or when positive pressure is applied to the first pressure chamber (4), thereby enabling the device (10) to switch between an open state in which the object (5) to be clamped is separated from one or more clamping surfaces (7), and a closed state in which at least one of the one or more clamping surfaces (7) transmits clamping force and / or braking force to the object (5). It includes, The bulges (15c, 15d) of at least one elastic element (1a, 1b) contact the inclined portions (103, 104) of the corresponding housing members (3a, 3b) in a sealing manner, thereby preventing at least fluid connection between the first pressure chamber (4) and the transition between the housing members (3a, 3b) in the clamp and / or brake device (10).
2. The clamp and / or brake device (10) according to claim 1, characterized in that the inner and / or outer projections (15a, 15b) of the sealing element (15) each have at least a partially flat surface, and the flat surface is preferably a support surface for sealing the pressure chamber (2).
3. The clamp and / or brake device (10) according to claim 2, characterized in that the bulge (15c) of the inner projection (15a) is close to or adjacent to the flat surface (15e) of the inner projection (15a), and / or the bulge (15d) of the outer projection (15b) is close to or adjacent to the flat surface (15f) of the outer projection (15b).
4. The clamp and / or brake device (10) according to claim 1, characterized in that the sealing element (15) is a second sealing element (15), and the elastic element further includes a first sealing element (17), the first sealing element (17) being positioned on a first side surface (16c) of the spring plate (16).
5. The clamp and / or brake device (10) according to claim 4, characterized in that the first sealing element (17) forms a first projection (17a).
6. The clamp and / or brake device (10) according to claim 5, characterized in that a first projection (17a) is formed between the inner edge and the outer edge of the annular spring plate (16), preferably the first projection (17a) is formed in the region of the inner edge (16a) or the outer edge (16b) of the annular spring plate (16).
7. The clamp and / or brake device (10) according to claim 1, characterized in that the inner and / or outer projections of the sealing element (15) each protrude from a second side surface (16d), preferably formed on the second side surface (16d), and / or the first projection (17a) of the sealing element (17) protrudes from a first side surface (16c), preferably formed on the first side surface (16c).
8. The clamp and / or brake device (10) according to claim 4, wherein the first sealing element (17) further preferably forms a second projection (17b) between the inner and outer edges of the annular spring plate (16), and particularly preferably in the region of the outer edge (16b) of the annular spring plate (16) on the first side surface (16c).
9. The clamp and / or brake device (10) according to claim 1, characterized in that each projection of the first and / or second sealing elements (15, 17) is at least partially annular.
10. The clamp and / or brake device (10) according to claim 5, characterized in that the first projection (17a) and / or second projection (17b) of the first sealing element (17) have at least a partially rounded surface.
11. The clamp and / or brake device (10) according to claim 5, characterized in that the longitudinal axis of the first projection (17a) of the first sealing element (17) extends substantially perpendicular to the first side surface of the spring plate (16).
12. The clamp and / or brake device (10) according to claim 1, wherein the elastic elements (1a, 1b) further include a first connection seal (30), the first connection seal defining an edge of a first connection opening of the first connection seal (30), the edge being suitable for sealing a first connection portion (I) of the clamp and / or brake device (10) to supply a pressure medium to a first pressure chamber (4) of the clamp and / or brake device (10).
13. The clamp and / or brake device (10) according to claim 1, wherein the elastic elements (1a, 1b) further include a second connecting seal (20), the second connecting seal defining an edge of a second connecting opening of the second connecting seal (20), the edge being suitable for sealing a second connecting portion (II) of the clamp and / or brake device (10) to supply a pressure medium to a second pressure chamber (2) of the clamp and / or brake device (10).
14. The clamp and / or brake device (10) according to claim 1, characterized in that the region of the first pressure chamber (4) is located between a first projection (17a) of a first sealing element (17) of at least one elastic element and the inner or outer edge of a spring plate (16) of at least one elastic element, or a second projection (17b) of the first sealing element (17) of at least one elastic element.
15. The clamp and / or brake device (10) according to claim 1, characterized in that a first housing member is gripped at the rear by an undercut (22) of a connecting projection (21) of a first elastic element, and / or a second housing member is gripped at the rear by an undercut (22) of a connecting projection (21) of a second elastic element.
16. The clamp and / or brake device (10) according to claim 1, wherein the inner space includes a second pressure chamber (2), the second pressure chamber (2) being positioned between elastic elements inside the spring (1), and preferably the device (10) is configured such that by ventilation of the second pressure chamber (2) or by applying positive pressure to the second pressure chamber (4), one of the clamp elements (8) moves toward a portion of one of the inner surfaces (105) and / or the bending of at least one spring plate (16) of the elastic element increases, thereby switching the device (10) from a closed state to an open state.
Citation Information
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