Fluid Pressure Actuator

The McKibben type fluid pressure actuator addresses the lack of flexibility in conventional actuators by integrating a restraining member with a stretchable structure, enabling gentle grasping of soft objects through controlled bending and curling.

JP7736554B2Active Publication Date: 2025-09-09BRIDGESTONE CORP
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Patent Information

Application Number
JP2021205532
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-17
Publication Date
2025-09-09
Estimated Expiration
2041-12-17

AI Technical Summary

Technical Problem

Conventional bending fluid pressure actuators used in robot hands lack flexibility to gently grasp soft or light, easily deformed objects without damaging them due to the rigidity of the restraining member.

Method used

A McKibben type fluid pressure actuator with a stretchable structure formed by weaving fiber cords in a predetermined direction, integrated with a restraining member that restricts axial extension, allowing the actuator to bend and curl, ensuring flexibility in a curved state.

Benefits of technology

The actuator provides enhanced flexibility to gently grasp soft or light objects by preventing expansion and contraction during bending, maintaining contact without damaging the object, and using materials resistant to plastic deformation.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a fluid pressure actuator that is equipped with a structure capable of being made light and flexible, and can curve.SOLUTION: A fluid pressure actuator 10 is equipped with a tube 20 that expands and contracts according to pressure of a fluid, a sleeve 30 that is an elastic structure woven with fiber cords 31 oriented in a predetermined direction θ1 and covers an outer peripheral surface of the tube 20, a sealing member 40 that seals an end portion 21 in an axial direction XA of the tube 20, and a restraining member 50 that is provided on a part in a circumferential direction of the tube 20 from one end side to the other end side in the axial direction XA and restrains the extension in the axial direction at the part in the circumferential direction of the tube 20. While the tube 20 extends in the axial direction XA, the predetermined direction θ1 in which the fiber cords 31 of the sleeve 30 are oriented, is oriented in an extending direction when the tube 20 expands. The restraining member 50 is woven in the sleeve 30 to be integrated or is disposed between the sleeve 30 and the tube 20.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a fluid pressure actuator, and more particularly to a so-called McKibben type fluid pressure actuator. [Background technology]

[0002] Conventionally, a widely used fluid pressure actuator that uses gas or liquid to expand and contract a tube is a structure (the so-called McKibben type) that has a rubber tube that expands and contracts using air pressure and a sleeve that covers the outer surface of the tube.

[0003] Also known is a McKibben type fluid pressure actuator that bends when contracted, not in the axial direction of the tube and sleeve (see Patent Document 1). Specifically, a fluid pressure actuator is known that has a restraining member inside the sleeve of the fluid pressure actuator that is capable of deforming in the axial direction of the tube against compression when contracted, and that bends due to the action of the restraining member. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent Publication No. 2021-88999 Summary of the Invention [Problem to be solved by the invention]

[0005] However, in conventional bending fluid pressure actuators, a member with enough rigidity to resist compression during contraction is used as the restraining member. For this reason, when a bending fluid pressure actuator is used in a robot hand (gripper) or the like, it is not easy to further increase the flexibility of the restraining member and ensure flexibility in the curved state that allows it to gently grasp a soft or light, easily deformed object without damaging or deforming it.

[0006] The present invention aims to provide a bending fluid pressure actuator having a configuration that ensures flexibility in a curved state that can be used when used in a robot hand (gripper) or the like to gently grip an object that is soft or light and easily deformed. [Means for solving the problem]

[0007] A fluid pressure actuator according to an embodiment of the present invention includes a tube that expands and contracts due to fluid pressure, a stretchable structure formed by weaving fiber cords oriented in a predetermined direction, and a sleeve that covers the outer surface of the tube, a sealing member that seals the axial end of the tube, and a restraining member that is provided in a portion of the circumferential direction of the tube from one end side to the other end side in the axial direction and restrains extension of the portion of the circumferential direction of the tube along the axial direction. The predetermined direction in which the fiber cords of the sleeve are oriented is oriented so that the tube expands when it expands. The restraining member is woven into the sleeve to form an integral part of it. Alternatively, the restraining member is disposed between the sleeve and the tube. [Effects of the Invention]

[0008] According to the above configuration, it is possible to provide a bendable fluid pressure actuator that, when used in a robot hand (gripper) or the like, has a configuration that ensures flexibility in a bent state that can be used to gently grasp an object that is soft or light and easily deformed. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1(a) is an exploded perspective view of a fluid pressure actuator according to one embodiment, and FIG. 1(b) is an enlarged perspective view of a portion of the sleeve where a restraining member is integrated by weaving. [Figure 2] 2A and 2B are developments of a sleeve used in a fluid pressure actuator, with FIG. 2A showing the state before the fluid pressure actuator is extended, and FIG. 2B showing the state after the fluid pressure actuator is extended. [Figure 3] 3A and 3B are cross-sectional views taken along the axial direction of the fluid pressure actuator, with FIG. 3A being a cross-sectional view showing the state of the fluid pressure actuator before it is bent by fluid pressure, and FIG. 3B being a cross-sectional view showing the state of the fluid pressure actuator after it has been bent by applying fluid pressure. [Figure 4] FIG. 4 is an enlarged exploded cross-sectional view of the fluid pressure actuator according to the modified example in the vicinity of the sealing member before being crimped. [Figure 5] FIG. 5 is an exploded perspective view of a fluid pressure actuator according to a modified example. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, embodiments will be described with reference to the drawings. Note that the same or similar reference numerals are used to designate the same functions or configurations, and descriptions thereof will be omitted as appropriate.

[0011] (1) Overall schematic configuration of fluid pressure actuator Fig. 1(a) is an exploded perspective view of a fluid pressure actuator according to one embodiment, and Fig. 1(b) is an enlarged perspective view of a portion of a sleeve where a restraining member is integrated by weaving.

[0012] As shown in Figure 1(a), the fluid pressure actuator 10 comprises a tube 20 that expands and contracts due to fluid pressure, a sleeve 30 that is an elastic structure woven with fiber cords 31 oriented in a predetermined direction (predetermined braiding angle) θ1 and covers the outer surface of the tube 20, and a pair of sealing members 40 that seal both end portions 21 of the tube 20 in the axial direction XA.

[0013] A basic characteristic of the fluid pressure actuator 10 of this embodiment is that when the fluid pressure in the tube 20 is increased, the fluid pressure actuator 10 expands in the axial direction XA of the fluid pressure actuator 10 while radial expansion is restricted by the tension of the fiber cord 31 forming the sleeve 30. Then, when the fluid pressure in the tube 20 is reduced, the dimensions in the axial direction XA are restored. This change in shape allows the fluid pressure actuator 10 to function as an actuator.

[0014] Such a fluid pressure actuator 10 is a so-called McKibben type fluid pressure actuator, and can be suitably used for artificial muscles, etc. The pair of sealing members 40 may be provided with connecting portions (not shown) or the like that are connected to members to be connected.

[0015] 1(a) and 1(b), the present embodiment uses a McKibben type fluid pressure actuator having such basic characteristics, and a restraining member 50 that restrains (may also be called restricting or limiting, the same applies hereinafter) extension along the axial direction XA is provided at a portion of the circumferential direction of the fluid pressure actuator 10. With this configuration, the fluid pressure actuator 10 can bend (curl) in a direction perpendicular to the axial direction XA, i.e., from the axial direction XA.

[0016] The fluid used to drive the fluid pressure actuator 10 may be either a gas such as air, or a liquid such as water or mineral oil. The fluid pressure actuator 10 has high durability, capable of withstanding hydraulic drive that applies high pressure to the tube 20 and sleeve 30. Furthermore, when the fluid pressure actuator 10 uses a tube 20 that is thick or made of a material that can be driven by low pressure such as air, the flexibility of the fluid pressure actuator 10 is ensured, making it suitable for use in gently gripping soft or light objects that are easily deformed.

[0017] The pair of sealing members 40 seal both end portions 21 of the tube 20 in the axial direction XA. Specifically, each sealing member 40 includes a sealing member body 41 and a crimping member 43. The sealing member body 41 seals the end portion 21 of the tube 20 in the axial direction XA. The crimping member 43 crimps the tube 20 and the sleeve 30 together with the sealing member body 41. An indentation, which is a mark left by crimping the crimping member 43 with a jig, may be formed on the outer circumferential surface of the crimping member 43.

[0018] At least one of the pair of sealing members 40 has a connection port provided in the sealing member body 41 to which a drive pressure source for the fluid pressure actuator 10, specifically a hose (pipe) connected to a gas or liquid compressor, can be attached. The fluid pressure inside the tube 20 is controlled by the fluid flowing into and out of the fluid pressure actuator 10 via a fluid passage 45 that communicates with this connection port, causing the tube 20 of the fluid pressure actuator 10 to expand and contract.

[0019] (2) Configuration of the fluid pressure actuator 10 As shown in FIG. 1(a), the fluid pressure actuator 10 is made up of the tube 20, the sleeve 30, the pair of sealing members 40, and the restraining member 50, as described above.

[0020] The tube 20 is a cylindrical body that expands and contracts due to the pressure of the fluid. Since the tube 20 repeatedly expands and contracts due to the fluid, it is made of an elastic material such as butyl rubber. Furthermore, when the fluid pressure actuator 10 is hydraulically driven, it is preferable to use at least one material selected from the group consisting of highly oil-resistant NBR (nitrile rubber), hydrogenated NBR, chloroprene rubber, and epichlorohydrin rubber.

[0021] 2A and 2B are developments of the sleeve 30 used in the fluid pressure actuator 10, with Fig. 2A being a development showing the fluid pressure actuator 10 in a state before it is extended, and Fig. 2B being a development showing the fluid pressure actuator 10 in an extended state.

[0022] As shown in FIG. 1(a), the sleeve 30 is cylindrical and covers the outer peripheral surface of the tube 20 in the fluid pressure actuator 10. As shown in FIG. 2(a), the sleeve 30 is an elastic structure in which fiber cords 31 are woven, oriented in a predetermined direction (predetermined braiding angle) θ1 with respect to the axial direction XA of the tube 20 (axial direction of the fluid pressure actuator 10) before the internal fluid pressure is increased. The oriented fiber cords 31 intersect to form repeated diamond shapes. Because of this shape, the sleeve 30 undergoes pantograph deformation as shown in FIGS. 2(a) and 2(b), and follows the expansion and contraction of the tube 20 while regulating it.

[0023] The McKibben type fluid pressure actuator 10 drives the fiber cord 31 woven into the sleeve 30 so that the braid angle converges to 54.7 degrees, so that when the braid angle is smaller than 54.7 degrees, the fiber cord 31 contracts in the axial direction, and when the braid angle is larger than 54.7 degrees, the fiber cord 31 expands in the axial direction.

[0024] 2(a), the sleeve 30 used in this embodiment is woven so that the orientation of the fiber cords 31 of the sleeve 30 before expansion / contraction forms a predetermined braid angle θ1 greater than 54.7 degrees with respect to the axial direction XA of the fluid pressure actuator 10 before pressurization. In other words, the orientation of the fiber cords 31, which regulates the deformation of the tube 20 due to changes in internal fluid pressure, is oriented in a predetermined direction (predetermined braid angle) θ1 in which the fluid pressure actuator 10 elongates when the tube 20 expands. Specifically, the fiber cords 31 are woven into the sleeve 30 so that the braid angle θ1 is 60 degrees to 80 degrees.

[0025] As shown in Figure 2(b), the fluid pressure actuator 10 using this sleeve 30 is driven to extend when the fluid pressure in the tube 20 is increased, as the braid angle θ2 of the sleeve 30 during operation becomes smaller than the braid angle θ1 before extension (approaching 54.7 degrees).

[0026] It is preferable to use fiber cords made of aromatic polyamide (aramid fiber) or polyethylene terephthalate (PET) as the fiber cords 31 that make up the sleeve 30. However, the fiber cords are not limited to these types, and may be cords made of high-strength fibers such as PBO fiber (polyparaphenylene benzobisoxazole).

[0027] 1(a), the restraining member 50 is provided in a portion of the circumferential direction of the tube 20, from one end side to the other end side in the axial direction XA. Both ends of the restraining member 50, together with the tube 20 and the sleeve 30, are crimped to the sealing member 40.

[0028] The restraining member 50 is a member having a tensile strength capable of resisting the extension drive of the fluid pressure actuator 10 .

[0029] When the fluid pressure inside the tube 20 is increased to drive the fluid pressure actuator 10 to extend, the restraining member 50, which is crimped at both ends to the sealing members 40, resists the force generated by the tube 20 that acts in a direction that extends the distance between the pair of sealing members 40. This action prevents expansion of the tube 20 at some circumferential positions on the outer periphery of the tube 20 where the restraining member 50 is located, and restricts the extension of the fluid pressure actuator 10. As a result, the fluid pressure actuator 10 does not extend along the axial direction XA, but instead curves (curls) away from the axial direction XA.

[0030] In this embodiment, as shown in Fig. 1(b), the restraining member 50 is configured with a restraining fiber cord 51 that is woven into and integrated with the sleeve 30. The restraining fiber cord 51 included in the restraining member 50 is crimped to the sealing member 40 while being integrated with the sleeve 30. Note that, while integrated with the sleeve 30, the restraining fiber cord 51 is woven into the sleeve 30 so as to intersect with the fiber cords 31 of the sleeve 30 at positions where the fiber cords 31 of the sleeve 30 intersect with each other.

[0031] The restraining fiber cord 51 may be selected based on the size of the fluid pressure actuator 10, the required generated force (tensile strength capable of resisting the extension drive of the fluid pressure actuator 10), and the like, and is not particularly limited. The material of the restraining fiber cord 51 is also not particularly limited. Typically, the material of the restraining fiber cord 51 may be selected from among fiber cords that can be used for the fiber cords 31 that make up the sleeve 30, taking into consideration the desired tensile strength, etc. In other words, the restraining fiber cord 51 may be a fiber cord made of the same material as the fiber cord 31, or a fiber cord made of a different material than the fiber cord 31 may be selected.

[0032] The sealing member 40 seals the end 21 of the tube 20 in the axial direction XA of the fluid pressure actuator 10. The sealing member 40 is composed of a sealing member body 41 and a crimping member 43.

[0033] The sealing member main body 41 is inserted into the tubular tube 20. Specifically, the sealing member main body 41 has a head portion whose dimension is larger than the inner diameter of the tube 20 and a body portion whose outer diameter is large enough to be inserted into the inner diameter of the tube 20. The body portion is inserted into the tube 20.

[0034] The sealing member body 41 is preferably made of a metal such as stainless steel, but is not limited to such a metal and may be made of a hard plastic material or the like.

[0035] The crimping member 43 crimps the tube 20 inserted into the sealing member body 41, the sleeve 30 covering the outer peripheral surface of the tube 20, and the restraining member 50 woven into the sleeve to form an integrated unit, together with the sealing member body 41. Specifically, the crimping member 43 is provided on the outer peripheral surfaces of the tube 20, the sleeve 30, and the restraining member 50 at the portions through which the sealing member body 41 is inserted, and crimps these components to the sealing member body 41.

[0036] Metals such as aluminum alloy, brass, and iron can be used for the crimping member 43. When the crimping member 43 is crimped by a crimping jig, an indentation may be formed in the crimping member 43.

[0037] The sealing member 40 may include a locking ring (not shown) that locks the sleeve 30 and the restraining member 50 to the sealing member body 41. Specifically, the sleeve 30 and the restraining member 50 may be folded back radially outward via the locking ring.

[0038] The locking ring may be shaped so as to be engageable with the sealing member main body 41. The locking ring may be made of the same material as the sealing member main body 41, such as metal or hard plastic material, or natural fiber (natural fiber thread), rubber (for example, an O-ring), or the like.

[0039] (3) Sealing mechanism configuration Figure 3 is a cross-sectional view taken along the axial direction of the fluid pressure actuator. Specifically, Figure 3(a) is a cross-sectional view showing the fluid pressure actuator in a state before it is bent by fluid pressure. Figure 3(b) is a cross-sectional view showing the fluid pressure actuator in a state after it has been bent by applying fluid pressure.

[0040] 3(a), the tube 20 is inserted into the trunk portion of the sealing member main body 41. The tube 20, the sleeve 30 covering the outer peripheral surface of the tube 20, and the restraining member 50 woven into the sleeve 30 are crimped to the sealing member main body 41 by a crimping member 43.

[0041] Furthermore, the restraining member 50 is provided only on a portion of the tube 20 in the circumferential direction.

[0042] The restraining member 50 is provided from one end side to the other end side in the axial direction XA of the tube 20 and the sleeve 30. Specifically, the restraining member 50 may be provided from the sealing member 40 on one end side of the tube 20 in the axial direction XA to the sealing member 40 on the other end side.

[0043] However, the restraining member 50 does not necessarily have to be provided completely from the sealing member 40 on one end side to the sealing member 40 on the other end side. The restraining member 50 does not have to extend to either one of the sealing members 40 (particularly the sealing member 40 side that is likely to become a free end when bent). For example, the end of the restraining member 50 that does not extend to the sealing member 40 may be fixed to, for example, a part of the tube 20 or sleeve 30 on the other end side.

[0044] The crimping member 43 has a larger outer diameter than the body of the sealing member main body 41, and is inserted through the body and then crimped with a jig. The crimping member 43 crimps the tube 20 and the sleeve 30 together with the sealing member main body 41.

[0045] (4) Bending behavior of the fluid pressure actuator 10 3(a) and 3(b) are explanatory diagrams of the behavior of the fluid pressure actuator 10. In the fluid pressure actuator 10 shown in Figures 3(a) and 3(b), the sealing member 40 on one end located on the left side of the figure is a fixed end, and the sealing member 40 on the other end located on the right side of the figure is a free end that is in a state where it can move freely.

[0046] As described above, when fluid flows into the fluid pressure actuator 10, the fluid pressure inside the tube 20 increases, and the sleeve 30 restricts (restricts) expansion in a direction perpendicular to the axial direction XA, causing the fluid pressure actuator 10 to extend in the axial direction XA.

[0047] At this time, the expansion of the tube 20, whose outer peripheral surface is covered by the sleeve 30, is inhibited in a circumferential portion (upper side in FIGS. 3(a) and 3(b)) where the restraining member 50 is located. In contrast, the tube 20 expands in a portion opposite to the circumferential portion (lower side in FIGS. 3(a) and 3(b)). As a result, the length of the expandable / contractible tube 20 at the upper position in FIGS. 3(a) and 3(b) where the restraining member 50 is located becomes relatively shorter than the length of the opposite position (lower side in FIGS. 3(a) and 3(b)). As shown in FIG. 3(b), the free end side (right side in FIG. 3(b)) bends toward the side where the restraining member 50 is located (upper side in FIG. 3(b)).

[0048] (5) Actions and Effects The fluid pressure actuator 10 has the following features.

[0049] Large bending angle (bends over 180 degrees) -Easy to control force (generated force is proportional to pressure) Simple structure - By coating the surface, it is possible to directly touch the object to be operated. Furthermore, in the fluid pressure actuator 10, the restraining member 50 that restrains the expansion and contraction of the tube 20 is located on the inside of the curved state. Therefore, the sleeve 30 and tube 20 on the inside of the curve do not expand or contract during the bending process. As a result, when the fluid pressure actuator 10 of this embodiment is used in a robot hand or the like, the contact point between the manipulation object and the fluid pressure actuator 10 will not slip due to the expansion and contraction of the tube 20 during the bending process, and it is possible to gently grasp a manipulation object that is soft or light and easily deformed without damaging or deforming it.

[0050] Furthermore, when the restraining member 50 is made of restraining fiber cords 51 as in the fluid pressure actuator 10 of this embodiment, the parts that deform in the fluid pressure actuator 10, namely the tube 20, sleeve 30, and restraining member 50, are made of materials that are resistant to plastic deformation, so the fluid pressure actuator 10 has flexibility that prevents plastic deformation even when it comes into contact with another rigid body during operation, etc. Furthermore, because highly rigid materials are not used in the parts that deform in the fluid pressure actuator 10, namely the tube 20, sleeve 30, and restraining member 50, the ability to gently grasp soft or light, easily deformed objects without destroying or deforming them is further improved.

[0051] Furthermore, when the axially oriented restraining member 50 is woven into and integrated with the sleeve 30, as in the fluid pressure actuator 10 of this embodiment, the sleeve 30 and the restraining member 50 behave as a single unit, making it easier to control the bending state of the fluid pressure actuator 10.

[0052] (6) Other embodiments The present invention has been described above in accordance with the embodiments, but it will be obvious to those skilled in the art that the present invention is not limited to these descriptions and that various modifications and improvements are possible.

[0053] In this embodiment, the restraining member 50 is integrated into the sleeve 30 by being woven therein, but the restraining member is not limited to this configuration. Specifically, the restraining member and the sleeve may be separate bodies. However, when the restraining member 150 and the sleeve 130 are separate bodies, the restraining member 150 is disposed between the sleeve 130 and the tube 120, as shown in FIG. 4 .

[0054] 4 is an enlarged exploded cross-sectional view of a fluid pressure actuator according to a modified example in which the restraining member 150 and the sleeve 130 are configured as separate bodies, showing the state before crimping near the sealing member 140. As shown in FIG. 4, in the modified example, the tube 120 is inserted through a body portion of the sealing member 140, which includes a sealing member main body 141 in which a fluid passage 145 is formed, and a crimping member 143. Then, with the restraining member 150 disposed between the sleeve 130 and the tube 120, the crimping member 143 crimps the tube 120, the sleeve 130, and the restraining member 150 together with the sealing member main body 141.

[0055] As a configuration in which the restraining member and the sleeve are separate bodies, for example, restraining member 150 may be a composite tape material in which restraining fiber cord 151 is integrated with a thermoplastic resin tape or the like.

[0056] In this case, the restraining member 150 is provided from one end side to the other end side in the axial direction XA of the tube 120, and the restraining fiber cord 151 is also provided from one end side to the other end side in the axial direction XA of the tube 120. The restraining fiber cord 151 may be integrated by being sandwiched between the thermoplastic resin tapes, or a part of the restraining fiber cord 151 may be in contact with or embedded in the thermoplastic resin tapes.

[0057] Here, similar to the restraining fiber cord 51, the material of the restraining fiber cord 151 may be selected from among the fiber cords that can be used for the fiber cord 31, taking into consideration the desired tensile strength, etc.

[0058] Furthermore, the material constituting the thermoplastic resin tape is not particularly limited, but examples thereof include polypropylene (PP), high density polyethylene (HDPE), medium density polyethylene (MDPE), low density polyethylene (LDPE), polystyrene (PS), polyethylene terephthalate (PETP), polybutylene terephthalate (PBTP), polyvinylidene fluoride (PVDF), polyamide 6 (PA6), and polyamide 66 (PA66).

[0059] Furthermore, when the restraining member 150 is a composite tape material in which the restraining fiber cord 151 is integrated with a thermoplastic resin tape or the like, as shown in FIG. 5, multiple restraining fiber cords 151 may be arranged from one end side to the other end side in the axial direction XA of the tube 120, and may be arranged so as to intersect with each other.

[0060] Alternatively, the restraining member may be configured to include a plurality of restraining fiber cords that intersect with one another, and the plurality of restraining fiber cords 51 may be woven into the sleeve 30 so as to intersect with one another.

[0061] When the restraining member 50, 150 includes a plurality of mutually intersecting restraining fiber cords 51, 151, the part of the circumference of the tube 20, 120 where the restraining member 50, 150 is arranged may be a range of ⅓ or less of the circumference in the circumference direction.

[0062] When the restraining member includes multiple restraining fiber cords 51 that intersect with each other, deformation of the fluid pressure actuator 10, which bends so that the tension of only some of the restraining fiber cords 51 increases, is suppressed, and the fluid pressure actuator 10 can be bent along a specified direction in which the restraining member 50 extends.

[0063] Furthermore, when the fluid pressure actuator 10 is used in an application requiring higher rigidity in a configuration in which the restraining member 150 is separate from the sleeve 130 as described above, a leaf spring having a flat plate shape or a curved shape that follows the cross-sectional shape of the tube 120 may be used as the restraining member 150 that is separate from the sleeve 130. Even when a leaf spring is used as the restraining member 150, the restraining member 150 is provided on a portion of the tube 120 in the circumferential direction. When a leaf spring is used as the restraining member 150, by disposing the restraining member 150 between the sleeve 130 and the tube 120, a bending fluid pressure actuator with increased rigidity can be obtained.

[0064] The dimensions of the leaf spring are not particularly limited and may be selected depending on the size of the fluid pressure actuator and the required force to be generated. The material of the leaf spring is also not particularly limited, but typically, it is a material that is easy to bend and resistant to compression, such as a metal such as stainless steel. For example, the restraining member 150 may be formed from a thin plate of carbon fiber reinforced plastic (CFRP). CFRP is less susceptible to plastic deformation than metal, so even when used as the restraining member 150, the fluid pressure actuator will easily return to its original straight state after being bent.

[0065] The width of the leaf spring serving as restraint member 150 is not particularly limited, but may be approximately half the outer diameter of tube 120. As an example, the outer diameter of tube 120 may be 11 mm, the length of tube 120 before extension may be 185 mm, and the width and thickness of restraint member 150 (leaf spring) may be approximately 6 mm and 0.5 mm.

[0066] Furthermore, in the above-described modified examples, the restraint members 50, 150 were provided on a portion of the circumference of the tubes 20, 120 (less than 1 / 3 of the circumference), but the restraint members may also be provided on a range of approximately half the circumference of the tubes 20, 120 (half the circumference).

[0067] Furthermore, in the above-described embodiments and modified examples, the restraint members 50, 150 were provided from one end to the other end in the axial direction XA of the tubes 20, 120 and sleeves 30, 130, but as long as they are provided over substantially the entire area in the axial direction XA, they do not necessarily have to be provided from one end to the other end in the axial direction XA.

[0068] Although the embodiments of the present invention have been described above, the descriptions and drawings that form part of this disclosure should not be understood to limit the present invention. Various alternative embodiments, examples, and operating techniques will become apparent to those skilled in the art from this disclosure. [Explanation of symbols]

[0069] 10. Fluid pressure actuator 20,120 tubes 21,121 Tube end 30,130 sleeves 31 Textile cord 40,140 Sealing material 41,141 Sealing member body 43,143 Caulking members 50,150 Restraining member 51 Restraint fiber cord XA Axial direction θ1: specified direction (specified braiding angle)

Claims

[Claim 1] a tube that expands and contracts due to fluid pressure; a sleeve having an elastic structure in which fiber cords oriented in a predetermined direction are woven, the sleeve covering the outer circumferential surface of the tube; a sealing member that seals an axial end of the tube; Equipped with The predetermined direction in which the fiber cords of the sleeve are oriented is oriented to be elongated when the tube expands, a restraining fiber cord provided in a portion of the circumferential direction of the tube from one end side to the other end side in the axial direction, the restraining fiber cord restraining elongation of the portion of the circumferential direction of the tube along the axial direction, The restraining fiber cord is woven into the sleeve so as to alternately cross the outer and inner crossing portions of the fiber cord in the sleeve, and is integrated with the sleeve.

Citation Information

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