Fiber moving clamp and processing system

By designing the lateral and lifting mechanisms of the fiber moving fixture, the problems of inaccurate positioning and stability of quartz fiber products during the transfer process between different devices were solved, achieving efficient and low-cost fiber transfer and processing.

CN223973580UActive Publication Date: 2026-03-06SUZHOU KEBER PRECISION MACHINERY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

In the current quartz fiber product processing, the positioning accuracy and transmission stability of the transmission equipment are not high, resulting in low production efficiency, poor product quality, and easy damage when transferred between different devices.

Method used

A fiber moving clamp was designed, including a lateral movement mechanism, a lifting mechanism, and a clamping mechanism. The clamping mechanism fixes the fiber, while the lateral movement mechanism and the lifting mechanism achieve stable fiber transmission. It is suitable for different types of fiber products.

Benefits of technology

It achieves stable fiber transport, improves production efficiency, reduces production costs, ensures product quality, and expands the scope of application.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a fiber moving clamp and a processing system, which comprises a transverse moving mechanism, which comprises a horizontal module, a horizontal driver and a sliding plate, and the horizontal driver is connected with the sliding plate; the lifting mechanism comprises a jacking plate and a jacking driver, and the jacking plate is connected to the jacking driver; the clamping mechanism comprises a main body and clamping bosses, the main body is arranged on the jacking plate, the two clamping bosses are both arranged on the main body and can move close to or away from each other relatively, a clamping groove is defined by the two clamping bosses jointly, and the fiber to be moved is arranged in the clamping groove. According to the utility model, the to-be-processed fiber can be fixed through the clamping mechanism, and then the to-be-processed fiber is driven to move in the horizontal direction and the height direction through the transverse moving mechanism and the lifting mechanism, so that the stable transmission process of the to-be-processed fiber is realized. Compared with a conventional transmission technology, the device is exquisite in structure and flexible to use, and has the advantages of stable moving process, low cost, accurate positioning and the like.
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Description

Technical Field

[0001] The utility model relates to the technical field of mobile structures, and particularly refers to a fiber mobile fixture and a processing system. Background Art

[0002] Quartz fiber, with its excellent characteristics such as low loss, high bandwidth, and electromagnetic interference resistance, has been widely used in fields such as communication, medical treatment, and sensing, and has become a key basic material supporting the development of modern information society. During the processing of quartz fiber products, it is usually necessary to move precisely between multiple processing stations to complete a series of complex processing procedures such as wire drawing, coating, cutting, and packaging.

[0003] However, there are serious technical problems in the processing and transmission link of current quartz fiber products, which greatly restrict the production efficiency and product quality. Since the processing positions and requirements of fiber products for each processing station are not the same, different types of transmission equipment are required for moving in different directions. This process is not only cumbersome and time-consuming, greatly reducing the production efficiency and increasing the production cost, but also inevitably damaging the fiber products during the operation. Due to the brittle texture and small diameter of quartz fiber, scratches, cracks and other defects are easily formed on the fiber surface during repeated disassembly and assembly, seriously affecting the optical performance and mechanical strength of the fiber, and thus reducing the qualified rate of products.

[0004] In addition, there are differences in the positioning accuracy and transmission stability of different transmission equipment. When the fiber products are transferred between different equipment, it is difficult to ensure the consistency of their positions and postures, which requires operators to spend a lot of time on calibration and debugging, further prolonging the production cycle. Summary of the Invention

[0005] Therefore, the technical problem to be solved by the utility model is to overcome the problem of low positioning accuracy and transmission stability of the transmission equipment for fibers in the prior art, and provide a fiber mobile fixture and a processing system.

[0006] To solve the above-mentioned technical problems, this utility model provides a fiber moving clamp, comprising: a lateral movement mechanism, the lateral movement mechanism including at least one horizontal module, a horizontal driver and a sliding plate, the horizontal driver being connected to the sliding plate to drive the sliding plate to move along the horizontal module; a lifting mechanism, the lifting mechanism including a lifting plate and a lifting driver, the lifting plate being supported on the sliding plate and connected to the lifting driver to move up and down along its thickness direction; and a clamping mechanism, the clamping mechanism moving synchronously with the lifting plate, the clamping mechanism including a main body and two clamping bosses, the main body being disposed on the lifting plate, the two clamping bosses being disposed on the main body and being movable relative to each other, the two clamping bosses jointly forming a clamping groove, the fiber to be moved being disposed inside the clamping groove.

[0007] In one embodiment of the present invention, the transverse mechanism includes two fixed plates, both of which extend along a first direction and are spaced apart along a second direction. Two horizontal modules are respectively disposed on the two fixed plates, the lifting driver is disposed between the two fixed plates, and the horizontal driver is disposed on one of the fixed plates.

[0008] In one embodiment of the present invention, the slide plate includes a support portion, a connecting portion, and two sliding portions. The two sliding portions are slidably connected to the two horizontal modules respectively. The support portion is disposed on the two sliding portions and moves synchronously with the sliding portions. The connecting portion protrudes from the support portion along a second direction and is connected to the working end of the horizontal driver.

[0009] In one embodiment of the present invention, the clamping mechanism further includes two opening and closing jaws, which are rotatably connected to the main body, and two clamping bosses are respectively connected to the two opening and closing jaws so that the two opening and closing jaws move closer to each other or further away from each other.

[0010] In one embodiment of the present invention, the clamping mechanism includes a hinge and a latch, with the hinge connected to two opening and closing jaws on both sides, and the latch disposed between the two opening and closing jaws.

[0011] In one embodiment of the present invention, the transverse mechanism further includes at least two stop members, which are respectively disposed at both ends of the horizontal module. Each stop member includes an extension plate and an elastic member. The extension plate is disposed at the end of the horizontal module, with one end protruding from the horizontal module and connected to the elastic member. The elastic member can abut against and stop the sliding plate.

[0012] In one embodiment of the present invention, the fiber moving clamp further includes a base plate and a control mechanism. The lateral movement mechanism, the lifting mechanism and the clamping mechanism are all disposed on the base plate and are respectively connected to the control mechanism.

[0013] In one embodiment of the present invention, the clamping mechanism further includes a disassembly chassis, which is detachably connected to the lifting plate via a connector.

[0014] This utility model also provides a fiber processing system, which includes the above-mentioned fiber moving clamp.

[0015] In one embodiment of the present invention, the fiber processing system further includes a hot-melt device and a cold-press forming device, and the fiber moving clamp is disposed between the hot-melt device and the cold-press forming device to drive the fiber to be processed to move between the hot-melt device and the cold-press forming device.

[0016] The above-mentioned technical solution of this utility model has the following advantages compared with the prior art:

[0017] The fiber moving clamp and processing system described in this utility model can fix the fiber to be processed through a clamping mechanism, and then drive the fiber to be processed to move in the horizontal and vertical directions through a traversing mechanism and a lifting mechanism, thereby realizing a stable transmission process of the fiber to be processed. In addition, its adjustable clamping boss can be used for different types of fiber products, thereby further expanding its application range. Compared with conventional transmission technology, the fiber product-specific design of this application is not only compact in structure and flexible in use, but also has the advantages of stable movement, low cost and precise positioning. Attached Figure Description

[0018] To make the content of this utility model easier to understand, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings.

[0019] Figure 1 This is a three-dimensional structural diagram of the fiber moving clamp in a preferred embodiment of the present invention;

[0020] Figure 2 yes Figure 1 A three-dimensional structural schematic diagram of the fiber moving fixture from another perspective;

[0021] Figure 3 yes Figure 1 Enlarged structural diagram at point A in the middle;

[0022] Figure 4 yes Figure 1 A three-dimensional structural diagram of the clamping mechanism in the fiber moving fixture shown.

[0023] Explanation of reference numerals in the accompanying drawings: 100, transverse movement mechanism; 110, fixed plate; 120, horizontal module; 130, horizontal actuator; 140, sliding plate; 141, support part; 142, sliding part; 143, connecting part; 150, stop; 151, extension plate; 152, elastic element; 200, lifting mechanism; 210, lifting plate; 220, guide column; 230, lifting actuator; 300, clamping mechanism; 310, column; 320, hinge; 330, opening and closing gripper; 340, latch; 350, clamping boss; 351, clamping groove; 360, disassembly chassis; 400, base plate; 500, fiber. Detailed Implementation

[0024] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, so that those skilled in the art can better understand and implement the present invention. However, the embodiments are not intended to limit the present invention. Example 1

[0025] See Figure 1 As shown, this embodiment provides a fiber moving clamp, which includes: a traversing mechanism 100, the traversing mechanism 100 including at least one horizontal module 120, a horizontal driver 130 and a sliding plate 140, the horizontal driver 130 being connected to the sliding plate 140 to drive the sliding plate 140 to move along the horizontal module 120; and a lifting mechanism 200, the lifting mechanism 200 including a lifting plate 210 and a lifting driver 230, the lifting plate 210 being supported on the sliding plate 140 and connected to... The lifting driver 230 moves up and down along its thickness direction; the clamping mechanism 300 moves synchronously with the lifting plate 210. The clamping mechanism 300 includes a main body and two clamping bosses 350. The main body is disposed on the lifting plate 210, and the two clamping bosses 350 are both disposed on the main body and can move relatively closer to / away from each other. The two clamping bosses 350 together form a clamping groove 351, and the fiber 500 to be moved is disposed inside the clamping groove 351.

[0026] The fiber moving fixture described in this embodiment can fix the fiber 500 to be processed through the clamping mechanism 300, and then move the fiber 500 to be processed in both horizontal and vertical directions through the lateral movement mechanism 100 and the lifting mechanism 200, thereby achieving a stable transmission process of the fiber 500 to be processed. Furthermore, its adjustable clamping boss 350 can be adapted to different types of fiber products, thus further expanding its application range. Compared with conventional transmission technologies, this application, designed for fiber products, is not only compact and flexible in use, but also has advantages such as stable movement, low cost, and precise positioning.

[0027] See Figure 1 and Figure 2 As shown, to improve the integration of this fiber moving fixture and facilitate its overall installation or movement, the fiber moving fixture in this embodiment also includes a base plate 400. The lateral movement mechanism 100, the lifting mechanism 200, and the clamping mechanism 300 are all disposed on the base plate 400. Further, the clamping mechanism 300 is used to connect and transmit the fiber 500, the lateral movement mechanism 100 is used to drive the clamping mechanism 300 and part of the lifting mechanism 200 to move horizontally, and the lifting mechanism 200 is used to drive the clamping mechanism 300 to move vertically. Specifically, this embodiment also includes a control mechanism. The lateral movement mechanism 100, the lifting mechanism 200, and the clamping mechanism 300 are respectively connected to the control mechanism. During actual operation, the operator can adjust the above structure in real time through the control mechanism, thereby improving the flexibility of the equipment. Parameters can also be preset through the control mechanism, thereby improving the automation level of the equipment.

[0028] See Figures 1 to 3 As shown, the transverse movement mechanism 100 in this embodiment includes two fixed plates 110, both extending along a first direction and spaced apart along a second direction. Two horizontal modules 120 are respectively disposed on the two fixed plates 110. The lifting driver 230 is disposed between the two fixed plates 110, and the horizontal driver 130 is disposed on one of the fixed plates 110. Furthermore, based on the above structural configuration, on the one hand, the horizontal movement stability of the clamping mechanism 300 can be improved; on the other hand, it also facilitates the overall structural layout of this fiber moving clamp, enabling it to possess the advantages of miniaturization and integration.

[0029] Furthermore, in this embodiment, the horizontal actuator 130 is preferably a linear cylinder. In different implementations, the horizontal actuator 130 can be configured as other structures with linear driving function, and this utility model does not impose specific limitations on this.

[0030] In this embodiment, the lateral movement mechanism 100 further includes at least two stop members 150, which are respectively disposed at both ends of the horizontal module 120. Each stop member 150 includes an extension plate 151 and an elastic member 152. The extension plate 151 is disposed at the end of the horizontal module 120, with one end protruding from the horizontal module 120 and connected to the elastic member 152. The elastic member 152 can abut against and stop the slide plate 140. Further, this embodiment provides two stop members 150, which are correspondingly disposed at both ends of the same horizontal module 120 to limit the movement limit position of the slide plate 140. The elastic member 152 contacts the end of the slide plate 140, and its base material is preferably elastic rubber. This invention does not specifically limit the specific material of the elastic member 152.

[0031] In this embodiment, the slide plate 140 includes a support portion 141, a connecting portion 143, and two sliding portions 142. The two sliding portions 142 are slidably connected to the two horizontal modules 120, respectively. The support portion 141 is disposed on the two sliding portions 142 and moves synchronously with the sliding portions 142. The connecting portion 143 protrudes from the support portion 141 along a second direction and is connected to the working end of the horizontal driver 130. The support portion 141 is used to connect to the clamping mechanism 300, the connecting portion 143 is used to connect to the horizontal driver 130, and the sliding portions 142 are movable along the horizontal modules 120.

[0032] See Figure 3 and Figure 4As shown, the lifting plate 210 is connected to the sliding plate 140 via guide posts 220. The clamping mechanism 300 in this embodiment also includes a disassembly chassis 360, which is detachably connected to the lifting plate 210 via a connector, preferably a bolt. Further, the column 310 in the clamping mechanism 300 is connected to the disassembly chassis 360. The clamping mechanism 300 also includes two opening and closing jaws 330, which are rotatably connected to the main body. Two clamping bosses 350 are respectively connected to the two opening and closing jaws 330, allowing the two jaws to move closer / away from each other. In addition, the clamping mechanism 300 in this embodiment includes a hinge 320 and a latch 340. The hinge 320 is connected to the two opening and closing jaws 330 on both sides, and the latch 340 is positioned between the two opening and closing jaws 330. Based on the above structural design, the clamping boss 350 in this embodiment can be adapted to different types of fiber elements through its openable and closable structure, thereby expanding its application range. Furthermore, this invention does not limit the specific type of the latch 340; in different embodiments, the latch 340 can be configured with a structure that has both locking and unlocking functions.

[0033] The following describes the usage process and principle of the fiber moving clamp in this embodiment: First, the clamping bosses 350 need to be separated to expose the clamping grooves 351. After placing the fiber 500 to be moved into the clamping grooves 351, the two clamping bosses 350 are brought closer to each other until the fiber element is stably clamped. Then, the locking buckle 340 is locked, thus completing the fixation of the fiber 500.

[0034] Next, depending on the actual usage requirements, the clamping mechanism 300 can be moved horizontally by the horizontal driver 130, or moved vertically by the lifting driver 230, thereby realizing the movement and transportation process of the fiber 500.

[0035] After all processing is completed, the fiber element can be removed by releasing the locking state of latch 340. Example 2

[0036] This embodiment provides a fiber processing system, which includes the fiber moving fixture described above. Further, the fiber processing system also includes a hot-melt device and a cold-press forming device, with the fiber moving fixture disposed between the hot-melt device and the cold-press forming device to drive the fiber 500 to be processed to move between the hot-melt device and the cold-press forming device.

[0037] In summary, the fiber moving clamp and processing system described in this utility model can fix the fiber 500 to be processed through the clamping mechanism 300, and then drive the fiber 500 to be processed to move in both the horizontal and vertical directions through the transverse mechanism 100 and the lifting mechanism 200, thereby achieving a stable transmission process of the fiber 500 to be processed. Furthermore, its adjustable clamping boss 350 can be adapted to different types of fiber products, thus further expanding its application range. Compared with conventional transmission technologies, this application, designed for fiber products, is not only ingeniously structured and flexible in use, but also has advantages such as stable movement, low cost, and precise positioning.

[0038] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.

Claims

1. A fiber movement clamp characterized by: The application relates to a fiber moving clamp. The fiber moving clamp comprises a horizontal moving mechanism, a lifting mechanism and a clamping mechanism. The horizontal moving mechanism comprises at least one horizontal module, a horizontal driver and a sliding plate. The horizontal driver is connected to the sliding plate to drive the sliding plate to move along the horizontal module.

2. The fiber movement clamp of claim 1, wherein: The lifting mechanism comprises a lifting plate and a lifting driver.

3. The fiber movement clamp of claim 1, wherein: The lifting plate is supported on the sliding plate and is connected to the lifting driver to move up and down along the thickness direction.

4. The fiber movement clamp of claim 1, wherein: The clamping mechanism moves synchronously with the lifting plate.

5. The fiber movement clamp of claim 4, wherein: The clamping mechanism comprises a main body and two clamping bosses.

6. The fiber movement clamp of claim 1, wherein: The main body is arranged on the lifting plate.

7. The fiber movement clamp of claim 1, wherein: The two clamping bosses are arranged on the main body and can move relatively close to or away from each other.

8. The fiber movement clamp of claim 1, wherein: The two clamping bosses jointly define a clamping groove.

9. A fiber processing system characterized by: The fiber to be moved is arranged inside the clamping groove.

10. The fiber processing system of claim 9, wherein: The horizontal moving mechanism comprises two fixed plates. The two fixed plates extend along a first direction and are arranged at intervals along a second direction. The two horizontal modules are arranged on the two fixed plates. The lifting driver is arranged between the two fixed plates. The horizontal driver is arranged on one fixed plate. The sliding plate comprises a supporting part, a connecting part and two sliding parts. The two sliding parts are slidably connected to the two horizontal modules. The supporting part is arranged on the two sliding parts and moves synchronously with the sliding parts. The connecting part protrudes from the supporting part along the second direction and is connected to the working end of the horizontal driver. The clamping mechanism further comprises two opening and closing clamping jaws. The two opening and closing clamping jaws are rotatably connected to the main body. The two clamping bosses are connected to the two opening and closing clamping jaws to move relatively close to or away from each other through the two opening and closing clamping jaws. The clamping mechanism comprises a hinge and a lock. The hinge is connected to the two opening and closing clamping jaws. The lock is arranged between the two opening and closing clamping jaws. The horizontal moving mechanism further comprises at least two stoppers. The two stoppers are arranged at the two ends of the horizontal module. The stopper comprises an extension plate and an elastic piece. The extension plate is arranged at the end of the horizontal module and is connected to the elastic piece. The elastic piece can abut against and stop the sliding plate. The fiber moving clamp further comprises a bottom plate and a control mechanism. The horizontal moving mechanism, the lifting mechanism and the clamping mechanism are arranged on the bottom plate and are connected to the control mechanism. The clamping mechanism further comprises a dismounting bottom plate. The dismounting bottom plate is detachably connected to the lifting plate through a connecting piece. The fiber moving clamp comprises any one of claims 1-8. The fiber processing system further comprises a hot melting device and a cold pressure forming device. The fiber moving clamp is arranged between the hot melting device and the cold pressure forming device to drive the fiber to be processed to move between the hot melting device and the cold pressure forming device.