A two-station temple cutting apparatus

By designing a dual-station temple cutting machine, two temples can be processed simultaneously, solving the problems of low efficiency in single-station operation and high cost of multi-specification fixtures. It is suitable for efficient production of small batches of multi-specification temples.

CN224526097UActive Publication Date: 2026-07-21XIAMEN WEISHUO INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XIAMEN WEISHUO INTELLIGENT TECHNOLOGY CO LTD
Filing Date
2025-06-17
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing cutting equipment is mostly single-station, which results in low working efficiency. Furthermore, multiple sets of clamping fixtures are required for different specifications of temples, leading to high equipment costs and large space occupation.

Method used

Design a dual-station mirror temple cutting machine, equipped with two clamping fixtures and a cutting disc. Through a drive mechanism and a swing and moving device, it can achieve multi-angle and multi-directional clamping of mirror temples, adapting to the processing of mirror temples of different specifications.

Benefits of technology

It improves processing efficiency, reduces equipment and fixture costs, and minimizes floor space, making it particularly suitable for small-batch, multi-specification temple production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical fields of glasses processing equipment provides a kind of double-station temple cutting equipment, including workbench, two settings on workbench and with workbench swing joint's clamping fixture, setting on workbench and being used to drive the first drive mechanism of clamping fixture movement, cutting device is set on workbench, the first drive mechanism drives clamping fixture to approach or away from cutting device;The cutting device includes cutting mechanism, two cutting pieces, the cutting mechanism drives two cutting pieces rotary cutting, and two the cutting piece corresponds two sets of clamping fixture setting.The double-station temple cutting equipment of the utility model is by setting two clamping fixtures, corresponding setting two cutting pieces, can simultaneously process two temples, can greatly improve processing efficiency.
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Description

Technical Field

[0001] This utility model relates to the technical field of eyeglass processing equipment, and in particular to a dual-station temple cutting device. Background Technology

[0002] Eyeglasses are a combination of lenses and frames, used to improve vision, protect the eyes, or for decorative purposes. Eyeglasses can correct various vision problems, including myopia, hyperopia, astigmatism, presbyopia, strabismus, and amblyopia. The frames include temples, which currently need to be machined to various angles and positions to fit the user. The industry currently uses cutting equipment to cut the temples, placing them on appropriate fixtures. However, existing cutting equipment may have the following problems:

[0003] First, most of them use single-station cutting, which results in low work efficiency;

[0004] Secondly, there are corresponding clamping fixtures for different specifications of temples. The clamping fixtures do not have multi-directional or multi-angle adjustment settings. Often, one set of clamping fixtures can only correspond to one type of temple. Especially for companies that produce small batches of temples with multiple specifications, many sets of clamping fixtures are needed, which increases the cost of equipment and fixtures and requires more space for placement.

[0005] In view of this, the inventor has specifically designed a dual-station mirror temple cutting device, which leads to this invention. Utility Model Content

[0006] To solve at least one of the above problems, the technical solution of this utility model is as follows:

[0007] A dual-station mirror temple cutting device includes a worktable, two clamping fixtures disposed on and movably connected to the worktable, a first driving mechanism disposed on the worktable for driving the clamping fixtures to move, and a cutting device disposed on the worktable. The first driving mechanism drives the clamping fixtures to move closer to or further away from the cutting device.

[0008] The cutting device includes a cutting mechanism and two cutting blades. The cutting mechanism drives the two cutting blades to rotate and cut. The two cutting blades are set with two clamping fixtures corresponding to each other.

[0009] Furthermore, the first driving mechanism includes a first bracket mounted on the workbench, a first driving cylinder mounted on the first bracket, and a second bracket mounted on the first bracket and slidably connected to the first bracket. The output end of the first driving cylinder is connected to the second bracket and drives the second bracket to move repeatedly on the first bracket. Two clamping fixtures are mounted side by side on the second bracket.

[0010] Furthermore, the cutting device also includes a third support mounted on the worktable, a second drive cylinder mounted on the first support, and a fourth support mounted on the third support and driven by the second drive cylinder, with the cutting mechanism mounted on the fourth support.

[0011] Furthermore, the cutting mechanism includes a first drive motor mounted on the fourth bracket, a first transmission wheel mounted on the output end of the first drive motor, a driven shaft mounted on and rotatably connected to the fourth bracket, a second transmission wheel mounted on the driven shaft, and a belt sleeved on the first and second transmission wheels. The two cutting blades are mounted on the driven shaft. The first drive motor drives the first transmission wheel to rotate, which in turn drives the second transmission wheel to rotate via the belt, thereby rotating the driven shaft and the two cutting blades to achieve the cutting of the temple.

[0012] Furthermore, the clamping fixture includes a first support, a swinging device disposed on the first support, a second support disposed on the swinging device, a moving device disposed on the second support, a third support disposed on the moving device, a placement seat disposed on the third support for placing the temple, and a clamping device disposed on the second support for clamping the temple; wherein, the swinging device drives the second support to swing in the vertical direction, and the moving device drives the third support to move.

[0013] Furthermore, the clamping device includes a clamping seat disposed on the second support, a clamping cylinder disposed on and rotatably connected to the clamping seat, a clamping arm disposed on and rotatably connected to the clamping seat, and a clamping member disposed on the clamping arm. The clamping cylinder applies force to one end of the clamping arm, and the clamping member located at the other end of the clamping arm applies force to the temple on the placement seat.

[0014] Furthermore, the output end of the clamping cylinder is rotatably connected to one end of the clamping arm via a rotating component.

[0015] Furthermore, the clamping seat is provided with an extension arm for rotatably connecting with the clamping arm. The extension arm is provided with a groove to facilitate the insertion of the clamping arm. Then, the rotatable connection between the clamping arm and the extension arm can be achieved by passing a rotating shaft through the extension arm and the clamping arm.

[0016] Furthermore, the first support includes a first upright plate and a second upright plate disposed on the second bracket, and the swing device is disposed between the first upright plate and the second upright plate.

[0017] Furthermore, the swinging device includes a first swinging seat disposed on and swingingly connected to the first support, and a second swinging seat disposed on and swingingly connected to the first swinging seat, wherein the second support is disposed on the second swinging seat.

[0018] Furthermore, the second swing seat is connected to the first swing seat via a third connecting shaft, and a second guide rod is also provided for guiding the swing of the second swing seat. The second swing seat is provided with a second guide hole, and the second guide rod passes through the second guide hole and connects to the first swing seat. The connection and locking method of the third connecting shaft is the same as that of the first connecting shaft, which will not be described in detail here.

[0019] Furthermore, both the first guide hole and the second guide hole are long arc-shaped to accommodate the swinging of the first swing seat and the second swing seat.

[0020] Furthermore, the moving device includes a first moving component and a second moving component, wherein the first moving component is disposed on the second support and is used to drive the second moving component to move along a first direction, and the second moving component drives the third support to move along a second direction.

[0021] Furthermore, the mobile device also includes a first fixing component and a second fixing component. When the first mobile component is adjusted, it is limited or fixed by the first fixing component. When the second mobile component is adjusted, it is limited or fixed by the second fixing component.

[0022] Furthermore, the first fixing component and the second fixing component have the same structure, both including a first fixing plate and a first fixing member. The first fixing plate is fixedly disposed on the first guide block, and a first adjustment hole is provided on the first fixing plate. The first fixing member passes through the first adjustment hole and is threadedly connected to the first slider.

[0023] Furthermore, the clamping cylinder is rotatably connected to the clamping seat via a first rotating seat. The clamping cylinder is mounted on the first rotating seat, and the two sides of the first rotating seat are rotatably connected to the clamping seat via a fourth connecting shaft. The fourth connecting shaft passes through the clamping seat and is connected to the first rotating seat. The fourth connecting shaft is rotatably connected to the clamping seat.

[0024] Furthermore, the temple clamping fixture also includes a support plate disposed on the third support for supporting the temple.

[0025] Furthermore, the placement base has a placement groove corresponding to the temple, and the placement base is detachably connected to the third support.

[0026] This utility model's dual-station mirror temple cutting equipment, by setting two clamping fixtures and corresponding cutting blades, can process two mirror temples simultaneously, which can greatly improve processing efficiency. Attached Figure Description

[0027] The accompanying drawings, which are provided to further illustrate the present invention and constitute a part of the present invention, illustrate exemplary embodiments of the present invention and are used to explain the present invention, but do not constitute an undue limitation of the present invention.

[0028] in:

[0029] Figure 1 This is an isometric schematic diagram of the dual-station mirror arm cutting device of this utility model;

[0030] Figure 2 This is an isometric view of the cutting device of this utility model;

[0031] Figure 3 This is a partial entity of the dual-station mirror temple cutting device of this utility model;

[0032] Figure 4 This is a utility model Figure 3 An explosion diagram;

[0033] Figure 5 This is an axonometric view of the temple clamping fixture of this utility model. Figure 1 ;

[0034] Figure 6 This is an axonometric view of the temple clamping fixture of this utility model. Figure 2 ;

[0035] Figure 7 This is a partial exploded view of the temple clamping fixture of this utility model;

[0036] Figure 8 This is an axonometric schematic diagram of the moving device of this utility model;

[0037] Figure 9 This is an axonometric schematic diagram of the first swing seat of this utility model.

[0038] Label Explanation:

[0039] 001. Temple; 002. Worktable; 003. Clamping fixture; 004. First drive mechanism; 041. First support; 042. First drive cylinder; 043. Second support; 005. Cutting device; 051. Cutting mechanism; 0511. First drive motor; 0512. First transmission wheel; 0513. Driven shaft; 0514. Second transmission wheel; 0515. Belt; 052. Cutting disc; 053. Third support; 054. Second drive cylinder; 055. Fourth support; 100. First support; 110. First upright plate; 111. First guide hole; 120. Second upright plate; 200. Swinging device; 210. First swing seat; 220. Second swing seat; 221. Second guide hole; 230. First connection Shaft; 240, First guide rod; 260, Third connecting shaft; 270, Second guide rod; 300, Second support; 400, Moving device; 410, First moving component; 411, First guide block; 412, First slider; 420, Second moving component; 430, First fixing component; 431, First fixing plate; 4311, First adjusting hole; 432, First fixing member; 440, Second fixing component; 500, Third support; 600, Placement seat; 700, Clamping device; 710, Clamping seat; 711, Extension arm; 720, Clamping cylinder; 721, Rotating component; 722, First rotating seat; 723, Fourth connecting shaft; 730, Clamping arm; 731, Long hole; 740, Clamping member; 800, Support plate. Detailed Implementation

[0040] To enable those skilled in the art to better understand the technical solutions in this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of this application.

[0041] Please see Figures 1 to 9 This is a preferred embodiment of a dual-station mirror temple cutting device, comprising a worktable 002, two clamping fixtures 003 disposed on and movably connected to the worktable 002, a first driving mechanism 004 disposed on the worktable 002 for driving the clamping fixtures 003 to move, and a cutting device 005 disposed on the worktable 002. The first driving mechanism 004 drives the clamping fixtures 003 to move closer to or away from the cutting device 005. The cutting device 005 includes a cutting mechanism 051 and two cutting blades 052. The cutting mechanism 051 drives the two cutting blades 052 to rotate and cut. The two cutting blades 052 are disposed corresponding to the two clamping fixtures 003.

[0042] Please see Figure 3 , 4 The first drive mechanism 004 includes a first support 041 mounted on the worktable 002, a first drive cylinder 042 mounted on the first support 041, and a second support 043 mounted on the first support 041 and slidably connected to the first support 041. The output end of the first drive cylinder 042 is connected to the second support 043 and drives the second support 043 to move repeatedly on the first support 041. Two clamping fixtures 003 are arranged side by side on the second support 043.

[0043] Please see Figure 2 The cutting device 005 also includes a third support 053 mounted on the worktable 002, a second drive cylinder 054 mounted on the first support 041, and a fourth support 055 mounted on the third support 053 and driven by the second drive cylinder 054. The cutting mechanism 051 is mounted on the fourth support 055. Specifically, the cutting mechanism 051 includes a first drive motor 0511 mounted on the fourth support 055, a first transmission wheel 0512 mounted on the output end of the first drive motor 0511, a driven shaft 0513 mounted on the fourth support 055 and rotatably connected to the fourth support 055, a second transmission wheel 0514 mounted on the driven shaft 0513, and a belt 0515 sleeved on the first transmission wheel 0512 and the second transmission wheel 0514. Two cutting blades 052 are mounted on the driven shaft 0513. The first drive motor 0511 drives the first transmission wheel 0512 to rotate, which in turn drives the second transmission wheel 0514 to rotate via the belt 0515, thereby driving the driven shaft 0513 and the two cutting blades 052 to rotate, so as to cut the temple 001.

[0044] Please see Figures 5 to 9 The clamping fixture 003 includes a first support 100, a swinging device 200 disposed on the first support 100, a second support 300 disposed on the swinging device 200, a moving device 400 disposed on the second support 300, a third support 500 disposed on the moving device 400, a placement seat 600 disposed on the third support 500 for placing the temple 001, and a clamping device 700 disposed on the second support 300 for clamping the temple 001. The swinging device 200 drives the second support 300 to swing vertically, and the moving device 400 drives the third support 500 to move. Furthermore, the swinging device 200 drives the placement seat 600 to swing back and forth and left and right, and the moving device 400 drives the placement seat 600 to move back and forth and left and right, thus accommodating temples 001 of more specifications for subsequent cutting or other processing.

[0045] Please see Figure 6The clamping device 700 includes a clamping seat 710 disposed on the second support 300, a clamping cylinder 720 disposed on and rotatably connected to the clamping seat 710, a clamping arm 730 disposed on and rotatably connected to the clamping seat 710, and a clamping member 740 disposed on the clamping arm 730. The clamping cylinder 720 applies force to one end of the clamping arm 730, and the clamping member 740 located at the other end of the clamping arm 730 applies force to the temple 001 on the placement seat 600. Specifically, the output end of the clamping cylinder 720 is rotatably connected to one end of the clamping arm 730 via a rotating member 721. An extension arm 711 is provided on the clamping seat 710 for rotatable connection with the clamping arm 730. The extension arm 711 has a groove to allow the clamping arm 730 to be inserted. A rotating shaft passes through the extension arm 711 and the clamping arm 730 to achieve the rotatable connection. The clamping member 740 is adjustable to the clamping arm 730. Specifically, a racetrack-shaped elongated hole 731 is provided on the clamping arm 730, and an internally threaded hole is provided on the clamping member 740. A bolt passes through the elongated hole 731 and is threaded into the internally threaded hole on the clamping member 740. Depending on the position of the temple 001, the bolt is loosened, the clamping member 740 is adjusted so that the end of the clamping member 740 just presses against the designated position of the temple 001, and then the bolt is tightened. This allows for clamping temples 001 of different sizes. The specific structure of the clamping arm 730 and clamping member 740 in this embodiment can be referred to the attached drawings, or can be selectively set according to actual needs. It is only necessary to use the lever principle to clamp the temple 001.

[0046] Please see Figure 7 The clamping cylinder 720 is rotatably connected to the clamping seat 710 via the first rotating seat 722. The clamping cylinder 720 is mounted on the first rotating seat 722, and the two sides of the first rotating seat 722 are rotatably connected to the clamping seat 710 via the fourth connecting shaft 723. The fourth connecting shaft 723 passes through the clamping seat 710 and is connected to the first rotating seat 722. The fourth connecting shaft 723 is rotatably connected to the clamping seat 710.

[0047] Please see Figure 5 To more securely place the temple 001 on the placement base 600, the placement base 600 is provided with a placement groove corresponding to the temple 001. The temple 001 clamping fixture 003 also includes a support plate 800 disposed on the third support 500 for supporting the temple 001. When the end of the temple 001 to be processed is placed in the placement groove, the other end can be supported by the support plate 800 and then clamped by the clamping device 700. Furthermore, in order to adapt to the processing of temples 001 of different specifications, only the placement base 600 needs to be replaced. Therefore, the placement base 600 and the third support 500 are detachably connected and can be positioned and locked by bolts and pins. These methods are all existing technologies and will not be described in detail.

[0048] Please see Figure 5 , 6 The first support 100 includes a first upright plate 110 and a second upright plate 120 disposed on the second bracket 043. The swing device 200 is disposed between the first upright plate 110 and the second upright plate 120. In order to improve processing efficiency, two first upright plates 110 and two second upright plates 120 can be provided. The corresponding swing device 200, moving device 400 and clamping device 700 are all provided in two sets to realize the simultaneous processing of a pair of temples 001, which greatly improves the processing efficiency.

[0049] Please see Figure 6 , 7The swinging device 200 includes a first swing seat 210 disposed on and sway-connected to the first support 100, and a second swing seat 220 disposed on and sway-connected to the first swing seat 210. A second support 300 is disposed on the second swing seat 220. Specifically, the first swing seat 210 can drive the second swing seat 220 to swing back and forth, and the second swing seat 220 can drive the second support 300 to swing left and right. The first swing seat 210 is disposed between the first upright plate 110 and the second upright plate 120. One side of the first swing seat 210 is connected to the first upright plate 110 through a first connecting shaft 230, and the other side is connected to the second upright plate 120 through a second connecting shaft (not shown). Under the action of the first connecting shaft 230 and the second connecting shaft, the first swing seat 210 can rotate (i.e., swing) at a certain angle. A first guide hole 111 is also provided on the first column, and a first guide rod 240 passes through the first guide hole 111 and connects to the first swing seat 210. 0 connection (threaded connection is acceptable), wherein the first connecting shaft 230 also has a locking function, that is, after the first connecting shaft 230 passes through the first vertical plate 110, the end is threadedly connected to the first swing seat 210. When the swing angle of the first swing seat 210 needs to be adjusted, the first connecting shaft 230 is loosened. When the first swing seat 210 swings to the specified angle, the first connecting shaft 230 is locked again to achieve the locking and fixing of the first swing seat 210. Two first guide rods 240 can be set. Of course, the locking of the first swing seat 210 can also be achieved by two first guide rods 240, or the first connecting shaft 230 and the first guide rods 240 can be locked simultaneously to improve the stability after locking. Furthermore, the first swing seat 210, corresponding to the first guide hole 111, can be provided with multiple internal threaded holes for threaded connection with the first guide rod 240, thereby increasing the range of adjustment angle. The second swing seat 220 is connected to the first swing seat 210 through the third connecting shaft 260, and a second guide rod 270 is also provided for swing guidance of the second swing seat 220. The second swing seat 220 is provided with a second guide hole 221, through which the second guide rod passes and connects to the first swing seat 210. The connection and locking method of the third connecting shaft 260 is the same as that of the first connecting shaft 230, and will not be described in detail here. Both the first guide hole 111 and the second guide hole 221 are arc-shaped to accommodate the swing of the first swing seat 210 and the second swing seat 220.

[0050] Please see Figure 7 , 8The moving device 400 includes a first moving component 410 and a second moving component 420. The first moving component 410 is disposed on the second support 300 and is used to drive the second moving component 420 to move along a first direction. The second moving component 420 drives the third support 500 to move along a second direction. The first direction is the front-back direction, and the second direction is the left-right direction. The first moving component 410 and the second moving component 420 have the same structure, only their orientations are different. Both include a first guide block 411 and a first slider 412. The first slider 412 and the first guide block 411 are connected by a dovetail groove structure to improve the accuracy of movement.

[0051] Please see Figure 7 , 8 The moving device 400 also includes a first fixing component 430 and a second fixing component 440. When the first moving component 410 is adjusted, it is limited or fixed by the first fixing component 430; similarly, when the second moving component 420 is adjusted, it is limited or fixed by the second fixing component 440. The first fixing component 430 and the second fixing component 440 have identical structures, both including a first fixing plate 431 and a first fixing member 432. The first fixing plate 431 is fixedly mounted on the first guide block 411, and a first adjustment hole 4311 is provided on the first fixing plate 431. The first fixing member 432 passes through the first adjustment hole 4311 and is threadedly connected to the first slider 412. The first adjustment hole 4311 is a long, racetrack-shaped strip. When adjusted to the designated position, tightening the first fixing member 432 prevents the slider from moving on its own.

[0052] The dual-station chip cutting equipment of this utility model also includes protective devices such as guardrails set on the worktable and moving wheels set under the worktable. The worktable can be the entire frame to fix various components or devices. The main improvement is in the structure. Other parts are existing technologies and will not be described in detail.

[0053] The working principle of this dual-station mirror temple cutting device is as follows:

[0054] The first swing seat 210, the second swing seat 220, the first moving component 410, and the second moving component 420 are all adjustable. Depending on the temple 001 to be processed, the first swing seat 210, the second swing seat 220, the first moving component 410, and the second moving component 420 can be adjusted sequentially. Once one component is adjusted to the correct position, it can be locked accordingly. If a different specification of temple 001 needs to be replaced, any one component can be loosened first, and then immediately locked after adjustment. This process can be repeated sequentially. After adjustment, the temple 001 to be processed is placed in the placement slot. The clamping cylinder 720 presses down on the temple 001. Then, the first drive mechanism 004 drives the two clamping fixtures 003 to approach the cutting device 005. The second drive mechanism then drives the cutting mechanism 051 to move downwards, approaching the clamping fixtures 003. Finally, the cutting structure drives the cutting blade 052 to cut the temple 001. After cutting, each component resets to complete one processing cycle.

[0055] In summary, the dual-station temple cutting equipment of this utility model, by setting two clamping fixtures and corresponding cutting blades, can process two temples simultaneously, which can greatly improve processing efficiency. Furthermore, the temple clamping fixture of this utility model is equipped with a swing device and a moving device to adjust the angle and orientation of the placement seat, which greatly improves the applicability of the clamping fixture, helps to reduce the equipment and fixture costs of enterprises, and reduces the footprint of the clamping fixture. It is particularly suitable for processing small batches of temples with multiple specifications.

[0056] It should be noted that, in this document, relational terms such as “first” and “second” are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0057] Other embodiments of this application will readily occur to those skilled in the art upon consideration of the specification and practice of the application disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this application are indicated by the following claims.

[0058] It should be understood that this application is not limited to the precise structure described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this application is limited only by the appended claims.

Claims

1. A dual-station mirror temple cutting device, characterized in that: The device includes a worktable (002), two clamping fixtures (003) disposed on and movably connected to the worktable (002), a first drive mechanism (004) disposed on the worktable (002) and used to drive the clamping fixtures (003) to move, and a cutting device (005) disposed on the worktable (002). The first drive mechanism (004) drives the clamping fixtures (003) to move closer to or away from the cutting device (005). The cutting device (005) includes a cutting mechanism (051) and two cutting blades (052). The cutting mechanism (051) drives the two cutting blades (052) to rotate and cut. The two cutting blades (052) are set with two assembly clamping fixtures (003).

2. The dual-station mirror temple cutting device according to claim 1, characterized in that: The first drive mechanism (004) includes a first support (041) disposed on the worktable (002), a first drive cylinder (042) disposed on the first support (041), and a second support (043) disposed on the first support (041) and slidably connected to the first support (041). The output end of the first drive cylinder (042) is connected to the second support (043) and drives the second support (043) to move repeatedly on the first support (041).

3. The dual-station mirror temple cutting equipment according to claim 1, characterized in that: The cutting device (005) further includes a third support (053) disposed on the worktable (002), a second drive cylinder (054) disposed on the first support (041), and a fourth support (055) disposed on the third support (053) and driven by the second drive cylinder (054), wherein the cutting mechanism (051) is disposed on the fourth support (055).

4. The dual-station mirror temple cutting equipment according to claim 1, characterized in that: The clamping fixture (003) includes a first support (100), a swinging device (200) disposed on the first support (100), a second support (300) disposed on the swinging device (200), a moving device (400) disposed on the second support (300), a third support (500) disposed on the moving device (400), a placement seat (600) disposed on the third support (500) for placing the temple (001), and a clamping device (700) disposed on the second support (300) for clamping the temple (001); wherein, the swinging device (200) drives the second support (300) to swing in the vertical direction, and the moving device (400) drives the third support (500) to move.

5. A dual-station mirror temple cutting device according to claim 4, characterized in that: The clamping device (700) includes a clamping seat (710) disposed on the second support (300), a clamping cylinder (720) disposed on and rotatably connected to the clamping seat (710), a clamping arm (730) disposed on and rotatably connected to the clamping seat (710), and a clamping member (740) disposed on the clamping arm (730). The clamping cylinder (720) applies force to one end of the clamping arm (730), and the clamping member (740) located at the other end of the clamping arm (730) applies force to the temple (001) on the placement seat (600).

6. A dual-station mirror temple cutting device according to claim 4, characterized in that: The swing device (200) includes a first swing seat (210) disposed on the first support (100) and swing-connected to the first support (100), and a second swing seat (220) disposed on the first swing seat (210) and swing-connected to the first swing seat (210), wherein the second support (300) is disposed on the second swing seat (220).

7. A dual-station mirror temple cutting device according to claim 4, characterized in that: The moving device (400) includes a first moving component (410) and a second moving component (420), wherein the first moving component (410) is disposed on the second support (300) and is used to drive the second moving component (420) to move along a first direction, and the second moving component (420) drives the third support (500) to move along a second direction.

8. A dual-station mirror temple cutting device according to claim 7, characterized in that: The moving device (400) further includes a first fixing component (430) and a second fixing component (440). When the first moving component (410) is adjusted, it is limited or fixed by the first fixing component (430). When the second moving component (420) is adjusted, it is limited or fixed by the second fixing component (440).

9. A dual-station mirror temple cutting device according to claim 4, characterized in that: The temple (001) clamping fixture (003) also includes a support plate (800) disposed on the third support (500) and used to support the temple (001).

10. A dual-station mirror temple cutting device according to claim 4, characterized in that: The placement base (600) is provided with a placement groove corresponding to the temple (001), and the placement base (600) is detachably connected to the third support (500).