Fixing clamp for glass plate processing

By designing a glass plate processing fixture with independent rotating clamping assembly, the problems of complicated operation and difficult to ensure clamping status in the prior art are solved, and efficient clamping and angle adjustment of glass plates of different thicknesses are achieved.

CN120206430APending Publication Date: 2025-06-27扬州市五域光电科技有限公司
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Patent Information

Application Number
CN202510669910.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-06-27

AI Technical Summary

Technical Problem

When existing glass plate processing fixtures face glass plates with different thicknesses, they require manual complex adjustments, which are complicated to operate and difficult to ensure the optimal state.

Method used

A fixing fixture is designed including a "U" main seat, a base connected by a rod, a longitudinal sliding support seat and an independently rotating clamping assembly. The clamping assembly simplifies the operation process by enabling independent control of clamping and angle adjustment through multiple sets of gears and drive shafts.

Benefits of technology

Through independent rotation control, the clamping and angle adjustment process of glass plates is simplified, adapting to the clamping of glass plates of different thicknesses, and improving the convenience and accuracy of operation.

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Abstract

The invention discloses a fixing clamp for glass plate processing, which relates to the technical field of glass processing equipment, and is characterized by comprising a main seat of a U-shaped structure, a base connected with the bottom of the main seat through a plurality of groups of support rods, and a support seat longitudinally sliding in a U-shaped groove of the main seat and used for supporting a glass plate, clamping assemblies used for clamping a glass plate are symmetrically arranged on the main seat, a clamping control end and an angle control end which are used for conducting clamping adjustment and angle adjustment on the clamping assemblies are arranged at the two ends of the main seat correspondingly, and adjusting discs are arranged on the clamping control end and the angle control end correspondingly. The fixing clamp adopts an independent rotation control mode, a traditional clamp control mode is simplified, meanwhile, manual cutting and drawing on a glass plate are facilitated, meanwhile, an adaptive clamping mode is adopted, the targeted clamping mode of a traditional clamp is effectively changed, and the practicability and functionality of the clamp are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of microcrystalline glass processing equipment, and more specifically, it relates to a fixing jig for processing glass plates. Background Art

[0002] A microcrystalline glass plate is a mixture of microcrystals and glass made by sintering and crystallization of appropriate glass particles. This type of glass plate has the dual characteristics of glass and ceramics and is widely used in the decorative finishing of buildings, commercial buildings, entertainment facilities, and industrial buildings.

[0003] The processing of microcrystalline glass plates mainly includes cutting, edge grinding, drilling, sandblasting / etching, and coating treatment, etc. Among them, in the cutting process, it also includes cold cutting, hot cutting, and laser cutting, etc. In the processing of microcrystalline glass plates, cold cutting is a relatively common glass processing method. The glass plate is fixed by a fixing jig, and manual or automated cutting tool equipment cuts according to the drawn cutting line. In this way, it is usually used for precise cutting of glass without heating, and the processing cost involved is relatively low, and the effect of small-scale glass processing is more obvious.

[0004] In order to ensure the stability and accuracy of the glass plate during the cutting process, the fixing jig is an essential core component. At present, the limiting method of the jig for the glass plate on the market mainly adopts the method of combining lateral displacement adjustment with clamping by a chuck. In this way, on the one hand, when facing glass plates of different thicknesses, it is necessary to manually make adaptive two-way adjustments for the thickness of the glass plate, including the adjustment of the lateral position of the jig and the adaptive adjustment of the clamping of the chuck, and the operation process is cumbersome. On the other hand, when clamping, it is also necessary to manually check and determine whether the chuck is in the best fixed state, which also involves the problem of cumbersome process.

[0005] Therefore, in order to solve the above technical problems, the present application proposes a fixing jig for processing glass plates. Summary of the Invention

[0006] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a fixing jig for processing glass plates.

[0007] To achieve the above object, the present invention provides the following technical solution: A fixing fixture for glass plate processing, comprising a main seat in a "U" - shaped structure, a base connected to the bottom of the main seat through multiple groups of support rods, and a support seat longitudinally sliding in the "U" - shaped groove of the main seat and used to support the glass plate. Clamping components for clamping the glass plate are symmetrically arranged on the main seat, and clamping control ends and angle control ends for clamping adjustment and angle adjustment of the clamping components are respectively arranged at both ends of the main seat. Adjusting disks are arranged on both the clamping control end and the angle control end; wherein, inside the main seat and at the positions of the two clamping components, there are clamping adjustment parts for controlling the displacement of the clamping components and angle adjustment parts for rotational control based on the drive of the clamping adjustment parts. The angle adjustment parts and clamping adjustment parts of the two clamping components are synchronously driven through a transmission shaft and a transmission seat b arranged inside the main seat and a transmission belt. The adjusting disk at the clamping control end is connected to the clamping adjustment part of the clamping component corresponding to the position of the clamping control end through a bevel gear assembly a arranged inside the main seat and in cooperation with a transmission belt. The adjusting disk at the angle control end is connected to the angle adjustment part of the clamping component corresponding to the position of the angle control end through a bevel gear assembly b arranged inside the main seat and in cooperation with a transmission belt; The clamping component includes a clamping block located in the "U" - shaped groove of the main seat and a sliding rod passing through the inside of the main seat and extending to the outside of the main seat on the opposite side of the clamping block. The sliding rod is in an overall semi - closed structure, and a tooth groove a driven by the angle adjustment part through meshing is arranged on the outer wall. The inside of the sliding rod is hollow and provided with a rotating cavity. Inside the rotating cavity, there is a tooth roller driven by the clamping adjustment part through meshing and driving the clamping block to rotate. The clamping block is provided with a clamping opening, and at the top of the clamping opening, there is a pressing piece that adaptively presses the glass plate located in the clamping opening by driving a linkage part arranged inside the clamping block through an elastic telescopic part arranged in the clamping opening.

[0008] Preferably, sliding columns corresponding to both sides of the support seat are oppositely arranged between the main seat and the base. Strip - shaped sliding grooves are opened on the sliding columns, and hole grooves for limiting the longitudinal movement position of the support seat are arranged on the top and bottom sides of the strip - shaped sliding grooves. A plurality of balls for facilitating the movement of the supported glass plate are arranged on the top of the support seat in a circular arrangement. Connecting rods are arranged on both sides of the support seat. Sliders fitted with the strip - shaped sliding grooves are arranged on the connecting rods, and elastic buckles fitted with the hole grooves are arranged on both sides of the sliders.

[0009] Preferably, the adjusting disc includes a disc body and an adjusting rod. The disc body is circumferentially provided with positioning holes. The adjusting rod includes a rotating shaft, two sets of disc seats connected to the rotating shaft, and an "L"-shaped rotating rod arranged on the central shaft bodies of the two sets of disc seats. The rotating rod corresponds to the positioning holes in position and has a matching fitting structure. The rotating shaft on the adjusting disc at the angle control end penetrates the disc body and is connected to the bevel gear assembly b inside the main seat. The rotating shaft on the adjusting disc at the clamping control end penetrates the disc body and is connected to the bevel gear assembly a inside the main seat.

[0010] Preferably, the bevel gear assembly a includes a bevel gear a connected to the rotating shaft on the adjusting disc at the clamping control end and a bevel gear b meshed with the bevel gear a. The bevel gear assembly b includes a bevel gear c connected to the rotating shaft on the adjusting disc at the angle control end and a bevel gear d meshed with the bevel gear c. Among them, a belt connecting seat a is arranged at the center inside the bevel gear d. A belt connecting seat b is arranged at the center of the bottom of the bevel gear b.

[0011] Preferably, the angle adjusting member includes a gear a and a transmission seat c arranged at the center of the side end of the gear a. The clamping adjusting member includes a gear b and a transmission seat d arranged at the bottom of the gear b. Among them, the transmission seat c at the angle control end has a double-groove structure and is connected to the belt connecting seat a on the bevel gear d and a transmission seat a arranged at one end of the transmission shaft and corresponding to the transmission seat c at the angle control end through transmission belts respectively. The transmission seat a arranged at the other end of the transmission shaft is connected to the transmission seat c of the angle adjusting member at the clamping control end through a transmission belt. The transmission seat d at the clamping control end is connected to the belt connecting seat b at the bottom of the bevel gear b through a transmission belt. A transmission seat e is arranged beside the transmission seat d at the clamping control end. The transmission seat e is connected to a transmission seat b arranged at one end inside the main seat and corresponding to the transmission seat e through a transmission belt. The transmission seat b arranged at the other end inside the main seat is connected to the transmission seat d of the clamping adjusting member at the angle control end through a transmission belt. The two transmission seats b are connected through a transmission belt, and both transmission seats b have a double-groove structure. Gears c and d meshing with each other are respectively arranged on the transmission seat d and the transmission seat e at the clamping control end.

[0012] Preferably, one end of the tooth roller penetrates the sliding rod and is connected to the clamping block through a cover body and screws. The connection part between the tooth roller and the sliding rod has a limit rotation structure. The other end of the tooth roller is rotatably connected to the inner wall of the end of the rotation cavity. The meshing structure between the tooth roller and the gear a matches. The meshing structure between the gear b and the tooth groove a matches.

[0013] Preferably, the clamping block at the clamping opening is in a sectional shape, a placement area for the pressing piece is arranged at the top of the clamping opening, the elastic telescopic member is located at the end of the pressing piece, and the elastic telescopic member includes a driving rod that penetrates the inner wall of the clamping opening and is connected to the inside of the clamping block, a disk a arranged on the inner wall of the clamping opening and having a penetrating structure with the driving rod, a disk b arranged at the outer end of the driving rod, a spring connected between the disk a and the disk b, and a ball head arranged on the disk b.

[0014] Preferably, the linkage member includes a gear f that meshes and drives, a gear e that is synchronously driven with the gear f through a transmission belt, and a transmission block that is connected to the pressing piece and is meshed and driven by the gear e. The transmission block is in a "Z" shape, and a transmission groove is arranged at the meshing end of the transmission block and the gear e.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] 1. This fixed fixture adopts an independent rotation control form to separately realize the control of clamping the glass plate and the angle adjustment of the clamped glass plate. While simplifying the traditional fixture control method, it also facilitates manual cutting and drawing on the glass plate.

[0017] 2. The clamping method of this fixed fixture adopts an adaptive clamping form. When clamping a glass plate with a thickness suitable for the clamping opening range, by means of the lateral movement of the fixture, the elastic telescopic member in the clamping opening can be compressed through the plate body at the edge of the glass plate, and the linkage member drives the pressing piece to clamp the glass plate, which can be adaptively controlled according to the thickness of the glass plate. When the glass plate is thicker than the clamping opening, the glass plate can be tightly fixed by the sectional area of the clamping block. Therefore, this clamping method effectively changes the targeted clamping adjustment method of the traditional fixture and improves the practicability and functionality of the fixture. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The drawings described herein are used to provide a further understanding of the present invention, form a part of this application, and the schematic embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation to the present invention. In the drawings:

[0019] Figure 1 is the overall structure diagram of the fixture in the present invention;

[0020] Figure 2 is the overall connection diagram of the clamping assembly in the present invention;

[0021] Figure 3 is the partial view of the overall connection of the clamping assembly in the present invention;

[0022] Figure 4 is the bottom structure connection diagram of the clamping assembly in the present invention;

[0023] Figure 5 In the present invention Figure 2 is an enlarged view of part A;

[0024] Figure 6 In the present invention Figure 2 is an enlarged view of part B;

[0025] Figure 7 In the present invention Figure 2 is an enlarged view of part C;

[0026] Figure 8 In the present invention Figure 3 is an enlarged view of part D;

[0027] Figure 9 In the present invention Figure 3 is an enlarged view of part E;

[0028] Figure 10 In the present invention Figure 3 is an enlarged view of part F;

[0029] Figure 11 In the present invention Figure 4 is an enlarged view of part G;

[0030] Figure 12 is a structural diagram of the adjusting disc in the present invention;

[0031] Figure 13 is a structural diagram of the clamping assembly in the present invention;

[0032] Figure 14 is a partial structural diagram of the clamping assembly in the present invention;

[0033] Figure 15 is an exploded view of the clamping assembly in the present invention;

[0034] Figure 16 is an internal structural diagram of the clamping block in the present invention.

[0035] 1. Main seat;

[0036] 2. Base; 201. Sliding column; 202. Slide block;

[0037] 3. Support seat; 301. Ball;

[0038] 4. Clamping assembly;

[0039] 5. Adjusting disc; 501. Positioning hole; 502. Disc seat; 503. Rotating shaft; 504. Rotating rod;

[0040] 6. Transmission shaft; 601. Transmission seat a;

[0041] 7. Transmission seat b;

[0042] 8. Angle adjusting member; 801. Gear a; 802. Transmission seat c;

[0043] 9. Clamping adjusting member; 901. Gear b; 902. Transmission seat d; 903. Gear c;

[0044] 10. Bevel gear assembly a; 1001. Tapered tooth a; 1002. Tapered tooth b;

[0045] 11. Bevel gear assembly b; 1101. Tapered tooth c; 1102. Tapered tooth d;

[0046] 12. Transmission seat e; 1201. Gear d;

[0047] 13. Clamping block; 1301. Clamping opening; 1302. Pressing piece; 1303. Elastic telescopic member; 1304. Transmission block; 1305. Gear e; 1306. Gear f; 1307. Ball head; 1308. Driving rod; 1309. Spring;

[0048] 14. Sliding rod; 1401. Tooth groove a; 1402. Rotating cavity; 1403. Tooth roller. Detailed implementation manner

[0049] As Figure 1-16 shown, the present invention provides a fixing fixture for glass plate processing, including a main seat 1 in a "U" - shaped structure, a base 2 connected to the bottom of the main seat 1 through multiple groups of support rods, and a support seat 3 longitudinally sliding in the "U" - shaped groove of the main seat 1 and used for supporting the glass plate. Clamping assemblies 4 for clamping the glass plate are symmetrically arranged on the main seat 1, and clamping control ends and angle control ends for clamping adjustment and angle adjustment of the clamping assemblies 4 are respectively arranged at both ends of the main seat 1, and adjustment disks 5 are arranged on both the clamping control ends and the angle control ends;

[0050] As Figure 1 and Figure 12 shown, the support seat 3 mainly functions to support the glass plate. For the support seat 3, it is essentially a carrier such as a carrier plate and a seat body. After the glass plate is flipped / angle - adjusted by the clamping assembly 4, the support seat 3 will be at the bottom side position of the sliding column 201. At the same time, in order to facilitate drawing cutting lines on the glass plate, its volume should not be too large to avoid the position moving back and forth during the manual drawing process, resulting in the feet being knocked.

[0051] Among them, for the overall control of the clamping assembly 4, as Figures 2-11As shown in the figure, inside the main seat 1, and at both sets of clamping components 4, there are provided a clamping adjustment member 9 for controlling the displacement of the clamping component 4 and an angle adjustment member 8 for controlling rotation on the basis of the drive of the clamping adjustment member 9. The angle adjustment members 8 and the clamping adjustment members 9 of the two sets of clamping components 4 are synchronously driven through the transmission shaft 6 and the transmission seat b7 provided inside the main seat 1 and a transmission belt. The adjustment disk 5 at the clamping control end is connected to the clamping adjustment member 9 on the clamping component 4 corresponding to the clamping control end position through the bevel gear assembly a10 provided inside the main seat 1 and in cooperation with the transmission belt. The adjustment disk 5 at the angle control end is connected to the angle adjustment member 8 on the clamping component 4 corresponding to the angle control end position through the bevel gear assembly b11 provided inside the main seat 1 and in cooperation with the transmission belt.

[0052] Specifically, for the control of the clamping component 4, it specifically includes angle adjustment and clamping adjustment. In order to achieve independent control of angle adjustment and clamping adjustment and the purpose of mutual coordination, it is necessary to set independent control ends at the "U" - shaped end of the main seat 1, that is, the clamping control end and the angle control end. At the same time, considering the synchronous driving effect of the two sets of clamping components 4, it is necessary to carry out transmission cooperation and transmission commutation through the transmission seat b7 and the transmission shaft 6 inside the main seat 1.

[0053] It should be noted that, as Figures 2-4 shown, the angle adjustment member 8 and the clamping adjustment member 9 are in different spatial positions. Therefore, the transmission between the two adjustment members does not affect each other. At the same time, considering the connection control of the two independent control ends, only need to connect the angle adjustment member 8 at one end of the clamping component 4 of the main seat 1 to the adjustment disk 5 on one end of the "U" - shaped end of the main seat 1, and connect the clamping adjustment member 9 of the clamping component 4 at the other end to the adjustment disk 5 on the other end of the "U" - shaped end of the main seat 1, so as to achieve the effect of independent adjustment and overall transmission.

[0054] As Figures 13-15 shown, the clamping component 4 includes a clamping block 13 located in the "U" - shaped groove of the main seat 1 and a sliding rod 14 that penetrates the inside of the main seat 1 and extends to the outside of the main seat 1 on the opposite side of the clamping block 13. The sliding rod 14 is in an overall semi - closed structure, and there is a tooth groove a1401 on the outer wall that is meshing - driven by the angle adjustment member 8. The inside of the sliding rod 14 is a hollow structure, and there is a rotating cavity 1402. Inside the rotating cavity 1402, there is a tooth roller 1403 that is meshing - driven by the clamping adjustment member 9 and drives the clamping block 13 to rotate. There is a clamping opening 1301 on the clamping block 13. At the top of the clamping opening 1301, there is a pressing piece 1302 that drives the linkage member inside the clamping block 13 through the elastic telescopic member 1303 provided in the clamping opening 1301 to adaptively press the glass plate located in the clamping opening 1301.

[0055] Further, the clamping assembly 4 adopts an adaptive clamping method without the need for clamping operations. When the clamping adjustment member 9 drives the clamping assembly 4 to clamp the glass plate, the edge portion of the glass plate will be embedded into the clamping opening 1301 of the clamping block 13. Through the compression of the elastic telescopic member 1303 and its driving of the linkage member, the pressing piece 1302 is longitudinally moved to clamp glass plates of different thicknesses. The clamping part only depends on the compression degree of the elastic telescopic member 1303, that is, the embedding depth in the clamping opening 1301.

[0056] In summary, based on the range allowed by the "U"-shaped groove of the main seat 1, this fixed fixture can clamp and fix glass plates of different sizes and thicknesses. At the same time, through clamping adjustment and angle adjustment, the cutting and cutting drawing of the glass plate body are integrated. Moreover, it also greatly simplifies the operation process in the traditional glass plate cutting process, improves the practicability and functionality of the fixture. The specific use of the fixture is as follows:

[0057] First, according to the thickness range and size of the glass plate for daily cutting, the size of the clamping opening 1301 of the clamping block 13 and the size of the "U"-shaped groove of the main seat 1 are set specifically. When cutting the glass plate, manually move the support seat 3 to the top limit point of the sliding column 201, and use the elastic buckle to lock and fix it with the corresponding hole groove. Place the glass plate on the ball 301 on the top of the support seat 3. The multi-group balls 301 simultaneously provide stable support for the glass plate, and at the same time, the position of the glass plate can be adjusted through the balls 301 so that the middle area of the glass plate corresponds to the support seat 3;

[0058] After that, following the sequence of first clamping and then rotating, the rotating shaft 503 on the adjusting disc 5 at the angle control end is located within the corresponding positioning hole 501 on the disc body of the adjusting disc 5, that is, the adjusting disc 5 at the angle control end is in a limited state. The locking state of the adjusting disc 5 at the clamping control end is released. By rotating the rotating rod 504, the rotating shaft 503 connected to the rod is driven, and the bevel gear assembly a10 cooperates with the transmission belt to drive the rotation of the gear b901 at the clamping control end. The gear b901, under the cooperation of the transmission belt and the transmission seat b7, transmits the drive to the transmission seat e12 at the angle control end. The transmission seat e12 is used to reverse the transmission of the gear b901 at the angle control end, ensuring relative movement between the two clamping assemblies 4. After the clamping mouth 1301 of the clamping block 13 is fitted with the edge plate body of the glass plate, at this time, when the position of the glass plate on the support seat 3 is different, the clamping mouth 1301 on the clamping block 13 of one of the clamping assemblies 4 is preferentially fitted with the edge plate body of the glass plate. At this time, this clamping assembly 4 will push the glass plate to slide on the support seat 3 until the clamping mouths 1301 on the clamping blocks 13 of the two clamping assemblies 4 simultaneously achieve the fitting of the edge plate body of the glass plate. Along with the movement, the ball head 1307 of the elastic telescopic member 1303 compresses the spring 1309 and drives the drive rod 1308 to move into the clamping block 13. The drive rod 1308 drives the gear f1306 to rotate. The gear f1306 rotates the transmission belt gear e1305 through the transmission belt. The gear e1305 drives the transmission block 1304 to drive the pressing piece 1302. The glass plate is pressed and fixed by the pressing piece 1302 pressed downwards. At this time, by adjusting the rotating rod 504 on the adjusting disc 5 at the clamping control end, the rotating rod 504 is inserted into the corresponding positioning hole 501 on the disc body of the adjusting disc 5, thus achieving the effect of clamping and limiting;

[0059] If pre-cutting drawing is required, move the support seat 3 to the bottom position of the sliding column 201, release the locking of the adjusting disc 5 at the angle control end. The same as the above clamping operation, drive the gear a801 through the rotating rod 504, and use the transmission shaft 6 inside the main seat 1 to transmit and guide it to the gear a801 at the clamping control end. Thus, on the basis of clamping the glass plate, angle adjustment is performed. When the glass plate is adjusted to an inclined or vertical state, it is convenient for personnel to draw cutting lines on the glass plate.

[0060] To achieve the adaptive adjustment of the support seat 3, as Figure 1 shown, sliding columns 201 corresponding to both sides of the support seat 3 are relatively arranged between the main seat 1 and the base 2. Strip-shaped sliding grooves are provided on the sliding columns 201, and hole grooves for limiting the longitudinal movement position of the support seat 3 are provided on the top and bottom sides of the strip-shaped sliding grooves. A plurality of balls 301 for facilitating the movement of the supported glass plate are arranged in a circular pattern on the top of the support seat 3. Connecting rods are arranged on both sides of the support seat 3, and sliders 202 fitted with the strip-shaped sliding grooves are arranged on the connecting rods, and elastic buckles fitted with the hole grooves are arranged on both sides of the sliders 202;

[0061] Further, for the adjustment of the support base 3, a longitudinal sliding structure is adopted, specifically in the form of manual control, with two limit points at the top and bottom. When cutting the glass plate, the support base 3 is limited by the top, so that the support base 3 can provide support for the glass plate. When cutting and drawing on the glass plate, the support base 3 is limited by the bottom. When adjusting the angle of the glass plate, it will not affect manual drawing and will not hinder the rotation of the glass plate. Based on manual adjustment, for the movement of the support base 3, the position of the support base 3 can also be changed by lateral or offset movement. For both adjustment methods, a telescopic device can be used for automatic telescopic control to further improve the accuracy of the movement of the support base 3, with the aim of not affecting the rotation of the glass plate and manual drawing.

[0062] In order to achieve the effect of convenient clamping control and angle control adjustment of the clamping assembly 4, as Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 12 shown, the adjustment disk 5 includes a disk body and an adjustment rod. The disk body is provided with positioning holes 501 in a circular pattern. The adjustment rod includes a rotating shaft 503, two sets of disk seats 502 connected to the rotating shaft 503, and an "L"-shaped rotating rod 504 arranged on the central axis of the two sets of disk seats 502. The rotating rod 504 corresponds to the position of the positioning holes 501, and the fitting structure is consistent;

[0063] At the angle control end, the rotating shaft 503 on the adjustment disk 5 penetrates the disk body and is connected to the bevel gear assembly b11 inside the main seat 1;

[0064] At the clamping control end, the rotating shaft 503 on the adjustment disk 5 penetrates the disk body and is connected to the bevel gear assembly a10 inside the main seat 1;

[0065] Specifically, for the clamping control and angle control of the clamping assembly 4, a rocker-type operation form is adopted. In this form, the rotating rod 504 drives the rotating shaft 503 to drive and control the angle adjusting member 8 and the clamping adjusting member 9. At the same time, based on the angle of rotation of the rotating rod 504, a secondary rotation is performed radially, so that the end part on the rotating rod 504 is fitted with the corresponding positioning hole 501 on the disk body, and the effect of limiting and fixing can be achieved. The end part of the rotating rod 504 can be nested with a rubber sleeve to increase the friction force. This structure mainly responds to the concept of simple operation and convenient use. At the same time, for the cutting of large glass plates, in order to improve the control efficiency, the adjustment disk 5 can be replaced with a reduction motor for overall control through the system.

[0066] For the transmission connection mechanism of the above adjustment disk 5, as Figure 8 , Figure 9 , Figure 10 and Figure 11As shown, specifically the bevel gear assembly a10 and the bevel gear assembly b11. The bevel gear assembly a10 includes a bevel gear a1001 connected to the rotating shaft 503 on the adjusting disk 5 at the clamping control end and a bevel gear b1002 meshing with the bevel gear a1001. The bevel gear assembly b11 includes a bevel gear c1101 connected to the rotating shaft 503 on the adjusting disk 5 at the angle control end and a bevel gear d1102 meshing with the bevel gear c1101;

[0067] Among them, a belt body connecting seat a is provided at the center inside the bevel gear d1102, and a belt body connecting seat b is provided at the center of the bottom of the bevel gear b1002;

[0068] Specifically, the bevel gear assembly a10 and the bevel gear assembly b11 are both reversing transmission assemblies, which solve the problem of inconsistent transmission directions on the adjusting disk 5. The belt body connecting seat a and the belt body connecting seat b are only the driving ends of the belt connection.

[0069] To achieve the clamping and angle adjustment effects of the clamping assembly 4, as Figures 2-11 shown, the angle adjusting member 8 includes a gear a801 and a transmission seat c802 provided at the center of the side end of the gear a801. The clamping adjusting member 9 includes a gear b901 and a transmission seat d902 provided at the bottom of the gear b901;

[0070] Among them, the transmission seat c802 at the angle control end is a double-groove structure and is connected by transmission belts to the belt body connecting seat a on the bevel gear d1102 and the transmission seat a601 provided at one end of the transmission shaft 6 corresponding to the position of the transmission seat c802 at the angle control end. The transmission seat a601 provided at the other end of the transmission shaft 6 is connected to the transmission seat c802 of the angle adjusting member 8 at the clamping control end by a transmission belt;

[0071] The transmission seat d902 at the clamping control end is connected to the belt body connecting seat b at the bottom of the bevel gear b1002 by a transmission belt. A transmission seat e12 is provided beside the transmission seat d902 at the clamping control end. The transmission seat e12 is connected to the transmission seat b7 provided at one end inside the main seat 1 and corresponding to the position of the transmission seat e12 by a transmission belt. The transmission seat b7 provided at the other end inside the main seat 1 is connected to the transmission seat d902 of the clamping adjusting member 9 at the angle control end by a transmission belt. The two transmission seats b7 are connected by a transmission belt, and both of the two transmission seats b7 are double-groove structures. A gear c903 and a gear d1201 that mesh with each other are respectively provided on the transmission seat d902 and the transmission seat e12 at the clamping control end;

[0072] Furthermore, the clamping and angle adjustment of the clamping assembly 4 are both achieved by a meshing transmission structure. The difference lies in that the spatial positions of the meshing transmissions are different, and the overall transmission forms are different. For the foregoing, different spatial positions avoid the coincidence of the positions of the transmission connectors, and can make targeted judgments on the clamping and angle adjustment problems, providing convenience for subsequent maintenance and part replacement. As for the overall transmission form, the angle adjustment uses shaft transmission, while the clamping uses seat body transmission.

[0073] In order to adapt to the structures of the angle adjustment member 8 and the clamping adjustment member 9, and achieve the purpose that the angle adjustment and the clamping adjustment do not affect each other, as Figures 13-15 shown, one end of the tooth roller 1403 penetrates through the sliding rod 14 and is connected to the clamping block 13 through a cover body and screws. The connection part of the tooth roller 1403 and the sliding rod 14 is a limit rotation structure. The other end of the tooth roller 1403 is rotatably connected to the inner wall of the end of the rotation cavity 1402. The meshing structure of the tooth roller 1403 and the gear a801 matches, and the meshing structure of the gear b901 and the tooth groove a1401 matches.

[0074] Specifically, the tooth roller 1403 is directly connected to the clamping block 13 and is in an independent rotation form within the sliding rod 14. That is to say, the sliding rod 14 can drive the tooth roller 1403 and move linearly as a whole in cooperation with the clamping block 13. According to Figure 5 and Figure 9 shown, the position of the gear a801 remains unchanged. When the sliding rod 14 moves, it can be adaptively matched through the meshing structure of the gear a801 and the tooth roller 1403. At the same time, when the rotating shaft 503 on the adjusting disk 5 at the angle control end is in a limit state, during the movement of the sliding rod 14, the gear a801 can also limit the tooth roller 1403. At the same time, after clamping the glass plate, when the rotating shaft 503 on the adjusting disk 5 at the clamping control end is in a limit state, the gear b901 will provide a limiting effect on the sliding rod 14 to ensure that the tooth roller 1403 can drive more stably. At the same time, during rotation, it also avoids the influence of the tooth roller 1403 on the sliding rod 14 during rotation.

[0075] In order to enable the clamping block 13 to adapt to different application scenarios, and at the same time, it can also clamp glass plates of different thicknesses, as Figure 16As shown, the clamping block 13 at the clamping opening 1301 is in a sectional shape. A placement area for the pressing piece 1302 is provided at the top of the clamping opening 1301. The elastic telescopic member 1303 is located at the end of the pressing piece 1302. The elastic telescopic member 1303 includes a driving rod 1308 that penetrates the inner wall of the clamping opening 1301 and is connected to the inside of the clamping block 13, a disk a provided on the inner wall of the clamping opening 1301 and having a penetrating structure with the driving rod 1308, a disk b provided at the outer end of the driving rod 1308, a spring 1309 connected between the disk a and the disk b, and a ball head 1307 provided on the disk b;

[0076] The above linkage member includes a gear f1306 meshing and driving with the driving rod 1308, a gear e1305 synchronously driving with the gear f1306 through a transmission belt, and a transmission block 1304 connected to the pressing piece 1302 and meshing and driving with the gear e1305. The transmission block 1304 is in a "Z" shape, and a transmission groove is provided at the meshing end with the gear e1305;

[0077] Furthermore, when the thickness of the glass plate exceeds the clamping opening 1301 while the size of the clamping block 13 remains unchanged, the glass plate can be pressed against by the section of the clamping block 13. Based on the adaptive pressing treatment, by using the position where the glass plate is embedded in the clamping opening 1301, the linkage member is driven by the expansion and contraction of the elastic telescopic member 1303, so as to realize the driving of the pressing piece 1302 by the elastic telescopic member 1303. For the movement ratio between the elastic telescopic member 1303 and the pressing piece 1302, it can be specifically set by the tooth ratio of the gear f1306 and the gear e1305. At the same time, in order to protect the glass plate, a rubber sleeve and a rubber gasket are respectively provided on the ball head 1307 and the bottom surface of the pressing piece 1302. Rubber gaskets are also provided in the sectional area of the clamping block 13.

[0078] The above is only the preferred embodiment of the present invention, and it is not intended to limit the present invention in any form; any ordinary technical personnel in the industry can smoothly implement the invention according to the shown drawings in the specification and the above; however, any slight changes, modifications, and equivalent changes made by those skilled in the art without departing from the technical solution of the present invention by using the above-disclosed technical content are all equivalent embodiments of the present invention; at the same time, any equivalent changes, modifications, and evolutions made to the above embodiments based on the essential technology of the present invention still fall within the protection scope of the technical solution of the present invention.

Claims

1. A fixing jig for glass plate processing, characterized in that, It includes a main seat (1) in a "U" - shaped structure, a base (2) connected to the bottom of the main seat (1) through multiple groups of support rods, and a support seat (3) longitudinally sliding in the "U" - shaped groove of the main seat (1) and used for supporting a glass plate. Clamping components (4) for clamping the glass plate are symmetrically arranged on the main seat (1), and a clamping control end and an angle control end for clamping adjustment and angle adjustment of the clamping components (4) are respectively arranged at both ends of the main seat (1). Adjusting disks (5) are arranged on both the clamping control end and the angle control end; Among them, inside the main seat (1) and at the positions of the two groups of clamping components (4), a clamping adjustment member (9) for controlling the displacement of the clamping components (4) and an angle adjustment member (8) for rotational control based on the drive of the clamping adjustment member (9) are arranged. The angle adjustment members (8) and clamping adjustment members (9) of the two groups of clamping components (4) are synchronously driven through a transmission shaft (6) and a transmission seat b (7) arranged inside the main seat (1) and a transmission belt. The adjusting disk (5) at the clamping control end is connected to the clamping adjustment member (9) of the clamping component (4) corresponding to the clamping control end position through a bevel gear assembly a (10) arranged inside the main seat (1) and with the cooperation of a transmission belt. The adjusting disk (5) at the angle control end is connected to the angle adjustment member (8) of the clamping component (4) corresponding to the angle control end position through a bevel gear assembly b (11) arranged inside the main seat (1) and with the cooperation of a transmission belt; The clamping component (4) includes a clamping block (13) located in the "U" - shaped groove of the main seat (1) and a sliding rod (14) passing through the inside of the main seat (1) and extending to the outside of the main seat (1) on the opposite side of the clamping block (13). The sliding rod (14) is in an overall semi - closed structure, and a tooth groove a (1401) driven by meshing with the angle adjustment member (8) is arranged on the outer wall. The inside of the sliding rod (14) is in a hollow structure, and a rotating cavity (1402) is arranged. Inside the rotating cavity (1402), a tooth roller (1403) driven by meshing with the clamping adjustment member (9) and driving the clamping block (13) to rotate is arranged. A clamping opening (1301) is arranged on the clamping block (13), and a pressing piece (1302) for adaptively pressing the glass plate located in the clamping opening (1301) is arranged at the top of the clamping opening (1301). The pressing piece (1302) drives a linkage member arranged inside the clamping block (13) through an elastic telescopic member (1303) arranged in the clamping opening (1301).

2. The fixed fixture for processing a glass plate according to claim 1, wherein: A sliding column (201) corresponding to both sides of the support base (3) is disposed oppositely between the main base (1) and the base (2). A strip-shaped chute is formed on the sliding column (201). Hole grooves for limiting the longitudinal movement position of the support base (3) are formed on both the top and bottom sides of the strip-shaped chute. A plurality of balls (301) for facilitating the movement of the supported glass plate are arranged in a circular pattern on the top of the support base (3). Connecting rods are arranged on both sides of the support base (3). A slider (202) engaged with the strip-shaped chute is arranged on the connecting rod, and elastic buckles engaged with the hole grooves are arranged on both sides of the slider (202).

3. The fixed fixture for glass plate processing according to claim 1, wherein: The adjusting disc (5) includes a disc body and an adjusting rod. Positioning holes (501) are formed in a circular pattern on the disc body. The adjusting rod includes a rotating shaft (503), two groups of disc seats (502) connected to the rotating shaft (503), and an "L"-shaped rotating rod (504) arranged on the central shaft body of the two groups of disc seats (502). The rotating rod (504) corresponds to the positioning holes (501) in position, and the fitting structures match each other; The rotating shaft (503) on the adjusting disc (5) at the angle control end penetrates through the disc body and is connected to the bevel gear assembly b (11) inside the main base (1); The rotating shaft (503) on the adjusting disc (5) at the clamping control end penetrates through the disc body and is connected to the bevel gear assembly a (10) inside the main base (1).

4. The fixed fixture for glass plate processing according to claim 3, characterized in that: The bevel gear assembly a (10) includes a bevel gear a (1001) connected to the rotating shaft (503) on the adjusting disc (5) at the clamping control end and a bevel gear b (1002) meshed with the bevel gear a (1001). The bevel gear assembly b (11) includes a bevel gear c (1101) connected to the rotating shaft (503) on the adjusting disc (5) at the angle control end and a bevel gear d (1102) meshed with the bevel gear c (1101); Among them, a belt connecting seat a is arranged at the center inside the bevel gear d (1102); A belt connecting seat b is arranged at the center of the bottom of the bevel gear b (1002).

5. The fixed fixture for glass plate processing according to claim 4, wherein: The angle adjusting member (8) includes a gear a (801) and a transmission seat c (802) arranged at the center of the side end of the gear a (801). The clamping adjusting member (9) includes a gear b (901) and a transmission seat d (902) arranged at the bottom of the gear b (901); Among them, the transmission seat c (802) at the angle control end has a double belt groove structure and is connected to the belt connecting seat a on the bevel gear d (1102) and a transmission seat a (601) arranged at one end of the transmission shaft (6) and corresponding to the transmission seat c (802) at the angle control end through transmission belts respectively. The transmission seat a (601) arranged at the other end of the transmission shaft (6) is connected to the transmission seat c (802) of the angle adjusting member (8) at the clamping control end through a transmission belt; The transmission seat d (902) of the clamping control end is connected to the belt body connecting seat b at the bottom of the conical tooth b (1002) through a transmission belt. A transmission seat e (12) is arranged beside the transmission seat d (902) of the clamping control end. The transmission seat e (12) is connected to the transmission seat b (7) arranged at one end inside the main seat (1) and corresponding to the position of the transmission seat e (12) through a transmission belt. The transmission seat b (7) arranged at the other end inside the main seat (1) is connected to the transmission seat d (902) of the clamping adjustment member (9) at the angle control end through a transmission belt. The two transmission seats b (7) are connected through a transmission belt, and both of the two transmission seats b (7) are of a double-groove structure. A gear c (903) and a gear d (1201) which are meshed with each other are respectively arranged on the transmission seat d (902) and the transmission seat e (12) at the clamping control end.

6. The fixed fixture for glass plate processing according to claim 5, wherein: One end of the toothed roller (1403) penetrates through the sliding rod (14) and is connected to the clamping block (13) through a cover body and screws. The connection part of the toothed roller (1403) and the sliding rod (14) is of a limit rotation structure. The other end of the toothed roller (1403) is rotatably connected to the inner wall at the end of the rotation cavity (1402). The meshing structure of the toothed roller (1403) and the gear a (801) matches. The meshing structure of the gear b (901) and the tooth groove a (1401) matches.

7. A fixing jig for glass plate processing according to claim 1, characterized in that: The clamping block (13) located at the clamping opening (1301) is in a sectional shape. A placement area for the pressing piece (1302) is arranged at the top of the clamping opening (1301). The elastic telescopic member (1303) is located at the end of the pressing piece (1302). The elastic telescopic member (1303) includes a driving rod (1308) that penetrates the inner wall of the clamping opening (1301) and is connected to the inside of the clamping block (13), a disk body a arranged on the inner wall of the clamping opening (1301) and having a penetrating structure with the driving rod (1308), a disk body b arranged at the outer end of the driving rod (1308), a spring (1309) connecting the disk body a and the disk body b, and a ball head (1307) arranged on the disk body b.

8. The fixed fixture for glass plate processing according to claim 7, characterized in that: The linkage member includes a gear f (1306) meshing and driving with (1308), a gear e (1305) synchronously driven with the gear f (1306) through a transmission belt, and a transmission block (1304) connected to the pressing piece (1302) and meshing and driving with the gear e (1305). The transmission block (1304) is in a "Z" shape, and a transmission groove is arranged at the meshing end of the transmission block (1304) and the gear e (1305).

Citation Information

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