Intelligent slicer for optical lens

By designing an intelligent slicer, using clamping rods and coated film to fix the optical crystals, and combining spray coolant and cleaning pipe system, the problems of poor fixing effect of optical crystals and cutting edge collapse in single-wire cutting machines are solved, achieving higher cutting accuracy and equipment stability.

CN119550497BActive Publication Date: 2025-05-06JIANGXI SHENGBANG OPTICAL CO LTD
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Patent Information

Application Number
CN202510105759.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2025-05-06
Estimated Expiration
2045-01-23

AI Technical Summary

Technical Problem

When cutting optical crystals, existing single-wire cutting machines have poor fixing effect, which causes the optical crystal to fall off during the cutting process or collapse at the cutting edge, affecting the dimensional accuracy.

Method used

An intelligent slicer for optical lenses was designed, using a clamping rod and a coating film to fix the optical crystals, and combined with a spray coolant and a cleaning tube system to ensure the stability of the cutting line and the cladding and fixing of the optical crystals.

Benefits of technology

Effectively prevent optical crystals from falling off due to traction force and equipment vibration, reduce cutting edge collapse phenomenon, and improve the cutting accuracy of optical crystals and the service life of equipment.

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Abstract

The present invention relates to the technical field of optical lens production, and in particular to an intelligent slicer for optical lenses, including a frame, a cutting assembly, a movable assembly, a fixed seat, a clamping rod, a coating film, a pressing rod, etc.; the frame is provided with a cutting assembly for cutting optical crystals; the frame is provided with a movable assembly for moving optical crystals; the movable assembly is connected to a fixed seat for fixing the optical crystals; the fixed seat is connected to a cushion block; a plurality of clamping rods are rotatably connected to the fixed seat; all the clamping rods are commonly connected to a coating film for fixing the optical crystals; and a pressing rod for pressing the coating film is provided on the upper side of each clamping rod. The optical crystal is coated and fixed by clamping the coating film with the clamping rod, so as to prevent the optical crystal from falling off the cushion block due to the traction force when the cutting line moves and the vibration of the equipment, thereby ensuring the normal cutting of the optical crystal.
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Description

Technical Field

[0001] The invention relates to the technical field of optical lens production, and in particular to an intelligent slicer for optical lenses. Background Art

[0002] A single-wire cutting machine is a device used for precision processing of optical crystal materials. It is mainly used to cut large pieces of optical crystals into the required shape and size. This type of machine usually uses a single diamond wire as a cutting tool and completes the precise cutting task through high-speed movement combined with coolant flushing.

[0003] When using an existing single-wire cutting machine to cut an optical crystal, in order to fully cut and separate the optical crystal and prevent the fixed base from being damaged by cutting, a support pad is placed on the lower side of the optical crystal, and optical wax is used to fix the optical crystal on the support pad. The support pad with the optical crystal adhered to it is then fixed to the fixed seat. However, during the cutting process, the optical crystal is affected by the traction force of the moving cutting wire and the vibration of the equipment during operation. The optical crystal may loosen and separate from the optical wax, and then fall off the support pad, affecting the normal cutting of the optical crystal.

[0004] Furthermore, when the optical crystal is cut by the cutting wire, the cut edge of the optical crystal may be chipped, so that the edge integrity of the optical crystal is destroyed, resulting in reduced dimensional accuracy of the optical crystal during subsequent processing and use. Summary of the invention

[0005] In order to overcome the shortcomings of the existing single-wire cutting machine, which has a poor fixing effect on the optical crystal and affects the normal cutting of the optical crystal, and at the same time, there is edge chipping at the edge of the cutting seam of the optical crystal, which leads to reduced dimensional accuracy of the optical crystal during subsequent processing and use, the present invention provides an intelligent slicer for optical lenses.

[0006] The technical implementation scheme of the present invention is: an intelligent slicer for optical lenses, comprising a frame; also comprising a cutting component, a movable component, a fixed seat, a clamping rod, a coating film, a pressing rod and a spray unit; a cutting component for cutting optical crystals is arranged on the frame; a movable component for moving optical crystals is arranged on the frame; a fixed seat for fixing the optical crystals is connected to the movable component; a cushion block is connected to the fixed seat; a plurality of clamping rods are rotatably connected to the fixed seat; a coating film for fixing the optical crystals is commonly connected to all the clamping rods; a pressing rod for pressing the coating film is arranged on the upper side of each clamping rod; a spray unit for spraying cooling liquid is arranged on the frame.

[0007] Furthermore, the cutting assembly includes a telescopic drive member, a supporting plate, a direct drive motor, a bobbin, a cutting line, a fixed rod and a wire wheel; a plurality of telescopic drive members are fixedly connected to the frame; a supporting plate is commonly fixedly connected to the telescopic ends of all the telescopic drive members; a direct drive motor is fixedly connected to the upper side of the supporting plate; a bobbin is fixedly connected to the output end of the direct drive motor; a cutting line for cutting optical crystals is wound on the bobbin; the cutting line is made of diamond; the cutting line passes through the supporting plate; a plurality of fixed rods are fixedly connected to the lower side of the supporting plate; a plurality of wire wheels for limiting and straightening the cutting line are fixedly connected to each fixed rod; the cutting line passes through two wire wheels on the same side from the bobbin in sequence downward, and then is transmitted from the bottom of the wire wheel to the two wire wheels on the other side, and passes through the two wire wheels on the other side from bottom to top and then is wound back onto the bobbin.

[0008] Furthermore, the movable component includes a slide rail, an electric slider, a servo motor and a telescopic cover; the slide rail is fixedly connected to the frame; the electric slider is slidably connected to the slide rail; the servo motor is fixedly connected to the electric slider; the output end of the servo motor is fixedly connected to the fixed seat; the telescopic cover for blocking coolant and debris impurities is fixedly connected to the frame; the telescopic cover is located on the upper side of the slide rail.

[0009] Furthermore, the spray unit includes a spray pipe; a plurality of spray pipes for spraying coolant are fixedly connected to the frame; and each spray pipe is connected to an external coolant circulation device.

[0010] Furthermore, it also includes a cleaning pipe; a plurality of cleaning pipes for spraying and cleaning the cutting line are fixedly connected to the frame; each cleaning pipe is connected to an external coolant circulation device.

[0011] Furthermore, the nozzle of each cleaning pipe faces downward.

[0012] Furthermore, the coating film is made of high-strength material.

[0013] Furthermore, it also includes a reinforcement component, which includes a connecting rod and a pressing block; each fixed rod is rotatably connected to a connecting rod; each connecting rod is rotatably connected to a pressing block for pressing the reinforced coating film; all pressing blocks are located in front of the cutting line; each pressing block is provided with a plurality of pressing parts.

[0014] Furthermore, each pressing portion is rotatably connected to a roller for reducing friction between the pressing portion and the coating film.

[0015] Furthermore, it also includes a baffle; each connecting rod is fixedly connected with a baffle for blocking debris and impurities; each baffle is provided with an avoidance groove for avoiding the cutting line.

[0016] The beneficial effects are as follows: the present invention realizes the fixing of the optical crystal by clamping the coating film with the clamping rod, preventing the optical crystal from falling off the pad due to the traction force of the cutting line moving and the vibration of the equipment, thereby ensuring the normal cutting of the optical crystal;

[0017] The covering film is pressed and attached to the optical crystal by the pressing rod, thereby ensuring the covering effect of the covering film on the lower part of the optical crystal, preventing the lower part of the optical crystal from breaking when being cut by the cutting wire, and enhancing the cutting effect of the optical crystal;

[0018] The narrower coating film on the front side of the cutting seam is pressed and fixed by the pressing block to prevent the narrower coating film on the front side of the cutting seam from being rolled into the cutting seam on the optical crystal by the cutting line, and to avoid the edge of the cutting seam of the optical crystal from breaking due to the loss of coating fixation of the coating film, thereby ensuring the coating fixation effect of the coating film on the optical crystal;

[0019] The baffle is used to block the coolant and debris impurities splashing onto the wire wheel, reduce the debris impurities adhering to the wire wheel, prevent the wear between the cutting wire and the wire wheel from increasing, ensure the movement of the cutting wire on the wire wheel, avoid the shaking of the cutting wire during the cutting process, and enhance the cutting effect of the optical crystal. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the three-dimensional structure of the intelligent slicer for optical lenses of the present invention;

[0021] Figure 2 It is a schematic diagram of the three-dimensional structure of the frame and cutting assembly combination of the present invention;

[0022] Figure 3 It is a schematic diagram of the combined three-dimensional structure of the cutting assembly, the movable assembly, the fixing seat, the clamping rod, the coating film and the spray unit of the present invention;

[0023] Figure 4 It is a schematic diagram of the three-dimensional structure of the fixing seat, the clamping rod, the coating film, the pressing rod, the reinforcement component and the baffle assembly of the present invention;

[0024] Figure 5 It is a schematic diagram of the combined three-dimensional structure of the movable component, the fixing seat, the clamping rod, the coating film, the pressing rod, the spray unit, the reinforcement component and the baffle of the present invention;

[0025] Figure 6 It is a schematic diagram of the three-dimensional structure of the cutting assembly, the fixing seat, the clamping rod, the coating film, the pressing rod, the spray unit, the reinforcement assembly and the baffle assembly of the present invention;

[0026] Figure 7 It is a schematic diagram of the three-dimensional structure of the combination of the coating film and the reinforcement component of the present invention.

[0027] In the accompanying drawings: 1-frame, 2-fixed seat, 2001-pad, 3-clamping rod, 4-coating film, 5-pressing rod, 101-telescopic driving member, 102-carrying plate, 103-direct drive motor, 104-bobbin, 105-cutting wire, 106-fixing rod, 107-wire wheel, 201-slide rail, 202-electric slider, 203-servo motor, 204-telescopic cover, 301-spray pipe, 302-cleaning pipe, 401-connecting rod, 402-pressing block, 40201-pressing part, 40202-roller, 501-baffle, 50101-avoidance groove. DETAILED DESCRIPTION

[0028] The present invention is described in detail below with reference to the accompanying drawings and specific embodiments. Example 1

[0029] like Figure 1-Figure 7 As shown, an intelligent slicer for an optical lens comprises a frame 1;

[0030] It also includes a cutting component, a movable component, a fixed seat 2, a clamping rod 3, a coating film 4, a pressing rod 5 and a spray unit; a cutting component is arranged on the frame 1; a movable component is arranged on the frame 1; the movable component is connected to the fixed seat 2; a cushion block 2001 is detachably connected to the fixed seat 2; two clamping rods 3 that are symmetrical on the left and right are rotatably connected to the fixed seat 2 through a damping shaft; a coating film 4 is detachably connected to all the clamping rods 3; a pressing rod 5 is arranged on the upper side of each clamping rod 3; and a spray unit is arranged on the frame 1.

[0031] The cutting assembly includes a telescopic drive member 101, a carrier plate 102, a direct drive motor 103, a bobbin 104, a cutting line 105, a fixing rod 106 and a guide wheel 107; two telescopic drive members 101 are fixedly connected to the frame 1 in a bilaterally symmetrical manner, and the telescopic drive members 101 are electric push rods; a carrier plate 102 is fixedly connected to the telescopic ends of all telescopic drive members 101; a direct drive motor 103 is fixedly connected to the upper side of the carrier plate 102; a bobbin 104 is fixedly connected to the output end of the direct drive motor 103; a cutting wire 105 is wound on the bobbin 104 The cutting wire 105 is made of diamond material; the cutting wire 105 passes through the carrier plate 102; two left-right symmetrical fixing rods 106 are fixedly connected to the lower side of the carrier plate 102; each fixing rod 106 is fixedly connected to two wire wheels 107 distributed up and down; the cutting wire 105 passes through the two wire wheels 107 on the same side from the wire drum 104 downward in sequence, and then transmits from the bottom of the wire wheel 107 to the two wire wheels 107 on the other side, and passes through the two wire wheels 107 on the other side from bottom to top and then is wound back onto the wire drum 104.

[0032] The movable components include a slide rail 201, an electric slider 202, a servo motor 203 and a telescopic cover 204; the slide rail 201 is fixedly connected to the frame 1; the electric slider 202 is slidably connected to the slide rail 201; the servo motor 203 is fixedly connected to the electric slider 202; the output end of the servo motor 203 is fixedly connected to the fixed seat 2; the telescopic cover 204 is fixedly connected to the frame 1; the telescopic cover 204 is located on the upper side of the slide rail 201.

[0033] The spray unit includes a spray pipe 301 ; two spray pipes 301 distributed on the left and right are fixedly connected to the frame 1 ; each spray pipe 301 is connected to an external coolant circulation device.

[0034] It also includes a cleaning pipe 302; two cleaning pipes 302 distributed on the left and right are fixedly connected to the frame 1; each cleaning pipe 302 is connected to an external coolant circulation device.

[0035] The nozzle of each cleaning pipe 302 faces downward to prevent the cleaning pipe 302 from washing debris and impurities on the cutting line 105 onto the optical crystal.

[0036] The coating film 4 is made of a high-strength material, specifically a high-density polyethylene film, which ensures the coating and fixing effect of the coating film 4 on the optical crystal.

[0037] It also includes a reinforcement component, which includes a connecting rod 401 and a pressing block 402; each fixed rod 106 is rotatably connected to a connecting rod 401 via a torsion spring; each connecting rod 401 is rotatably connected to a pressing block 402 via a torsion spring; all pressing blocks 402 are located in front of the cutting line 105; each pressing block 402 is provided with two pressing parts 40201.

[0038] Each pressing portion 40201 is rotatably connected to a roller 40202 .

[0039] The present invention coats and fixes the optical crystal by the coating film 4, thereby solving the problem that the optical crystal is only fixed on the pad 2001 by optical wax, so that the optical crystal is easily affected by the traction force of the cutting line 105 when it moves and the vibration of the equipment, and the optical crystal is easily dropped from the pad 2001. The specific solution process is as follows:

[0040] When using a single-wire cutting machine to cut a cylindrical optical crystal, Figure 4As shown, the staff first adheres the optical crystal horizontally to the cushion block 2001 through optical wax, so that the columnar optical crystal is in a horizontal fixed state, and then fixes the cushion block 2001 on the fixing seat 2. After the optical crystal is fixed, the staff rotates the clamping rod 3 so that the opening of the clamping rod 3 faces the upper side. Then the staff covers the coating film 4 on the optical crystal, and inserts the two sides of the coating film 4 into the openings of the two clamping rods 3 respectively, so that the clamping rods 3 clamp and fix the coating film 4. After the coating film 4 is clamped by the clamping rods 3, the staff rotates the two clamping rods 3 to the positions as shown in the figure. Figure 4 In the state shown, the clamping rod 3 drives the pressing rod 5 to press the coating film 4 onto the optical crystal during the rotation, thereby enhancing the coating and fixing effect of the coating film 4 on the optical crystal. It should be noted that when the pressing rod 5 presses the coating film 4 onto the optical crystal, the height of the pressing rod 5 is lower than the upper side of the pad 2001, thereby preventing the subsequent cutting line 105 from cutting and damaging the pressing rod 5.

[0041] After the optical crystal is coated and fixed by the coating film 4, when the existing single-wire cutting machine cuts the optical crystal, the direct drive motor 103 is controlled to drive the wire drum 104 to rotate, so that the wire drum 104 drives the two ends of the cutting wire 105 to respectively take up and release the wire, thereby making the cutting wire 105 be transmitted at high speed on the wire drum 104. When the wire drum 104 rotates to take up and release the cutting wire 105, the cutting wire 105 is straightened by the wire wheel 107 to ensure the stability of the cutting wire 105 during the cutting process. After the cutting wire 105 moves at a high speed, the telescopic driving member 101 is controlled to drive the supporting plate 102 to descend, so that the supporting plate 102 drives the direct drive motor 103 to rotate ... The drive motor 103 and the wire drum 104 descend together. The carrying plate 102 drives the fixing rod 106 and the wire wheel 107 to descend together during the descending process, so that the wire wheel 107 drives the cutting wire 105 to descend close to the optical crystal. After the cutting wire 105 descends, it first contacts the coating film 4 and cuts the coating film 4. As the cutting wire 105 continues to descend, it contacts the optical crystal and starts to cut it. When the cutting wire 105 cuts the optical crystal, the servo motor 203 is controlled to drive the fixing seat 2 to swing back and forth on the electric slider 202 in a small amplitude, so that the fixing seat 2 drives the pad The block 2001 and the optical crystal swing back and forth along the moving direction of the cutting line 105, so that the cutting angle of the cutting line 105 on the surface of the optical crystal changes continuously and dynamically, which is conducive to reducing the uneven cutting surface of the optical crystal caused by factors such as local wear of the cutting line 105 or uneven internal structure of the crystal. At the same time, when the cutting line 105 cuts the optical crystal, the cooling liquid is sprayed on the outside of the coating film 4 through the spray pipe 301 through the external cooling liquid circulation equipment, and the cut debris impurities are washed away while cooling the optical crystal, so as to avoid the debris impurities adhering to the optical crystal and affecting the cutting of the optical crystal. The cutting effect is improved. At the same time, the cleaning pipe 302 is used to spray the cooling liquid on the cutting line 105 through the external cooling liquid circulation equipment to flush and clean the debris impurities adhering to the cutting line 105, so as to prevent the cutting line 105 from carrying crystal debris and rubbing against the wire wheel 107, and avoid excessive wear of the wire wheel 107, which is beneficial to extend the service life of the equipment. When the spray pipe 301 and the cleaning pipe 302 spray the cooling liquid, the telescopic cover 204 is used to shield the slide rail 201 to prevent the cut debris impurities from falling onto the slide rail 201, so as to avoid affecting the normal sliding of the subsequent electric slider 202 on the slide rail 201.

[0042] When the cutting wire 105 cuts the optical crystal, the optical crystal is covered and fixed by clamping the coating film 4 through the clamping rod 3, so as to prevent the optical crystal from falling off the cushion block 2001 due to the traction force of the cutting wire 105 when it moves and the vibration of the equipment, thereby ensuring the normal progress of the optical crystal cutting work. When the wire drum 104 continues to rotate in one direction to reel in and release the wire, and the cutting wire 105 at the wire-releasing end of the wire drum 104 is about to be released, the direct-drive motor 103 is controlled to drive the wire drum 104 to rotate in the opposite direction, so that the wire-releasing end and the wire-reeling end of the wire drum 104 are switched, and then the cutting wire 105 moves in the opposite direction to continuously cut the optical crystal, thereby ensuring the continuity of the optical crystal cutting work.

[0043] It is also taken into consideration that when the optical crystal needs to be cut multiple times, after the cutting line 105 cuts through the optical crystal, in order to ensure the continuity of the cutting work, the optical crystal needs to be completely cut into several parts before the cut optical crystal is unloaded. However, the fixed area of ​​the cut single-piece optical crystal is reduced by the optical wax, and it is easy to be driven and separated from the pad 2001 by the high-speed moving cutting line 105. Therefore, the present invention cuts the optical crystal into several sections together with the coating film 4. After the single-piece optical crystal is separated from the overall optical crystal, the cut coating film 4 can still limit and fix the single-piece optical crystal, thereby preventing the cut single-piece optical crystal from being driven and separated from the pad 2001 by the cutting line 105 due to the reduction in the fixed area, thereby ensuring the fixing effect of the cut single-piece optical crystal.

[0044] After the cutting line 105 cuts through the optical crystal, the telescopic driving member 101 is controlled to drive the supporting plate 102 to rise, so that the supporting plate 102 drives the fixing rod 106 and the guide wheel 107 to rise together, so that the guide wheel 107 drives the cutting line 105 to separate from the cutting seam of the optical crystal, and then the electric slider 202 is controlled to drive the servo motor 203 and the fixing seat 2 to move forward on the slide rail 201, so that the fixing seat 2 drives the pad 2001 and the optical crystal to move forward, and then the next position of the optical crystal to be cut is moved to below the cutting line 105, ready for cutting again.

[0045] It is also considered that when the cut optical crystal is thin, the coating film 4 coated on the outer side of the optical crystal is also cut into a narrow state. When the cutting line 105 passes through the cutting slit on the optical crystal, the cutting line 105 is likely to drive the narrower coating film 4 after cutting and roll it into the cutting slit on the optical crystal, so that the edge of the cutting slit of the optical crystal loses the coating and fixation of the coating film 4 and collapses. Therefore, in the present invention, when the fixing rod 106 drives the wire wheel 107 to descend, so that the cutting line 105 cuts the optical crystal, the fixing rod 106 drives the connecting rod 401 to descend together, so that the connecting rod 40 1 drives the pressing block 402 to press the coating film 4 on the front side of the optical crystal cutting slit, so that the pressing part 40201 on the pressing block 402 presses and fixes the coating film 4 on the front side of the cutting slit, preventing the coating film 4 on the front side of the cutting slit from being rolled into the cutting slit on the optical crystal by the cutting line 105, and avoiding the edge of the optical crystal cutting slit from collapsing due to the loss of the coating fixation of the coating film 4, thereby ensuring the coating fixation effect of the coating film 4 on the optical crystal. As the fixing rod 106 drives the wire wheel 107 and the cutting line 105 to gradually descend for cutting, the fixing rod 106 drives the connecting rod 401 The connecting rod 401 drives the pressing block 402 to descend together, so that the connecting rod 401 drives the pressing block 402 to descend together, thereby making the pressing portion 40201 always adhere to the contact position between the cutting line 105 and the cutting seam of the optical crystal, thereby enhancing the pressing and fixing effect of the pressing portion 40201 on the coating film 4, thereby enhancing the coating and fixing effect of the coating film 4 on the optical crystal. When the connecting rod 401 drives the pressing block 402 to descend together, so that the pressing portion 40201 adheres to the coating film 4 and moves downward, the roller 40202 adheres to the coating film 4 and moves downward, so that the original sliding friction between the pressing portion 40201 and the coating film 4 is converted into rolling friction. , which is beneficial to reduce the impact of the pressing part 40201 on the covering film 4 when it moves, and prevents the covering film 4 from being deformed when the pressing part 40201 moves, thereby ensuring the covering and fixing effect of the covering film 4 on the optical crystal. It is also taken into consideration that since the edge of the optical crystal is relatively sharp after cutting, when the cut optical crystal is unloaded, the staff will remove the covering film 4 from the clamping rod 3, so that the covering film 4 covers the optical crystal and the pad 2001, and remove them from the fixing seat 2 together, thereby preventing the staff from being scratched by the edge of the optical crystal when unloading, thereby improving the protection effect on the staff. Example 2

[0046] On the basis of Example 1, Figure 3-Figure 6 As shown, a baffle 501 is also included; each connecting rod 401 is fixedly connected with a baffle 501; and each baffle 501 is provided with an avoidance groove 50101.

[0047] It is also considered that when the cutting line 105 passes through the optical crystal, it is easy to drive the coolant and the cut debris impurities to splash onto the wire wheel 107 and adhere to the wire wheel 107, resulting in increased wear between the cutting line 105 and the wire wheel 107, and at the same time affecting the movement state of the cutting line 105 on the wire wheel 107, causing the cutting line 105 to shake during the cutting process, affecting the cutting of the optical crystal. Therefore, in the present invention, when the cutting line 105 passes through the optical crystal, the baffle 501 is used to block the coolant and debris impurities splashed onto the wire wheel 107, reduce the debris impurities adhering to the wire wheel 107, prevent the cutting line 105 from aggravating the wear between the wire wheel 107, ensure the movement state of the cutting line 105 on the wire wheel 107, avoid the cutting line 105 from shaking during the cutting process, and enhance the cutting effect of the optical crystal.

[0048] Although the present invention is described in detail with reference to the above embodiments, it is obvious to those skilled in the art through this disclosure that various changes or modifications may be made to the present invention without departing from the principle and spirit of the present invention defined by the claims. Therefore, the detailed description of the embodiments of the present disclosure is only used to explain, not to limit the present invention, but the scope of protection is limited by the content of the claims.

Claims

1. An intelligent slicer for an optical lens, comprising a frame (1); wherein: The machine also comprises a cutting assembly, a movable assembly, a fixed seat (2), a clamping rod (3), a coating film (4), a pressing rod (5) and a spray unit; a cutting assembly for cutting an optical crystal is arranged on the frame (1); a movable assembly for moving the optical crystal is arranged on the frame (1); a fixed seat (2) for fixing the optical crystal is connected to the movable assembly; a cushion block (2001) is connected to the fixed seat (2); a plurality of clamping rods (3) are rotatably connected to the fixed seat (2); a coating film (4) for fixing the optical crystal is commonly connected to all the clamping rods (3); a pressing rod (5) for pressing the coating film (4) is arranged on the upper side of each clamping rod (3); and a spray unit for spraying a cooling liquid is arranged on the frame (1); The cutting assembly comprises a telescopic driving member (101), a bearing plate (102), a direct drive motor (103), a bobbin (104), a cutting line (105), a fixing rod (106) and a guide wheel (107); a plurality of telescopic driving members (101) are fixedly connected to the frame (1); a bearing plate (102) is commonly fixedly connected to the telescopic ends of all the telescopic driving members (101); a direct drive motor (103) is fixedly connected to the upper side of the bearing plate (102); a bobbin (104) is fixedly connected to the output end of the direct drive motor (103); a cutting line (105) for cutting optical crystals is wound and connected to the bobbin (104). The cutting wire (105) is made of diamond material; the cutting wire (105) passes through the carrier plate (102); a plurality of fixing rods (106) are fixedly connected to the lower side of the carrier plate (102); each fixing rod (106) is fixedly connected to a plurality of guide wheels (107) for limiting and straightening the cutting wire (105); the cutting wire (105) passes through two guide wheels (107) on the same side from the wire drum (104) downward in sequence, and then is transmitted from the bottom of the guide wheel (107) to the two guide wheels (107) on the other side, and then passes through the two guide wheels (107) on the other side from bottom to top and is wound back onto the wire drum (104); The movable assembly comprises a slide rail (201), an electric slider (202), a servo motor (203) and a telescopic cover (204); the slide rail (201) is fixedly connected to the frame (1); the electric slider (202) is slidably connected to the slide rail (201); the servo motor (203) is fixedly connected to the electric slider (202); the output end of the servo motor (203) is fixedly connected to the fixed seat (2); the telescopic cover (204) for blocking coolant and debris impurities is fixedly connected to the frame (1); the telescopic cover (204) is located on the upper side of the slide rail (201).

2. The intelligent slicer for optical lenses according to claim 1, characterized in that: The spray unit comprises a spray pipe (301); a plurality of spray pipes (301) for spraying coolant are fixedly connected to the frame (1); and each spray pipe (301) is connected to an external coolant circulation device.

3. The intelligent slicer for optical lenses according to claim 2, characterized in that: It also includes a cleaning pipe (302); a plurality of cleaning pipes (302) for spraying and cleaning the cutting line (105) are fixedly connected to the frame (1); each cleaning pipe (302) is connected to an external cooling liquid circulation device.

4. The intelligent slicer for optical lens according to claim 3, characterized in that: The nozzle of each cleaning pipe (302) faces downward.

5. The intelligent slicer for optical lens according to claim 1, characterized in that: The coating film (4) is made of high-strength material.

6. The intelligent slicer for optical lenses according to claim 5, characterized in that: It also includes a reinforcement component, which includes a connecting rod (401) and a pressing block (402); each fixed rod (106) is rotatably connected to a connecting rod (401); each connecting rod (401) is rotatably connected to a pressing block (402) for pressing the reinforcement coating film (4); all the pressing blocks (402) are located in front of the cutting line (105); and each pressing block (402) is provided with a plurality of pressing portions (40201).

7. The intelligent slicer for optical lens according to claim 6, characterized in that: Each pressing portion (40201) is rotatably connected to a roller (40202) for reducing friction between the pressing portion (40201) and the coating film (4).

8. The intelligent slicer for optical lens according to claim 6, characterized in that: It also includes a baffle (501); each connecting rod (401) is fixedly connected to a baffle (501) for blocking debris and impurities; each baffle (501) is provided with an avoidance groove (50101) for avoiding the cutting line (105).

Citation Information

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