Infrared chalcogenide glass blank cutting device

Through the design of the limiting component and the cutting component, the problem of glass position deviation in the existing infrared chalcogenide glass cutting device is solved, stable cutting and efficient processing are achieved, and the practicality and efficiency of the cutting device are improved.

CN223458244UActive Publication Date: 2025-10-21JIANGSU SPECTRAL PHOTONICS NEW MATERIAL CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422602862.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-28
Publication Date
2025-10-21
Estimated Expiration
2034-10-28

AI Technical Summary

Technical Problem

Existing infrared chalcogenide glass cutting devices lack a limiting structure for glass of different sizes, which causes the glass position to shift during the cutting process, affecting the processing yield and usage efficiency.

Method used

An infrared chalcogenide glass blank cutting device was designed, which included a limiting component and a cutting component. The threaded rotating rod and the electric slide rail were used to achieve stable limiting and cutting of the glass, and the servo motor was used to drive the cutting knife for precise cutting.

Benefits of technology

The convenience and efficiency of the cutting device are improved, the stability of the glass during the cutting process is ensured, and the processing yield and overall practicality are improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223458244U_ABST
    Figure CN223458244U_ABST
Patent Text Reader

Abstract

The utility model discloses an infrared chalcogenide glass blank cutting device, and relates to the technical field of high-purity infrared chalcogenide glass preparation, the infrared chalcogenide glass blank cutting device comprises a working table and limiting assemblies, the bottom of the working table is provided with supporting column legs, and the two sides of the upper end of the working table are provided with the limiting assemblies; the limiting assembly comprises a first mounting block, a threaded mounting groove, a threaded rotating rod, a first clamping block, a limiting sliding block, a second mounting block, an electric telescopic rod, a second clamping block and a limiting sliding groove, the threaded mounting groove is formed in the middle end of the interior of the first mounting block, and the threaded rotating rod is connected to the interior of the threaded mounting groove; a first clamping block is arranged at the front end of the threaded rotating rod, and meanwhile limiting sliding blocks are additionally arranged on the two sides of the lower end of the first clamping block. According to the infrared chalcogenide glass blank cutting device, infrared chalcogenide glass blanks of different sizes can be rapidly limited, the subsequent machining yield is increased, and meanwhile the overall use efficiency of the cutting device is improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to high -purity infrared chalcogenide glass preparation technical field, concretely is a kind of infrared chalcogenide glass blank cutting device. BACKGROUND

[0002] High-purity infrared chalcogenide glass refers to using vacuum melting technique, 99.9999% purity raw material is precisely dissolved in vacuum environment at high temperature, and the forming of glass is quickly completed, so that the chalcogenide glass prepared, this glass has excellent mid-infrared transmission performance, is widely used in infrared night vision, infrared temperature measurement, infrared thermal imaging and other fields, infrared chalcogenide glass is a new type of infrared material, and it is of great contribution in military guidance, gun sight, civilian temperature measurement, security, intelligent driving and other aspects, in order to improve the preparation efficiency of high-purity infrared chalcogenide glass, a cutting device needs to be used, but the existing cutting device still has the following shortcomings:

[0003] For example, the utility model discloses an infrared chalcogenide glass blank cutting device, the utility model discloses a waste pump, waste tank, three-way valve, connecting pipe and dust hood are set up, can be concentrated to the dust hood of symmetry setting, the particulate waste generated during cutting operation is automatically sucked and recycled, avoids its wantonly flying and polluting the work area, so that the cleaning difficulty of device later period is greatly reduced, but similar to the above-mentioned application of comparative document, when using the existing cutting device, since most cutting devices do not have the structure for limiting the position of infrared chalcogenide glass of different size, the position of infrared chalcogenide glass is easily shifted during cutting, so that the overall processing yield is affected, the practicability of cutting device is reduced and the use efficiency is reduced.

[0004] Therefore, in view of the above, the existing structure and defects are improved, and an infrared chalcogenide glass blank cutting device is provided. UTILITY MODEL CONTENTS

[0005] The utility model aims at providing an infrared chalcogenide glass blank cutting device to solve the problems in the above background.

[0006] In order to achieve the above object, the utility model provides the following technical scheme: an infrared chalcogenide glass embryo material cutting device, including work bench and limiting component, the work bench bottom is equipped with support column leg, the work bench upper end both sides are provided with limiting component, and limiting component includes first mounting block, screw groove, screw rod, first clamping block, limiting sliding block, second mounting block, electric telescopic rod, second clamping block and limiting sliding slot, the first mounting block inside middle end is equipped with screw groove, and screw groove inside is connected with screw rod, and the first clamping block is provided with first clamping block to the screw rod front end, while the first clamping block lower end both sides are additionally provided with limiting sliding block, the work bench upper end right side is installed with second mounting block, and second mounting block inboard is equipped with electric telescopic rod, and electric telescopic rod front end is installed with second clamping block, the work bench inside both sides are equipped with limiting sliding slot, the work bench upper end middle part is provided with cutting assembly.

[0007] Further, the screw groove inside size is matched with the screw rod outside size, and the screw rod is rotatably connected with the first mounting block through the screw groove.

[0008] Further, the number of limiting sliding blocks is four, and two limiting sliding blocks form a group, and each group of limiting sliding blocks is symmetrically arranged on both sides of the workbench along the front central axis of the workbench.

[0009] Further, the limiting sliding block outside size is matched with the limiting sliding slot inside size, and the limiting sliding block is slidably connected with the workbench through the limiting sliding slot.

[0010] Further, the cutting assembly includes an electric sliding rail, an electric sliding block, a receiving frame, and a limiting through slot.

[0011] Further, the cutting assembly further includes a servo motor, a lead screw, a movable sliding block, and a cutting knife, and the receiving frame is externally mounted with a servo motor on the right side.

[0012] Further, the limiting through slot inside size is matched with the movable sliding block outside size, and the movable sliding block is connected with the receiving frame through the limiting through slot.

[0013] Further, the movable sliding block and the receiving frame are embeddedly connected, and the movable sliding block is slidably connected with the receiving frame through the lead screw.

[0014] The utility model provides a kind of infrared chalcogenide glass embryo material cutting device, with the following beneficial effects:

[0015] 1. The utility model discloses a limiting assembly's setting can be in infrared chalcogenide glass embryo material cutting device use, through the rotation of threaded rotating lever drives first clamping block to move position to the side of the infrared chalcogenide glass of processing to carry out the location, and utilize the limiting slide block cooperation limiting slide groove to increase the stability in the movement of first clamping block, and the electric telescopic rod operation of second mounting block inboard drives second clamping block to move, utilize first clamping block cooperation second clamping block carries out the stable location clamping of infrared chalcogenide glass to improve the convenience and use efficiency in the use process of subsequent cutting device.

[0016] 2. The utility model discloses a cutting assembly's setting can be in infrared chalcogenide glass embryo material cutting device use, through the electric slide rail of first mounting block and second mounting block upper end setting makes electric slide block with on the workbench upper end both sides movement, fixes the mounting of receiving frame on electric slide block upper end, utilizes servo motor operation to drive screw rod rotation, makes the movable slide block of screw rod outside connection with in the receiving frame inside opening limit through groove slip, to drive cutting knife to displace, and the drive piece of installation between movable slide block and cutting knife, utilize drive piece to make cutting knife and the infrared chalcogenide glass of processing adhere to each other to carry out cutting processing, further improve the overall practicality and use efficiency of cutting device. DRAWINGS

[0017] Figure 1 It is the three-dimensional structure schematic diagram of a kind of infrared chalcogenide glass embryo material cutting device of the utility model;

[0018] Figure 2 It is the three-dimensional development structure schematic diagram of the limiting assembly of a kind of infrared chalcogenide glass embryo material cutting device of the utility model;

[0019] Figure 3 It is the cutting assembly three-dimensional sectional view structure schematic diagram of a kind of infrared chalcogenide glass embryo material cutting device of the utility model.

[0020] In the drawing: 1, workbench;2, support column leg;3, limiting assembly;301, first mounting block;302, threaded installation slot;303, threaded rotating lever;304, first clamping block;305, limiting slide block;306, second mounting block;307, electric telescopic rod;308, second clamping block;309, limiting slide groove;4, cutting assembly;401, electric slide rail;402, electric slide block;403, receiving frame;404, limit through groove;405, servo motor;406, screw rod;407, movable slide block;408, cutting knife. DETAILED DESCRIPTION

[0021] The embodiments of the utility model are further described in detail below in combination with the drawings and examples. The following examples are used to illustrate the utility model, but cannot be used to limit the scope of the utility model.

[0022] As shown in Figure 1 and Figure 2 An infrared chalcogenide glass blank cutting device, comprising a workbench 1 and a limiting assembly 3, the bottom of the workbench 1 is provided with support legs 2, and the upper end of the workbench 1 is provided with the limiting assembly 3 on both sides, and the limiting assembly 3 comprises a first mounting block 301, a threaded mounting groove 302, a threaded rotating rod 303, a first clamping block 304, a limiting sliding block 305, a second mounting block 306, an electric telescopic rod 307, a second clamping block 308 and a limiting sliding groove 309, the inside of the first mounting block 301 is provided with the threaded mounting groove 302, the inside of the threaded mounting groove 302 is connected with the threaded rotating rod 303, the front end of the threaded rotating rod 303 is provided with the first clamping block 304, the lower end of the first clamping block 304 is additionally provided with the limiting sliding block 305 on both sides, the upper end of the workbench 1 is provided with the second mounting block 306 on the right side, the inside of the second mounting block 306 is provided with the electric telescopic rod 307, and the front end of the electric telescopic rod 307 is provided with the second clamping block 308, the inside of the workbench 1 is provided with the limiting sliding groove 309 on both sides, the inside dimension of the threaded mounting groove 302 is matched with the outside dimension of the threaded rotating rod 303, the threaded rotating rod 303 is rotationally connected with the first mounting block 301 through the threaded mounting groove 302, there are four limiting sliding blocks 305, two limiting sliding blocks 305 form a group, and each group of limiting sliding blocks 305 is symmetrically arranged inside the workbench 1 on both sides of the front central axis of the workbench 1, the outside dimension of the limiting sliding block 305 is matched with the inside dimension of the limiting sliding groove 309, and the limiting sliding block 305 is slidingly connected with the workbench 1 through the limiting sliding groove 309, the first mounting block 301 is fixedly installed on the upper end of the workbench 1 through fastening bolts, the threaded rotating rod 303 is rotationally installed in the inside of the first mounting block 301 through the threaded mounting groove 302 in the inside of the first mounting block 301, the rotation of the threaded rotating rod 303 drives the position movement of the first clamping block 304, thereby limiting one side of the infrared chalcogenide glass to be processed, the outside dimension of the limiting sliding block 305 additionally provided on the lower end of the first clamping block 304 is matched with the inside dimension of the limiting sliding groove 309 provided in the inside of the workbench 1, thereby increasing the stability of the first clamping block 304 in the movement process through the cooperation of the limiting sliding block 305 and the limiting sliding groove 309, the electric telescopic rod 307 installed in the inside of the second mounting block 306 drives the movement of the second clamping block 308, and the infrared chalcogenide glass is stably clamped through the cooperation of the first clamping block 304 and the second clamping block 308, thereby improving the convenience and use efficiency in the use process of the subsequent cutting device.

[0023] As shown in Figure 1 and Figure 3As shown, the upper end of the workbench 1 is provided with a cutting assembly 4, the cutting assembly 4 includes an electric sliding rail 401, an electric sliding block 402, a receiving frame 403 and a limiting slot 404, the electric sliding block 402 is connected inside the electric sliding rail 401, the receiving frame 403 is installed on the upper end of the electric sliding block 402, and the limiting slot 404 is opened in the middle of the inside of the receiving frame 403, the cutting assembly 4 further includes a servo motor 405, a lead screw 406, a movable sliding block 407 and a cutting knife 408, the servo motor 405 is installed outside the right side of the receiving frame 403, the lead screw 406 is connected to the front end of the servo motor 405, the movable sliding block 407 is connected outside the lead screw 406, and the cutting knife 408 is arranged on the lower end of the movable sliding block 407, the inside dimension of the limiting slot 404 is matched with the outside dimension of the movable sliding block 407, the movable sliding block 407 is connected with the receiving frame 403 through the limiting slot 404, the movable sliding block 407 is embeddedly connected with the receiving frame 403, and the movable sliding block 407 is slidingly connected with the receiving frame 403 through the lead screw 406, the electric sliding block 402 moves on the upper end of the workbench 1 through the electric sliding rail 401 arranged on the upper end of the first mounting block 301 and the second mounting block 306, the receiving frame 403 is fixedly installed on the upper end of the electric sliding block 402, the receiving frame 403 is displaced by the movement of the electric sliding block 402, the servo motor 405 is fixedly installed outside the receiving frame 403, the lead screw 406 is connected with the output shaft of the servo motor 405 through a shaft coupling, the lead screw 406 rotates driven by the servo motor 405, the movable sliding block 407 connected outside the lead screw 406 slides in the limiting slot 404 opened in the receiving frame 403, so as to drive the cutting knife 408 to displace, and the driving element is installed between the movable sliding block 407 and the cutting knife 408, the cutting knife 408 is attached to the infrared chalcogenide glass to be processed by the driving element, so as to cut and process, further improve the overall practicality and use efficiency of the cutting device.

[0024] In summary, the infrared chalcogenide glass blank cutting device, in use, first, the support column leg 2 installed at the bottom of the workbench 1 increases the stability during the use of the equipment, the threaded rotating rod 303 is rotatably installed in the first mounting block 301 through the threaded installation groove 302 opened in the first mounting block 301, and the rotation of the threaded rotating rod 303 drives the first clamping block 304 to move, thereby limiting one side of the infrared chalcogenide glass to be processed, and the stability of the first clamping block 304 during movement is increased by using the limiting slide block 305 in cooperation with the limiting sliding groove 309, the second clamping block 308 is moved by the electric telescopic rod 307 installed in the second mounting block 306, the infrared chalcogenide glass is stably clamped by using the first clamping block 304 in cooperation with the second clamping block 308, then, the electric sliding block 402 is moved on the upper end of the workbench 1 by the electric sliding rail 401 arranged on the upper end of the first mounting block 301 and the second mounting block 306, the receiving frame 403 is fixedly installed on the upper end of the electric sliding block 402, the receiving frame 403 is displaced by using the movement of the electric sliding block 402, the servo motor 405 outside the receiving frame 403 is operated to drive the lead screw 406 to rotate, so that the movable sliding block 407 connected outside the lead screw 406 slides in the limiting through slot 404 opened in the receiving frame 403, thereby driving the cutting knife 408 to displace, and the driving part installed between the movable sliding block 407 and the cutting knife 408, the cutting knife 408 is attached to the infrared chalcogenide glass to be processed by using the driving part, thereby cutting and processing, further improving the overall practicality and use efficiency of the cutting device.

[0025] The embodiments of the present application are given for the purpose of illustration and description, and are not intended to be exhaustive or to limit the present application to the forms disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art. Embodiments were chosen and described in order to best explain the principles of the present application and its practical application, and to enable others skilled in the art to understand the present application for various embodiments with various modifications as are suited to the particular use contemplated.

Claims

1. An infrared chalcogenide glass blank cutting device comprising a workbench (1) and a limiting assembly (3), characterized in that, The bottom of the workbench (1) is provided with support legs (2), and the upper end of the workbench (1) is provided with limiting assemblies (3) on both sides, and the limiting assemblies (3) comprise first mounting blocks (301), threaded installation grooves (302), threaded rotating rods (303), first clamping blocks (304), limiting sliding blocks (305), second mounting blocks (306), electric telescopic rods (307), second clamping blocks (308) and limiting sliding grooves (309), the inner middle end of the first mounting block (301) is provided with the threaded installation groove (302), the threaded installation groove (302) is connected with the threaded rotating rod (303) in the inside, and the threaded rotating rod (303) is provided with the first clamping block (304) at the front end, and the first clamping block (304) is additionally provided with the limiting sliding block (305) at the lower end on both sides, the upper end of the workbench (1) is provided with the second mounting block (306) on the right side, and the second mounting block (306) is provided with the electric telescopic rod (307) on the inner side, and the electric telescopic rod (307) is provided with the second clamping block (308) at the front end, and the inner sides of the workbench (1) are provided with the limiting sliding grooves (309), and the upper end of the workbench (1) is provided with a cutting assembly (4).

2. The infrared chalcogenide glass ingot cutting apparatus according to claim 1, wherein, The threaded installation groove (302) is connected with the threaded rotating rod (303) in the inside, and the threaded rotating rod (303) is provided with the first clamping block (304) at the front end.

3. The infrared chalcogenide glass ingot cutting apparatus of claim 1, wherein, The number of the limiting sliding blocks (305) is four, and two of the limiting sliding blocks (305) are a group, and each group of the limiting sliding blocks (305) is symmetrically arranged on both sides of the workbench (1) along the front central axis of the workbench (1).

4. The infrared chalcogenide glass ingot cutting apparatus of claim 1, wherein, The limiting sliding block (305) is connected with the workbench (1) through the limiting sliding groove (309).

5. The infrared chalcogenide glass ingot cutting apparatus of claim 1, wherein, The cutting assembly (4) comprises an electric sliding rail (401), an electric sliding block (402), a bearing frame (403) and a limiting through groove (404), the electric sliding rail (401) is connected with the electric sliding block (402) in the inside, the electric sliding block (402) is provided with the bearing frame (403) at the upper end, and the limiting through groove (404) is formed in the inner middle end of the bearing frame (403).

6. The infrared chalcogenide glass ingot cutting apparatus of claim 5, wherein, The cutting assembly (4) further comprises a servo motor (405), a lead screw (406), a movable sliding block (407) and a cutting knife (408), and the servo motor (405) is installed on the right side of the outer side of the bearing frame (403), the servo motor (405) is connected with the lead screw (406) at the front end, the lead screw (406) is connected with the movable sliding block (407) on the outer side, and the movable sliding block (407) is provided with the cutting knife (408) at the lower end.

7. The infrared chalcogenide glass ingot cutting apparatus of claim 6, wherein, The limiting through groove (404) is connected with the movable sliding block (407) through the limiting through groove (404).

8. The infrared chalcogenide glass ingot cutting apparatus of claim 6, wherein, The movable slider (407) is embeddedly connected with the receiving frame (403), and the movable slider (407) is slidably connected with the receiving frame (403) through the screw rod (406).