Alloy copper bush drilling workbench

By designing a slide rail structure and a propulsion component on the alloy copper sleeve drilling worktable, the automatic feeding, drilling, and unloading of alloy copper sleeves are integrated, solving the problem of low efficiency in manual operation and improving processing efficiency.

CN224026545UActive Publication Date: 2026-03-24JIANGSU HONGSHI COPPER CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

The existing process of drilling alloy copper bushings requires manual feeding and unloading, resulting in low processing efficiency.

Method used

A drilling worktable for alloy copper bushings was designed. It adopts a slide rail structure formed between the horizontal positioning table and the side positioning table, combined with the propulsion component and the drilling component, to realize the integrated operation of automatic feeding, drilling and unloading of alloy copper bushings.

Benefits of technology

This has enabled streamlined operations for drilling alloy copper bushings, improving processing efficiency and reducing manual intervention.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224026545U_ABST
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Abstract

The utility model relates to the field of copper bush machining equipment, in particular to an alloy copper bush drilling workbench. The alloy copper bush drilling working table comprises a working table body, a positioning table is installed at the upper end of the working table body and comprises a transverse positioning table and a side positioning table, a sliding rail is formed between the transverse positioning table and the side positioning table, and the sliding rail formed between the transverse positioning table and the side positioning table comprises a transverse rail and a side rail. A cross shape is formed between the transverse rail and the side rail; a drilling groove is formed in the position, located on one side of the side rail, of the side positioning table, and a drilling assembly is installed at the position of the drilling groove. Propelling assemblies are movably mounted in the transverse rails and the side rails; according to the alloy copper bush drilling workbench, multiple functions such as feeding, conveying, drilling and discharging can be integrated in the alloy copper bush drilling process, streamlined operation of alloy copper bush drilling is achieved, manual participation is not needed in the whole machining process, and therefore the alloy copper bush drilling efficiency is high.
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Description

TECHNICAL FIELD

[0001] The utility model relates to copper bush processing equipment field, and specifically is a kind of alloy copper bush drilling processing workstation. BACKGROUND

[0002] After alloy copper bush production is made, it still needs to be drilled in alloy copper bush side edge, to ensure that alloy copper bush is installed and fixed by bolt in later period;

[0003] Alloy copper bush is generally drilled on drilling processing table when being drilled;Drilling processing table provided in the related art includes processing table body, and the upper end of processing table body is equipped with pneumatic chuck and drilling assembly installed on the side of pneumatic chuck;Pneumatic chuck forms drilling gap;Drilling assembly includes motor, drill rod arranged on the output end of motor and cylinder for pushing motor linear displacement;

[0004] When using the drilling processing table, alloy copper bush to be processed is generally placed manually on pneumatic chuck, then pneumatic chuck is started, and alloy copper bush is clamped and fixed by pneumatic chuck operation;After alloy copper bush is fixed, cylinder is started, cylinder pushes motor linear displacement, drill rod installed on the output end of motor is passed through the drilling gap formed by pneumatic chuck, and then motor is started to drive drill rod high-speed operation, for realizing drilling processing of fixed alloy copper bush;After alloy copper bush drilling processing is completed, pneumatic chuck is started, and processed alloy copper bush is released, then operator uses tool to manually take out alloy copper bush drilled and processed;

[0005] This drilling processing table needs to manually hold tool for feeding and discharging operation during alloy copper bush processing, so that the efficiency of alloy copper bush drilling processing is slow;

[0006] In view of the problems in the above background art, the utility model aims at providing a kind of alloy copper bush drilling processing workstation. SUMMARY

[0007] The utility model aims at providing a kind of alloy copper bush drilling processing workstation to solve the problems raised in the above background art.

[0008] To achieve the above object, the utility model provides the following technical scheme:

[0009] A kind of alloy copper bush drilling processing workstation, the alloy copper bush drilling processing workstation includes:

[0010] The workbench body is provided with a positioning table at the upper end, the positioning table comprises a horizontal positioning table and a side positioning table, a sliding rail is formed between the horizontal positioning table and the side positioning table, the sliding rail formed between the horizontal positioning table and the side positioning table comprises a horizontal rail and a side rail, a cross-shaped structure is formed between the horizontal rail and the side rail, and an arc-shaped slot is formed at the position where the horizontal rail and the side rail are connected, and a discharging hole is formed below the arc-shaped slot of the workbench body;

[0011] The side positioning table is provided with a drilling groove at one side of the side rail, and a drilling assembly for drilling the alloy copper sleeve fixed in position is arranged at the position of the drilling groove; and a pushing assembly for pushing the alloy copper sleeve entering the sliding rail is movably arranged in the horizontal rail and the side rail, so that the alloy copper sleeve is pushed into the sliding rail and discharged after drilling.

[0012] In addition, the horizontal positioning table is provided with a copper sleeve guide frame at one side of the horizontal rail, and the copper sleeve guide frame is arranged with the alloy copper sleeves at intervals.

[0013] As a further scheme of the utility model, the drilling assembly comprises a fourth cylinder, a motor and a drill rod, the fourth cylinder is fixedly arranged on the workbench body, the output end of the fourth cylinder is provided with a fourth telescopic rod, one end of the fourth telescopic rod is connected with the motor, and the output end of the motor is provided with the drill rod.

[0014] As a further scheme of the utility model, the lower end of the motor is provided with a moving block, and the moving block is slidably arranged in the sliding groove formed at the upper end of the workbench body.

[0015] As a further scheme of the utility model, the pushing assembly comprises a first cylinder, a first sliding block, a second cylinder, a second sliding block, a third cylinder and a third sliding block, the first cylinder and the third cylinder are arranged at two ends of the side rail respectively, the output end of the first cylinder is provided with a first telescopic rod, one end of the first telescopic rod is provided with the first sliding block, and the first sliding block is slidably arranged in the side rail; the output end of the third cylinder is provided with a third telescopic rod, one end of the third telescopic rod is provided with the third sliding block, and the third sliding block is slidably arranged in the side rail.

[0016] The second cylinder is arranged at one end of the horizontal rail, the output end of the second cylinder is provided with a second telescopic rod, one end of the second telescopic rod is connected with the second sliding block, the second sliding block is slidably arranged in the horizontal rail, and a copper sleeve groove with a size suitable for the alloy copper sleeve is formed in the surface of the second sliding block.

[0017] Compared with the prior art, the utility model has the advantages that:

[0018] Compared with the existing drilling processing table, the alloy copper sleeve drilling processing workbench has the following advantages:

[0019] It forms a sliding rail between the horizontal positioning table and the side positioning table, the sliding rail formed between the horizontal positioning table and the side positioning table comprises a horizontal rail and a side rail, a cross-shaped structure is formed between the horizontal rail and the side rail, and an arc-shaped missing slot is formed at a position where the horizontal rail and the side rail are connected; a discharging hole is formed in the workbench body directly below the arc-shaped missing slot;

[0020] A drilling assembly for drilling the fixed-position alloy copper sleeve to be machined is mounted at the position of the drilling groove formed on one side of the side rail; a pushing assembly for pushing the alloy copper sleeve to be machined entering the inside of the sliding rail to realize the feeding of the alloy copper sleeve to be machined and the pushing of the discharging operation after the drilling is completed is movably mounted in the inside of the horizontal rail and the inside of the side rail;

[0021] In this way, the alloy copper sleeve can realize the functions of feeding, material conveying, drilling and discharging in the drilling process, the flow operation of the alloy copper sleeve drilling is realized, and no manual intervention is required in the whole process, so that the drilling efficiency of the alloy copper sleeve is higher. BRIEF DESCRIPTION OF DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed in the embodiments or prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application.

[0023] Figure 1 A top view of the alloy copper sleeve drilling workbench of the embodiment of the present application Figure 1 .

[0024] Figure 2 A top view of the alloy copper sleeve drilling workbench of the embodiment of the present application Figure 2 .

[0025] Figure 3 A top view of the alloy copper sleeve drilling workbench of the embodiment of the present application Figure 3 .

[0026] In the drawings: 1-horizontal rail, 2-horizontal positioning table, 3-workbench body, 4-arc-shaped missing slot, 5-first sliding block, 6-first telescopic rod, 7-first air cylinder, 8-baffle, 9-alloy copper sleeve to be machined, 10-copper sleeve material guide frame, 11-second sliding block, 12-second telescopic rod, 13-second air cylinder, 14-side positioning table, 15-copper sleeve groove, 16-third air cylinder, 17-third telescopic rod, 18-third sliding block, 19-side rail, 20-drilling groove, 21-fourth air cylinder, 22-fourth telescopic rod, 23-motor, 24-drill rod. DETAILED DESCRIPTION

[0027] In order to make the technical problems, technical solutions and beneficial effects to be solved by the utility model clearer and more apparent, the utility model will be further described in detail below in combination with the drawings and examples. It should be understood that the specific examples described herein are only used to explain the utility model and not to limit the utility model.

[0028] Embodiment

[0029] Please refer to Figure 1 , Figure 2 and Figure 3 , the alloy copper sleeve drilling machining workbench provided in the utility model embodiment, the alloy copper sleeve drilling machining workbench includes:

[0030] The workbench body 3 is used for providing the machining platform of the alloy copper sleeve 9 to be machined, wherein a positioning table is installed on the upper end of the workbench body 3, the positioning table includes a horizontal positioning table 2 and a side positioning table 14, a sliding rail is formed between the horizontal positioning table 2 and the side positioning table 14, the sliding rail formed between the horizontal positioning table 2 and the side positioning table 14 includes a horizontal rail 1 and a side rail 19, a cross-shaped structure is formed between the horizontal rail 1 and the side rail 19, an arc-shaped missing groove 4 is formed at the position where the horizontal rail 1 and the side rail 19 are connected, and a discharging hole is formed below the arc-shaped missing groove 4 in the workbench body 3;

[0031] The side positioning table 14 forms a drilling groove 20 at one side of the side rail 19, a drilling assembly is installed at the position of the drilling groove 20, the installed drilling assembly is used for drilling the alloy copper sleeve 9 to be machined fixedly in position, a pushing assembly is movably installed in the horizontal rail 1 and the side rail 19, and the pushing assembly is used for pushing the alloy copper sleeve 9 to be machined entering the sliding rail, so that the alloy copper sleeve 9 to be machined is fed and discharged after drilling;

[0032] In addition, the horizontal positioning table 2 is also provided with a copper sleeve material guide frame 10 at one side of the horizontal rail 1, the alloy copper sleeves 9 to be machined are arranged and distributed at intervals in the copper sleeve material guide frame 10, the alloy copper sleeves 9 to be machined distributed in the copper sleeve material guide frame 10 are shielded by the baffle 8, so that the alloy copper sleeves 9 to be machined are prevented from falling when they are displaced in the copper sleeve material guide frame 10 (a movable push rod is arranged at the outlet position of the copper sleeve material guide frame 10 and is used for pushing the alloy copper sleeves 9 to be machined to slide and displace in the copper sleeve material guide frame 10, and the movable push rod is not drawn in the drawings due to the drawing effect) ;

[0033] In the embodiment of the utility model, when the alloy copper sleeve drilling machining workbench is used, the movable push rod is started, the movable push rod pushes the alloy copper sleeves 9 to be machined placed in the copper sleeve material guide frame 10 to enter the sliding rail regularly and repeatedly;

[0034] When the alloy copper sleeve 9 to be processed is inside the slide rail, the alloy copper sleeve 9 to be processed is displaced into the side rail 19 by starting the advancing assembly until reaching the position of the drilling groove 20, and then the alloy copper sleeve 9 to be processed is clamped and fixed by the advancing assembly;

[0035] After the alloy copper sleeve 9 to be processed is clamped and fixed, the drilling assembly is started to drill the alloy copper sleeve 9 to be processed which is fixed in position;

[0036] After the alloy copper sleeve 9 to be processed is drilled, the advancing assembly is started again to push the drilled alloy copper sleeve 9 to be processed to the position of the discharging hole and then drop and discharge;

[0037] In an embodiment of the utility model, the drilling assembly includes a fourth cylinder 21, a motor 23 and a drill rod 24, the fourth cylinder 21 is fixedly installed on the workbench body 3, the output end of the fourth cylinder 21 is provided with a fourth telescopic rod 22, one end of the fourth telescopic rod 22 is connected with the motor 23, and the output end of the motor 23 is provided with the drill rod 24;

[0038] In the embodiment of the utility model, when the drilling assembly is used to drill the alloy copper sleeve 9 to be processed fixed at the position of the drilling groove 20, the fourth cylinder 21 is started, the fourth cylinder 21 outputs kinetic energy to push the fourth telescopic rod 22 to displace, when the fourth telescopic rod 22 displaces, the drill rod 24 is pushed to gradually approach the alloy copper sleeve 9 to be processed fixed at the position of the drilling groove 20, at this time, the motor 23 is started, the motor 23 outputs kinetic energy to drive the drill rod 24 to rotate at high speed, and the alloy copper sleeve 9 to be processed fixed in position is drilled from the side;

[0039] Specifically, in the embodiment of the utility model, the upper end of the workbench body 3 is formed with a sliding groove at the position of the lower end of the motor 23, and a moving block is installed at the lower end of the motor 23 and slidably installed in the sliding groove formed at the upper end of the workbench body 3;

[0040] In the embodiment of the utility model, when the fourth telescopic rod 22 is started to displace to push the motor 23 to displace, the moving block arranged at the lower end of the motor 23 moves and displaces in the sliding groove formed at the upper end of the workbench body 3, so that the motor 23 moves and displaces in a straight line and is not prone to position deviation;

[0041] In an embodiment of the utility model, the propulsion assembly includes first cylinder 7, first sliding block 5, second cylinder 13, second sliding block 11, third cylinder 16 and third sliding block 18, first cylinder 7 and third cylinder 16 are installed at both ends of side rail 19 respectively, the output end of first cylinder 7 is equipped with first telescopic link 6, one end of first telescopic link 6 is equipped with first sliding block 5, and first sliding block 5 is slidingly installed inside side rail 19, the output end of third cylinder 16 is equipped with third telescopic link 17, one end of third telescopic link 17 is equipped with third sliding block 18, and third sliding block 18 is slidingly installed inside side rail 19,

[0042] Second cylinder 13 is located at one end of cross rail 1, the output end of second cylinder 13 is equipped with second telescopic link 12, one end of second telescopic link 12 is connected with second sliding block 11, second sliding block 11 is slidingly installed inside cross rail 1, and copper sleeve groove 15 with the size suitable for the alloy copper sleeve 9 to be processed is formed in the surface of second sliding block 11,

[0043] In the embodiment of the utility model, when the propulsion assembly is used to push the alloy copper sleeve 9 to be processed to move and displace inside the cross rail 1 or side rail 19 of the slide rail,

[0044] For example, when feeding: after the alloy copper sleeve 9 to be processed discharged from the inside of copper sleeve guide frame 10 falls inside copper sleeve groove 15, start second cylinder 13, and the output kinetic energy of second cylinder 13 pushes second telescopic link 12 to displace, and when second telescopic link 12 displaces, it will push second sliding block 11 to slide and displace along the inside of cross rail 1, and then push the alloy copper sleeve 9 to be processed entering the position of copper sleeve groove 15 to the position of arc-shaped missing groove 4;

[0045] When clamping and fixing the alloy copper sleeve 9 to be processed: after the alloy copper sleeve 9 to be processed reaches the position of arc-shaped missing groove 4, start first cylinder 7, and the output kinetic energy of first cylinder 7 pushes first telescopic link 6 to displace, and when first telescopic link 6 displaces, it will push first sliding block 5 to displace along the inside of side rail 19 until it contacts the alloy copper sleeve 9 to be processed and pushes the alloy copper sleeve 9 to be processed to reach the position of drilling groove 20, at this time, start third cylinder 16 to output kinetic energy to push third sliding block 18 and first sliding block 5 to approach each other, for clamping and fixing the alloy copper sleeve 9 to be processed at the position of drilling groove 20; after the position of the alloy copper sleeve 9 to be processed is fixed, at this time, start the drilling assembly to realize drilling processing on the alloy copper sleeve 9 to be processed fixed in position;

[0046] When discharging: after the alloy copper sleeve 9 to be processed is drilled, retract first sliding block 5 to return to the initial state and push third sliding block 18 to approach the discharging hole position, displace the alloy copper sleeve 9 to be processed drilled to the discharging hole position to discharge, and complete the drilling operation process of the alloy copper sleeve 9 to be processed once;

[0047] In the description of the utility model, unless another definite provision and limitation, the term "installation", "link", "connection" should do broad sense understanding, for example, can be fixed connection, also can be detachable connection, or integrally connected;Can be mechanical connection, also can be electrical connection;Can be directly connected, also can be indirectly connected through the intermediate medium, can be two elements inside the communication.For ordinary skilled in the art, the above-mentioned terms can be understood in the specific meaning of the utility model.

[0048] The above only is the preferred embodiment of the utility model, and does not limit the utility model, and any modification, equivalent replacement and improvement etc. that are made within the spirit and principle of the utility model should be included in the protection scope of the utility model.

Claims

1. A drilling worktable for alloy copper bushings, comprising: The workbench body (3) has a positioning platform installed on its upper end; characterized in that: The positioning table includes a horizontal positioning table (2) and a side positioning table (14). A slide rail is formed between the horizontal positioning table (2) and the side positioning table (14). The slide rail formed between the horizontal positioning table (2) and the side positioning table (14) includes a horizontal rail (1) and a side rail (19). The horizontal rail (1) and the side rail (19) form a cross shape, and an arc-shaped notch (4) is formed at the position where the horizontal rail (1) and the side rail (19) are connected. The worktable body (3) has a feeding hole directly below the arc-shaped notch (4). The side positioning platform (14) forms a drilling groove (20) on one side of the side rail (19). A drilling assembly for drilling the fixed alloy copper sleeve (9) is installed at the drilling groove (20). A propulsion assembly for pushing the alloy copper sleeve (9) that enters the slide rail is movably installed inside the horizontal rail (1) and the side rail (19) to realize the feeding of the alloy copper sleeve (9) and the unloading operation after drilling. In addition, the horizontal positioning table (2) is provided with a copper sleeve guide frame (10) on one side of the horizontal rail (1), and the copper sleeve guide frame (10) has alloy copper sleeves (9) to be processed arranged at intervals inside.

2. The alloy copper sleeve drilling workbench according to claim 1, characterized in that: The drilling assembly includes a fourth cylinder (21), a motor (23), and a drill rod (24). The fourth cylinder (21) is mounted and fixed on the workbench body (3). The output end of the fourth cylinder (21) is provided with a fourth telescopic rod (22). One end of the fourth telescopic rod (22) is connected to the motor (23). The output end of the motor (23) is provided with a drill rod (24).

3. The alloy copper sleeve drilling worktable according to claim 2, characterized in that: The upper end of the workbench body (3) forms a groove at the position of the lower end of the motor (23). A moving block is installed at the lower end of the motor (23). The moving block located at the lower end of the motor (23) is slidably installed inside the groove formed at the upper end of the workbench body (3).

4. The alloy copper sleeve drilling workbench according to claim 1, characterized in that: The propulsion assembly includes a first cylinder (7), a first slider (5), a second cylinder (13), a second slider (11), a third cylinder (16), and a third slider (18). The first cylinder (7) and the third cylinder (16) are respectively installed at both ends of the side rail (19). The output end of the first cylinder (7) is provided with a first telescopic rod (6), and one end of the first telescopic rod (6) is equipped with a first slider (5). The first slider (5) is slidably installed inside the side rail (19). The output end of the third cylinder (16) is provided with a third telescopic rod. (17) A third slider (18) is installed at one end of the third telescopic rod (17), and the third slider (18) is slidably installed inside the side rail (19); the second cylinder (13) is located at one end of the horizontal rail (1), and the output end of the second cylinder (13) is provided with a second telescopic rod (12), one end of the second telescopic rod (12) is connected to the second slider (11), the second slider (11) is slidably installed inside the horizontal rail (1), and a copper sleeve groove (15) adapted to the size of the alloy copper sleeve (9) to be processed is opened on the surface of the second slider (11).