Magnetic lock body processing equipment

By designing a magnetic lock body processing equipment, the removal of flash and the cutting of mounting grooves are automated, solving the problem of high manual intervention in existing technologies and improving production efficiency and product quality.

CN116766464BActive Publication Date: 2025-12-26ZHONGSHAN YANGGE LOCK CO LTD
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Patent Information

Application Number
CN202310779598.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-28
Publication Date
2025-12-26
Estimated Expiration
2043-06-28

AI Technical Summary

Technical Problem

In the current production process of magnetic lock bodies, removing flash and cutting mounting grooves after injection molding requires a lot of manual labor, resulting in a low degree of automation.

Method used

A magnetic lock body processing equipment was designed, including a base, a first edge cutting mechanism, a first drive mechanism, a clamping mechanism, and a grooving mechanism. The equipment achieves flash removal and mounting groove cutting through an automated production line, thereby improving the degree of automation.

Benefits of technology

This has improved the automation level of the magnetic lock body production process, thereby increasing processing efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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    Figure CN116766464B_ABST
Patent Text Reader

Abstract

The application discloses a kind of magnetic force lock lock body processing equipment, including base, first edge cutting mechanism, first driving mechanism, clamping mechanism and slotting mechanism.The base is provided with first workpiece guide slot along left-right direction, the first workpiece guide slot has first entry end and first removal end;First edge cutting mechanism is arranged in the base and is located in the side wall of the first workpiece guide slot;First driving mechanism is arranged in the base and is used to drive workpiece to move along the first workpiece guide slot;Clamping mechanism is arranged in the base and is used to clamp or loosen workpiece, the clamping mechanism has workpiece clamping position, the workpiece clamping position is connected with the first removal end of the first workpiece guide slot;Slotting mechanism is arranged in the base and is used to cut installation slot on workpiece on workpiece clamping position.The above-mentioned magnetic force lock lock body processing equipment can further improve the degree of automation in the production process of magnetic force lock lock body.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of magnetic lock processing, in particular to a magnetic lock body processing equipment. BACKGROUND

[0002] The magnetic lock body is needed in the production of the magnetic lock. In the production of the magnetic lock body, a mold is used to injection mold and glue the outside of the magnet into a cuboid shape. Then, the production personnel use tools to remove the injection molding flash of the magnetic lock body. Then, the magnetic lock body is fixed to the existing slot cutting machine to cut the installation slot. The installation slot can be used to install the Hall element after cutting. However, the production process of removing the flash of the magnetic lock body and cutting the installation slot after injection molding still needs the high participation of the production personnel, and the degree of automation still needs to be improved. SUMMARY

[0003] The present application aims to solve at least one of the technical problems in the prior art. To this end, the present application provides a magnetic lock body processing equipment which can further improve the degree of automation in the production process of the magnetic lock body.

[0004] The magnetic lock body processing equipment according to the embodiment of the present application comprises a machine base, a first edge cutting mechanism, a first driving mechanism, a clamping mechanism and a slot cutting mechanism. The machine base is provided with a first workpiece guide groove in the left-right direction, and the first workpiece guide groove has a first entering end and a first moving-out end. The first edge cutting mechanism is arranged on the machine base and located on the side wall of the first workpiece guide groove. The first driving mechanism is arranged on the machine base and used to drive the workpiece to move along the first workpiece guide groove. The clamping mechanism is arranged on the machine base and used to clamp or release the workpiece, and the clamping mechanism has a workpiece clamping position which is in butt joint with the first moving-out end of the first workpiece guide groove. The slot cutting mechanism is arranged on the machine base and used to cut the installation slot on the workpiece in the workpiece clamping position.

[0005] The magnetic lock body processing equipment according to the embodiment of the present application has at least the following beneficial effects: the magnetic lock body after injection molding is sent into the first workpiece guide groove from the first entering end. Then, the first driving mechanism pushes the workpiece to move along the first workpiece guide groove. The first edge cutting mechanism located on the side wall of the first workpiece guide groove removes the flash of the workpiece during the movement of the workpiece. Then, the workpiece enters the workpiece clamping position. The clamping mechanism clamps and fixes the workpiece. The slot cutting mechanism feeds to cut the installation slot for installing the Hall element on the workpiece. Then, the clamping mechanism releases the workpiece. The above-mentioned magnetic lock body processing equipment can further improve the degree of automation in the production process of the magnetic lock body.

[0006] According to some embodiments of the present application, the first edge cutting mechanism is provided with two, and the two first edge cutting mechanisms are respectively located on the two side walls of the first workpiece guide groove.

[0007] According to some embodiments of the present application, the first trimming mechanism comprises a milling cutter and a trimming driver, the trimming driver is connected with the base, the trimming driver is connected with the milling cutter and can drive the milling cutter to rotate, and the milling cutter is located at the side wall of the first workpiece guide groove.

[0008] According to some embodiments of the present application, the clamping mechanism comprises a clamping mounting base, a first clamping block, a second clamping block and a clamping driver, the first clamping block is connected with the base, the clamping mounting base is connected with the base, the first clamping block and the second clamping block are distributed in front of and behind each other, the second clamping block is movably arranged on the clamping mounting base and the moving direction of the second clamping block is arranged obliquely relative to the horizontal direction, the clamping driver is arranged on the clamping mounting base and is used for driving the second clamping block to move close to or away from the first clamping block, the workpiece clamping position is located between the first clamping block and the second clamping block, and the side of the second clamping block close to the first clamping block is provided with a workpiece adapting groove.

[0009] According to some embodiments of the present application, the first driving mechanism comprises a side shift driver, a side shift mounting base, a lifting driver and a pushing piece, the side shift driver is connected with the side shift mounting base and is used for driving the side shift mounting base to move left and right, the pushing piece is arranged on the side shift mounting base in vertical sliding mode, the lifting driver is arranged on the side shift mounting base, the lifting driver is connected with the pushing piece and is used for driving the pushing piece to move vertically, the pushing piece is located above the first workpiece guide groove, and the pushing piece is provided with a limiting protrusion downward for abutting against the side wall of the workpiece.

[0010] According to some embodiments of the present application, the machine base is provided with a second workpiece guide groove in the front-rear direction, the second workpiece guide groove has a second entering end and a second moving-out end, the second entering end of the second workpiece guide groove is in butt joint with the workpiece clamping position, and the pushing-out mechanism is used for pushing the workpiece into the second workpiece guide groove and moving along the second workpiece guide groove.

[0011] According to some embodiments of the present application, the machine base is provided with a second trimming mechanism, the left and right side walls of the second workpiece guide groove are different in height, and the second trimming mechanism is located at the side wall of the second workpiece guide groove which is relatively higher.

[0012] According to some embodiments of the present application, the machine base is provided with a feeding conveying belt, the feeding conveying belt is arranged in the front-rear direction, the feeding conveying belt has a third entering end and a third moving-out end in the conveying direction, and the third moving-out end is in butt joint with the first entering end.

[0013] According to some embodiments of the present application, the slotting mechanism comprises a feeding driver, a feeding mount, a cutting driver and a slotting saw blade, the feeding mount is slidingly connected to the base along the left-right direction, the feeding driver is connected to the feeding mount and used to drive the feeding mount to move left and right, the cutting driver is arranged on the feeding mount, the cutting driver is connected to the slotting saw blade and used to drive the slotting saw blade to rotate, and the slotting saw blade is opposite to the workpiece clamping position along the left-right direction.

[0014] According to some embodiments of the present application, the slotting mechanism comprises a feeding driver, a feeding mount, a cutting driver and a slotting saw blade, the feeding mount is slidingly connected to the base along the left-right direction, the feeding driver is connected to the feeding mount and used to drive the feeding mount to move left and right, the cutting driver is arranged on the feeding mount, the cutting driver is connected to the slotting saw blade and used to drive the slotting saw blade to rotate, and the slotting saw blade is opposite to the workpiece clamping position along the left-right direction.

[0015] Additional aspects and advantages of the present application will be given in part in the following description, become apparent from the following description, or be learned by practice of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0016] The above and / or additional aspects and advantages of the present application will become apparent and be readily understood from the following description, taken in conjunction with the accompanying drawings, in which:

[0017] Figure 1 It is a perspective view of the magnetic lock body processing equipment according to an embodiment of the present application;

[0018] Figure 2 It is a perspective view of the magnetic lock body processing equipment according to an embodiment of the present application after removing part of the structure;

[0019] Figure 3 It is a perspective view of the magnetic lock body processing equipment according to an embodiment of the present application; Figure 2 It is a partial enlarged view of A of the magnetic lock body processing equipment according to an embodiment of the present application;

[0020] Figure 4 It is a rear view of the magnetic lock body processing equipment according to an embodiment of the present application after removing part of the structure;

[0021] Figure 5 It is a perspective view of the magnetic lock body processing equipment according to an embodiment of the present application; Figure 4 It is a partial enlarged view of B of the magnetic lock body processing equipment according to an embodiment of the present application;

[0022] Figure 6 It is a perspective view of the magnetic lock body processing equipment according to an embodiment of the present application after removing part of the structure;

[0023] Figure 7 It is a perspective view of the pushing piece of the magnetic lock body processing equipment according to an embodiment of the present application;

[0024] Figure 8A third clamping block of the magnetic lock body processing equipment of the embodiment of the present application.

[0025] Reference signs:

[0026] Workpiece 10;

[0027] Frame 100, first workpiece guide groove 110, second workpiece guide groove 120, first blocking strip 130, second blocking strip 140, lead arrangement groove 150;

[0028] First edge cutting mechanism 200;

[0029] First driving mechanism 300, side shift driver 310, side shift mounting seat 320, lifting driver 330, pushing piece 340, limiting protrusion 341;

[0030] Clamping mechanism 400, clamping mounting seat 410, limiting strip 411, first clamping block 420, second clamping block 430, workpiece fitting groove 431, clamping driver 440;

[0031] Slot cutting mechanism 500, feed driver 510, feed mounting seat 520, cutting driver 530, slot cutting saw blade 540;

[0032] Push-out mechanism 600, push bracket 610, push-out driver 620;

[0033] Second edge cutting mechanism 700;

[0034] Feeding conveyor belt 800;

[0035] Suction mechanism 900, protective cover 910, connecting pipe 920. DETAILED DESCRIPTION

[0036] The embodiments of the present application are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar reference signs represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the accompanying drawings are exemplary and are only used to explain the present application, and cannot be understood as a limitation of the present application.

[0037] In the description of the present application, it should be understood that the orientation description, such as the orientation or position relationship indicated by up, down, etc. is based on the orientation or position relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.

[0038] In the description of the present application, more refers to more than two. If the first, second is described for the purpose of distinguishing technical features, it cannot be understood as indicating or implying relative importance or implying the number of indicated technical features or implying the sequence of indicated technical features.

[0039] In the description of the present application, unless otherwise explicitly limited, the words such as setting, installation, connection and the like should be understood broadly, and those skilled in the art can reasonably determine the specific meaning of the above words in the present application in combination with the specific content of the technical scheme.

[0040] When manufacturing the magnetic lock, the magnetic lock body needs to be used. When producing the magnetic lock body, a mold is used to injection mold and glue the outside of the magnet into a cuboid shape. Then the production personnel removes the injection molding flash of the magnetic lock body using tools, and then fixes the magnetic lock body to the existing slot cutting machine to cut the installation slot. The installation slot can be used to install the Hall element after cutting. However, after injection molding, the production personnel needs to manually remove the flash of the magnetic lock body and carry the magnetic lock body to the slot cutting machine. The magnetic lock body is clamped by the vice, and then the production personnel manually operates the slot cutting machine to cut the installation slot on the magnetic lock body. In this process, the production personnel needs to participate highly, and the degree of automation still has room for improvement.

[0041] Reference Figures 1 to 8 The magnetic lock body processing equipment of the embodiment of the present application comprises a base 100, a first edge cutting mechanism 200, a first driving mechanism 300, a clamping mechanism 400 and a slot cutting mechanism 500. The base 100 is provided with a first workpiece guide groove 110 in the left-right direction, and the first workpiece guide groove 110 has a first entering end and a first moving out end. The first edge cutting mechanism 200 is arranged on the side wall of the first workpiece guide groove 110 of the base 100. The first driving mechanism 300 is arranged on the base 100 and is used to drive the workpiece to move along the first workpiece guide groove 110. The clamping mechanism 400 is arranged on the base 100 and is used to clamp or release the workpiece. The clamping mechanism 400 has a workpiece clamping position, and the workpiece clamping position is in butt joint with the first moving out end of the first workpiece guide groove 110. The slot cutting mechanism 500 is arranged on the base 100 and is used to cut the installation slot on the workpiece in the workpiece clamping position.

[0042] The injection-molded magnetic lock body is sent into the first workpiece guide groove 110 from the first entry end, and then the first driving mechanism 300 pushes the workpiece to move along the first workpiece guide groove 110. The first trimming mechanism 200 located on the side wall of the first workpiece guide groove 110 removes the flash of the workpiece during the movement of the workpiece. Then the workpiece enters the workpiece clamping position, and the clamping mechanism 400 clamps and fixes the workpiece. The slot cutting mechanism 500 feeds to cut the mounting groove for mounting the Hall element on the workpiece, and then the clamping mechanism 400 releases the workpiece. The magnetic lock body processing equipment described above can further improve the degree of automation in the production process of the magnetic lock body.

[0043] In the embodiment, two first trimming mechanisms 200 are provided, and the two first trimming mechanisms 200 are respectively located on the two side walls of the first workpiece guide groove 110. When the first driving mechanism 300 drives the workpiece to move along the first workpiece guide groove 110, the two first trimming mechanisms 200 respectively cut the front and rear side walls of the workpiece. Only one pass is required to complete the cutting flash operation on the front and rear side walls of the workpiece, the processing efficiency is good, and the quality of the workpiece is improved.

[0044] In the embodiment, the first trimming mechanism 200 includes a milling cutter and a trimming driver. The trimming driver is connected with the machine base 100, the trimming driver is connected with the milling cutter and can drive the milling cutter to rotate, and the milling cutter is located on the side wall of the first workpiece guide groove 110. The first trimming mechanism 200 described above has a simple structure, is easy to install, and has good processing effect. Specifically, the trimming driver is a motor, the output shaft of the motor is provided with a connecting hole, one end of the milling cutter is installed in the connecting hole, and the milling cutter is vertically arranged. When the workpiece moves along the first workpiece guide groove 110 and passes through the milling cutter, the milling cutter cuts the side surface of the workpiece to remove the flash. It can be imagined that the trimming driver can also be an internal combustion engine, etc.

[0045] It can be imagined that the first trimming mechanism 200 can also have other structures, for example, the first trimming mechanism 200 is a rotary saw blade and a motor. The output shaft of the motor drives the rotary saw blade to rotate, the rotary saw blade is arranged in parallel with the side wall of the first workpiece guide groove 110, and the rotary saw blade can cut the flash of the workpiece to remove the flash of the workpiece.

[0046] Specifically, the workpiece slides in the first workpiece guide groove 110, and the first driving mechanism 300 pushes the workpiece to slide along the first workpiece guide groove 110.

[0047] Specifically, the base 100 is provided with a flat plate and two first blocking strips 130 distributed in front and back and mounted on the flat plate, the first blocking strips 130 extend along the left-right direction, and the flat plate and the two first blocking strips 130 enclose to form the first workpiece guide groove 110. The above structure forms the first workpiece guide groove 110, which is simple in structure and easy to implement. It can be imagined that the first workpiece guide groove 110 can also be cut on the flat plate.

[0048] In the embodiment, the clamping mechanism 400 includes a clamping mounting seat 410, a first clamping block 420, a second clamping block 430, and a clamping driver 440, the first clamping block 420 is connected to the base 100, the clamping mounting seat 410 is connected to the base 100, the first clamping block 420 and the second clamping block 430 are distributed in front and back, the second clamping block 430 is movably arranged on the clamping mounting seat 410, and the moving direction of the second clamping block 430 is obliquely arranged relative to the horizontal direction, the clamping driver 440 is arranged on the clamping mounting seat 410 and is used to drive the second clamping block 430 to move close to or away from the first clamping block 420, and the workpiece clamping position is located between the first clamping block 420 and the second clamping block 430. The side of the second clamping block 430 close to the first clamping block 420 is provided with a workpiece fitting groove 431.

[0049] The second clamping block 430 is provided with the workpiece fitting groove 431, and when the clamping driver 440 drives the second clamping block 430 to clamp the workpiece with the first clamping block 420, the workpiece fitting groove 431 abuts against the outside of the workpiece. Since the moving direction of the second clamping block 430 is obliquely arranged, the second clamping block 430 simultaneously applies vertical pressure and front-back direction clamping force to the workpiece, so that the workpiece is less likely to shake, and the stability of the clamping mechanism 400 in clamping the workpiece is improved. Specifically, the first clamping block 420 is fixed to the base by screws, and the clamping driver 440 is a pneumatic cylinder; the second clamping block 430 is provided with a guide column, the clamping mounting seat 410 is provided with a guide hole, the hole axis of the guide hole is obliquely arranged, the guide column is slidingly connected to the guide hole, so that the second clamping block 430 is slidingly connected to the clamping mounting seat 410, the cylinder rod of the pneumatic cylinder is connected to the second clamping block 430, and the second clamping block 430 is driven to move. It can be imagined that a sliding strip can also be arranged on the second clamping block 430, a sliding groove is arranged on the clamping mounting seat 410, the sliding strip is slidingly connected to the sliding groove, and the second clamping block 430 is movable relative to the clamping mounting seat 410. The clamping driver 440 can also be a linear motor, an electric cylinder, or an oil cylinder, etc. The linear motor is connected to the second clamping block 430.

[0050] It can be imagined that the clamping mechanism 400 can also be other structures, for example, the clamping mechanism 400 can adopt a jaw cylinder that clamps the workpiece; or the clamping mechanism 400 can adopt a mechanical hand; or the clamping mechanism 400 can adopt two clamping blocks and two cylinders, each cylinder drives one clamping block to move, the two clamping blocks can move close to each other and move away from each other, and the two clamping blocks can clamp the workpiece when they move close to each other. In the mechanical field, there are many structures for clamping a component, and those skilled in the art can configure them according to actual needs.

[0051] In the embodiment, the first driving mechanism 300 includes a side shift driver 310, a side shift mounting seat 320, a lifting driver 330, and a pushing piece 340. The side shift driver 310 is connected with the side shift mounting seat 320 and is used to drive the side shift mounting seat 320 to move left and right. The pushing piece 340 is vertically slidingly arranged in the side shift mounting seat 320. The lifting driver 330 is arranged in the side shift mounting seat 320 and is connected with the pushing piece 340 and used to drive the pushing piece 340 to move vertically. The pushing piece 340 is located above the first workpiece guide groove 110, and the pushing piece 340 is downwardly provided with a limiting protrusion 341 used to abut against the side wall of the workpiece. The lifting driver 330 can drive the pushing piece 340 to descend until the limiting protrusion 341 of the pushing piece 340 abuts against the left and right side walls of the workpiece. Then, the side shift driver 310 drives the side shift mounting seat 320 to move left and right, thereby driving the workpiece to move along the first workpiece guide groove 110. After the workpiece is pushed out of the first workpiece guide groove 110, the lifting driver 330 drives the pushing piece 340 to ascend and disengage from the workpiece, and the side shift driver 310 drives the side shift mounting seat 320 to reset, so that the first driving mechanism 300 is reset, and then the next workpiece can be repeatedly transported. The above-mentioned first driving mechanism 300 has a simple and efficient structure.

[0052] Specifically, the side shift driver 310 can adopt a structure outputting linear power, such as a linear motor, a cylinder, an electric cylinder, an oil cylinder, or the like, or a motor matched with a lead screw and a lead screw nut, the lead screw nut being mounted on the side shift mounting seat 320, the motor driving the lead screw to rotate, and the lead screw being arranged in the lead screw nut; or a motor driving a roller to rotate, the roller being arranged on the side shift mounting seat 320, thereby driving the side shift mounting seat 320 to move left and right. In the machine tool field, there are many structures outputting linear power, and those skilled in the art can configure them according to actual needs.

[0053] The pushing piece 340 is vertically provided with a guide column, the side-moving mounting base 320 is provided with a guide hole, and the guide column is slidably connected to the guide hole, so that the pushing piece 340 can vertically slide relative to the side-moving mounting base 320. The lifting driver 330 is a pneumatic cylinder, and a piston rod of the pneumatic cylinder is connected to the pushing piece 340. It is conceivable that the pushing piece 340 can also be vertically provided with a sliding bar, the side-moving mounting base 320 is provided with a sliding groove, and the sliding bar is slidably connected to the sliding groove, so as to achieve that the pushing piece 340 can vertically slide relative to the side-moving mounting base 320; the lifting driver 330 can also be a linear motor, which drives the pushing piece 340 to vertically lift.

[0054] Specifically, the limiting protrusions 341 are provided in two, and the two limiting protrusions 341 are arranged at left and right, so as to facilitate abutting against left and right sidewalls of the workpiece, and to stabilize pushing of the workpiece to move along the first workpiece guide groove 110, and to prevent the workpiece from being easily shaken when passing through the first trimming mechanism 200.

[0055] It is conceivable that the first driving mechanism 300 can also be other structures, for example, the first driving mechanism 300 can be a multi-axis mechanical arm.

[0056] In the embodiment, the pushing-out mechanism 600 is further included, and the pushing-out mechanism 600 is arranged on the base 100. The base 100 is provided with a second workpiece guide groove 120 in the front-rear direction. The second workpiece guide groove 120 has a second entering end and a second moving-out end. The second entering end of the second workpiece guide groove 120 is opposite to the workpiece clamping position. The pushing-out mechanism 600 is used to push the workpiece into the second workpiece guide groove 120 and move along the second workpiece guide groove 120. The pushing-out mechanism 600 is arranged, so that the workpiece can be automatically moved to the next process after the workpiece is finished. After the clamping mechanism 400 releases the workpiece, the pushing-out mechanism 600 pushes the workpiece into the second workpiece guide groove 120 from the second entering end. The workpiece moves along the second workpiece guide groove 120, and then is sent to the next process from the second moving-out end. The structure is simple and easy to implement. Specifically, since the second clamping block 430 is inclined to move, the second clamping block 430 can be moved to be completely above the workpiece. Then, the workpiece can pass through the second clamping block 430 and move along the second workpiece guide groove 120.

[0057] Specifically, the second clamping block 430 is located in front of the first clamping block 420, and the second workpiece guide groove 120 is located in front of the workpiece clamping position.

[0058] In the embodiment, the pushing mechanism 600 comprises a pushing frame 610 and a pushing driver 620 connected to the base, the pushing driver 620 is connected with the pushing frame 610 and used to drive the pushing frame 610 to move in the front-back direction, so that the pushing frame 610 can push the workpiece to slide along the second workpiece guide groove 120, which is simple in structure and easy to implement. Specifically, the pushing driver 620 can adopt a linear motor, an air cylinder, or a motor matched with a lead screw and a lead screw nut, a motor matched with a roller rotatingly connected to the pushing frame 610, to realize the front-back movement of the pushing frame 610; in the machine tool field, there are many structures outputting linear force, and a person skilled in the art can configure them according to actual needs.

[0059] The pushing frame 610 is provided with a pushing rod, and the first clamping block 420 is provided with a clearance hole, the pushing rod is arranged in the clearance hole, and the pushing rod is used to push the workpiece. It can be imagined that the pushing frame 610 can also be a block, and the block directly abuts against the workpiece to move.

[0060] It can be imagined that the pushing mechanism 600 can also be other structures, for example, the pushing mechanism 600 can be a multi-axis manipulator, and the multi-axis manipulator holds the workpiece to move along the second workpiece guide groove 120.

[0061] Specifically, the machine seat 100 is provided with a flat plate and two second blocking strips 140, the two second blocking strips 140 are arranged at intervals left and right, the second blocking strip 140 extends in the front-back direction, and the two second blocking strips 140 form the second workpiece guide groove 120 with the flat plate.

[0062] Among them, the heights of the two second blocking strips 140 are different, and the side of the second blocking strip 140 with lower height can give way to the lead wire protruding from the side wall of the magnetic lock body.

[0063] In the embodiment, the second edge cutting mechanism 700 is further included, the second edge cutting mechanism 700 is arranged on the machine seat 100, the left and right side walls of the second workpiece guide groove 120 are different in height, and the second edge cutting mechanism 700 is located on the side wall of the second workpiece guide groove 120 with relatively higher height. The above-mentioned second edge cutting mechanism 700 can remove the flash on the side wall opposite to the lead wire of the magnetic lock body. The first edge cutting mechanism 200 is matched with the second edge cutting mechanism 700, so that the flash on the three side walls of the workpiece is removed. Specifically, the second edge cutting mechanism 700 is the same in structure as the first edge cutting mechanism 200, and details are not repeated here.

[0064] In the embodiment, the feeding conveyor 800 is also included, which is arranged on the base 100 along the front-rear direction, has a third entering end and a third moving-out end along the conveying direction, and the third moving-out end is connected with the first entering end. The feeding conveyor 800 is arranged to automatically connect the previous process and move the workpiece from the previous process to the first entering end of the first workpiece guide groove 110. Specifically, the feeding conveyor 800 is a belt conveyor. The feeding conveyor 800 is driven to move by a speed reducer. It can be imagined that the feeding conveyor 800 can be a chain net conveyor, a chain plate conveyor, etc.

[0065] Specifically, the feeding conveyor 800 is located behind the first workpiece guide groove 110, and the first blocking strip 130 away from the feeding conveyor 800 extends to the front side of the third moving-out end, so that the workpiece can stop moving at the first entering end.

[0066] Specifically, the second blocking strip 140 away from the first workpiece guide groove 110 extends to the front side of the first moving-out end, so that the workpiece can stop moving at the workpiece clamping position after sliding along the first workpiece guide groove 110.

[0067] In the embodiment, the slotting mechanism 500 includes a feeding driver 510, a feeding mounting seat 520, a cutting driver 530, and a slotting saw blade 540. The feeding mounting seat 520 is slidably connected to the base 100 along the left-right direction, the feeding driver 510 is connected with the feeding mounting seat 520 and used to drive the feeding mounting seat 520 to move left and right, the cutting driver 530 is arranged on the feeding mounting seat 520, the cutting driver 530 is connected with the slotting saw blade 540 and used to drive the slotting saw blade 540 to rotate, and the slotting saw blade 540 is opposite to the workpiece clamping position along the left-right direction. The above-mentioned slotting mechanism 500 is simple and efficient, and is convenient to process.

[0068] After the clamping mechanism 400 clamps the workpiece, the cutting driver 530 drives the cutting groove saw blade 540 to rotate, and then the feeding driver 510 drives the feeding mounting seat 520 to move towards the workpiece, so that the cutting groove saw blade 540 approaches the workpiece and cuts the mounting groove on the workpiece, and then the feeding driver 510 drives the feeding mounting seat 520 to move away from the workpiece to reset, and then the clamping mechanism 400 can release the workpiece, thereby completing the machining of the cutting mounting groove. Specifically, the feeding driver 510 includes a speed reducer motor, a lead screw and a lead screw nut, the lead screw nut is installed on the feeding mounting seat 520, and the lead screw is arranged in the left-right direction. When the speed reducer motor drives the lead screw to rotate, the feeding mounting seat 520 moves left and right through the lead screw nut. The feeding mounting seat 520 is provided with a guide sleeve, and the guide column is arranged in the guide strip, so that the feeding mounting seat 520 can slide left and right relative to the machine base 100. The cutting driver 530 is a motor. It can be imagined that the feeding driver 510 can also be a linear motor, a cylinder and other structures that output linear power; the feeding mounting seat 520 can also be provided with a sliding block, and a sliding groove is arranged on the machine base 100, and the sliding block is arranged in the sliding groove, so that the feeding mounting seat 520 can move left and right relative to the machine base 100. The cutting driver 530 can also be an internal combustion engine.

[0069] It can be imagined that the cutting groove mechanism 500 can also be other structures, for example, the cutting groove mechanism 500 includes a multi-axis mechanical arm, a motor and a saw blade, the rotating shaft of the motor is connected to the saw blade, and the multi-axis mechanical arm drives the motor to feed.

[0070] In the embodiment, the suction mechanism 900 is further included, the suction mechanism 900 is arranged on the machine base 100, and the suction mechanism 900 includes a protective cover 910 and a connecting pipe 920. The protective cover 910 is sleeved outside the cutting groove saw blade 540, the protective cover 910 is provided with an air passing hole, and one end of the connecting pipe 920 is connected with the air passing hole. The protective cover 910 can prevent debris from splashing during the cutting of the magnetic lock body by the cutting groove saw blade 540, and can suck the debris, dust and harmful gas through the connecting pipe 920, thereby reducing the pollution to the environment during machining. Specifically, the protective cover 910 is in a runway shape, and a gap is formed in a part of the protective cover 910. The saw blade can cut the magnetic lock body from the gap. The other end of the connecting pipe 920 is connected with a fan, so as to continuously generate negative pressure in the protective cover 910, and suck the harmful gas and debris in the protective cover 910.

[0071] In the embodiment, a touch screen controller is further included, which is used for controlling the operation of the equipment, and is convenient for control.

[0072] In the embodiment, the clamping mounting base 410 is provided with a limiting strip 411 extending along the front-rear direction, the limiting strip 411 is located above and spaced from the second baffle 140 with relatively low height, and the limiting strip 411 and the second baffle 140 with relatively low height form the lead arranging groove 150. The lead arranging groove 150 is arranged to facilitate the leads on the lock body of the magnetic lock to be arranged neatly when passing through the lead arranging groove 150.

[0073] Specifically, the rear end of the limiting strip 411 is provided with a guide surface to facilitate guiding the lead to enter the lead arranging groove 150.

[0074] In the description of the present specification, the description referring to the terms "one embodiment", "some embodiments", "exemplary embodiment", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the exemplary description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.

[0075] Although the embodiments of the present application have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the claims and their equivalents.

Claims

1. A magnetic lock body machining apparatus characterized by comprising: include: The machine base (100) is provided with a first workpiece guide groove (110) in the left-right direction. The first workpiece guide groove (110) has a first entry end and a first exit end. The first cutting mechanism (200) is disposed on the base (100) and located on the side wall of the first workpiece guide groove (110); A first driving mechanism (300) is disposed on the base (100) and is used to drive the workpiece to move along the first workpiece guide groove (110); A clamping mechanism (400) is disposed on the base (100) and used to clamp or release a workpiece. The clamping mechanism (400) has a workpiece clamping position, which is connected to the first disengagement end of the first workpiece guide groove (110). A grooving mechanism (500) is disposed on the machine base (100) and is used to cut a mounting groove on the workpiece clamping position; There are two first trimming mechanisms (200), and the two first trimming mechanisms (200) are respectively located on the two side walls of the first workpiece guide groove (110); The first driving mechanism (300) includes a side-shifting driver (310), a side-shifting mounting base (320), a lifting driver (330), and a pusher (340). The side-shifting driver (310) is connected to the side-shifting mounting base (320) and is used to drive the side-shifting mounting base (320) to move left and right. The pusher (340) is slidably disposed on the side-shifting mounting base (320) in a vertical direction. The lifting driver (330) is disposed on the side-shifting mounting base (320). The lifting driver (330) is connected to the pusher (340) and is used to drive the pusher (340) to move vertically. The pusher (340) is located above the first workpiece guide groove (110). The pusher (340) is provided with a limiting protrusion (341) facing downward for abutting against the side wall of the workpiece.

2. The magnetic lock body machining apparatus according to claim 1, characterized by: The first trimming mechanism (200) includes a milling cutter and a trimming driver. The trimming driver is connected to the base (100) and is connected to the milling cutter and can drive the milling cutter to rotate. The milling cutter is located on the side wall of the first workpiece guide groove (110).

3. The magnetic lock mortise device of claim 1, wherein: The clamping mechanism (400) comprises a clamping mounting base (410), a first clamping block (420), a second clamping block (430) and a clamping driver (440), the first clamping block (420) is connected to the machine base (100), the clamping mounting base (410) is connected to the machine base (100), the first clamping block (420) and the second clamping block (430) are distributed in front and back, the second clamping block (430) is movably arranged on the clamping mounting base (410), and the moving direction of the second clamping block (430) is arranged obliquely relative to the horizontal direction, the clamping driver (440) is arranged on the clamping mounting base (410) and is used for driving the second clamping block (430) to move close to or away from the first clamping block (420), the workpiece clamping position is located between the first clamping block (420) and the second clamping block (430), and the side of the second clamping block (430) close to the first clamping block (420) is provided with a workpiece adapting groove (431).

4. The magnetic lock mortise device of claim 1, wherein: Further comprising a pushing-out mechanism (600), the pushing-out mechanism (600) is arranged on the machine base (100), the machine base (100) is provided with a second workpiece guide groove (120) in the front-rear direction, the second workpiece guide groove (120) has a second entering end and a second moving-out end, the second entering end of the second workpiece guide groove (120) is connected with the workpiece clamping position, and the pushing-out mechanism (600) is used for pushing the workpiece into the second workpiece guide groove (120) and moving along the second workpiece guide groove (120).

5. The magnetic lock mortise device of claim 4, wherein: Further comprising a second trimming mechanism (700), the second trimming mechanism (700) is arranged on the machine base (100), the left and right side groove walls of the second workpiece guide groove (120) are different in height, and the second trimming mechanism (700) is located on the relatively high side wall of the second workpiece guide groove (120).

6. The magnetic lock mortise device of claim 1, wherein: Further comprising a feeding conveying belt (800), the feeding conveying belt (800) is arranged on the machine base (100) in the front-rear direction, the feeding conveying belt (800) has a third entering end and a third moving-out end in the conveying direction, and the third moving-out end is connected with the first entering end.

7. The magnetic lock mortise device of claim 1, wherein: The slotting mechanism (500) comprises a feeding driver (510), a feeding mounting base (520), a cutting driver (530) and a slotting saw blade (540), the feeding mounting base (520) is slidably connected to the machine base (100) in the left-right direction, the feeding driver (510) is connected with the feeding mounting base (520) and is used for driving the feeding mounting base (520) to move left and right, the cutting driver (530) is arranged on the feeding mounting base (520), the cutting driver (530) is connected with the slotting saw blade (540) and is used for driving the slotting saw blade (540) to rotate, and the slotting saw blade (540) is opposite to the workpiece clamping position in the left-right direction.

8. The magnetic lock mortise device of claim 7, wherein: Further comprising a suction mechanism (900) arranged on the base (100), the suction mechanism (900) comprising a protective cover (910) and a connecting pipe (920), the protective cover (910) being sleeved on the outside of the slotting saw blade (540), the protective cover (910) being provided with a gas passing hole, and one end of the connecting pipe (920) being connected with the gas passing hole.

Citation Information

Patent Citations

  • Efficient automatic machining equipment for lock cylinder sleeve grooving procedure

    CN214979172U

  • Edge cutting device applied to plastic products

    CN218195442U

  • Magnetic lock body machining equipment

    CN220095264U