Pin cutting device for high-precision electronic component
By designing a shortcut automatic foot cutting assembly including inlet port, working cavity, sliding groove, clamping column and clamping plate, the problems of inconsistent pin cutting length and uneven cutout during the cutting process of traditional foot cutting devices are solved, and precise cutting and automated operation of high-precision electronic components are achieved, and product quality and production efficiency are improved.
Patent Information
- Application Number
- CN202510254773.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-05-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the cutting process, traditional foot cutting devices are prone to inconsistent pin cutting lengths and uneven cutouts, which lead to poor welding problems such as electronic components during subsequent installation and use, affecting product quality and production efficiency, and have a low degree of automation, requiring frequent manual operation, which increases labor costs and human errors.
A high-precision electronic components foot cutting device is adopted, including a workbench and a shortcut automatic foot cutting assembly. The shortcut automatic foot cutting assembly includes a feeding port, a working cavity, a sliding groove, a clamping column and a clamping plate. Through the design and combination of these components, the precise cutting and automated operation of electronic components are realized.
It effectively solves the problems of inconsistent pin cutting lengths and uneven cutouts during the cutting process of traditional foot cutting devices, improves the installation and use quality of electronic components, reduces labor costs and man-made errors, and improves production efficiency.
Smart Images

Figure CN119951956A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of electronic component processing equipment, and in particular to a pin cutting device for high-precision electronic components. Background Art
[0002] In the production process of electronic components, cutting the pins of electronic components is a key process. Most existing pin cutting devices have the problem of insufficient precision and are difficult to meet the needs of pin cutting of increasingly miniaturized and sophisticated electronic components.
[0003] Traditional pin cutting devices are prone to inconsistent pin cutting lengths and uneven cuts during the cutting process, which can lead to problems such as poor welding of electronic components during subsequent installation and use, affecting product quality and production efficiency. In addition, the device has a low degree of automation and requires frequent manual operations, which increases labor costs and human errors.
[0004] In order to solve the above problems, we proposed a lead cutting device for high-precision electronic components. Summary of the invention
[0005] The purpose of the present invention is to provide a pin cutting device for high-precision electronic components, which solves the problems that traditional pin cutting devices are prone to inconsistent pin cutting lengths and uneven incisions during the cutting process, resulting in problems such as poor welding of electronic components during subsequent installation and use, affecting product quality and production efficiency. In addition, the device has a low degree of automation and requires frequent manual operations, which increases labor costs and human errors.
[0006] To achieve the above-mentioned purpose, the present invention adopts a pin cutting device for high-precision electronic components, including a workbench and a quick-type automatic pin cutting assembly, the quick-type automatic pin cutting assembly including a feed port, a working chamber, a sliding groove, a clamping column and a clamping plate, the feed port is fixedly connected to the workbench and is located on the upper side of the workbench, the working chamber is fixedly connected to the workbench and is located at the inner center of the workbench, and the working chamber is arranged on one side of the feed port, the sliding groove is fixedly connected to the workbench and is located on the inner side of the workbench, and the sliding groove is arranged on the inner side of the working chamber close to the feed port, the clamping column is slidably connected to the workbench and is located on the inner side of the workbench, and the clamping column is arranged inside the sliding groove, and the clamping plate is detachably connected to the clamping column and is located on the side of the clamping column away from the workbench.
[0007] Among them, the quick-type automatic foot cutting assembly also includes a lifting groove, a lifting column, a lifting plate and a limit block. The lifting groove is fixedly connected to the workbench and is located at the lower interior of the workbench, and the lifting groove is arranged at the lower interior center of the working chamber. The lifting column is fixedly connected to the workbench and is located at the lower interior of the workbench, and the lifting column is arranged at the inner center of the lifting groove. The lifting plate is detachably connected to the lifting column and is located above the lifting column, and the lifting plate and the lifting column are vertically arranged. The limit block is fixedly connected to the lifting plate and is located on the upper side of the lifting plate.
[0008] Among them, the quick automatic foot cutting assembly also includes a fixing rod and a foot cutting machine, the fixing rod is fixedly connected to the workbench and is located above the interior of the workbench, and the fixing rod is arranged above the side of the sliding groove away from the feeding port, and the fixing rod is also arranged vertically with the workbench, the foot cutting machine is slidably connected to the workbench and is located above the workbench, and the blade of the foot cutting machine is arranged above the lifting plate.
[0009] In which, the quick-type automatic foot cutting assembly also includes a movable groove and a push block, the movable groove is fixedly connected to the workbench and is located on the inner side of the workbench, and the movable groove is arranged on the side of the sliding groove away from the feeding port, and the movable groove is also arranged below the fixed rod, the push block is slidably connected to the workbench and is located on the inner side of the workbench, and the push block is arranged on the inner side of the movable groove.
[0010] Among them, the quick automatic foot cutting assembly also includes a guide groove, which is fixedly connected to the workbench and is located on the inner side of the workbench away from the feed inlet, and the guide groove is arranged on the side of the lifting groove away from the feed inlet.
[0011] Among them, the foot cutting device for high-precision electronic components also includes a residual material guiding assembly, and the residual material guiding assembly includes a guide groove, an inclined groove and a waste port, the guide groove is fixedly connected to the workbench and is located inside and below the workbench, and the guide groove is arranged between the lifting groove and the movable groove, the guide groove is also arranged on one side of the guide groove, the inclined groove is fixedly connected to the workbench and is located inside the workbench, and the inclined groove is arranged inside and below the guide groove, the waste port is fixedly connected to the workbench and is located inside and below the workbench, and the waste port is arranged on the side of the guide groove away from the sliding groove, and the waste port is also arranged vertically to the workbench.
[0012] Wherein, the residual material guiding assembly also includes a cavity, which is fixedly connected to the workbench and is located at the lower part of the workbench, and the cavity is arranged below the waste material opening.
[0013] Wherein, the residual material guiding assembly also includes a waste box and a handle, the waste box is arranged inside the cavity, and the waste box is also arranged below the waste port, and the handle is fixedly connected to the waste box and is located on one side of the waste box.
[0014] The present invention provides a pin cutting device for high-precision electronic components, comprising a workbench and a quick-cut automatic pin cutting assembly, wherein the quick-cut automatic pin cutting assembly comprises a feed inlet, a working chamber, a sliding groove, a clamping column and a clamping plate, wherein the feed inlet is fixedly connected to the workbench and is located on one side above the workbench, the working chamber is fixedly connected to the workbench and is located at the inner center of the workbench, and the working chamber is arranged on one side of the feed inlet, the sliding groove is fixedly connected to the workbench and is located on one side of the inner part of the workbench, and the sliding groove is arranged on one side of the inner part of the working chamber close to the feed inlet, the clamping column is connected to the workbench The clamping column is arranged inside the sliding groove, and the clamping plate is detachably connected to the clamping column and is located on the side of the clamping column away from the workbench. Since the original pin cutting mechanism is modified and replaced with a quick automatic pin cutting assembly, the problems of inconsistent pin cutting length and uneven incision in the traditional pin cutting device during the cutting process are effectively solved, which leads to problems such as poor welding of electronic components during subsequent installation and use, affecting product quality and production efficiency. In addition, the degree of automation is low, and frequent manual operation is required, which increases labor costs and human errors. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.
[0016] Figure 1 It is a schematic diagram of the overall structure of the first embodiment of the present invention.
[0017] Figure 2 It is an overall top view of the first embodiment of the present invention.
[0018] Figure 3 The present invention Figure 2 AA line structural cross-section view.
[0019] Figure 4 It is an overall top view of the second embodiment of the present invention.
[0020] Figure 5 The present invention Figure 4 BB line structural cross-sectional view.
[0021] Figure 6 It is a schematic diagram of the overall structure of the third embodiment of the present invention.
[0022] 101-workbench, 102-feeding port, 103-working chamber, 104-sliding slot, 105-clamping column, 106-clamping plate, 107-lifting slot, 108-lifting column, 109-lifting plate, 110-limiting block, 111-fixed rod, 112-foot cutting machine, 113-moving slot, 114-pushing block, 115-guide slot, 201-guide slot, 202-chute, 203-waste port, 204-cavity, 205-waste box, 206-handle, 301-discharge port, 302-collection port, 303-collection chamber, 304-collection box, 305-recovery port, 306-recovery chamber, 307-recovery box. DETAILED DESCRIPTION
[0023] Embodiments of the present invention are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and should not be construed as limiting the present invention.
[0024] First embodiment
[0025] See also Figure 1 to Figure 3 , Figure 1 is a schematic diagram of the overall structure of the first embodiment of the present invention, Figure 2 is a top view of the first embodiment of the present invention as a whole, Figure 3 The present invention Figure 2 AA line structural cross-section view.
[0026] The present invention provides a pin cutting device for high-precision electronic components, comprising a workbench 101 and a quick automatic pin cutting assembly, wherein the quick automatic pin cutting assembly comprises an inlet 102, a working chamber 103, a sliding groove 104, a clamping column 105, a clamping plate 106, a lifting groove 107, a lifting column 108, a lifting plate 109, a limit block 110, a fixing rod 111, a pin cutting machine 112, a moving groove 113, a pushing block 114 and a guide groove 115. The above-mentioned solution solves the problems that the traditional pin cutting device is prone to inconsistent pin cutting lengths and uneven cuts during the cutting process, resulting in poor welding of electronic components during subsequent installation and use, affecting product quality and production efficiency, and the degree of automation is low, and the need for Frequent manual operations increase labor costs and human error problems. It is understandable that when cutting the pins of electronic components, the operator places the electronic components on the feed port 102. The feed port 102 is usually designed with a certain inclination angle so that the electronic components can rely on their own gravity and slide naturally and smoothly into the working chamber 103 without external assistance. The clamping column 105 moves along a precise linear track in the sliding groove 104. The inner wall of the sliding groove 104 has been subjected to high-precision grinding, and the surface roughness is extremely low. The matching accuracy between the clamping column 105 is extremely high, which can ensure that the movement of the clamping column 105 is smooth and without deviation. When the clamping column 105 is close to the electronic When the electronic components are lifted, the clamping plate 106 installed at the end thereof will gradually close to clamp the electronic components tightly. The inner side of the clamping plate 106 is usually made of special rubber or soft material, which can provide sufficient friction to prevent the components from sliding and avoid damage to the surface of the components. After the clamping is stable, the clamping column 105 will slide in the sliding groove 104 to transfer the electronic components to the top of the lifting plate 109, and the lifting column 108 will move upward in the lifting groove 107. A clearance fit is adopted between the lifting column 108 and the lifting groove 107, and the clearance is extremely small to ensure the movement accuracy of the lifting column 108. When the lifting column 108 rises, the lifting plate 109 is lifted up accordingly. The limit block 110 is installed on one side above the lifting plate 109. The position and shape of the limit block 110 match the specific parts of the electronic components. When the lifting plate 109 rises to a certain height, the limit block 110 will accurately clamp the electronic components. When the specified height is reached, the fixing rod 111 will fix the electronic components. After the fixing is completed, the foot cutting machine 112 will perform accurate foot cutting operations on the electronic components. After the cutting is completed, the pusher block 114 starts to work. The pusher block 114 is slidably connected to the workbench 101 through the movable groove 113. The structure of the movable groove 113 is similar to that of the sliding groove 104, and also has high-precision processing technology and good guiding performance.The pusher block 114 moves in the moving groove 113. When the pusher block 114 moves forward, it pushes the cut electronic components from the working chamber 103 to the guide groove 115. The front end of the pusher block 114 is usually designed with a pusher head that matches the shape of the electronic components, which can accurately push the components to move without damaging the components, thereby effectively solving the problems existing in the traditional pin cutting device.
[0027] According to this specific embodiment, the feed port 102 is fixedly connected to the workbench 101 and is located on the upper side of the workbench 101, the working chamber 103 is fixedly connected to the workbench 101 and is located at the inner center of the workbench 101, and the working chamber 103 is arranged on one side of the feed port 102, the sliding groove 104 is fixedly connected to the workbench 101 and is located on the inner side of the workbench 101, and the sliding groove 104 is arranged on the inner side of the working chamber 103 close to the feed port 102, the clamping column 105 is slidably connected to the workbench 101 and is located on the inner side of the workbench 101, and the clamping column 105 is arranged inside the sliding groove 104, the clamping plate 106 is detachably connected to the clamping column 105 and is located on the side of the clamping column 105 away from the workbench 101, and the operator The operator places the electronic components on the feed port 102. The feed port 102 is usually designed with a certain inclination angle so that the electronic components can rely on their own gravity and slide naturally and smoothly into the working chamber 103 without external assistance. The clamping column 105 moves along a precise linear track in the sliding groove 104. The inner wall of the sliding groove 104 has been subjected to high-precision grinding, and the surface roughness is extremely low. The matching accuracy with the clamping column 105 is extremely high, which can ensure that the movement of the clamping column 105 is smooth and without deviation. When the clamping column 105 is close to the electronic components, the clamping plate 106 installed at its end will gradually close to clamp the electronic components tightly. The inner side of the clamping plate 106 is usually made of special rubber or soft material, which can provide sufficient friction to prevent the components from sliding and avoid damage to the surface of the components.
[0028] The lifting groove 107 is fixedly connected to the workbench 101 and is located at the lower part of the workbench 101, and the lifting groove 107 is arranged at the lower center of the working chamber 103. The lifting column 108 is fixedly connected to the workbench 101 and is located at the lower part of the workbench 101, and the lifting column 108 is arranged at the inner center of the lifting groove 107. The lifting plate 109 is detachably connected to the lifting column 108 and is located above the lifting column 108, and the lifting plate 109 is vertically arranged with the lifting column 108. The limit block 110 is fixedly connected to the lifting plate 109. And it is located on the upper side of the lifting plate 109. After the clamping is stable, the clamping column 105 will slide in the sliding groove 104 to transfer the electronic components to the upper side of the lifting plate 109. The lifting column 108 moves upward in the lifting groove 107. The lifting column 108 and the lifting groove 107 are clearance-matched, and the clearance is extremely small to ensure the movement accuracy of the lifting column 108. When the lifting column 108 rises, the lifting plate 109 is lifted up accordingly. The limit block 110 is installed on the upper side of the lifting plate 109. The position and shape of the limit block 110 match the specific parts of the electronic components.
[0029] Secondly, the fixing rod 111 is fixedly connected to the workbench 101 and is located above the inside of the workbench 101, and the fixing rod 111 is arranged above the side of the sliding groove 104 away from the feeding port 102, and the fixing rod 111 is also vertically arranged to the workbench 101, the foot cutting machine 112 is slidably connected to the workbench 101 and is located above the workbench 101, and the blade of the foot cutting machine 112 is arranged above the lifting plate 109. When reaching the specified height, the fixing rod 111 will fix the electronic component, and after the fixation is completed, the foot cutting machine 112 will perform precise foot cutting operations on the electronic component.
[0030] At the same time, the movable groove 113 is fixedly connected to the workbench 101 and is located on the inner side of the workbench 101, and the movable groove 113 is arranged on the side of the sliding groove 104 away from the feeding port 102, and the movable groove 113 is also arranged below the fixed rod 111, the pushing block 114 is slidably connected to the workbench 101 and is located on the inner side of the workbench 101, and the pushing block 114 is arranged on the inner side of the movable groove 113. After the cutting is completed, the pushing block 114 starts to work, and the pushing block 114 is slidably connected to the workbench 101 through the movable groove 113. The structure of the movable groove 113 is similar to that of the sliding groove 104, and also has high-precision processing technology and good guiding performance. The pushing block 114 moves in the movable groove 113.
[0031] In addition, the guide groove 115 is fixedly connected to the workbench 101 and is located on the inner side of the workbench 101 away from the feed port 102, and the guide groove 115 is arranged on the side of the lifting groove 107 away from the feed port 102. When the pushing block 114 moves forward, it pushes the cut electronic components from the working chamber 103 toward the guide groove 115. The front end of the pushing block 114 is usually designed with a pushing head that matches the shape of the electronic components, which can accurately push the components to move without damaging the components.
[0032] When using the present invention, the operator places the electronic components on the feed port 102. The feed port 102 is usually designed with a certain inclination angle so that the electronic components can rely on their own gravity and slide naturally and smoothly into the working chamber 103 without external assistance. The clamping column 105 moves along a precise linear track in the sliding groove 104. The inner wall of the sliding groove 104 has been subjected to high-precision grinding, and the surface roughness is extremely low. The matching accuracy between the clamping column 105 and the clamping column 105 is extremely high, which can ensure that the clamping column 105 moves smoothly and without deviation. When the clamping column 105 is close to the electronic components, the clamping plate 106 installed at its end will gradually close. , the electronic components are tightly clamped. The inner side of the clamping plate 106 is usually made of special rubber or soft material, which can provide sufficient friction to prevent the components from sliding and avoid damage to the surface of the components. After the clamping is stable, the clamping column 105 will slide in the sliding groove 104 to transfer the electronic components to the top of the lifting plate 109. The lifting column 108 moves upward in the lifting groove 107. The lifting column 108 and the lifting groove 107 are matched with a clearance, and the clearance is extremely small to ensure the movement accuracy of the lifting column 108. When the lifting column 108 rises, the lifting plate 109 is lifted up accordingly, and the upper side of the lifting plate 109 is installed with the limiting The position and shape of the limit block 110 match the specific part of the electronic component. When the lifting plate 109 rises to a certain height, the limit block 110 will accurately clamp the electronic component. When it reaches the specified height, the fixing rod 111 will fix the electronic component. After the fixing is completed, the foot cutting machine 112 will perform a precise foot cutting operation on the electronic component. After the cutting is completed, the push block 114 starts to work. The push block 114 is slidably connected to the workbench 101 through the moving groove 113. The structure of the moving groove 113 is similar to that of the sliding groove 104, and it also has high-precision processing technology and good guiding performance. 4 moves in the moving groove 113. When the pushing block 114 moves forward, it pushes the cut electronic components from the working chamber 103 to the direction of the guiding groove 115. The front end of the pushing block 114 is usually designed with a pushing head that matches the shape of the electronic components, which can accurately push the components to move without damaging the components. This effectively solves the problems of inconsistent lead cutting length and uneven incision in the cutting process of the traditional pin cutting device, which leads to poor welding of the electronic components in the subsequent installation and use process, affecting product quality and production efficiency. In addition, the automation level is low, frequent manual operation is required, and the labor cost and human error are increased.
[0033] Second embodiment
[0034] See also Figure 4 and Figure 5 , Figure 4 is an overall top view of the second embodiment of the present invention, Figure 5 The present invention Figure 4 BB line structural cross-sectional view.
[0035] On the basis of the first embodiment, a high-precision electronic component cutting device of the present invention further includes a waste material guiding assembly, which includes a guide groove 201, an inclined groove 202, a waste material opening 203, a cavity 204, a waste material box 205 and a handle 206.
[0036] According to this specific embodiment, the guide groove 201 is fixedly connected to the workbench 101 and is located inside and below the workbench 101, and the guide groove 201 is arranged between the jacking groove 107 and the moving groove 113, and the guide groove 201 is also arranged on one side of the guide groove 115, the inclined groove 202 is fixedly connected to the workbench 101 and is located inside the workbench 101, and the inclined groove 202 is arranged inside and below the guide groove 201, and the waste port 203 is fixedly connected to the workbench 101, The waste port 203 is arranged on the side of the guide groove 201 away from the sliding groove 104, and the waste port 203 is also arranged vertically to the workbench 101. The waste produced by cutting will fall from the lifting plate 109, and the waste will first fall into the guide groove 201. The interior of the guide groove 201 has a smooth surface, which can guide the waste to move quickly. The guide groove 201 is connected to the inclined groove 202. The inclined groove 202 has a large inclination angle, which further accelerates the falling speed of the waste.
[0037] The cavity 204 is fixedly connected to the workbench 101 and is located at the lower part of the workbench 101. The cavity 204 is arranged below the waste port 203. The residual material slides downward along the chute 202 and finally falls into the waste box 205 below from the waste port 203. The waste box 205 is placed in the cavity 204 at the lower part of the workbench 101.
[0038] Secondly, the waste box 205 is arranged inside the cavity 204, and the waste box 205 is also arranged below the waste port 203. The handle 206 is fixedly connected to the waste box 205 and is located on one side of the waste box 205. The operator can use the handle 206 to easily take the waste box 205 out of the cavity 204 and clean up the residue therein. The entire residue processing process is efficient and convenient, and the waste generated during the processing can be cleaned up in time to ensure the normal operation of the device.
[0039] When using the present invention, the residues produced by cutting will fall from the lifting plate 109, and the residues will first fall into the guide groove 201. The interior of the guide groove 201 has a smooth surface, which can guide the residues to move quickly. The guide groove 201 is connected to the inclined groove 202. The inclined groove 202 has a large inclination angle, which further accelerates the falling speed of the residues. The residues slide downward along the inclined groove 202 and finally fall into the waste box 205 below from the waste opening 203. The waste box 205 is placed in the cavity 204 below the workbench 101. The operator can easily take the waste box 205 out of the cavity 204 through the handle 206 to clean up the residues therein. The entire residue processing process is efficient and convenient, and the waste generated during the processing can be cleaned up in time to ensure the normal operation of the device.
[0040] Third embodiment
[0041] The pin cutting device for high-precision electronic components also includes a sorting and recycling component, which includes a recycling port 305, a recycling chamber 306, a recycling box 307, a collection port 302, a collection chamber 303, a collection box 304 and a discharge port 301. The recycling port 305 is fixedly connected to the workbench 101 and is located on one side of the inside of the workbench 101, and the recycling port 305 is arranged above the side of the working chamber 103 away from the feed port 102. The recycling chamber 306 is fixedly connected to the workbench 101 and is located below the inside of the workbench 101, and the recycling chamber 306 is arranged below the recycling port 305. The recycling box 307 is arranged inside the recycling chamber 306, and the recycling box 307 is also arranged below the recycling port 305. The collecting port 302 is fixedly connected to the workbench 101 and is located below the inside of the workbench 101. The workbench 101 is fixedly connected and located on a side of the workbench 101 away from the recovery port 305, and the collecting port 302 is vertically arranged with the working chamber 103, the collecting chamber 303 is fixedly connected with the workbench 101 and located at the lower part of the workbench 101, and the collecting chamber 303 is arranged below the collecting port 302, the collecting box 304 is arranged inside the collecting chamber 303, and the collecting box 304 is also arranged below the collecting port 302, the discharge port 301 is fixedly connected with the workbench 101 and located on an upper side of the workbench 101 away from the feed port 102, and the discharge port 301 is arranged between the recovery port 305 and the collecting port 302, and the discharge port 301 is also arranged above the guide groove 115.
[0042] See also Figure 6 , Figure 6 It is a schematic diagram of the overall structure of the third embodiment of the present invention.
[0043] On the basis of the second embodiment, a pin cutting device for high-precision electronic components of the present invention also includes a sorting and recycling component, which includes a recycling port 305, a recycling chamber 306, a recycling box 307, a collection port 302, a collection chamber 303, a collection box 304 and a discharge port 301.
[0044] According to this specific embodiment, the recycling port 305 is fixedly connected to the workbench 101 and is located on one side of the workbench 101, and the recycling port 305 is arranged above the side of the working chamber 103 away from the feeding port 102, the recycling chamber 306 is fixedly connected to the workbench 101 and is located below the workbench 101, and the recycling chamber 306 is arranged below the recycling port 305, the recycling box 307 is arranged inside the recycling chamber 306, and the recycling box 307 is also arranged below the recycling port 305. If the electronic components have quality problems after cutting, such as the cutting length of the pins does not meet the requirements, the incision is uneven, etc., they can be collected into the recycling box 307 in the recycling chamber 306 through the recycling port 305, and the recycling port 305 and the recycling chamber 306 are connected by a pipeline or directly to ensure that unqualified components can smoothly enter the recycling box 307.
[0045] Among them, the collecting port 302 is fixedly connected to the workbench 101 and is located on a side of the workbench 101 away from the recycling port 305, and the collecting port 302 is vertically arranged with the working chamber 103, the collecting chamber 303 is fixedly connected to the workbench 101 and is located at the lower part of the workbench 101, and the collecting chamber 303 is arranged below the collecting port 302, the collecting box 304 is arranged inside the collecting chamber 303, and the collecting box 304 is also arranged below the collecting port 302, and qualified electronic components will enter the collecting port 302 and fall into the collecting box 304 in the collecting chamber 303. The design of the collecting port 302 and the collecting chamber 303 is similar to the recycling port 305 and the recycling chamber 306, but is only used to collect qualified products.
[0046] Secondly, the discharge port 301 is fixedly connected to the workbench 101 and is located on the upper side of the workbench 101 away from the inlet 102, and the discharge port 301 is arranged between the recovery port 305 and the collection port 302. The discharge port 301 is also arranged above the guide groove 115. The cut electronic components move along the guide groove 115 to the discharge port 301. The inner surface of the guide groove 115 is polished with extremely small friction, which can enable the electronic components to slide smoothly. The staff will conduct quality inspection on the electronic components near the discharge port 301.
[0047] When using the present invention, the cut electronic components move along the guide groove 115 to the discharge port 301. The inner surface of the guide groove 115 is polished, and the friction is extremely small, so that the electronic components can slide smoothly. The staff will perform quality inspection on the electronic components near the discharge port 301. If the electronic components have quality problems after cutting, such as the cutting length of the pin does not meet the requirements, the incision is uneven, etc., they can be collected into the recovery box 307 in the recovery chamber 306 through the recovery port 305. The recovery port 305 is connected to the recovery box 307. The recycling chambers 306 are connected by pipes or directly to ensure that unqualified components can smoothly enter the recycling box 307, while qualified electronic components will enter the collecting port 302 and fall into the collecting box 304 in the collecting chamber 303. The design of the collecting port 302 and the collecting chamber 303 is similar to that of the recycling port 305 and the recycling chamber 306, but is only used to collect qualified products. Through such a sorting and recycling process, qualified products can be effectively separated from unqualified products, thereby improving product quality and production efficiency, and completing the entire cutting and sorting recycling process.
[0048] What is disclosed above is only a preferred embodiment of the present invention, and it certainly cannot be used to limit the scope of rights of the present invention. Ordinary technicians in this field can understand that all or part of the processes of the above embodiment and equivalent changes made according to the claims of the present invention still fall within the scope of the invention.
Claims
1. A pin cutting device for high-precision electronic components, comprising a workbench, characterized in that: It also includes a quick-type automatic foot cutting assembly, which includes a feed port, a working chamber, a sliding groove, a clamping column and a clamping plate. The feed port is fixedly connected to the workbench and is located on the upper side of the workbench. The working chamber is fixedly connected to the workbench and is located at the inner center of the workbench, and the working chamber is arranged on one side of the feed port. The sliding groove is fixedly connected to the workbench and is located on the inner side of the workbench, and the sliding groove is arranged on the inner side of the working chamber close to the feed port. The clamping column is slidably connected to the workbench and is located on the inner side of the workbench, and the clamping column is arranged inside the sliding groove. The clamping plate is detachably connected to the clamping column and is located on the side of the clamping column away from the workbench.
2. The high-precision electronic component cutting device according to claim 1, characterized in that: The quick-type automatic foot cutting assembly also includes a lifting groove, a lifting column, a lifting plate and a limit block. The lifting groove is fixedly connected to the workbench and is located at the lower interior of the workbench, and the lifting groove is arranged at the lower interior center of the working chamber. The lifting column is fixedly connected to the workbench and is located at the lower interior of the workbench, and the lifting column is arranged at the inner center of the lifting groove. The lifting plate is detachably connected to the lifting column and is located above the lifting column, and the lifting plate and the lifting column are vertically arranged. The limit block is fixedly connected to the lifting plate and is located on the upper side of the lifting plate.
3. The high-precision electronic component cutting device according to claim 2, characterized in that: The quick automatic foot cutting assembly also includes a fixing rod and a foot cutting machine. The fixing rod is fixedly connected to the workbench and is located above the interior of the workbench. The fixing rod is arranged above the side of the sliding groove away from the feeding port. The fixing rod is also arranged vertically with respect to the workbench. The foot cutting machine is slidably connected to the workbench and is located above the workbench. The blade of the foot cutting machine is arranged above the lifting plate.
4. The high-precision electronic component lead cutting device according to claim 3, characterized in that: The quick-type automatic foot cutting assembly also includes a movable groove and a push block. The movable groove is fixedly connected to the workbench and is located on the inner side of the workbench, and the movable groove is arranged on the side of the sliding groove away from the feeding port. The movable groove is also arranged below the fixed rod. The push block is slidably connected to the workbench and is located on the inner side of the workbench, and the push block is arranged on the inner side of the movable groove.
5. The high-precision electronic component lead cutting device according to claim 4, characterized in that: The quick-type automatic foot cutting assembly also includes a guide groove, which is fixedly connected to the workbench and located on the inner side of the workbench away from the feed inlet, and the guide groove is arranged on the side of the lifting groove away from the feed inlet.
6. The high-precision electronic component lead cutting device according to claim 5, characterized in that: The pin cutting device for high-precision electronic components also includes a residual material guiding assembly, which includes a guide groove, an inclined groove and a waste port. The guide groove is fixedly connected to the workbench and is located inside and below the workbench, and the guide groove is arranged between the lifting groove and the moving groove. The guide groove is also arranged on one side of the guide groove. The inclined groove is fixedly connected to the workbench and is located inside the workbench, and the inclined groove is arranged inside and below the guide groove. The waste port is fixedly connected to the workbench and is located inside and below the workbench, and the waste port is arranged on the side of the guide groove away from the sliding groove, and the waste port is also arranged vertically to the workbench.
7. The high-precision electronic component cutting device according to claim 6, characterized in that: The residual material guiding assembly also includes a cavity, which is fixedly connected to the workbench and located at the lower part of the workbench, and the cavity is arranged below the waste material opening.
8. The high-precision electronic component lead cutting device according to claim 7, characterized in that: The residual material guiding assembly also includes a waste box and a handle. The waste box is arranged inside the cavity, and the waste box is also arranged below the waste opening. The handle is fixedly connected to the waste box and is located on one side of the waste box.