Positioning and feeding device for copper alloy plates
By designing a multi-directional positioning and feeding device, the problem of existing devices being unable to fully position different types of copper alloy plates has been solved, achieving efficient and precise positioning and feeding, preventing deformation and warping, and improving processing quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHENJIANG JINXIN NONFERROUS ALLOY CO LTD
- Filing Date
- 2025-04-23
- Publication Date
- 2026-04-14
AI Technical Summary
Existing positioning and feeding devices for copper alloy plates cannot effectively position copper alloy plates of different models on both sides and top, affecting processing efficiency and quality.
A positioning and feeding device is designed, which includes a feeding mechanism, a first positioning mechanism, and a second positioning mechanism. The first positioning mechanism vertically positions the top of the copper alloy plate, and the second positioning mechanism horizontally positions the two sides of the copper alloy plate. Combined with the movement of the feeding mechanism, multi-directional positioning of the copper alloy plate is achieved.
It improves the positioning and feeding efficiency and quality of copper alloy plates, prevents deformation and warping during processing, and enhances processing accuracy and efficiency.
Smart Images

Figure CN224115657U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of copper alloy processing technology, specifically to a positioning and feeding device for copper alloy plates. Background Technology
[0002] The cutting process of copper alloy plates is affected by their size and thickness. Copper alloy plates are prone to deformation or warping during cutting.
[0003] Existing positioning and feeding devices for copper alloy plates use positioning mechanisms on the sides of the plates to move and position them during the feeding process. However, this positioning method cannot position copper alloy plates of different models on both sides and top, which affects the positioning and feeding of the plates and thus the processing efficiency and quality. Utility Model Content
[0004] In view of the above-mentioned defects or deficiencies in the prior art, it is desirable to provide a positioning and feeding device for copper alloy plates to solve the technical problem that the existing positioning and feeding device for copper alloy plates cannot position the sides and top of copper alloy plates of different models, thus affecting the positioning and feeding of copper alloy plates and affecting the processing efficiency and processing quality of copper alloy plates.
[0005] According to the technical solution provided in the embodiments of this application, a positioning and feeding device for copper alloy plates includes a positioning and feeding assembly, which is installed at the front end of the processing box for positioning and feeding copper alloy plates.
[0006] The positioning and feeding assembly includes a feeding mechanism, a first positioning mechanism, and a second positioning mechanism. The first positioning mechanism is vertically mounted on the mounting frame and is used to position the top of the copper alloy plate placed on the feeding plate of the feeding mechanism. The second positioning mechanism is horizontally mounted on the top of the feeding plate and is used to position the left and right sides of the copper alloy plate placed on the feeding plate. The feeding mechanism is horizontally mounted on the feeding frame at the inlet so that the feeding mechanism drives the feeding plate to move along the horizontal direction of the feeding frame, thereby driving the first positioning mechanism mounted on its top to move synchronously, thereby positioning and feeding the copper alloy plate.
[0007] The first positioning plate has four positioning slots at its bottom, with two of the four positioning slots arranged side by side and corresponding to each other. The four second positioning plates on the second positioning mechanism are positioned and engaged in the corresponding positioning slots.
[0008] Furthermore, the positioning groove is a rectangular opening groove, and the second positioning plate is a rectangular structure.
[0009] Furthermore, the feeding mechanism includes three first telescopic drive members, three first piston rods, and a feeding plate. The feeding plate is slidably mounted on the feeding frame on both sides via first sliders. The three first piston rods are mounted side by side and spaced apart at the front end of the feeding plate and are fixedly connected to the output end of the corresponding first telescopic drive member, so that each first telescopic drive member drives the feeding plate to move along the feeding frame.
[0010] Furthermore, the first positioning mechanism includes three second telescopic drive members, three second piston rods, and a first positioning plate. The three second telescopic drive members are vertically arranged side by side and spaced apart on the support plate. The top of each second piston rod is fixedly connected to the output end of the corresponding second telescopic drive member, and the bottom of the three second piston rods is connected to the first positioning plate, so that the three second telescopic drive members drive the first positioning plate to move downward in the vertical direction.
[0011] Furthermore, the top of the support plate is provided with two second sliders, and the mounting frame is provided with two second slide rails arranged side by side and spaced apart along the length direction. Each second slider is slidably mounted on the corresponding second slide rail, so that the support plate moves along the length direction of the second slide rail, thereby causing the first positioning mechanism to move with the movement of the feeding mechanism.
[0012] Furthermore, the second positioning mechanism includes a rotation drive, a worm, two worm wheels, and two lead screws. The two lead screws are arranged side by side and spaced apart. A corresponding worm wheel is installed in the middle of each lead screw. Each worm wheel is meshed with the teeth spaced apart on the worm. The worm is fixedly connected to the output end of the rotation drive so that the rotation drive drives the two lead screws to rotate synchronously.
[0013] Furthermore, the two lead screws are arranged perpendicularly to the worm gear in space.
[0014] Furthermore, each of the lead screws is provided with threads in opposite directions of rotation, and each thread is screwed with a corresponding second positioning plate.
[0015] Furthermore, the feeding plate is provided with four second slide grooves, and each second positioning plate is installed in the corresponding second slide groove so that each second positioning plate moves along the length direction of the second slide groove.
[0016] In summary, the beneficial effects of this application are as follows:
[0017] 1. By setting a first positioning mechanism on the positioning and feeding device that can move with the feeding mechanism, the first positioning mechanism can move forward or backward synchronously with the forward or backward movement of the feeding mechanism while positioning the top of the copper alloy plate, thereby improving the positioning and feeding efficiency and quality of the positioning and feeding mechanism for the copper alloy plate.
[0018] Second, by setting a second positioning mechanism on the feeding plate at the bottom of the first positioning plate, several second positioning plates on the second positioning mechanism are positioned and engaged in the corresponding positioning grooves at the bottom of the first positioning plate, thereby feeding and positioning the copper alloy plate on both sides. This allows the positioning and feeding device to move and position the copper alloy plate on the top and sides, preventing deformation or warping of the copper alloy plate during processing, thus improving the positioning and feeding efficiency and quality of the positioning and feeding mechanism for the copper alloy plate. Attached Figure Description
[0019] Other features, objects, and advantages of this application will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0020] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0021] Figure 2 This is a schematic diagram of the bottom structure of this utility model;
[0022] Figure 3 This is an exploded view of the positioning and feeding assembly of this utility model;
[0023] Figure 4 This is a schematic diagram of the bottom structure of the positioning and feeding assembly of this utility model;
[0024] Figure 5 This is a schematic diagram of the second positioning mechanism of this utility model.
[0025] The following are the labeling elements in the diagram: Positioning and feeding assembly-100, feeding mechanism-110, first telescopic drive component-111, first piston rod-112, feeding plate-113, second slide rail-114, first positioning mechanism-120, first positioning plate-121, positioning groove-1211, second telescopic drive component-122, second piston rod-123, support plate-124, second slide rail-125, second positioning mechanism-130, rotation drive component-131, worm gear-132, worm wheel-133, lead screw-134, second positioning plate-135, feeding frame-140, mounting frame-150, processing box-200. Detailed Implementation
[0026] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the relevant utility model and not intended to limit the utility model. Furthermore, it should be noted that, for ease of description, only the parts relevant to the utility model are shown in the accompanying drawings.
[0027] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0028] A positioning and feeding device for copper alloy plates, the structure of which is as follows: Figures 1-5 As shown, a positioning and feeding assembly 100 is installed at the feed inlet at the front end of the processing box 200 for positioning and feeding copper alloy plates. The positioning and feeding assembly 100 includes a feeding mechanism 110, a first positioning mechanism 120, and a second positioning mechanism 130. The first positioning mechanism 120 is vertically mounted on the mounting frame 150 and is used to position the top of the copper alloy plate placed on the feeding plate 113 of the feeding mechanism 110. The second positioning mechanism 130 is horizontally mounted on the top of the feeding plate 113 and is used to position the left and right sides of the copper alloy plate placed on the feeding plate 113. This allows the first and second positioning mechanisms 120 and 130 to position the top and sides of the copper alloy plate placed on the feeding plate 113, thereby preventing deformation or warping of the copper alloy plate during processing. This improves the positioning and feeding efficiency and quality of the copper alloy plate by the positioning and feeding mechanism 110. A horizontally mounted feed frame 140 is installed on the feed inlet so that the feeding mechanism 110 drives the feeding plate 113 to move along the horizontal direction of the feed frame 140, thereby driving the first positioning mechanism 120 mounted on its top to move synchronously. This allows the first positioning mechanism 120 to position the top of the copper alloy plate while moving forward or backward synchronously with the feeding mechanism 110, thereby improving the positioning and feeding efficiency and quality of the positioning and feeding mechanism 110 for the copper alloy plate. The first positioning plate 121 has four positioning grooves 1211 at its bottom, with two of the four positioning grooves 1211 arranged side by side and corresponding to each other. The four second positioning plates 135 on the second positioning mechanism 130 are positioned and engaged in the corresponding positioning grooves 1211, so that the first positioning mechanism 120 is positioned and connected with the second positioning mechanism 130 on the feeding plate 113, thereby improving the positioning efficiency and positioning quality of the positioning and feeding assembly 100.
[0029] As a preferred embodiment, please refer to Figure 3 and Figure 4The positioning groove 1211 has a rectangular opening, and the second positioning plate 135 has a rectangular structure, so that during the process of the first positioning plate 121 on the first positioning mechanism 120 moving downward in the vertical direction, each positioning groove 1211 and each second positioning plate 135 are positioned and engaged.
[0030] As a preferred embodiment, please refer to Figure 3 and Figure 4 The feeding mechanism 110 includes three first telescopic drive members 111, three first piston rods 112, and a feeding plate 113. The feeding plate 113 is slidably mounted on the feeding frame 140 on both sides by first sliders. The three first piston rods 112 are mounted side by side and spaced apart at the front end of the feeding plate 113 and are fixedly connected to the output end of the corresponding first telescopic drive member 111. This allows each first telescopic drive member 111 on the feeding mechanism 110 to drive the corresponding first piston rod 112 to move along the length direction of the feeding frame 140, thereby pushing the feeding plate 113 connected to each first piston rod 112 to move along the horizontal direction, thereby positioning and feeding the positioned copper alloy plate.
[0031] As a preferred embodiment, please refer to Figure 3 and Figure 4 The first positioning mechanism 120 includes three second telescopic drive members 122, three second piston rods 123, and a first positioning plate 121. The three second telescopic drive members 122 are vertically arranged side by side and spaced apart on the support plate 124. The top of each second piston rod 123 is fixedly connected to the output end of the corresponding second telescopic drive member, and the bottom of each second piston rod 123 is connected to the first positioning plate 121. When the first positioning mechanism 120 is activated, the several second telescopic drive members 122 on the first positioning mechanism 120 drive the corresponding second piston rods 123 to move downward in the vertical direction, thereby causing the first positioning plate 121 installed at the bottom of each second piston rod 123 to move downward in the vertical direction, thereby positioning the top of copper alloy plates of different thicknesses. During the downward movement of the first positioning plate 121, the positioning grooves 1211 provided at its bottom engage with the corresponding second positioning plates 135 to prevent the copper alloy plates from deforming or warping during processing.
[0032] As a preferred embodiment, please refer to Figure 1 and Figure 2 The support plate 124 is provided with two second sliders at the top. The mounting frame 150 is provided with two second slide rails 125 arranged side by side and spaced apart along the length direction. Each second slider is slidably mounted on the corresponding second slide rail 125 so that the support plate 124 moves along the length direction of the second slide rail 125, thereby causing the first positioning mechanism 120 to move with the feeding mechanism 110, thereby improving the positioning and feeding efficiency and positioning and feeding quality of the positioning and feeding mechanism 110 for the copper alloy plate.
[0033] As a preferred embodiment, please refer to Figure 3 and Figure 5 The second positioning mechanism 130 includes a rotation drive 131, a worm 132, two worm wheels 133, and two lead screws 134. The two lead screws 134 are arranged side by side and spaced apart. A corresponding worm wheel 133 is installed in the middle of each lead screw 134. Each worm wheel 133 is engaged with the teeth of the worm 132. The worm 132 is fixedly connected to the output end of the rotation drive 131. The two lead screws 134 are arranged perpendicularly to the worm 132 in space. Each lead screw 134 has threads with opposite rotation directions, and a corresponding second positioning plate 135 is screwed onto each thread. The feeding plate 113 is provided with... There are four second slide grooves 114, and each second positioning plate 135 is installed in the corresponding second slide groove 114 to activate the second positioning mechanism 130. This causes the rotation drive member 131 on the second positioning mechanism 130 to drive the fixedly connected worm gear 132 to rotate, thereby causing each worm wheel 133 that meshes with the teeth at different positions on the worm gear 132 to rotate. This causes the lead screw 134, on which each worm wheel 133 is installed, to rotate synchronously, so that each second positioning plate 135 correspondingly installed on the two lead screws 134 moves relative to each other along the length direction of the second slide groove 114, thereby positioning the two sides of the copper alloy plate with different widths.
[0034] The working principle of the positioning and feeding device for copper alloy plates of this utility model is as follows:
[0035] During the positioning and feeding process of the copper alloy plate by the positioning and feeding device, the copper alloy plate to be cut is placed on the feeding plate 113. The second positioning mechanism 130 is activated, so that the rotation drive 131 on the second positioning mechanism 130 drives the fixedly connected worm gear 132 to rotate, thereby causing the worm wheels 133 meshing with the teeth at different positions on the worm gear 132 to rotate, and thus causing the lead screws 134 with the worm wheels 133 to rotate synchronously, so that the second positioning plates 135 corresponding to the two lead screws 134 to move relative to each other along the length direction of the second slide groove 114, thereby positioning the copper alloy plates of different widths on both sides. At the same time, the first positioning mechanism 120 is activated, and several second telescopic drive 122 on the first positioning mechanism 120 drive the corresponding second piston rods 123 to move downward in the vertical direction, thereby causing the first positioning plates 121 installed at the bottom of each second piston rod 123 to move downward in the vertical direction, thereby positioning the copper alloy plates of different thicknesses. The top of the copper alloy plate is positioned. During the downward movement of the first positioning plate 121, the positioning grooves 1211 at its bottom engage with the corresponding second positioning plates 135 to prevent deformation or warping of the copper alloy plate during processing. This activates the feeding mechanism 110, causing the first telescopic drive members 111 on the feeding mechanism 110 to drive the corresponding first piston rods 112 to move along the length of the feed frame 140. This, in turn, pushes the feeding plates 113 connected to the first piston rods 112 to move horizontally, thereby positioning and feeding the copper alloy plate. The two second sliders on the support plate 124 mounted on the top of the first positioning mechanism 120 move along the corresponding second slide rails 125, so that while positioning the top of the copper alloy plate, the first positioning mechanism 120 can move forward or backward synchronously with the forward or backward movement of the feeding mechanism 110, thereby improving the positioning and feeding efficiency and quality of the positioning and feeding mechanism 110 for the copper alloy plate.
[0036] The above description is merely a preferred embodiment of this application and an explanation of the technical principles and solutions employed. Furthermore, the scope of the utility model involved in this application is not limited to the specific combination of the above-described technical features, but should also cover other technical solutions formed by any combination of the above-described technical features or their equivalents without departing from the inventive concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features with similar functions disclosed in this application.
Claims
1. A positioning and feeding device for copper alloy plates, comprising a positioning and feeding assembly (100) installed at the front end of a processing box (200) for positioning and feeding copper alloy plates, characterized in that: The positioning and feeding assembly (100) includes a feeding mechanism (110), a first positioning mechanism (120), and a second positioning mechanism (130). The first positioning mechanism (120) is vertically mounted on the mounting frame (150) and is used to position the top of the copper alloy plate placed on the feeding plate (113) of the feeding mechanism (110). The second positioning mechanism (130) is horizontally mounted on the top of the feeding plate (113) and is used to position the left and right sides of the copper alloy plate placed on the feeding plate (113). The feeding mechanism (110) is horizontally mounted on the feeding frame (140) at the inlet so that the feeding mechanism (110) drives the feeding plate (113) to move along the horizontal direction of the feeding frame (140), thereby driving the first positioning mechanism (120) mounted on its top to move synchronously, thereby positioning and feeding the copper alloy plate. The first positioning plate (121) has four positioning slots (1211) at its bottom, and the four positioning slots (1211) are arranged in pairs and correspondingly. The four second positioning plates (135) on the second positioning mechanism (130) are positioned and engaged in the corresponding positioning slots (1211).
2. The positioning and feeding device for copper alloy plates according to claim 1, characterized in that: The positioning groove (1211) is a rectangular opening groove, and the second positioning plate (135) is a rectangular structure.
3. The positioning and feeding device for copper alloy plates according to claim 1, characterized in that: The feeding mechanism (110) includes three first telescopic drive members (111), three first piston rods (112), and a feeding plate (113). The feeding plate (113) is slidably mounted on the feeding frame (140) on both sides by first sliders. The three first piston rods (112) are mounted side by side and spaced apart at the front end of the feeding plate (113) and fixedly connected to the output end of the corresponding first telescopic drive member (111), so that each first telescopic drive member (111) drives the feeding plate (113) to move along the feeding frame (140).
4. The positioning and feeding device for copper alloy plates according to claim 1, characterized in that: The first positioning mechanism (120) includes three second telescopic drive members (122), three second piston rods (123), and a first positioning plate (121). The three second telescopic drive members (122) are vertically arranged side by side and spaced apart on the support plate (124). The top of each second piston rod (123) is fixedly connected to the output end of the corresponding second telescopic drive member, and the bottom of the three second piston rods (123) is connected to the first positioning plate (121) so that the three second telescopic drive members (122) drive the first positioning plate (121) to move downward in the vertical direction.
5. The positioning and feeding device for copper alloy plates according to claim 4, characterized in that: The support plate (124) is provided with two second sliders on its top. The mounting frame (150) is provided with two second slide rails (125) arranged side by side and spaced apart along the length direction. Each second slider is slidably mounted on the corresponding second slide rail (125) so that the support plate (124) moves along the length direction of the second slide rail (125), thereby causing the first positioning mechanism (120) to move with the movement of the feeding mechanism (110).
6. The positioning and feeding device for copper alloy plates according to claim 1, characterized in that: The second positioning mechanism (130) includes a rotation drive (131), a worm (132), two worm wheels (133), and two lead screws (134). The two lead screws (134) are arranged side by side and spaced apart. A corresponding worm wheel (133) is installed in the middle position of each lead screw (134). Each worm wheel (133) is meshed with the teeth arranged at intervals on the worm (132). The worm (132) is fixedly connected to the output end of the rotation drive (131) so that the rotation drive (131) drives the two lead screws (134) to rotate synchronously.
7. A positioning and feeding device for copper alloy plates according to claim 6, characterized in that: The two lead screws (134) are arranged perpendicularly to the worm gear (132) in space.
8. A positioning and feeding device for copper alloy plates according to claim 6, characterized in that: Each of the lead screws (134) is provided with threads in opposite directions of rotation, and each thread is screwed with a corresponding second positioning plate (135).