Bottom plate positioning and feeding structure
By designing the base plate conveying assembly and the rotary positioning assembly, the problem of inaccurate base plate positioning during magnetic ring assembly was solved, achieving precise positioning and stable transmission of the base plate and ensuring the accuracy of magnetic ring assembly.
Patent Information
- Application Number
- CN202422243453.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-13
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-09-13
AI Technical Summary
In the traditional magnetic ring assembly process, the positioning and feeding of the base plate suffer from insufficient precision and poor stability, resulting in inaccurate magnetic ring assembly position.
The system employs a base plate conveying assembly and a rotary positioning assembly. Through the cross groove design and the coordination of the rotary positioning assembly, it ensures accurate positioning and stable transmission of the base plate during the conveying process. This includes the precise coordination of components such as the base plate inlet channel, the rotary positioning assembly, the base plate baffle, and the pushing component.
It achieves precise positioning and stable transmission of the base plate, ensuring the accuracy of the magnetic ring assembly position and solving the problems of insufficient precision and poor stability in traditional methods.
Smart Images

Figure CN223495495U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of magnetic ring positioning and feeding, and in particular to a base plate positioning and feeding structure. Background Technology
[0002] With the trend of miniaturization and integration of electronic devices, magnetic rings, as one of the important electronic components, have increasingly higher requirements for precision in the production process. In the traditional magnetic ring assembly process, the positioning and loading of the base plate (the carrier of the magnetic ring) are usually done manually or by simple mechanical means. This method is not only inefficient, but also prone to inaccurate positioning, which affects the final quality of the product.
[0003] While existing base plate positioning and feeding devices on the market can achieve a certain degree of automation, they still have some problems. For example, these devices may shift during the positioning process, resulting in inaccurate magnetic ring assembly positions. Due to the lack of effective stabilization measures, the base plate may shake or tilt during transportation, affecting subsequent processing.
[0004] Therefore, it is imperative to redesign a base plate positioning and feeding structure. Utility Model Content
[0005] In view of the shortcomings of the prior art, this utility model provides a base plate positioning and feeding structure, which aims to solve the problems of insufficient accuracy and poor stability of traditional magnetic rings in base plate positioning and feeding.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows: a base plate positioning and feeding structure, including a base plate conveying assembly and a rotary positioning assembly. The rotary positioning assembly is disposed above the base plate conveying assembly. The base plate conveying assembly includes a base plate platform, on which a cross groove is formed. The cross groove is provided with: a base plate inlet channel at the left end, which is connected to an external base plate discharge mechanism for inputting the base plate into the middle of the cross groove; the rotary positioning assembly for rotating the cut surface of the base plate located at the entrance of the base plate inlet channel to fit the side end face of the front end of the base plate inlet channel; a base plate baffle at the right end for blocking the base plate in the middle of the cross groove; a base plate processing channel at the rear end, connected to a base plate processing part located at the end of the base plate processing channel; and a base plate pushing component at the front end for pushing the base plate along the base plate processing channel onto the base plate processing part.
[0007] Based on the above, the beneficial effect of a base plate positioning and feeding structure is to solve the problems of insufficient accuracy and poor stability of traditional magnetic rings in base plate positioning and feeding. This is mainly reflected in the following: This invention utilizes a design where the base plate inlet channel in the cross groove gradually narrows from the input end to the output end. The positioning head of the rotating positioning component docks with the base plate located at the input end of the base plate inlet channel, causing it to rotate. This rotates the cut surface of the base plate to fit the side end face of the front end of the base plate inlet channel, ensuring that the base plate is accurately positioned before processing. Then, it follows the transmission belt along the base plate inlet channel, ensuring that the base plate does not shake or tilt. The inclined plane ensures accurate positioning of the magnetic ring relative to the base plate during assembly; the base plate conveying assembly ensures smooth and precise transfer of the base plate; the rotary positioning assembly allows for precise adjustment of the base plate angle, ensuring accurate machining position; the base plate inlet channel facilitates base plate input and precise guidance; the base plate baffle ensures the base plate is input to the center of the cross groove, thus matching the base plate push-in component; the base plate machining channel ensures smooth movement of the base plate to the machining area; and the base plate push-in component precisely pushes the base plate into the machining position.
[0008] Furthermore, the input end of the base plate inlet channel is slightly wider than the output end, which is used to adapt the base plate to be driven to rotate and adjust the processing angle by the rotary positioning component, so as to ensure that the base plate can be accurately pushed to the base plate processing channel in the correct processing position. A transmission belt is provided on the base plate inlet channel for transmitting the base plate.
[0009] Furthermore, the base plate pushing component includes a pushing cylinder and a pushing plate. The pushing plate is disposed at the output end of the pushing cylinder. A cutting adaptation groove is provided at one end of the pushing plate near the middle of the cross groove. The cutting adaptation groove is adapted to the cutting surface.
[0010] Based on the above, the beneficial effect of the push cylinder is to drive the push plate to move; the beneficial effect of the push plate is to push the base plate through the base plate processing channel into the base plate processing section; the beneficial effect of the cut adapter groove is to match the cut surface of the base plate, so that the angle will not rotate or shift when the push plate pushes the base plate.
[0011] Furthermore, the end of the base plate processing channel is provided with an arc groove, which fits and is positioned against the arc-shaped outer surface of the base plate, and the base plate processing channel outside the arc groove is the base plate processing part.
[0012] Based on the above, the beneficial effect of the arc groove is that it fits the base plate within the base plate machining process by conforming to the arc outer surface of the base plate.
[0013] Furthermore, the rotary positioning assembly includes a pressing cylinder, a motor frame, a rotary motor, and a positioning head. A sliding rail is provided on one side of the pressing cylinder, and a sliding frame is provided at the output end of the pressing cylinder. The inner side of the sliding frame is slidably connected to the sliding rail. The motor frame is located on the outer side of the sliding frame, the rotary motor is located on the motor frame, and the positioning head is located at the output end of the rotary motor.
[0014] Based on the above, the beneficial effect of the downward pressure cylinder is that it drives the motor frame to move vertically; the beneficial effect of the motor frame is that it allows the installation of a rotary motor; the beneficial effect of the rotary motor is that it drives the positioning head to rotate; and the beneficial effect of the positioning head is that it allows the base plate to rotate to a suitable machining angle by adapting to the base plate.
[0015] Furthermore, the lower end of the positioning head is provided with a plurality of positioning posts, and the base plate is provided with a plurality of through holes, each positioning post corresponding to one through hole for driving the base plate to rotate.
[0016] Based on the above, the beneficial effect of the positioning post is that it cooperates with the threading holes on the base plate to achieve precise rotation of the base plate.
[0017] To more clearly illustrate the above-mentioned features of this utility model and the objectives it aims to achieve, the present utility model will be further described below in conjunction with the accompanying drawings and specific embodiments. Attached Figure Description
[0018] Figure 1 : This is a schematic diagram of the base plate conveying assembly of this utility model;
[0019] Figure 2 :for Figure 1 An enlarged schematic diagram of part A;
[0020] Figure 3 : This is a schematic diagram of the rotary positioning component of this utility model;
[0021] Figure 4 : This is a schematic diagram of the rotary positioning component of this utility model from another perspective.
[0022] Explanation of reference numerals: 1-Base plate conveying assembly, 2-Rotary positioning assembly, 21-Pressing cylinder, 211-Sliding rail, 212-Sliding frame, 22-Motor frame, 23-Rotary motor, 24-Positioning head, 241-Positioning column, 3-Base plate platform, 31-Cross groove, 311-Base plate inlet channel, 3111-Transmission belt, 312-Base plate baffle, 313-Base plate processing channel, 3131-Base plate processing section, 3132-Circular arc groove, 314-Base plate pushing component, 3141-Pushing cylinder, 3142-Pushing plate, 3143-Cutting adapter groove, 4-Base plate, 41-Cutting surface, 42-Threading hole. Detailed Implementation
[0023] like Figures 1-4 As shown, a base plate positioning and feeding structure includes a base plate conveying assembly 1 and a rotary positioning assembly 2. The rotary positioning assembly 2 is disposed above the base plate conveying assembly 1. The base plate conveying assembly 1 includes a base plate platform 3, on which a cross groove 31 is formed. The cross groove 31 has a base plate inlet channel 311 at its left end, which is connected to an external base plate discharge mechanism for feeding a base plate 4 into the middle of the cross groove 31. The rotary positioning assembly 2 is used to feed the base plate 4 into the middle of the cross groove 31. The cut surface 41 of the base plate 4 at the entrance of the base plate inlet channel 311 is rotated to fit the side end face of the front end of the base plate inlet channel 311; the base plate baffle 312 at the right end is used to block the base plate 4 in the middle of the cross groove 31; the base plate processing channel 313 at the rear end is connected to the base plate processing part 3131 located at the end of the base plate processing channel 313; and the base plate pushing member 314 at the front end is used to push the base plate 4 along the base plate processing channel 313 onto the base plate processing part 3131.
[0024] The input end of the base plate inlet channel 311 is slightly wider than the output end, which is used to adapt the base plate 4 to be driven to rotate and adjust the processing angle by the rotary positioning component 2, so as to ensure that the base plate 4 can be accurately pushed to the base plate processing channel 313 in the correct processing position. A transmission belt 3111 is provided on the base plate inlet channel 311 for transmitting the base plate 4.
[0025] The base plate pushing component 314 includes a pushing cylinder 3141 and a pushing plate 3142. The pushing plate 3142 is disposed at the output end of the pushing cylinder 3141. A cutting adaptation groove 3143 is provided at one end of the pushing plate 3142 near the middle of the cross groove 31. The cutting adaptation groove 3143 is adapted to the cutting surface 41.
[0026] The end of the base plate processing channel 313 is provided with an arc groove 3132, which fits and is positioned against the arc outer surface of the base plate 4. The base plate processing channel 313 outside the arc groove 3132 is the base plate processing part 3131.
[0027] The rotary positioning assembly 2 includes a pressing cylinder 21, a motor frame 22, a rotary motor 23, and a positioning head 24. A sliding rail 211 is provided on one side of the pressing cylinder 21, and a sliding frame 212 is provided at the output end of the pressing cylinder 21. The inner side of the sliding frame 212 is slidably connected to the sliding rail 211. The motor frame 22 is provided on the outer side of the sliding frame 212, the rotary motor 23 is provided on the motor frame 22, and the positioning head 24 is provided at the output end of the rotary motor 23.
[0028] The lower end of the positioning head 24 is provided with a plurality of positioning posts 241, and the base plate 4 is provided with a plurality of wire holes 42. Each positioning post 241 corresponds to one wire hole 42 for driving the base plate 4 to rotate.
[0029] In summary, the specific implementation of this utility model is as follows: The base plate 4 is fed in from the outside through the base plate inlet channel 311. In the initial state, the cut surface 41 of the base plate 4 is not aligned with the side edge of the base plate inlet channel 311, and cannot reach the output end of the base plate inlet channel 311 via the transmission belt 3111. Since the width of the input end of the base plate inlet channel 311 is slightly larger than the output end, when the cut surface 41 of the base plate 4 is aligned with the side edge of the base plate inlet channel 311, it can just pass through the output end of the base plate inlet channel 311.
[0030] The downward cylinder 21 in the rotary positioning assembly 2 presses down to make the positioning head 24 contact the base plate 4. The rotary motor 23 starts and drives the base plate 4 to rotate, thereby making the positioning head 24 cooperate with the wire hole 42 on the base plate 4 through the positioning pin 241, driving the base plate 4 to rotate to the correct angle. At this time, the cut surface 41 of the base plate 4 is aligned with the side edge of the base plate inlet channel 311.
[0031] After rotational positioning is completed, the transmission belt 3111 drives the base plate 4 through the output end of the base plate inlet channel 311 to the middle of the cross groove 31. The push-in cylinder 3141 is activated, and the push-in plate 3142 cooperates with the cut surface 41 of the base plate 4 through the cut adapter groove 3143, pushing the base plate 4 along the base plate processing channel 313 into the base plate processing section 3131 for the next processing step.
[0032] The above description is only the optimal solution embodiment of this utility model and is not intended to limit this utility model. Various modifications or substitutions made by those skilled in the art to this utility model without departing from the essence and protection scope of this utility model should also be within the protection scope of this utility model.
Claims
1. A base plate positioning and feeding structure, characterized in that: The assembly includes a base plate conveying component (1) and a rotary positioning component (2). The rotary positioning component (2) is disposed above the base plate conveying component (1). The base plate conveying component (1) includes a base plate platform (3). A cross groove (31) is formed on the base plate platform (3). The cross groove (31) is provided with: The bottom plate inlet channel (311) at the left end is connected to the external bottom plate discharge mechanism and is used to input the bottom plate (4) into the middle of the cross groove (31). The rotary positioning component (2) is used to rotate the cut surface (41) of the bottom plate (4) located at the entrance of the bottom plate inlet channel (311) to fit the side end face of the front end of the bottom plate inlet channel (311). The bottom plate baffle (312) at the right end is used to block the bottom plate (4) in the middle of the cross groove (31); The rear bottom plate processing channel (313) is connected to the bottom plate processing part (3131) located at the end of the bottom plate processing channel (313); And a base plate pushing component (314) at the front end, used to push the base plate (4) along the base plate processing channel (313) onto the base plate processing section (3131).
2. The base plate positioning and feeding structure according to claim 1, characterized in that: The input end of the base plate inlet channel (311) is slightly wider than the output end, which is used to adapt the base plate (4) to be driven to rotate and adjust the processing angle by the rotary positioning component (2) so as to ensure that the base plate (4) can be accurately pushed to the base plate processing channel (313) in the correct processing position. A transmission belt (3111) is provided on the base plate inlet channel (311) for transmitting the base plate (4).
3. The base plate positioning and feeding structure according to claim 1, characterized in that: The base plate pushing component (314) includes a pushing cylinder (3141) and a pushing plate (3142). The pushing plate (3142) is disposed at the output end of the pushing cylinder (3141). A cutting adaptation groove (3143) is provided at one end of the pushing plate (3142) near the middle of the cross groove (31). The cutting adaptation groove (3143) is adapted to the cutting surface (41).
4. The base plate positioning and feeding structure according to claim 1, characterized in that: The end of the base plate processing channel (313) is provided with an arc groove (3132), the arc groove (3132) is fitted and positioned with the arc outer surface of the base plate (4), and the base plate processing channel (313) outside the arc groove (3132) is the base plate processing part (3131).
5. The base plate positioning and feeding structure according to claim 1, characterized in that: The rotary positioning assembly (2) includes a pressing cylinder (21), a motor frame (22), a rotary motor (23), and a positioning head (24). A sliding rail (211) is provided on one side of the pressing cylinder (21), and a sliding frame (212) is provided at the output end of the pressing cylinder (21). The inner side of the sliding frame (212) is slidably connected to the sliding rail (211). The motor frame (22) is provided on the outer side of the sliding frame (212), the rotary motor (23) is provided on the motor frame (22), and the positioning head (24) is provided at the output end of the rotary motor (23).
6. The base plate positioning and feeding structure according to claim 5, characterized in that: The lower end of the positioning head (24) is provided with a plurality of positioning posts (241), and the base plate (4) is provided with a plurality of wire holes (42). Each positioning post (241) corresponds to a wire hole (42) and is used to drive the base plate (4) to rotate.