Guide frame of stacked solid-state capacitor
By designing a guide for stacked solid-state capacitors, the problem of low assembly efficiency in the prior art is solved, and the automatic assembly and delivery of ceramic shells is realized, and the overall assembly efficiency is improved.
Patent Information
- Application Number
- CN202421768544.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-25
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-07-25
AI Technical Summary
现有技术中堆叠式固态电容器的装配过程需要人工参与,自动化程度低,导致装配效率不高,影响时间利用和成本控制。
A guide frame for stacked solid-state capacitors is designed, including a guide frame body, an inclined downward guide channel, a guide block and a clamping block. By rotating the cylinder, the rotation angle of the guide block and the clamping block is accurately controlled, and the automatic bearing, clamping, assembly and discharge of the ceramic shell is achieved.
Through the automated control of the guide frame, the efficiency of stacked solid-state capacitor packaging and assembly is improved, the work intensity of workers is reduced, and the efficiency of flow-through operation is improved.
Smart Images

Figure CN222914583U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of capacitor processing, in particular to a guide frame for a stacked solid-state capacitor. Background Art
[0002] When assembling the components of a stacked solid-state capacitor, conveying and positioning processes are required to improve the assembly efficiency and ensure the assembly quality. In the existing assembly process, manual participation is needed, and the degree of automation is low, thus reducing the assembly efficiency and needing to be improved.
[0003] In the assembly of stacked capacitor packages, the capacitor body needs to be installed in a ceramic housing. In each stage of conveying, guiding, positioning, and releasing, if all rely on manual operation, the efficiency of the entire process will be greatly reduced, which is not conducive to time utilization and cost control. Summary of the Utility Model
[0004] The purpose of the utility model is to solve the shortcomings existing in the prior art, and a guide frame for a stacked solid-state capacitor is proposed.
[0005] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0006] The guide frame for a stacked solid-state capacitor includes a guide frame main body. An inclined downward guide channel is arranged inside the guide frame main body. A number of capacitor housings arranged in sequence are placed in the guide channel. A guide block is rotatably installed below the lower port of the guide channel of the guide frame main body, and a clamping block is rotatably installed above the lower port of the guide channel. The sides of the guide block and the clamping block facing the guide channel are designed as arc surfaces adapted to the outer surface of the capacitor housing. Rotary cylinders for controlling the rotation of the guide block and the clamping block are respectively arranged outside the guide frame main body.
[0007] In a preferred technical solution, a transfer table is arranged outside the upper port of the guide channel of the guide frame main body.
[0008] In a preferred technical solution, lower installation grooves and upper installation grooves for assembling the guide block and the clamping block are respectively opened at the lower port of the guide channel of the guide frame main body.
[0009] In a preferred technical solution, the structures of the guide block and the clamping block are the same, and they are respectively rotatably installed on the inner wall of the guide frame main body through their respective fixed shafts. The lower guide block and the upper clamping block are symmetrically distributed about the center.
[0010] In a preferred technical solution, the guide block is of a hammer-shaped structure, and the hammer end of the guide block is designed as a tapered end.
[0011] In a preferred technical solution, first notch grooves are respectively formed at both ends of the guiding block, and second notch grooves are respectively formed at both ends of the clamping block. The upper and lower first notch grooves and second notch grooves are staggered in sequence and maintain a matching relationship.
[0012] In a preferred technical solution, through openings are respectively formed on both side walls of the guiding frame body, and the positions of the through openings are aligned with the lower ports of the guiding channels.
[0013] The beneficial effects of the present utility model are as follows:
[0014] Through the guiding frame body proposed in this solution, the problem of low working efficiency in installing the capacitor body into the ceramic housing during the packaging of stacked solid-state capacitors is solved. The guiding block and the clamping block provided at the lower end of the guiding channel of the guiding frame can be used in cooperation, and through automatic control, the ceramic housing can be received, clamped, assembled, and discharged. By repeating this cycle, the working intensity of workers can be reduced, and the working efficiency of the flow operation can be improved. Description of the Drawings
[0015] Figure 1 is a schematic structural diagram of the overall guiding frame body proposed by the present utility model;
[0016] Figures 2 - 4 is a schematic structural diagram of the guiding frame body proposed by the present utility model in the sequential states of receiving, clamping, and delivering the capacitor housing.
[0017] In the figure: 1. Guiding frame body; 2. Transfer table; 3. Guiding channel; 4. Capacitor housing; 5. Lower mounting groove; 6. Upper mounting groove; 7. Fixed shaft; 8. Guiding block; 81. First notch groove; 9. Clamping block; 91. Second notch groove; 10. Rotary cylinder; 11. Through opening. Detailed Embodiments
[0018] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments.
[0019] In this embodiment, referring to Figures 1 - 4 , the guiding frame of the stacked solid-state capacitor includes a guiding frame body 1. An inclined downward guiding channel 3 is provided inside the guiding frame body 1. A transfer table 2 is provided outside the upper port of the guiding channel 3 of the guiding frame body 1. Through the transfer table 2, each capacitor housing 4 is sequentially and orderly fed into the guiding frame body 1, and it is ensured that the capacitor housings 4 can be arranged in sequence in the guiding channel 3.
[0020] The guiding frame body 1 is respectively provided with a lower mounting groove 5 and an upper mounting groove 6 at the lower port of its guiding channel 3. A guiding block 8 is rotatably mounted in the lower mounting groove 5, and a clamping block 9 is rotatably mounted in the upper mounting groove 6.
[0021] As shown in the attached drawings, the structures of the guiding block 8 and the clamping block 9 are the same, and they are respectively rotatably mounted on the inner wall of the guiding frame body 1 through their respective fixed shafts 7. The lower guiding block 8 and the upper clamping block 9 are symmetrically distributed about the center. In addition, rotary cylinders 10 for controlling the rotation of the guiding block 8 and the clamping block 9 are respectively arranged outside the guiding frame body 1. The rotary cylinders 10 are used to accurately control the rotation angles of the guiding block 8 and the clamping block 9, so as to achieve the subsequent purposes of receiving, clamping and discharging.
[0022] Here, a single guiding block 8 is described. The guiding block 8 has a hammer-shaped structure, and the hammer end of the guiding block 8 is designed as a tapered end. The sides of the guiding block 8 and the clamping block 9 facing the guiding channel 3 are designed as arc surfaces adapted to the outer surface of the capacitor housing 4.
[0023] It should be particularly noted that as shown in the attached Figure 1 drawings, first notch grooves 81 are respectively opened at both ends of the guiding block 8, and second notch grooves 91 are respectively opened at both ends of the clamping block 9. The upper and lower first notch grooves 81 and second notch grooves 91 are arranged in a staggered manner in sequence and maintain an adapted relationship. The positions of the first notch grooves 81 and the second notch grooves 91 are relatively staggered. During the respective rotations of the guiding block 8 and the clamping block 9, through the opening of the above-mentioned notches, it can be ensured that the guiding block 8 and the clamping block 9 maintain independent movement states without interference.
[0024] Here, through holes 11 are respectively opened on both side walls of the guiding frame body 1, and the positions of the through holes 11 are aligned with the lower port of the guiding channel 3. The through holes 11 can be opened on both sides, or only on one side. The purpose of opening the through holes 11 is to assemble the capacitor body into the capacitor housing 4. The existence of the through holes 11 provides an operating space for the staff.
[0025] Specific transmission process: The rotary cylinders 10 are used to respectively control the rotation of the guiding block 8 and the clamping block 9, and reach the respective positions as shown in the attached Figure 2 - attached Figure 4 drawings. In the state shown in the attached Figure 2 drawings, the guiding block 8 can be used to receive the first capacitor housing 4 in the guiding channel 3 through rotation; in the state shown in the attached Figure 3 drawings, the guiding block 8 and the clamping block 9 respectively rotate and clamp the capacitor housing 4 in the middle to form a stable structure, which is convenient for the staff to put the capacitor body into it; in the state shown in the attached Figure 4In the state shown, the guide block 8 and the clamping block 9 continue to rotate respectively. At this time, the installed capacitor housing 4 can be discharged outward by using the guide block 8. In the above process, it only requires the staff to place the capacitor, and there is no need for manual intervention in the position of the ceramic shell. Therefore, the working difficulty can be greatly reduced, the degree of automation is improved, and the working efficiency can be enhanced.
[0026] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, making equivalent substitutions or changes, shall be covered by the protection scope of the present invention.
Claims
1. A guide frame for a stacked solid-state capacitor, characterized in that: The invention comprises a guide frame body (1), wherein a guide channel (3) inclined downward is arranged inside the guide frame body (1), and a plurality of capacitor housings (4) arranged in sequence are placed in the guide channel (3). A guide block (8) is rotatably mounted below the lower end of the guide channel (3) on the guide frame body (1), and a clamping block (9) is rotatably mounted above the lower end of the guide channel (3). The sides of the guide block (8) and the clamping block (9) facing the guide channel (3) are designed to be arc surfaces that match the outer surface of the capacitor housing (4). Rotating cylinders (10) for controlling the rotation of the guide block (8) and the clamping block (9) are also respectively arranged outside the guide frame body (1).
2. The guide frame of the stacked solid capacitor according to claim 1, characterized in that: The guide frame body (1) is provided with a conveying platform (2) on the outer side of the upper end of its guide channel (3).
3. The guide frame of the stacked solid capacitor according to claim 1, characterized in that: The guide frame body (1) is provided with a lower installation groove (5) and an upper installation groove (6) for assembling the guide block (8) and the clamping block (9) at the lower end of the guide channel (3).
4. The guide frame of the stacked solid capacitor according to claim 1, characterized in that: The guide block (8) and the clamping block (9) have the same structure and are rotatably mounted on the inner wall of the guide frame body (1) via respective fixed shafts (7), with the lower guide block (8) and the upper clamping block (9) being centrally symmetrically distributed.
5. The guide frame of the stacked solid capacitor according to claim 4, characterized in that: The guide block (8) is of a hammer-shaped structure, and the hammer end of the guide block (8) is designed as a cone end.
6. The guide frame of the stacked solid capacitor according to claim 4, characterized in that: The two ends of the guide block (8) are respectively provided with a first notch groove (81), and the two ends of the clamping block (9) are respectively provided with a second notch groove (91), and the upper and lower first notch grooves (81) and second notch grooves (91) are arranged in a staggered manner and maintain an adaptive relationship.
7. The guide frame of the stacked solid capacitor according to claim 1, characterized in that: Through openings (11) are respectively provided on two side walls of the guide frame body (1), and the positions of the through openings (11) are aligned with the lower end of the guide channel (3).