A new photovoltaic electrical energy saving connector

CN224305047UActive Publication Date: 2026-05-29SHENDU DESIGN GRP CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENDU DESIGN GRP CO LTD
Filing Date
2025-03-31
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Traditional photovoltaic electrical energy-saving connectors are complicated to install and remove, requiring specialized tools, which leads to inconvenience and wasted time.

Method used

The design incorporates a connecting sleeve, a connecting block, and a connecting assembly. Through a combination of elastic limiting blocks, anti-slip blocks, through slots, connecting slots, snap-fit ​​blocks, compression springs, and fixing blocks, the connector body is stably connected to the connecting block, and disassembly is achieved through rotation and displacement operations.

Benefits of technology

It enables easy assembly and disassembly of connectors without the need for special tools, improving connector stability and sealing, and enhancing safety in use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of connector, specifically relates to a novel photovoltaic electrical energy -conserving connector, including the connector main part, the inside of connector main part is equipped with the connector, and two groups connector main part pass through the connecting block and connect, the connecting block and the connector main part mutually close one end all are equipped with elastic stopper, the one end of connector main part close connecting block is equipped with the connecting sleeve, the connecting sleeve passes through the connecting assembly and is connected with the connecting block, the connecting assembly is used for the stable connection of connecting sleeve and connecting block, the inside structure size of connecting sleeve and the outside structure size of connecting block are corresponding design, the connector main part passes through the connecting sleeve and is connected with the connecting block, two groups elastic stopper present the compatible use, the outside of connecting sleeve is equipped with a plurality of anti -skid block, and the connecting sleeve and connector main part are the sliding connection, compared with the prior art connector, the utility model can improve the overall practicality of the connector through the design.
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Description

Technical Field

[0001] This utility model relates to the field of connector technology, specifically to a novel photovoltaic electrical energy-saving connector. Background Technology

[0002] Connectors are a type of component that electronic engineers frequently encounter. Their function is very simple: to bridge the gaps in a circuit or between isolated circuits, allowing current to flow and enabling the circuit to perform its intended function. Connectors are an indispensable component in electronic equipment.

[0003] Traditional photovoltaic-type energy-saving electrical connectors are generally complicated to install and disassemble using specialized tools, making installation and disassembly extremely inconvenient, time-consuming, and labor-intensive. Therefore, it is particularly important to improve existing connectors and design a new type of photovoltaic-type energy-saving electrical connector to solve the above-mentioned technical defects and improve the overall practicality of the connector. Utility Model Content

[0004] The purpose of this utility model is to provide a novel photovoltaic electrical energy-saving connector. This electrical energy-saving connector, through the design of the connecting sleeve, connecting block and connecting components, allows for easy disassembly of the connector body without the need for installation tools, making it more convenient to use and improving the overall safety of the electrical energy-saving connector, thereby solving the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A novel photovoltaic electrical energy-saving connector includes a connector body, a connector head inside the connector body, and two sets of connector bodies connected by a connecting block. Each of the connecting block and the connector body has an elastic limiting block at one end close to the other. The connector body has a connecting sleeve at one end close to the connecting block, and the connecting sleeve is connected to the connecting block through a connecting component.

[0007] The connecting component is used for a stable connection between the connecting sleeve and the connecting block.

[0008] As a preferred embodiment of this utility model, the internal structure size of the connecting sleeve is designed to correspond to the external structure size of the connecting block, and the connector body is connected to the connecting block through the connecting sleeve.

[0009] As a preferred embodiment of this utility model, the two sets of elastic limiting blocks are used in a mutually compatible manner, the outer side of the connecting sleeve is provided with multiple sets of anti-slip blocks, and the connecting sleeve and the connector body are slidably connected.

[0010] As a preferred embodiment of this utility model, the connecting assembly consists of a through groove, a connecting groove, a snap-fit ​​block, a compression spring, and a fixing block. The through groove is opened on the outside of the connecting sleeve, the connecting groove is opened inside the connecting block, both sets of snap-fit ​​blocks are slidably connected inside the connecting groove, the compression spring is located on the outside of the snap-fit ​​block, and the fixing block is located inside the through groove.

[0011] As a preferred embodiment of this utility model, a receiving groove is provided inside the connecting groove and outside the snap-fit ​​block. The internal structure size of the receiving groove is designed to correspond to the external structure size of the snap-fit ​​block. The snap-fit ​​block is connected to the compression spring through the receiving groove.

[0012] As a preferred embodiment of this utility model, the external structural size of the fixing block is designed to correspond to the internal structural size of the through groove, and the fixing block is connected to the connecting groove through the through groove.

[0013] As a preferred embodiment of this utility model, the connecting block is provided with sealing rings at both ends near the two sets of connector bodies. Both ends of the sealing rings are provided with extrusion plates inside the connecting block. The end of the extrusion plate away from the sealing ring is connected to the snap-fit ​​block. Both ends of the fixing block are provided with snap-fit ​​grooves. The internal structure size of the snap-fit ​​groove is designed to correspond to the external structure size of the snap-fit ​​block. The snap-fit ​​block is connected to the fixing block through the snap-fit ​​groove.

[0014] Compared with the prior art, the beneficial effects of this utility model are:

[0015] In this invention, the design of the connecting sleeve, connecting block, and connecting assembly utilizes a displacement connecting sleeve to connect the connecting sleeve and the connecting block, enabling the connector body to connect with the connecting block. When the connector body and connecting block are connected, two sets of elastic limiting blocks mutually limit each other, increasing the stability of the connection between the connector body and the connecting block. The fixing block is connected to the through slot, allowing it to connect with the connecting slot. When the fixing block is displaced into the connecting slot, it rotates and contacts the locking block. A compression spring then drives the locking block to displace, bringing it into contact with the locking slot. This allows the snap-fit ​​block to be positioned and connected to the fixed block, thus confining the fixed block inside the connecting groove. When the fixed block contacts the snap-fit ​​block, it can move the snap-fit ​​block, causing the snap-fit ​​block to move the compression plate, compressing the sealing ring. This, combined with the elastic limiting block, compresses another set of compression plates, causing the sealing ring to deform and conform to the surface of the connector body. This increases the sealing performance of the connection between the connector body and the connecting block, preventing liquid penetration that could affect the use of the connector body. When it is necessary to disassemble the connector body, the above operation is repeated in reverse. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the connecting component structure of this utility model;

[0018] Figure 3 This is a schematic diagram of the fixing block structure of this utility model;

[0019] Figure 4 This is a schematic diagram of the main structure of the connector of this utility model.

[0020] In the diagram: 1. Connector body; 2. Connector head; 3. Connecting block; 4. Elastic limiting block; 5. Connecting sleeve; 6. Connecting assembly; 7. Through groove; 8. Connecting groove; 9. Snap-fit ​​block; 10. Compression spring; 11. Fixing block; 12. Sealing ring; 13. Extrusion plate; 14. Snap-fit ​​groove. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model. Example

[0022] Please see Figures 1-4 This utility model provides a technical solution:

[0023] A novel photovoltaic electrical energy-saving connector includes a connector body 1, a connector head 2 inside the connector body 1, and two sets of connector bodies 1 connected by a connecting block 3. An elastic limiting block 4 is provided at the end of the connecting block 3 and the connector body 1 that are close to each other. A connecting sleeve 5 is provided at the end of the connector body 1 that is close to the connecting block 3. The connecting sleeve 5 is connected to the connecting block 3 through a connecting component 6.

[0024] The connecting component 6 is used for a stable connection between the connecting sleeve 5 and the connecting block 3.

[0025] Furthermore, the internal structure size of the connecting sleeve 5 is designed to correspond to the external structure size of the connecting block 3. The connector body 1 is connected to the connecting block 3 through the connecting sleeve 5, so that the connector body 1 can be connected to the connecting block 3.

[0026] Among them, the two sets of elastic limiting blocks 4 are used in a matching manner, and the outer side of the connecting sleeve 5 is provided with multiple sets of anti-slip blocks. The connecting sleeve 5 and the connector body 1 are slidably connected. When the connector body 1 and the connecting block 3 are connected, the two sets of elastic limiting blocks 4 can limit each other and increase the stability of the connection between the connector body 1 and the connecting block 3. The multiple sets of anti-slip blocks on the outer side of the connecting sleeve 5 can increase the friction on the surface of the connecting sleeve 5, thereby facilitating the displacement of the connecting sleeve 5.

[0027] Secondly, the connecting component 6 consists of a through groove 7, a connecting groove 8, a snap-fit ​​block 9, a compression spring 10, and a fixing block 11. The through groove 7 is located on the outside of the connecting sleeve 5, the connecting groove 8 is located inside the connecting block 3, and both sets of snap-fit ​​blocks 9 are slidably connected inside the connecting groove 8. The compression spring 10 is located on the outside of the snap-fit ​​block 9, and the fixing block 11 is located inside the through groove 7. When the connecting sleeve 5 and the connecting block 3 are connected, the connecting component 6 can increase the stability of the connection and prevent loosening, which would affect the use.

[0028] Furthermore, a receiving groove is provided inside the connecting groove 8 and outside the snap-fit ​​block 9. The internal structure size of the receiving groove is designed to correspond to the external structure size of the snap-fit ​​block 9. The snap-fit ​​block 9 is connected to the compression spring 10 through the receiving groove, and the snap-fit ​​block 9 and the receiving groove are slidably connected. When the snap-fit ​​block 9 is displaced, the receiving groove can increase the stability of its displacement and prevent deviation. At the same time, when the snap-fit ​​block 9 is connected to the receiving groove, it can be connected to the compression spring 10. The compression spring 10 can drive the snap-fit ​​block 9 to move, so that the snap-fit ​​block 9 can contact the fixing block 11.

[0029] Furthermore, the external structural size of the fixing block 11 is designed to correspond to the internal structural size of the through groove 7, and the fixing block 11 is connected to the connecting groove 8 through the through groove 7, so that the fixing block 11 can be connected to the connecting groove 8 through the through groove 7.

[0030] Furthermore, sealing rings 12 are provided inside the connecting block 3 and near both ends of the two sets of connector bodies 1. Extrusion plates 13 are provided at both ends of the sealing rings 12 and inside the connecting block 3. The end of the extrusion plate 13 away from the sealing rings 12 is connected to the snap-fit ​​block 9. Snap-fit ​​grooves 14 are provided at both ends of the fixing block 11. The internal size of the snap-fit ​​groove 14 corresponds to the external size of the snap-fit ​​block 9. The snap-fit ​​block 9 is connected to the fixing block 11 through the snap-fit ​​groove 14. When the fixing block 11 moves into the connecting groove 8, rotating the fixing block 11 contacts the snap-fit ​​block 9, and the compression spring 10 drives the snap-fit ​​block 9 to move. The snap-fit ​​block 9 is moved to contact the snap-fit ​​groove 14, so that the snap-fit ​​block 9 can be limited to the fixing block 11, thereby limiting the fixing block 11 inside the connecting groove 8. When the fixing block 11 contacts the snap-fit ​​block 9, it can drive the snap-fit ​​block 9 to move, so that the snap-fit ​​block 9 can drive the extrusion plate 13 to move, extruding the sealing ring 12. Together with the elastic limiting block 4, it extrudes another set of extrusion plates 13, causing the sealing ring 12 to deform and fit against the surface of the connector body 1. This can increase the sealing performance of the connection between the connector body 1 and the connecting block 3, preventing liquid penetration and affecting the use of the connector body 1.

[0031] In this embodiment, the specific implementation scenario is as follows: In actual use, the displacement connecting sleeve 5 is connected to the connecting block 3, so that the connector body 1 can be connected to the connecting block 3. When the connector body 1 and the connecting block 3 are connected, the two sets of elastic limiting blocks 4 can mutually limit each other, increasing the stability of the connection between the connector body 1 and the connecting block 3. The fixing block 11 is connected to the through groove 7, so that the fixing block 11 can be connected to the connecting groove 8 through the through groove 7. When the fixing block 11 is displaced into the inside of the connecting groove 8, the rotating fixing block 11 contacts the snap-fit ​​block 9. The compression spring 10 drives the snap-fit ​​block 9 to move, so that the snap-fit ​​block 9 contacts the snap-fit ​​groove 14, so that the snap-fit ​​block 9 can limit the contact with the fixing block 11. The connection is designed to limit the fixing block 11 inside the connecting groove 8. When the fixing block 11 contacts the snap-fit ​​block 9, it can drive the snap-fit ​​block 9 to move, so that the snap-fit ​​block 9 can drive the extrusion plate 13 to move and extrude the sealing ring 12. In conjunction with the elastic limiting block 4, it extrudes another set of extrusion plates 13, causing the sealing ring 12 to deform and fit against the surface of the connector body 1. This can increase the sealing performance of the connection between the connector body 1 and the connecting block 3 and prevent liquid penetration, which would affect the use of the connector body 1. When it is necessary to disassemble the connector body 1, the above operation is repeated in reverse to disassemble the connector body 1. Compared with the existing connectors, this utility model can improve the overall practicality of the connector through design.

[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A novel photovoltaic electrical energy-saving connector, comprising a connector body (1), characterized in that: The connector body (1) is provided with a connector head (2) inside, and the two sets of connector bodies (1) are connected by a connecting block (3). The connecting block (3) and the connector body (1) are provided with elastic limiting blocks (4) at their respective ends. The connector body (1) is provided with a connecting sleeve (5) at its end near the connecting block (3). The connecting sleeve (5) is connected to the connecting block (3) through a connecting component (6). The connecting component (6) is used for a stable connection between the connecting sleeve (5) and the connecting block (3).

2. The novel photovoltaic electrical energy-saving connector according to claim 1, characterized in that: The internal structure size of the connecting sleeve (5) is designed to correspond to the external structure size of the connecting block (3), and the connector body (1) is connected to the connecting block (3) through the connecting sleeve (5).

3. The novel photovoltaic electrical energy-saving connector according to claim 1, characterized in that: The two sets of elastic limiting blocks (4) are used in a compatible manner. The outer side of the connecting sleeve (5) is provided with multiple anti-slip blocks, and the connecting sleeve (5) and the connector body (1) are slidably connected.

4. The novel photovoltaic electrical energy-saving connector according to claim 1, characterized in that: The connecting assembly (6) consists of a through groove (7), a connecting groove (8), a snap-fit ​​block (9), a compression spring (10), and a fixing block (11). The through groove (7) is located on the outside of the connecting sleeve (5), the connecting groove (8) is located inside the connecting block (3), and both sets of snap-fit ​​blocks (9) are slidably connected inside the connecting groove (8). The compression spring (10) is located on the outside of the snap-fit ​​block (9), and the fixing block (11) is located inside the through groove (7).

5. A novel photovoltaic electrical energy-saving connector according to claim 4, characterized in that: The connecting groove (8) has a receiving groove inside and outside the snap-fit ​​block (9). The internal structure size of the receiving groove is designed to correspond to the external structure size of the snap-fit ​​block (9). The snap-fit ​​block (9) is connected to the compression spring (10) through the receiving groove.

6. A novel photovoltaic electrical energy-saving connector according to claim 4, characterized in that: The external structure size of the fixing block (11) is designed to correspond to the internal structure size of the through groove (7), and the fixing block (11) is connected to the connecting groove (8) through the through groove (7).

7. A novel photovoltaic electrical energy-saving connector according to claim 4, characterized in that: The connecting block (3) is provided with sealing rings (12) inside and near both ends of the two sets of connector bodies (1). Both ends of the sealing rings (12) and inside the connecting block (3) are provided with extrusion plates (13). The end of the extrusion plate (13) away from the sealing rings (12) is connected to the snap-fit ​​block (9). Both ends of the fixing block (11) are provided with snap-fit ​​grooves (14). The internal structure size of the snap-fit ​​groove (14) is designed to correspond to the external structure size of the snap-fit ​​block (9). The snap-fit ​​block (9) is connected to the fixing block (11) through the snap-fit ​​groove (14).