Wire divider
By designing the stacking arrangement of the branch terminal plate and the limit slot limit plate structure in the splitter, the problem of inconvenient installation of the splitter in a narrow space is solved, the volume reduction and stable assembly are achieved, and the temperature monitoring function is provided.
Patent Information
- Application Number
- CN202422253769.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-13
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-09-13
AI Technical Summary
The existing splitter is inconvenient to install in a narrow space and is too large to meet user needs.
A splitter is designed, and the split terminal block is laminated and arranged in the box body. Each split terminal block is connected to multiple groups of output terminals. A limit slot and a limit plate are arranged in the box for easy assembly, and a temperature sensor is added to monitor the temperature.
Increase the number of branch terminals in a narrow space, reduce the overall volume, facilitate installation, and ensure stable assembly through the design of limit slots and limit plates, and also have temperature monitoring functions.
Smart Images

Figure CN223066483U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of connectors, and more particularly to a splitter. Background Art
[0002] A wire splitter is a common wire connector, mainly used for splitting and converting an input power cord or data cable into multiple current or data signals. In order to meet the needs of users, the splitters on the market usually have a large number of outputs, that is, the number of current or data signals output after splitting and conversion is larger, which increases the volume of the splitter, especially its length, making it inconvenient to install in narrow spaces such as ceilings or other locations with limited installation space. Summary of the Utility Model
[0003] The technical problem to be solved by the utility model is to provide a splitter with a smaller volume.
[0004] To solve the above technical problem, the utility model provides a splitter, which includes a box body and a plurality of shunt wiring boards located inside the box body. A plurality of input wiring terminals for connecting a power cord are arranged on one side of the box body. The plurality of shunt wiring boards are stacked up and down inside the box body. Each shunt wiring board is electrically connected to the input wiring terminals, and each shunt wiring board is connected with multiple groups of output wiring terminals, and the multiple groups of output wiring terminals are exposed on the outer surface of the box body.
[0005] Further technical solution thereof is: A plurality of limiting grooves are formed on opposite side walls inside the box body. Two sides of each shunt wiring board are respectively clamped in the two opposite limiting grooves.
[0006] Further technical solution thereof is: The box body includes a shell and a cover plate covering one side of the shell, and the limiting grooves are formed on opposite side walls of the shell.
[0007] Further technical solution thereof is: The box body further includes a plurality of limiting plates extending along the length direction of the side wall of the shell, and the plurality of limiting plates are arranged in parallel, and a limiting groove is formed between two adjacent limiting plates.
[0008] Further technical solution thereof is: A temperature sensor for detecting the temperature inside the box body is further arranged inside the box body, and the temperature sensor is connected to an external device.
[0009] Further technical solution thereof is: The number of the shunt wiring boards is two, and the two shunt wiring boards are stacked up and down. Each shunt wiring board is connected with two groups of output wiring terminals, and the four groups of output wiring terminals are exposed on the side wall of the box body.
[0010] Its further technical solution is as follows: The number of the shunt wiring boards is two, and the two shunt wiring boards are stacked vertically. Each shunt wiring board is connected with two groups of output wiring terminals, and the four groups of output wiring terminals are exposed on the top surface of the box body.
[0011] Its further technical solution is as follows: The number of the shunt wiring boards is three, and the three shunt wiring boards are stacked vertically in sequence. Each shunt wiring board is connected with two groups of output wiring terminals, and the output wiring terminals connected to the two shunt wiring boards below are exposed on the side wall of the box body, and the output wiring terminals connected to the topmost shunt wiring board are exposed on the top surface of the box body.
[0012] Compared with the prior art, in the wire splitter of the present utility model, multiple shunt wiring boards are stacked vertically in the box body, so that more shunt wiring boards can be placed in a limited space. The shunt wiring board can divide the power input through the input wiring terminals into multiple paths and output them respectively through multiple groups of output wiring terminals. It can be seen that the overall volume of the wire splitter of the present utility model can be reduced only by slightly increasing the height direction, which is beneficial to the installation of the wire splitter in a narrow space. Description of the Drawings
[0013] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for the description of the embodiments will be briefly introduced below. Obviously, the drawings in the following description are some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0014] Figure 1 It is a schematic structural diagram of a specific embodiment of the wire splitter of the present utility model.
[0015] Figure 2 It is an exploded structural diagram of a specific embodiment of the wire splitter of the present utility model. Detailed Embodiments
[0016] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are some, but not all, of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0017] Refer to Figures 1 to 2 , Figures 1 to 2Shows a specific embodiment of the splitter 100 of the present utility model. In the embodiment shown in the accompanying drawings, the splitter 100 includes a box body 10 and a plurality of shunt wiring boards 30 located inside the box body 10. A plurality of input wiring terminals 20 for connecting power lines are provided on one side of the box body 10. The plurality of shunt wiring boards 30 are stacked vertically in the box body 10. Each shunt wiring board 30 is electrically connected to the input wiring terminals 20, and each shunt wiring board 30 is connected to multiple groups of output wiring terminals 40. The multiple groups of output wiring terminals 40 are exposed on the outer surface of the box body 10. Based on the above design, in the present utility model, the plurality of shunt wiring boards 30 are stacked vertically in the box body 10, so that more shunt wiring boards 30 can be placed in a limited space. The shunt wiring board 30 can divide the power input through the input wiring terminals 20 into multiple paths and output them respectively through multiple groups of output wiring terminals 40. It can be seen that the overall volume of the splitter 100 of the present utility model can be reduced only by slightly increasing the height direction, which is beneficial to the installation of the splitter 100 in a narrow space.
[0018] In this embodiment, the number of the shunt wiring boards 30 is two. The two shunt wiring boards 30 are stacked vertically. Each shunt wiring board 30 is connected to two groups of output wiring terminals 40. The four groups of output wiring terminals 40 are exposed on the side wall of the box body 10. Understandably, the number of the shunt wiring boards 30 and the arrangement position of the output wiring terminals 40 can also be adjusted according to user needs. For example, the output wiring terminals 40 can also be exposed on the top surface of the box body 10. In some other embodiments, the number of the shunt wiring boards 30 can be set to three. The three shunt wiring boards 30 are stacked vertically in sequence. Each shunt wiring board 30 is connected to two groups of output wiring terminals 40, and the output wiring terminals 40 connected to the two shunt wiring boards 30 located below are exposed on the side wall of the box body 10, and the output wiring terminals 40 connected to the shunt wiring board 30 located at the top are exposed on the top surface of the box body 10.
[0019] Such as Figure 2As shown, in the embodiment shown in the drawings, the box body 10 includes a housing 11 and a cover plate 12 covering one side of the housing 11. The number of the input connection terminals 20 is three, and all of them are located on the cover plate 12 and are respectively used for connecting the live wire, the neutral wire and the ground wire of the power supply. Four groups of the output connection terminals 40 are respectively exposed on the outer surface of the side wall of the housing 11. Further, the box body 10 further includes a plurality of limiting plates 113 formed by extending along the length direction of the side wall of the housing 11, and the plurality of limiting plates 113 are arranged in parallel. A limiting groove can be formed between two adjacent limiting plates 113. Specifically, as shown in the figure, in this embodiment, two limiting plates 113 are formed on the upper and lower parts of the opposite side walls inside the housing 11. A first limiting groove 111 is formed between the two limiting plates 113 formed on the upper part, and a second limiting groove 112 is formed between the two limiting plates 113 formed on the lower part. Two sides of one shunt connection board 30 are respectively clamped in the opposite two first limiting grooves 111, and two sides of the other shunt connection board 30 are respectively clamped in the two second limiting grooves 112. Based on the above design, the number of the limiting grooves in this embodiment is two. During assembly, the two shunt connection boards 30 can be simultaneously inserted into the first limiting groove 111 and the second limiting groove 112 from the front end of the housing 11 and pushed along the extending direction of the first limiting groove 111 / second limiting groove 112, so as to facilitate the stacked assembly of the two shunt connection boards 30. Moreover, during the assembly process, the shunt connection board 30 will not fall out from the other side of the housing 11 due to excessive pushing force.
[0020] Preferably, in some embodiments, a temperature sensor for detecting the temperature inside the box body 10 is further arranged inside the box body 10, and the temperature sensor is connected to an external device. Based on this design, the temperature inside the box body 10 can be detected by the temperature sensor, and a prompt message can be sent to the external device when the temperature inside the box body 10 is too high.
[0021] To sum up, in the wire splitter of the present utility model, a plurality of shunt connection boards are stacked up and down inside the box body, so that more shunt connection boards can be placed in a limited space. The shunt connection board can divide the power supply input through the input connection terminal into multiple paths and output them respectively through multiple groups of output connection terminals. It can be seen that the overall volume of the wire splitter of the present utility model can be reduced only by slightly increasing the height direction, which is beneficial to the installation of the wire splitter in a narrow space. Moreover, during assembly, multiple shunt connection boards can be simultaneously pushed into the box body from the front end. The stacked assembly operation is convenient and it is not easy to fall out of the box body. In addition, a temperature sensor is arranged inside the box body. When the temperature inside the box body is too high due to too many electrical appliances used at the same time, the user can be prompted.
[0022] The above are only the preferred embodiments of the present utility model, and do not impose any formal restrictions on the present utility model. Those skilled in the art can make various equivalent changes and improvements based on the above embodiments. Any equivalent changes or modifications made within the scope of the claims shall fall within the protection scope of the present utility model.
Claims
1. A splitter, characterized in that: It includes a box body and a plurality of shunt wiring boards located inside the box body. A plurality of input wiring terminals for connecting power supply lines are provided on one side of the box body. The plurality of shunt wiring boards are stacked vertically inside the box body. Each shunt wiring board is electrically connected to the input wiring terminals, and each shunt wiring board is connected to multiple groups of output wiring terminals. The multiple groups of output wiring terminals are exposed on the outer surface of the box body.
2. The splitter according to claim 1, characterized in that: A plurality of limiting grooves are formed on the opposite side walls inside the box body. Both sides of each shunt wiring board are respectively clamped in the two opposite limiting grooves.
3. The splitter according to claim 2, wherein: The box body includes a housing and a cover plate covering one side of the housing. The limiting grooves are formed on the opposite side walls of the housing.
4. The splitter according to claim 3, wherein: The box body further includes a plurality of limiting plates formed by extending along the length direction of the side wall of the housing, and the plurality of limiting plates are arranged in parallel. A limiting groove is formed between two adjacent limiting plates.
5. The splitter according to claim 1, characterized in that: A temperature sensor for detecting the temperature inside the box body is further provided inside the box body, and the temperature sensor is connected to an external device.
6. The splitter according to claim 1, characterized in that: The number of the shunt wiring boards is two, and the two shunt wiring boards are stacked vertically. Each shunt wiring board is connected to two groups of output wiring terminals, and the four groups of output wiring terminals are exposed on the side wall of the box body.
7. The splitter according to claim 1, wherein: The number of the shunt wiring boards is two, and the two shunt wiring boards are stacked vertically. Each shunt wiring board is connected to two groups of output wiring terminals, and the four groups of output wiring terminals are exposed on the top surface of the box body.
8. The splitter according to claim 1, wherein: The number of the shunt wiring boards is three, and the three shunt wiring boards are stacked vertically in sequence. Each shunt wiring board is connected to two groups of output wiring terminals, and the output wiring terminals connected to the two lower shunt wiring boards are exposed on the side wall of the box body, and the output wiring terminals connected to the topmost shunt wiring board are exposed on the top surface of the box body.