An information-scheduled power supply track socket
The track socket system addresses installation limitations by allowing flexible length adjustment and obstacle navigation, ensuring stable power supply to information scheduling devices in complex environments.
Patent Information
- Application Number
- CN202510585904.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2045-05-08
AI Technical Summary
The existing information dispatching power supply rail sockets cannot effectively avoid wall obstacles, resulting in limited installation location and fixed length, which cannot adapt to the installation needs of complex environments.
A track socket including a first track, a telescopic track, a conductive strip and a conductive plate is designed. Through the combination of a telescopic conductive assembly and a conductive block, the bending and length adjustment of the track can be achieved, so that obstacles can be avoided and adapted to the installation needs of different environments.
It realizes flexible installation in complex environments, can avoid obstacles, provide stable power supply, and can adjust the length as needed, improving installation convenience and scope of application.
Smart Images

Figure CN120109598B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of conductive connection, and particularly relates to an orbital socket for information scheduling power supply. Background Art
[0002] Information scheduling refers to the process of collecting, transmitting, processing, and distributing information under a certain technical architecture, which is usually used to ensure the smooth, timely, and efficient transmission of information. In this process, multiple key devices and systems are involved. For example, monitoring devices are used to collect video information, routers and switches are used to transmit information, and computers and servers are used to process information. When powering information scheduling devices, in order to solve the pain points of traditional sockets with fixed positions and insufficient quantities, orbital sockets are mostly used for power supply, so as to adjust the position of the socket on the track according to the actual power supply position. At the same time, multiple sockets can be plugged into the track to increase the number of available power supplies, which is beneficial for powering information scheduling devices in complex environments.
[0003] When the existing orbital sockets for information scheduling power supply are installed and used, sometimes the wall surface at the installation position is not completely blank and there are obstacles. Most of the orbital sockets are straight and cannot avoid obstacles, resulting in only a shorter track can be installed, and the movable length range of the socket in the later stage is smaller. Moreover, the length of the track cannot be adjusted, and users need to customize a specific length or purchase multiple shorter tracks to combine to form the required length, and the use effect is not good. For this reason, we propose an orbital socket for information scheduling power supply. Summary of the Invention
[0004] The purpose of the present invention is to provide an orbital socket for information scheduling power supply to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: An orbital socket for information scheduling power supply, comprising:
[0006] A first track, on which a wiring groove is provided, and a socket body is connected to the wiring groove;
[0007] A second track, arranged at one end of the first track, and there is a telescopic track between the second track and the first track, and rubber sheets are provided at both ends of the telescopic track;
[0008] A first conductive bar;
[0009] A second conductive bar, arranged side by side with the first conductive bar at the inner bottom end of the wiring groove;
[0010] A telescopic conductive component, arranged inside the telescopic track to rotatably cooperate with the second conductive bar to bend the track;
[0011] Wherein, the telescopic conductive component includes a first conductive plate, a second conductive plate and a third conductive plate. The first conductive plate and the second conductive plate are arranged side by side, and the third conductive plate is slidably connected to one end of each of the first conductive plate and the second conductive plate.
[0012] Preferably, a rotating column is fixed to the other end of the second conductive plate through a support block, and a rotating groove for rotatably cooperating with the rotating column is provided at one end of the second conductive strip.
[0013] Preferably, a convex plate is fixed to the other end of the first conductive plate, and a guiding sliding groove is provided on the convex plate. A conductive sliding block for sliding inside the guiding sliding groove is provided on the lower surface of the first conductive strip.
[0014] Preferably, a connecting sliding groove is provided at one end of the front surface of the second conductive plate, and a connecting sliding block for sliding inside the connecting sliding groove is provided at one end of the rear surface of the third conductive plate.
[0015] Preferably, the telescopic track includes a first housing, a second housing, a rubber telescopic sleeve, a first guiding block and a first guiding groove. The first housing and the second housing are arranged side by side, and the rubber telescopic sleeve is arranged between the first housing and the second housing. A first guiding block is fixed to one end face of the first housing, a first guiding groove for cooperating with the first guiding block is provided at one end of the second housing, and a limiting structure for engaging with the first guiding block is provided inside the first guiding groove.
[0016] Preferably, the limiting structure includes a connecting groove, a fixing block, a clamping block and a first spring. The fixing block is fixed to one end inside the first guiding groove, and the clamping block is slidably connected to the fixing block. A first spring is provided on the lower surface of the clamping block. A connecting groove for cooperating with the fixing block is provided on the lower surface of the first guiding block, and a plurality of clamping grooves for cooperating with the clamping block are provided along the long side inside the connecting groove.
[0017] Preferably, a second guiding block for slidably cooperating with the first housing is provided at the edge of one end face of the second housing.
[0018] Preferably, the socket body includes a plug-in block, a base, an adjusting block, a conductive block, a conductive column and a fixing rod. The plug-in block is rotatably connected to the base, a slot is provided on the plug-in block, the adjusting block is fixed to the lower surface of the base, and the two ends inside the adjusting block are slidably connected to the conductive column. A second spring is provided on the conductive column, and the conductive column and the plug-in block are electrically connected through a wire. The fixing rod is fixed to the lower surface of the plug-in block, and a conductive block electrically conducting with the plug-in block is slidably connected to the lower end of the fixing rod. A third spring is provided on the conductive block.
[0019] Preferably, the conductive block is rectangular, and chamfers are provided at both ends of the conductive block.
[0020] Preferably, the cross-sections of the first conductive strip and the second conductive strip are both "T" shaped.
[0021] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0022] (1) By providing the first conductive strip, the second conductive strip, the first conductive plate, the second conductive plate, the third conductive plate and the rotating assembly, the present invention facilitates the bending of the track along the long side direction to avoid wall obstacles. Different from traditional tracks which are mostly straight and cannot avoid wall obstacles, making it inconvenient to install and use in complex environments, the structure of this device is simple and convenient to adjust and bend, improving the installation convenience in different environments. By providing the first housing, the second housing, the rubber telescopic sleeve, the first guide block and the first guide groove, it is avoided that the length of traditional track sockets is mostly fixed. During actual installation and use, users need to customize a specific length, which is rather troublesome. This device can arbitrarily adjust different use lengths, improving the scope of application and increasing the practicality of the device.
[0023] (2) By providing the conductive block, the conductive column, the second spring, the third spring and the plug-in block which is rotationally matched with the base, when the socket body is inserted onto the track, it is convenient to achieve good contact and conduction with the conductive strip inside the track. And during use, the conductive block can be connected to the ground wire conductive strip. By rotating the base, the conductive column is driven to rotate to disconnect from the live wire and the neutral wire connections, realizing rapid power-off. When it is necessary to remove the socket body, the base can be continuously rotated so that the adjusting block rotates to be parallel to the insertion port on the first track for easy disassembly. Description of the Drawings
[0024] Figure 1 is the structural schematic diagram of the present invention;
[0025] Figure 2 is the cross-sectional structural schematic diagram of the first track of the present invention;
[0026] Figure 3 is the connection structural schematic diagram of the telescopic conductive component and the second conductive strip of the present invention;
[0027] Figure 4 is the structural schematic diagram of the telescopic conductive component of the present invention;
[0028] Figure 5 is the connection structural schematic diagram of the first conductive plate and the second conductive plate of the present invention;
[0029] Figure 6 is the exploded structural schematic diagram of the telescopic track of the present invention;
[0030] Figure 7 is the structural schematic diagram of the first guide block of the present invention;
[0031] Figure 8 Schematic cross-sectional structure diagram of the second housing of the present invention;
[0032] Figure 9 Schematic structure diagram of the socket body of the present invention;
[0033] Figure 10 Schematic connection structure diagram of the socket body and the first track of the present invention;
[0034] Figure 11 Schematic diagram of the first bending structure of the adjusted track of the present invention;
[0035] Figure 12 Schematic diagram of the elongation structure of the adjusted track of the present invention;
[0036] Figure 13 Schematic diagram of the second bending structure of the adjusted track of the present invention.
[0037] In the figure: 1. First track; 2. Socket body; 201. Plug-in block; 202. Base; 203. Adjusting block; 204. Conductive block; 205. Conductive column; 206. Fixed rod; 3. Telescopic track; 301. First housing; 302. Second housing; 303. Rubber telescopic sleeve; 304. First guiding block; 3041. Connecting groove; 3042. Card slot; 305. First guiding groove; 3051. Fixed block; 3052. Card block; 3053. First spring; 306. Second guiding block; 4. Second track; 5. Rubber sheet; 601. Conductive slider; 602. Rotating groove; 604. Rotating column; 605. Convex plate; 606. Guiding sliding groove; 7. First conductive strip; 8. Second conductive strip; 9. Telescopic conductive component; 901. First conductive plate; 902. Second conductive plate; 903. Third conductive plate; 904. Connecting sliding groove. Detailed implementation manners
[0038] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0039] Please refer to Figures 1-13 , the present invention provides a technical solution: an information scheduling and power supply track socket, including:
[0040] A first track 1, on which a wiring groove is provided, and a socket body 2 is connected to the wiring groove;
[0041] The second track 4 is arranged at one end of the first track 1, and there is a telescopic track 3 between the second track 4 and the first track 1. Rubber sheets 5 are arranged at both ends of the telescopic track 3, which is convenient for adjustment according to the actual required length, so as to facilitate installation in complex environments and ensure stable power supply for multiple information dispatching devices, such as monitoring lines, signal transmission lines and information processing lines;
[0042] The first conductive bar 7;
[0043] The second conductive bar 8 is arranged side by side with the first conductive bar 7 at the inner bottom end of the wiring groove;
[0044] The telescopic conductive component 9 is arranged inside the telescopic track 3 to rotatably cooperate with the second conductive bar 8 to bend the track, which is convenient for self-adaptive telescopic length according to the telescopic track 3. At the same time, the track can be bent according to the installation position to avoid obstacles on the installation position surface, which is beneficial for installation in complex environments to ensure that the information dispatching device cooperates with it to provide stable power supply;
[0045] Among them, the telescopic conductive component 9 includes a first conductive plate 901, a second conductive plate 902 and a third conductive plate 903. The first conductive plate 901 and the second conductive plate 902 are arranged side by side, and the third conductive plate 903 is slidably connected to one end of both the first conductive plate 901 and the second conductive plate 902, which is convenient for telescoping. At the same time, through the arrangement of the first conductive plate 901 and the second conductive plate 902, rotational cooperation is formed with the second conductive bar 8 and the first conductive bar 7.
[0046] Preferably, a rotating column 604 is fixed to the other end of the second conductive plate 902 through a support block, and a rotating groove 602 for rotational cooperation with the rotating column 604 is opened at one end of the second conductive bar 8, which is convenient for rotation to bend the track to avoid obstacles on the installation surface and improve the installation effect in complex environments.
[0047] Preferably, a convex plate 605 is fixed to the other end of the first conductive plate 901, and a guiding sliding groove 606 is opened on the convex plate 605. The lower surface of the first conductive bar 7 has a conductive sliding block 601 that slides inside the guiding sliding groove 606, which is convenient for the position of the first conductive bar 7 to change adaptively according to the rotation and bending degree of the second conductive plate 902 and the second conductive bar 8.
[0048] Preferably, a connecting sliding groove 904 is opened at one end of the front surface of the second conductive plate 902, and a connecting slider for inserting and sliding inside the connecting sliding groove 904 is opened at one end of the rear surface of the third conductive plate 903, which is convenient for better translation of the second conductive plate 902 and the third conductive plate 903 when adjusting the length.
[0049] Preferably, the telescopic rail 3 includes a first housing 301, a second housing 302, a rubber telescopic sleeve 303, a first guide block 304 and a first guide groove 305. The first housing 301 and the second housing 302 are arranged side by side, and the rubber telescopic sleeve 303 is arranged between the first housing 301 and the second housing 302. A first guide block 304 is fixed to one end face of the first housing 301, and a first guide groove 305 for cooperating with the first guide block 304 is formed at one end of the second housing 302. And a limiting structure for engaging with the first guide block 304 is provided inside the first guide groove 305, which is convenient for better adjusting the length of the rail. After adjusting the length, the adjusted length can be quickly locked through the limiting structure.
[0050] Preferably, the limiting structure includes a connecting groove 3041, a fixing block 3051, a clamping block 3052 and a first spring 3053. The fixing block 3051 is fixed to one end inside the first guide groove 305, and a clamping block 3052 is slidably connected to the fixing block 3051. A first spring 3053 is arranged on the lower surface of the clamping block 3052. A connecting groove 3041 for cooperating with the fixing block 3051 is formed on the lower surface of the first guide block 304. A plurality of clamping grooves 3042 for cooperating with the clamping block 3052 are formed along the long side inside the connecting groove 3041, which is convenient for locking the length position through clamping cooperation after adjusting the length of the rail, and avoiding the change of the adjusted length.
[0051] Preferably, a second guide block 306 for slidably cooperating with the first housing 301 is arranged at the edge of one end face of the second housing 302, which is convenient for better approaching or separating between the second housing 302 and the first housing 301.
[0052] Preferably, the socket body 2 includes a plug-in block 201, a base 202, an adjusting block 203, a conductive block 204, a conductive column 205 and a fixing rod 206. The plug-in block 201 is rotatably connected to the base 202, and a slot is formed on the plug-in block 201. The adjusting block 203 is fixed to the lower surface of the base 202, and two ends inside the adjusting block 203 are slidably connected with the conductive columns 205. A second spring is arranged on the conductive columns 205, and the conductive columns 205 and the plug-in block 201 are electrically connected through wires. The fixing rod 206 is fixed to the lower surface of the plug-in block 201, and the lower end of the fixing rod 206 is slidably connected with a conductive block 204 which is electrically connected to the plug-in block 201. A third spring is arranged on the conductive block 204, which is convenient for providing a stable electrical connection. At the same time, through this design, it is convenient to first cut off the power by rotating the socket body 2 in the later stage. When it is necessary to disassemble the socket body 2, it can be continuously rotated to remove the socket body 2 from the rail.
[0053] Preferably, the conductive block 204 is rectangular, and chamfers are provided at both ends of the conductive block 204, which is convenient for the socket body 2 to move better along the length of the rail.
[0054] Preferably, the cross-sections of the first conductive bar 7 and the second conductive bar 8 are both "T"-shaped, which is convenient for improving the firmness of the installation of the first conductive bar 7 and the second conductive bar 8 in the track.
[0055] The working principle and usage process of the present invention: When installing the track socket, according to the obstacles on the wall, rotation can occur between the first track 1 and the telescopic track 3. The second conductive bar 8 is rotationally matched with the second conductive plate 902, and the first conductive bar 7 is slidably matched with the first conductive plate 901. At this time, the second conductive bar 8 and the second conductive plate 902 rotate through the rotating groove 602 and the rotating column 604. The first conductive bar 7 adaptively moves and changes according to the rotation position of the second conductive bar 8, so that the conductive slider 601 slides inside the guiding chute 606. Similarly, rotation can occur between the second track 4 and the telescopic track 3 to form different bending patterns to avoid the wall obstacles. Further, when different lengths of the track are required, only need to pull the second housing 302 to the side away from the first housing 301. At this time, the folds of the rubber telescopic sleeve 303 stretch to elongate. The first guiding block 304 slides inside the first guiding groove 305, and the clamping block 3052 is squeezed to shorten the first spring 3053 until the clamping block 3052 enters inside another card slot 3042. After adjusting to the appropriate track length, the clamping block 3052 is engaged with the card slot 3042 to quickly lock the length. In addition, when the socket body 2 slides along the track to adjust the position, through the elastic forces of the second spring and the third spring, the conductive block 204 and the conductive column 205 can be in good contact with the conductive bars or conductive plates inside the first track 1, the telescopic track 3 and the second track 4 to form a stable circuit transmission.
[0056] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An information-scheduled power supply track socket, characterized in that Comprising: A first track (1), on which a wiring groove is provided, and a socket body (2) is connected to the wiring groove; A second track (4), arranged at one end of the first track (1), and there is a telescopic track (3) between the second track (4) and the first track (1), and rubber sheets (5) are arranged at both ends of the telescopic track (3); A first conductive bar (7); A second conductive bar (8), arranged side by side with the first conductive bar (7) at the inner bottom end of the wiring groove; A telescopic conductive assembly (9), arranged inside the telescopic track (3) to rotatably cooperate with the second conductive bar (8) to bend the track; Wherein, the telescopic conductive assembly (9) includes a first conductive plate (901), a second conductive plate (902) and a third conductive plate (903), the first conductive plate (901) and the second conductive plate (902) are arranged side by side, and a third conductive plate (903) is slidably connected to one end of both the first conductive plate (901) and the second conductive plate (902); The telescopic track (3) includes a first housing (301), a second housing (302), a rubber telescopic sleeve (303), a first guiding block (304) and a first guiding groove (305), the first housing (301) and the second housing (302) are arranged side by side, and the rubber telescopic sleeve (303) is arranged between the first housing (301) and the second housing (302), a first guiding block (304) is fixed on one end face of the first housing (301), a first guiding groove (305) cooperating with the first guiding block (304) is opened at one end of the second housing (302), and a limiting structure for engaging with the first guiding block (304) is provided inside the first guiding groove (305); The limiting structure includes a connecting groove (3041), a fixing block (3051), a clamping block (3052) and a first spring (3053), the fixing block (3051) is fixed at one end inside the first guiding groove (305), and a clamping block (3052) is slidably connected to the fixing block (3051), a first spring (3053) is arranged on the lower surface of the clamping block (3052), a connecting groove (3041) cooperating with the fixing block (3051) is opened on the lower surface of the first guiding block (304), and a plurality of clamping grooves (3042) cooperating with the clamping block (3052) are opened along the long side inside the connecting groove (3041).
2. The track socket for information scheduling power supply according to claim 1, characterized in that: The other end of the second conductive plate (902) is fixed with a rotating column (604) through a support block, and a rotating groove (602) for rotatably cooperating with the rotating column (604) is opened at one end of the second conductive bar (8).
3. The track socket for information scheduling power supply according to claim 1, characterized in that: The other end of the first conductive plate (901) is fixed with a convex plate (605), and a guiding sliding groove (606) is opened on the convex plate (605), and a conductive sliding block (601) for sliding inside the guiding sliding groove (606) is arranged on the lower surface of the first conductive bar (7).
4. The track socket for information scheduling power supply according to claim 1, characterized in that: One end of the front surface of the second conductive plate (902) is provided with a connecting chute (904), and one end of the rear surface of the third conductive plate (903) is provided with a connecting slider that slides inside the connecting chute (904).
5. The track socket for information scheduling power supply according to claim 1, wherein: One end edge of the second housing (302) is provided with a second guiding block (306) that slidably cooperates with the first housing (301).
6. The track socket for information scheduling power supply according to claim 1, characterized in that: The socket body (2) includes a plug-in block (201), a base (202), an adjusting block (203), a conductive block (204), a conductive column (205), and a fixing rod (206). The plug-in block (201) is rotatably connected to the base (202). A slot is provided on the plug-in block (201). The adjusting block (203) is fixed to the lower surface of the base (202). Both ends inside the adjusting block (203) are slidably connected to the conductive column (205). A second spring is provided on the conductive column (205). The conductive column (205) is electrically connected to the plug-in block (201) through a wire. The fixing rod (206) is fixed to the lower surface of the plug-in block (201). The lower end of the fixing rod (206) is slidably connected to the conductive block (204) that is electrically conductive to the plug-in block (201). A third spring is provided on the conductive block (204).
7. The track socket for information scheduling power supply according to claim 6, characterized in that: The conductive block (204) is rectangular, and both ends of the conductive block (204) have chamfers.
8. The track socket for information scheduling power supply according to claim 1, characterized in that: The cross-sections of both the first conductive strip (7) and the second conductive strip (8) are in a "T" shape.
Citation Information
Patent Citations
Bolt fastening climbing operation platform
CN116277107A
Protective door, power track and track socket
WO2024221822A1