Slide rail socket
By designing a transmission mechanism and flexible connection terminals, combined with a rotating socket housing, individual control of the slide rail socket is achieved, solving the problem of low flexibility in existing technologies and improving the convenience and flexibility of operation.
Patent Information
- Application Number
- CN202211194689.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-28
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2042-09-28
AI Technical Summary
Existing sliding rail sockets have low flexibility in use and cannot individually control the power supply to and from each socket.
A slide rail socket is designed. Through a transmission mechanism and elastic connecting terminals, the extension and retraction of the elastic connecting terminals are achieved by rotating the socket shell, thereby realizing the power supply or power cut-off of a single slide rail socket. The transmission mechanism includes components such as a first abutting rod, a transmission rod, a second abutting rod, and a pusher. Combined with an elastic reset component and a locking structure, it ensures simple and flexible operation.
The design improves the flexibility of the slide rail socket, allowing users to easily and quickly turn a single slide rail socket on or off by rotating the socket housing. The design is also simple and easy to implement.
Smart Images

Figure CN115483585B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of socket, in particular to a sliding rail socket. BACKGROUND
[0002] At present, in order to realize the adjustable position of the socket, a sliding rail socket appears, the sliding rail socket is slidably installed on the sliding rail, and the connecting terminal of the sliding rail socket is always in electrical connection with the conductive strip in the sliding rail, and correspondingly, the sliding rail sockets on the sliding rail are simultaneously controlled by the same general switch, and the use flexibility is low. SUMMARY
[0003] The present application aims to at least solve one of the problems in the prior art, and provides a sliding rail socket, which can be quickly and simply judged by the user.
[0004] The sliding rail socket provided by the embodiment of the present application comprises a socket cover body, a base and a transmission mechanism; the socket cover body comprises a socket bottom plate and a socket shell, and the socket bottom plate and the socket shell are rotationally connected; the base is arranged on one side of the socket cover body and connected with the socket bottom plate, the base is used for being slidably clamped on the sliding rail, and the base is provided with an elastic connecting terminal; the transmission mechanism is partially arranged in the socket cover body and connected with the socket shell, the transmission mechanism is partially arranged in the base and connected with the elastic connecting terminal; and by rotating the socket shell, the elastic connecting terminal can be moved under the driving of the transmission mechanism, so that the elastic connecting terminal at least partially extends out of the base or is reset and retracted into the base.
[0005] The sliding rail socket has at least the following beneficial effects: one end of the transmission mechanism is arranged in the socket cover body and abuts against the socket shell, one end of the transmission mechanism is arranged in the base and abuts against the elastic connecting terminal in the base, the socket shell is rotationally connected with the socket bottom plate, the user can rotate the socket shell, the socket shell can drive the elastic connecting terminal to move away from the base through the transmission mechanism, the elastic connecting terminal can be connected with the conductive sheet in the sliding rail, and the power supply of the sliding rail socket is realized; the user can also rotate the socket shell, the socket shell can avoid the elastic connecting terminal through the transmission mechanism, the elastic connecting terminal can be reset to be disconnected with the conductive sheet in the sliding rail, and the power-off of the sliding rail socket is realized. By rotating the socket shell, the power supply or power-off of the single sliding rail socket can be realized, and the use flexibility of the sliding rail socket is improved.
[0006] According to the sliding rail socket, the transmission mechanism comprises a first abutting rod and a transmission rod, the first abutting rod is located in the socket cover, one end of the transmission rod is connected with the first abutting rod, and the other end of the transmission rod is arranged in the base, the socket shell is provided with a driving rod, and the first abutting rod is located on the movement path of the driving rod, so that the driving rod can abut against the first abutting rod and drive the first abutting rod and the transmission rod to rotate by rotating the socket shell. The socket shell is provided with a driving rod, the transmission mechanism comprises a first abutting rod and a transmission rod, the user rotates the socket shell, and then the driving rod can rotate with the socket shell, the first abutting rod is located on the movement path of the driving rod, and then the driving rod can drive the first abutting rod to rotate, so that the first abutting rod can drive the driving rod to rotate; the driving rod, the first abutting rod and the transmission rod are simple in structure and easy to realize.
[0007] According to the sliding rail socket, the transmission mechanism further comprises a second abutting rod, the second abutting rod is arranged in the base and connected with the transmission rod, and one end of the second abutting rod is connected with the elastic connecting terminal; the transmission rod can drive the second abutting rod to rotate to push the elastic connecting terminal to at least partially extend out of the base.
[0008] According to the sliding rail socket, the elastic connecting terminal comprises an elastic conductive sheet and an abutting sheet, the abutting sheet is arranged on the side of the elastic conductive sheet close to the second abutting rod, the elastic conductive sheet is partially bent to form a terminal part, and the second abutting rod is connected with and can push the abutting sheet to make the terminal part extend out of the base.
[0009] According to the sliding rail socket, the transmission mechanism further comprises a pusher, the pusher is slidably arranged in the base, the pusher has an inclined end and a flat end, the flat end abuts against the abutting sheet, and the inclined end abuts against the second abutting rod; when the second abutting rod rotates, the pusher can be pushed to slide, and the abutting sheet is pushed by the pusher.
[0010] According to the sliding rail socket, the base is further provided with an elastic reset member, one end of the elastic reset member is connected with the terminal part, and the other end of the elastic reset member is connected with the base. By arranging the elastic reset member, the terminal part can be automatically reset after movement, without manual operation, saving time and effort.
[0011] According to the sliding rail socket, the base is further provided with an elastic reset member, one end of the elastic reset member is connected with the terminal part, and the other end of the elastic reset member is connected with the base. By arranging the elastic reset member, the terminal part can be automatically reset after movement, without manual operation, saving time and effort.
[0012] According to an embodiment of the present invention, the slide rail socket has a plurality of locking structures on its base plate. When the socket and the interface are aligned, at least one locking structure abuts against the first abutting rod and can lock the first abutting rod. The locking structures prevent the first abutting rod from rotating automatically due to interference from the external environment.
[0013] According to an embodiment of the present invention, the locking structure of the slide rail socket includes an elastic member and a limiting terminal. One end of the elastic member is connected to the socket base plate, and the other end of the elastic member is connected to the limiting terminal. A limiting groove is formed at the end of the first abutting rod, and the limiting terminal can be inserted into the limiting groove to lock the first abutting rod.
[0014] According to an embodiment of the present invention, the slide rail socket has a locking groove on its base plate, a locking structure is installed in the locking groove, and a limiting terminal portion extends out of the locking groove. By installing the locking structure in the locking groove, the installation of the locking structure is more secure.
[0015] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0016] The present invention will be further described below with reference to the accompanying drawings and embodiments;
[0017] Figure 1 This is a schematic diagram of the structure of a slide rail socket according to an embodiment of the present invention;
[0018] Figure 2 for Figure 1 Side view of the slide rail socket shown;
[0019] Figure 3 for Figure 2 AA section view of the side view shown;
[0020] Figure 4 for Figure 3 Enlarged view of section B in the sectional view shown;
[0021] Figure 5 for Figure 1 The bottom view of the slide rail socket shown;
[0022] Figure 6 for Figure 1 The diagram shows the structural structure of the socket housing of the slide rail socket.
[0023] Figure label:
[0024] Socket cover 100; socket outer shell 110; drive rod 111; socket 112; socket base plate 120; elastic element 121; limit terminal 122; locking slot 123;
[0025] Base 200; elastic connection terminal 210; elastic conductive sheet 211; terminal part 211a; abutting sheet 212; pusher 220; elastic reset member 230; opening 240;
[0026] First abutting rod 300; limiting groove 301; second abutting rod 310; transmission rod 320. DETAILED DESCRIPTION
[0027] This part will describe the specific embodiments of the present application in detail, the preferred embodiments of the present application are shown in the drawings, the role of the drawings is to supplement the description of the text part with graphics, so that people can intuitively and visually understand each technical feature and the overall technical scheme of the present application, but it cannot be understood as a limitation on the protection scope of the present application.
[0028] In the description of the present application, it should be understood that the orientation description, such as the orientation or position relationship indicated by up, down, front, back, left, right and the like, is based on the orientation or position relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present application.
[0029] In the description of the present application, several meanings are one or more, and the meaning of multiple is two or more, greater than, less than, more than, etc. are understood as not including the number, above, below, etc. are understood as including the number. If the first, second is described, it is only for the purpose of distinguishing technical features, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features or implicitly indicating the order of indicated technical features.
[0030] In the description of the present application, unless otherwise explicitly limited, the words such as setting, installing, connecting, etc. should be understood in a broad sense, and the person skilled in the art can reasonably determine the specific meaning of the above words in the present application in combination with the specific content of the technical scheme.
[0031] The following will be described with reference to Figures 1 to 6 The sliding rail socket of the present application will be described in detail.
[0032] Referring to Figures 1 to 6According to an embodiment of the present invention, a slide rail socket includes a socket cover 100, a base 200, and a transmission mechanism. The socket cover 100 includes a socket base plate 120 and a socket outer shell 110, which are rotatably connected. The socket base plate 120 is provided with a locking structure. The base 200 is disposed on one side of the socket cover 100 and connected to the socket base plate 120. The base 200 is used to slide and engage with the slide rail, and an elastic connection terminal 210 is provided in the base 200. The transmission mechanism is partially disposed within the socket cover 100 and connected to the socket outer shell 110. The transmission mechanism is also partially disposed within the base 200 and connected to the elastic connection terminal 210. By rotating the socket outer shell 110, the elastic connection terminal 210 can move under the drive of the transmission mechanism, so that the elastic connection terminal 210 at least partially extends out of the base 200, or retracts back into the base 200 and is locked by the locking structure on the socket base plate.
[0033] For example, such as Figure 1 and Figure 6 As shown, the slide rail socket may include a socket cover 100, a base 200, and a transmission mechanism. The base 200 may be located at the lower end of the socket cover 100, and a portion of the transmission mechanism may be located within the socket cover 100 and the base 200. The socket cover 100 may include a socket base plate 120 and a socket housing 110. The socket housing 110 is located at the upper end of the socket base plate 120, and the socket housing 110 is rotatably connected to the socket base plate 120. The base 200 is provided with a resilient connecting terminal 210, and the base 200 is provided with an opening 240 that allows a portion of the resilient connecting terminal 210 to extend out of the base 200. The portion of the transmission mechanism located in the socket cover 100 may abut against the socket housing 110, and the portion of the transmission mechanism located in the base 200 may abut against the resilient connecting terminal 210. When the slide rail socket is installed on the slide rail, the base 200 can slide and engage with the slide rail, and the opening 240 on the base 200 is directly opposite the conductive strip in the slide rail. When the slide rail socket is de-energized, the resilient connection terminal 210 is located inside the base 200. When the slide rail socket needs to be energized, the user can rotate the socket housing 110, which in turn drives the transmission mechanism to rotate. Then, the transmission mechanism pushes the resilient connection terminal 210 out of the opening 240 from the base 200 and connects with the conductive strip, thus energizing the slide rail socket. Afterward, the user can rotate the socket housing 110, which in turn drives the transmission mechanism to rotate. Then, the transmission mechanism can avoid the resilient connection terminal 210, and the resilient connection terminal 210 can return to the base 200 from the opening 240, disconnecting the resilient connection terminal 210 from the conductive strip, thus energizing the slide rail socket. The user controls the energization or de-energization of a single slide rail socket by rotating the socket housing 110, which is simple and convenient and improves the flexibility of using the slide rail socket.
[0034] In some embodiments of the present application, the transmission mechanism comprises a first abutting rod 300 and a transmission rod 320. The first abutting rod 300 is located in the socket cover 100, and the transmission rod 320 is connected to the first abutting rod 300 at one end and passes through the base 200 at the other end. The socket shell 110 is provided with a driving rod 111, and the first abutting rod 300 is located on the movement path of the driving rod 111, so that the driving rod 111 can be brought into abutment with the first abutting rod 300 and drive the first abutting rod 300 and the transmission rod 320 to rotate by rotating the socket shell 110. For example, as shown in Figure 2 、 Figure 3 and Figure 6 , the transmission mechanism comprises a first abutting rod 300 and a transmission rod 320. The first abutting rod 300 is located in the socket cover 100 and is horizontally arranged at the upper end of the socket bottom plate 120. The upper end of the transmission rod 320 passes through the socket bottom plate 120 and is connected to the first abutting rod 300. The socket shell 110 is provided with two driving rods 111 in vertical state, and the first abutting rod 300 is located on the movement path of the driving rod 111. When the user rotates the socket shell 110, the socket shell 110 can drive the driving rod 111 to rotate. Since the first abutting rod 300 is located on the movement path of the driving rod 111, the driving rod 111 can push the first abutting rod 300 to rotate when the driving rod 111 rotates, and in turn the first abutting rod 300 can drive the driving rod 111 to rotate. The driving rod 111, the first abutting rod 300 and the transmission rod 320 are all rod members, which are simple in structure and easy to realize.
[0035] Further, the transmission mechanism further comprises a second abutting rod 310. The second abutting rod 310 is arranged in the base 200 and is connected to the transmission rod 320. One end of the second abutting rod 310 is connected to the elastic connecting terminal 210, and the transmission rod 320 can drive the second abutting rod 310 to rotate to push the elastic connecting terminal 210 to at least partially extend out of the base 200. For example, as shown in Figure 5 , the transmission mechanism further comprises a second abutting rod 310. The second abutting rod 310 can be horizontally arranged in the base 200, the lower end of the transmission rod 320 passes through the base 200 and is connected to the second abutting rod 310, and the end of the second abutting rod 310 can abut against the elastic expansion member. When the user rotates the socket shell 110, the socket shell 110 can drive the first abutting rod 300 to rotate through the driving rod 111, and then the first abutting rod 300 can drive the second abutting rod 310 to rotate through the transmission rod 320, and in turn the second abutting rod 310 can push the elastic expansion member to partially extend out of the base 200. The second abutting rod 310 is a rod member, which is simple in structure and easy to realize.
[0036] In some embodiments of the present application, the elastic connection terminal 210 comprises an elastic conductive sheet 211 and an abutting sheet 212, the abutting sheet 212 is arranged on the side of the elastic conductive sheet 211 close to the second abutting rod 310, the elastic conductive sheet 211 is partially bent to form a terminal portion 211a, and the second abutting rod 310 is connected to and capable of pushing the abutting sheet 212 to make the terminal portion 211a extend out of the base 200. For example, as shown in Figure 5 the elastic connection terminal 210 can comprise an elastic conductive sheet 211 and an abutting sheet 212, the abutting sheet 212 is arranged on the side of the elastic conductive sheet 211 close to the second abutting rod 310, the end of the second abutting rod 310 abuts against the abutting sheet 212, the elastic conductive sheet 211 is partially bent to form a terminal portion 211a, and the terminal portion 211a can be opposite to the opening 240 on the base 200. When the user rotates the socket shell 110 to make the slide rail socket be powered on, the socket shell 110 can drive the second abutting rod 310 to rotate, and then the second abutting rod 310 can push the abutting sheet 212 to make the abutting sheet 212 drive the terminal portion 211a to extend out of the base 200 through the opening 240, at this time, the terminal portion 211a can be electrically connected with the conductive strip in the slide rail to realize the power-on of the slide rail socket; when the user rotates the socket shell 110 to make the slide rail socket be powered off, the socket shell 110 drives the second abutting rod 310 to rotate, and then the second abutting rod 310 can avoid the abutting sheet 212, under the action of the elastic force of the elastic conductive sheet 211, the terminal portion 211a can automatically rebound and reset, at this time, the electrical connection between the terminal portion 211a and the conductive sheet in the slide rail is disconnected. Through the elastic force of the elastic conductive sheet 211, the terminal portion 211a extending out of the base 200 can be automatically reset without manual operation, which saves time and effort.
[0037] Further, the transmission mechanism further comprises a pusher 220, the pusher 220 is slidably arranged in the base 200, the pusher 220 has an inclined end and a flat end, the flat end abuts against the abutting sheet 212, and the inclined end abuts against the second abutting rod 310, the second abutting rod 310 can push the pusher 220 to slide when rotating, and the pusher 220 can push the abutting sheet 212. For example, as shown in Figure 5 the transmission mechanism further comprises a pusher 220, the pusher 220 is slidably arranged in the base 200, and the pusher 220 can be located between the second abutting rod 310 and the abutting sheet 212, the pusher 220 has an inclined end and a flat end, and the second abutting rod 310 can have an arc end, the inclined end of the pusher 220 abuts against the arc end of the second abutting rod 310, and the flat end of the pusher 220 abuts against the abutting sheet 212. By arranging the pusher 220 and abutting the inclined end of the pusher 220 against the second abutting rod 310, the force used by the second abutting rod 310 to push the pusher 220 to move can be reduced, and then when the slide rail socket is powered on, the force used by the user to rotate the socket shell 110 can be reduced.
[0038] Further, the base 200 is further provided with an elastic reset member 230, one end of the elastic reset member 230 is connected with the terminal part 211a, and the other end of the elastic reset member 230 is connected with the base 200. For example, as shown in Figure 5 the elastic reset member 230 can be arranged in the base 200, one end of the elastic reset member 230 is connected with the terminal part 211a, and the other end of the elastic reset member 230 is connected with the base 200. By arranging the elastic reset member 230, the terminal part 211a can be automatically reset after being moved, without manual operation, saving time and effort.
[0039] Specifically, the elastic reset member 230 can include a spring, one end of the spring is connected with the terminal part 211a, and the other end of the spring is connected with the base 200.
[0040] Further, in order to improve the reset effect of the elastic connection terminal 210, one elastic connection terminal 210 can correspond to two elastic reset members 230.
[0041] In some embodiments of the present application, referring to Figure 1 and Figure 6 , the socket base plate 120 is provided with an interface, the socket shell 110 is provided with a socket 112, and the socket 112 can be opposite or staggered with the interface by rotating the socket shell 110; when the socket shell 110 is rotated to make the socket 112 opposite to the interface, the elastic connection terminal 210 can at least partially extend out of the base 200 under the drive of the transmission mechanism; when the socket shell 110 is rotated to make the socket 112 staggered with the interface, the elastic connection terminal 210 can be reset and retracted into the base 200.
[0042] In some embodiments of the present application, the socket base plate 120 is provided with a plurality of locking structures, at least one locking structure is in abutment with the first abutment rod 300 and can lock the first abutment rod 300 when the socket 112 is opposite to the interface. For example, as shown in Figure 3 and Figure 4As shown, two sets of locking structures are arranged on the socket bottom plate 120, each set of locking structures is provided with two locking structures, and the two locking structures are arranged opposite to each other on the socket bottom plate 120. The two locking structures in each set correspond to the two ends of the first abutting rod 300. The two sets of locking structures can be divided into a first set of locking structures and a second set of locking structures. When the first abutting rod 300 is connected with the first set of locking structures, the slide rail socket is in a power-off state. When the first abutting rod 300 is connected with the second set of locking structures, the slide rail socket is in a power-on state. Further, by arranging the first set of locking structures and the second set of locking structures, when the first set of locking structures is connected with the first abutting rod 300, the slide rail socket can be in a stable power-on state. When the second set of locking structures is connected with the first abutting rod 300, the slide rail socket can be in a stable power-off state, thereby avoiding the slide rail socket from rotating due to non-human factors.
[0043] Specifically, the locking structure includes an elastic member 121 and a limiting terminal 122. One end of the elastic member 121 is connected with the socket bottom plate 120, and the other end of the elastic member 121 is connected with the limiting terminal 122. The end of the first abutting rod 300 is provided with a limiting groove 301, and the limiting terminal 122 can be inserted into the limiting groove 301 to lock the first abutting rod 300. For example, as shown in FIG. 6, the limiting terminal 122 is inserted into the limiting groove 301, and the elastic member 121 is arranged on the limiting terminal 122 and the socket bottom plate 120, so that the first abutting rod 300 is locked. Figure 3 and Figure 4As shown, the locking structure comprises an elastic member 121 and a limiting terminal 122, one end of the elastic member 121 can be connected with the socket bottom plate 120, the other end of the elastic member 121 can be connected with the limiting terminal 122, the end of the first abutting rod 300 can be provided with a limiting groove 301, the first abutting rod 300 is horizontally arranged on the upper end of the socket bottom plate 120, the limiting terminal 122 is located on the moving path of the first abutting rod 300, the socket shell 110 rotates, thereby driving the first abutting rod 300 to rotate, causing the first abutting rod 300 to push the limiting terminal 122 to avoid, so that the limiting terminal 122 is partially inserted into the limiting groove 301, at this time, under the action of the elastic member 121, the limiting terminal 122 locks the first abutting rod 300, at this time, the slide rail socket is in a power-on state; the socket shell 110 is rotated again, the socket shell 110 drives the first abutting rod 300 to rotate, the first abutting rod 300 pushes the limiting terminal 122 to avoid, causing the first abutting rod 300 to be separated from the limiting terminal 122, at this time, the slide rail socket is in a power-off state. Through the elastic member 121 and the limiting terminal 122, when the slide rail socket is in a power-on state, the limiting terminal 122 can be inserted into the limiting groove 301 of the first abutting rod 300 to lock the first abutting rod 300, thereby avoiding the first abutting rod 300 from moving by itself under the action of non-human operation; at the same time, when the first abutting rod 300 pushes the limiting terminal 122 to avoid, the limiting terminal 122 will have a reaction force on the first abutting rod 300 at the same time, the user can stop rotating the socket shell 110 when the reaction force disappears, and at this time the slide rail socket remains in a power-on state.
[0044] Specifically, the elastic member 121 is a spring.
[0045] In some embodiments of the present application, the socket bottom plate 120 is provided with a clamping groove 123, the locking structure is installed in the clamping groove 123, and the limiting terminal 122 partially extends out of the clamping groove 123. For example, as shown in Figure 3 and Figure 4 As shown, four clamping grooves 123 are arranged on the socket bottom plate 120, corresponding, four locking structures are arranged on the socket bottom plate 120, the limiting structure corresponds to the clamping groove 123 one by one, the limiting structure is installed in the clamping groove 123, and the limiting terminal 122 partially extends out of the clamping groove 123. By arranging the clamping groove 123 on the socket bottom plate 120, the installation of the locking structure is facilitated.
[0046] Although the embodiments of the present application have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and purposes of the present application, and the scope of the present application is defined by the claims and their equivalents.
Claims
1. A slide rail socket, characterized in that, include: The socket cover (100) includes a socket base plate (120) and a socket outer shell (110), the socket base plate (120) and the socket outer shell (110) are rotatably connected, and the socket base plate is provided with a locking structure; The base (200) is located on one side of the socket cover (100) and connected to the socket base plate (120). The base (200) is used to slide and engage with the slide rail, and the base (200) is provided with an elastic connection terminal (210). The transmission mechanism is partially disposed within the socket cover (100) and connected to the socket housing (110); the transmission mechanism is partially disposed within the base (200) and connected to the elastic connection terminal (210); and... By rotating the socket housing (110), the resilient connecting terminal (210) can be moved under the drive of the transmission mechanism, so that the resilient connecting terminal (210) extends at least partially out of the base (200), or retracts back into the base (200) and is locked by the locking structure; The transmission mechanism includes a first abutment rod (300) and a transmission rod (320). The first abutment rod (300) is located in the socket cover (100). One end of the transmission rod (320) is connected to the first abutment rod (300), and the other end of the transmission rod (320) passes through the base (200). The socket housing (110) is provided with a drive rod (111), and the first abutment rod (300) is located on the movement path of the drive rod (111). Thus, by rotating the socket housing (110), the drive rod (111) can abut against the first abutment rod (300) and drive the first abutment rod (300) and the transmission rod (320) to rotate. The transmission mechanism further includes a second abutment rod (310), which is disposed in the base (200) and connected to the transmission rod (320). One end of the second abutment rod (310) is connected to the elastic connection terminal (210), and the transmission rod (320) can drive the second abutment rod (310) to rotate so as to push the elastic connection terminal (210) to at least partially extend out of the base (200). The socket base plate (120) is provided with an interface, and the socket housing (110) is provided with a socket (112). By rotating the socket housing (110), the socket (112) can be made to face or be offset from the interface. When the socket housing (110) is rotated so that the socket (112) is facing the interface, the elastic connecting terminal (210) can extend at least partially out of the base (200) under the drive of the transmission mechanism. When the socket housing (110) is rotated so that the socket (112) is offset from the interface, the elastic connecting terminal (210) can be reset and retracted into the base (200).
2. The slide rail socket according to claim 1, characterized in that, The elastic connection terminal (210) includes an elastic conductive sheet (211) and an abutment sheet (212). The abutment sheet (212) is disposed on the side of the elastic conductive sheet (211) near the second abutment rod (310). The elastic conductive sheet (211) is partially bent to form a terminal portion (211a). The second abutment rod (310) is connected to and can push the abutment sheet (212) so that the terminal portion (211a) extends out of the base (200).
3. The slide rail socket according to claim 2, characterized in that, The transmission mechanism further includes a pusher (220), which is slidably disposed on the base (200). The pusher (220) has an inclined end and a flat end. The flat end abuts against the abutting piece (212), and the inclined end abuts against the second abutting rod (310). When the second abutting rod (310) rotates, it can push the pusher (220) to slide and push the abutting piece (212) through the pusher (220).
4. The slide rail socket according to claim 3, characterized in that, The base (200) is also provided with an elastic reset member (230), one end of which is connected to the terminal part (211a), and the other end of which is connected to the base (200).
5. The slide rail socket according to claim 1, characterized in that, The socket base plate (120) is provided with a plurality of locking structures. When the socket (112) is opposite to the interface, at least one of the locking structures abuts against the first abutting rod (300) and can lock the first abutting rod (300).
6. The slide rail socket according to claim 5, characterized in that, The locking structure includes an elastic element (121) and a limiting terminal (122). One end of the elastic element (121) is connected to the socket base plate (120), and the other end of the elastic element (121) is connected to the limiting terminal (122). A limiting groove (301) is provided at the end of the first abutment rod (300), and the limiting terminal (122) can be inserted into the limiting groove (301) to lock the first abutment rod (300).
7. The slide rail socket according to claim 6, characterized in that, The socket base plate (120) is provided with a locking groove (123), the locking structure is installed in the locking groove (123), and the limiting terminal (122) extends out of the locking groove (123).
Citation Information
Patent Citations
Slide rail socket
CN219106698U
Convenient replaceable sliding socket
CN2791961Y