Stay wire module and socket using same
By integrating a pull-cord module into the socket, the problem of users having to carry data cables is solved, enabling automatic storage and direct power supply, thus improving user experience and safety.
Patent Information
- Application Number
- CN202520454862.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-14
AI Technical Summary
While existing desktop sockets offer convenient power access, users still need to carry data cables, which affects desktop tidiness and poses safety hazards. Existing technologies need to be further simplified in operation and reduce reliance on additional accessories.
Design a pull-cord module comprising a module housing, a cord reel, a return spring, and a positioning control component, which can automatically retract the charging cable or data cable into the socket and be used directly through the cable outlet.
It eliminates the need to carry extra data cables, keeps the desktop tidy, simplifies operations, reduces security risks, and improves user experience and product competitiveness.
Smart Images

Figure CN223957028U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to socket equipment technical field especially relates to a stay wire module and the socket of application thereof. BACKGROUND
[0002] In order to keep the neat and beautiful of the desktop and reduce the security risk, the desktop socket is widely used in office environment. This socket usually integrates multiple function interfaces, including power interface, telephone interface and network interface, etc. to meet the diversified needs of users. This design not only facilitates the use of strong and weak electricity, but also takes into account the aesthetics, practicality and safety and reliability.
[0003] With the popularity of electronic devices, people's demand for convenient power supply is growing. Therefore, modern desktop sockets usually integrate standardized weak power interfaces, such as Type-C interface. This design allows users to power devices using Type-C data lines without carrying heavy power adapters, greatly improving the convenience of use.
[0004] However, although the integration of Type-C interface simplifies the power supply process, users still need to carry data lines. This situation may cause inconvenience in some scenarios, such as when users forget to carry data lines or data lines are damaged, which cannot charge the device. In addition, the scattered data lines on the desktop may affect the neatness of the work environment, and even may cause safety hazards.
[0005] Therefore, although the prior art has solved the problem of convenient power supply to a certain extent, there is still room for improvement. The ideal solution should be able to further simplify user operations, reduce dependence on additional accessories, and maintain the neatness and order of the desktop. This not only improves user experience, but also increases product competitiveness. In view of the above problems, the prior art needs to be improved. SUMMARY
[0006] In order to solve the above problems, the utility model aims at providing a stay wire module, which has the advantages of simplifying user operation, reducing dependence on additional accessories, and maintaining the neatness and order of the desktop.
[0007] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0008] The application provides a stay wire module, and the technical scheme is as follows: a module shell, a wire reel arranged in the module shell, a charging wire or data line wound on the wire reel, a return spring connected to the wire reel for providing restoring force to the wire reel, and a positioning control assembly connected to the wire reel; the faceplate of the module shell is provided with a wire outlet, and the end of the charging wire or data line is extended from the wire outlet through a data connector.
[0009] Further, the end face of the module housing is provided with a sink groove, and the outlet is arranged in the sink groove; and the charging wire or the data wire and the end thereof outside the outlet can be accommodated in the sink groove when the wire reel is fully wound.
[0010] Further, the end of the charging wire or the data wire is magnetically adsorbed in the sink groove or is buckled and fixed in the sink groove.
[0011] Further, the module housing comprises a base and a panel connected to the base, the base comprises a left housing and a right housing; the left housing and the right housing are buckled and fixed to form a shell cavity therebetween, and the panel is fixed to the opening of the base formed by the left housing and the right housing; the wire reel, the return spring and the positioning control assembly are arranged in the shell cavity between the left housing and the right housing.
[0012] Further, the wire reel is further provided with a mounting disc, the mounting disc is provided with a brush connected to the charging wire; the inside of the module housing on one side of the mounting disc is provided with a conductive disc, the conductive disc is provided with a plurality of concentric conductive rings, and the brush is pressed against the plurality of concentric conductive rings.
[0013] Further, the return spring is constructed as a coil spring, the outer end of the coil spring is fixedly arranged, and the inner end of the coil spring is connected to the shaft rod of the wire reel.
[0014] Further, the back side of the conductive disc is provided with a mounting groove, and the coil spring is arranged in the mounting groove; the shaft rod of the wire reel penetrates the conductive disc and enters the mounting groove.
[0015] Further, the positioning control assembly comprises a positioning disc fixed to the wire reel and rotating synchronously therewith, a positioning block rotatingly arranged in the module housing beside the positioning disc, a torsion spring driving the positioning block to reset, and a positioning gear coaxially arranged with the gear disc; a plurality of positioning grooves are regularly arranged on the circumferential edge of the positioning disc, the positioning block comprises a swing rod in the middle portion and first and second clamping arms arranged on both sides of the swing rod; the positioning disc rotates clockwise or counterclockwise with the wire reel, the edge of the positioning disc acts on the swing rod to drive the positioning block to swing clockwise or counterclockwise, and the first and second clamping arms on both sides drive the positioning gear to rotate in a direction; and the positioning gear cooperates with the first and second clamping arms to control the swing angle of the positioning block, thereby controlling the rotation path of the swing rod into or out of the positioning groove of the positioning disc.
[0016] Further, the application further provides that the positioning gear comprises a plurality of blades arranged circumferentially, a first clamping groove is formed between two adjacent blades, and a second clamping groove is arranged on each blade; when the end of the first clamping arm is clamped into the second clamping groove, the swing lever is pressed against the circumferential edge of the positioning disc, and the wire reel can continuously pull the wire out; when the end of the second clamping arm is clamped into the second clamping groove, the swing lever can be clamped into the positioning groove of the positioning disc and limit the wire reel to wind the wire; when the end of the second clamping arm is clamped into the first clamping groove, the swing lever exits the rotation path of the positioning groove of the positioning disc, and the wire reel can continuously wind the wire.
[0017] Further, the application further provides that the module shell is further provided with a weak current module, and the weak current module is arranged on the end face of the module shell and is provided with a power taking port.
[0018] Further, the application further provides a socket comprising the wire pulling module.
[0019] As can be seen, the application provides a wire pulling module and a socket applying the same, which comprises a module shell, a wire reel arranged in the module shell, a charging wire or a data line wound on the wire reel, a return spring connected to the wire reel and used for providing a restoring force to the wire reel, and a positioning control assembly connected to the wire reel; a wire outlet is arranged on the panel of the module shell, and the end of the charging wire or the data line is extended out of the wire outlet through a data connector. By integrating the wire pulling module in the socket, the user can directly use the built-in charging wire or data line for charging or data transmission, without the need to carry additional data lines, so that the user operation is simplified, the dependence on additional accessories is reduced, and the desktop is kept neat and orderly. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is a perspective structural schematic view of the wire pulling module.
[0021] Figure 2 It is an exploded view of the structure of the wire pulling module.
[0022] Figure 3 It is a schematic view of the internal structure of the wire pulling module. Figure 1 .
[0023] Figure 4 It is a schematic view of the internal structure of the wire pulling module. Figure 2 .
[0024] Figure 5 It is an installation schematic view of the positioning control assembly and the shell in the wire pulling module.
[0025] Figure 6 It is a structural schematic view of the conductive disc.
[0026] Figure 7 A schematic view of the structure of the installation disc.
[0027] Figure 8 A schematic view of the positioning control assembly in the normal state.
[0028] Figure 9 A schematic view of the positioning control assembly in the pull line state.
[0029] Figure 10 A schematic view of the positioning control assembly in the card line state.
[0030] Figure 11 A schematic view of the positioning control assembly in the continuous take-up state.
[0031] Figure 12 A schematic view of the installation of the socket and the pull line module described in Example 2. DETAILED DESCRIPTION
[0032] The embodiments of the present application are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar notations represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by reference to the drawings are exemplary and are intended to explain the present application, and cannot be understood as a limitation of the present application.
[0033] In the description of the present application, it is understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "clockwise", "counterclockwise" are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements indicated must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.
[0034] In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more, unless otherwise explicitly limited.
[0035] In the utility model, unless another definite provision and limitation, the term "mount", "link", "connect", "fix" and so on term should do broad sense understanding, for example, can be fixed connection, also can be detachable connection, or integrally connect, can be mechanical connection, also can be electric connection, can be direct connection, also can indirectly connect through intermediate medium, can be two element internal communication. For ordinary skilled in the art, can understand the concrete meaning of above -mentioned term in the utility model according to specific circumstances.
[0036] In the utility model, unless another definite provision and limitation, first feature is "on" or "under" second feature can include that first and second features directly contact, also can include that first and second features are not directly contact but contact through additional feature between them. Moreover, first feature "on", "above" and "upper surface" of second feature includes that first feature is directly above and obliquely above second feature, or just indicates that the horizontal height of first feature is higher than second feature. First feature "under", "below" and "lower surface" of second feature includes that first feature is directly below and obliquely below second feature, or just indicates that the horizontal height of first feature is less than second feature.
[0037] Embodiment 1:
[0038] As Figures 1-11As shown, this embodiment proposes a cable reel module, including a module housing 1, a cable reel 2 disposed inside the module housing 1, a charging cable 3 or data cable wound on the cable reel 2, a return spring 4 connected to the cable reel 2 to provide restoring force to the cable reel 2, and a positioning control component connected to the cable reel 2. The panel of the module housing 1 has a cable outlet 15, and the end of the charging cable 3 or data cable extends out of the cable outlet 15 through a data connector. The module housing 1 serves as an integral support structure, and its internal space accommodates the cable reel 2, the return spring 4, and the positioning control component. The cable reel 2 is used to wind the charging cable 3 or data cable, and its rotation enables the charging cable 3 or data cable to be wound and unwound. The return spring 4 is connected to the cable reel 2 and provides restoring force after the charging cable 3 or data cable is released, allowing the cable reel 2 to automatically rewind the charging cable 3 or data cable. The positioning control component controls the rotation position of the cable reel 2 to ensure accurate positioning of the charging cable 3 or data cable during the winding and unwinding process. The cable outlet 15 is located on the panel of the module housing 1. The end of the charging cable 3 or data cable extends out of the cable outlet 15 through a data connector, facilitating connection to external devices. Therefore, the technical solution of this application solves the structural design problem of the pull-out module through the combination of the module housing 1, the cable reel 2, the charging cable 3 or data cable, the return spring 4, and the positioning control component. The module housing 1 provides overall support and protection, and can be installed as a single module in devices such as sockets. Furthermore, the charging cable 3 or data cable is directly installed inside the module housing 1 for direct power supply to electronic devices, eliminating the need for customers to provide their own charging cable 3, making it more convenient. Further, the cable reel 2 is used to wind the charging cable 3 or data cable and realize the function of retracting and extending the charging cable 3 or data cable. The return spring 4 provides restoring force to the cable reel 2, ensuring that the charging cable 3 or data cable can automatically retract after release. The positioning control component is used to control the rotation position of the cable reel 2, ensuring accurate positioning of the charging cable 3 or data cable during the retraction and extension process. The design of the outlet 15 and the data connector allows the charging cable 3 or data cable to easily extend out of the module housing 1 and connect to external devices. These technical features work together to achieve the functions of retracting, positioning, and restoring the charging cable 3 or data cable, so that the charging cable 3 or data cable can be rolled up and stored when not in use, avoiding its messy arrangement.
[0039] In a further aspect, a recess 16 is formed on the end face of the module housing 1, and the wire outlet 15 is formed in the recess 16. When the cord reel 2 is in a fully retracted state, the charging cord 3 or data cord and its end portion outside the wire outlet 15 can be accommodated in the recess 16. The recess 16 can be designed as a recessed area on the end face of the module housing 1, and the depth and width of the recessed area can be adjusted according to the diameter and length of the charging cord 3 or data cord to ensure that the charging cord 3 or data cord and its end portion can be fully accommodated. The wire outlet 15 is arranged in the recess 16, which can further optimize the accommodation effect of the charging cord 3 or data cord and avoid the charging cord 3 or data cord being exposed in the fully retracted state. The shape of the recess 16 can be rectangular, circular or other suitable shapes, and the specific shape can be selected according to the overall design of the module housing 1 and the layout of the charging cord 3 or data cord. By forming the recess 16 on the end face of the module housing 1 and forming the wire outlet 15 in the recess 16, the charging cord 3 or data cord and its end portion can be accommodated in the recess 16 in the fully retracted state. This design solves the problem that the charging cord 3 or data cord and its end portion cannot be effectively accommodated in the fully retracted state, thereby maintaining a clean appearance and reducing safety hazards. The design of the recess 16 not only provides accommodation space for the charging cord 3 or data cord and its end portion, but also further optimizes the accommodation effect of the charging cord 3 or data cord by arranging the wire outlet 15 in the recess 16. Compared with the prior art, the technical solution of the present application has significant advantages in maintaining a clean appearance and reducing safety hazards, and the structure is simple and easy to implement.
[0040] Further, the end of the charging cord 3 or data cord is magnetically attracted to the recess 16 or is snap-fitted to the recess 16. As shown in the figure, a magnet can be built into the end of the charging cord 3 or data cord, and an iron sheet 161 is arranged inside the recess or the module housing inside the recess, so that the charging cord 3 or data cord and its end portion can be fixed in the recess in the fully retracted state, avoiding looseness and disorder.
[0041] As Figures 2-5As shown, the module housing 1 includes a base, and a panel 12 connected to the base, the base includes a left housing 13 and a right housing 14. The left housing 13 and the right housing 14 are snap-fitted to form a shell cavity therebetween, and the panel 12 is fixed to the base opening formed by the left housing 13 and the right housing 14. The wire reel 2, the return spring 4 and the positioning control assembly are all arranged inside the shell cavity between the left housing 13 and the right housing 14. Among them, snap-fitting is a common mechanical connection method, through the snap structure on the left housing 13 and the right housing 14, the mutual engagement is realized, the fixed connection of the two is realized. This connection method not only simplifies the assembly process, but also improves the reliability of the connection. The panel 12 is fixed to the base opening, which can be achieved by screwing, bonding or other mechanical fixing methods, to ensure the stable connection between the panel 12 and the base. The space layout inside the shell cavity is optimized, the wire reel 2, the return spring 4 and the positioning control assembly are all arranged in the shell cavity, this design not only saves space, but also improves the integrity and stability of the module. Specifically, the snap-fitting of the left housing 13 and the right housing 14 can be achieved in various ways, such as setting the snap protrusions and grooves matching each other on the edges of the left housing 13 and the right housing 14, and fixing them by pressing. The fixing method of the panel 12 can be further optimized, such as setting a sealing ring between the panel 12 and the base opening to improve the waterproof performance of the module. The layout inside the shell cavity can be further adjusted, such as setting the wire reel 2 and the return spring 4 at the central position of the shell cavity, and setting the positioning control assembly at the edge of the shell cavity, to optimize the space utilization and improve the stability of the module. Thus, the technical scheme of the present application simplifies the assembly process of the housing, improves the integrity and stability of the module through the structural design of the module housing 1. The snap-fitting of the left housing 13 and the right housing 14 not only simplifies the assembly steps, but also improves the reliability of the connection. The fixing method of the panel 12 further enhances the durability of the module. The space layout inside the shell cavity is optimized, the reasonable arrangement of the wire reel 2, the return spring 4 and the positioning control assembly not only saves space, but also improves the overall performance of the module. Compared with the prior art, the technical scheme of the present application has obvious advantages in simplifying the structure, improving the assembly convenience and enhancing the stability of the module.
[0042] As Figure 7As shown, the wire coil 2 is also fixedly connected with a mounting disc 21, and the mounting disc 21 is provided with a brush 22 connected with the charging wire 3. The inside of the module shell 1 on one side of the mounting disc 21 is provided with a conductive disc 23, and the conductive disc 23 is provided with a plurality of concentric conductive rings 231, and the brush 22 is pressed against the plurality of concentric conductive rings 231. Specifically, the mounting disc 21 contacts the concentric conductive rings 231 on the conductive disc 23 through the brush 22, realizing the electrical connection between the charging wire 3 and the conductive disc 23. The brush 22 is pressed against the conductive ring, ensuring the stability and reliability of the electrical connection. This design solves the problem of unstable electrical connection between the charging wire 3 and the conductive disc 23 through the cooperation of the mounting disc 21 and the conductive disc 23, and improves the overall performance of the module. As a preferred embodiment, the brush 22 can be made of elastic material to ensure that it can be tightly pressed against the conductive ring, thereby ensuring the stability of the electrical connection. The concentric conductive rings 231 on the conductive disc 23 can be made of high-conductivity materials such as copper or silver to reduce resistance and improve conductivity efficiency. In addition, the number and spacing of the conductive rings can be adjusted according to actual needs to adapt to different application scenarios.
[0043] As Figure 3As shown, the return spring 4 is constructed as a coil spring, with its outer end fixedly mounted and its inner end connected to the shaft 20 of the coil 2. Specifically, the outer end of the coil spring can be fixed in various ways. For example, it can be fixed to the internal structure of the module housing 1, or fixed to a specific position in the housing via mechanical connections such as clips or screws. The connection between the inner end of the coil spring and the shaft 20 of the coil 2 can be achieved through welding, riveting, or threaded connections. The elastic force of the coil spring allows the coil 2 to automatically return to its original position when rotating, ensuring the stable and reliable winding and unwinding of the charging cable 3 or data cable. In a specific implementation, a mounting groove 24 is constructed on the back side of the conductive disk 23, and the coil spring is placed in the mounting groove 24. The shaft 20 of the coil 2 passes through the conductive disk 23 and enters the mounting groove 24. The design of the mounting groove 24 provides a fixed mounting space for the coil spring, ensuring its stability and reliability inside the module housing 1. The outer end of the coil spring is fixedly mounted, while the inner end is connected to the central shaft 20 of the coil 2, thus providing a restoring force to the coil 2. The central shaft 20 of the coil 2 passes through the conductive disk 23 and enters the mounting groove 24, further ensuring a stable connection between the coil 2 and the coil spring, allowing the coil 2 to operate smoothly when retracting or extending the charging cable 3 or data cable. Specifically, the mounting groove 24 can be constructed by machining a groove on the support on the back side of the conductive disk 23. The size and shape of the groove should match the shape of the coil spring to ensure that the coil spring can be securely embedded within it. The outer end of the coil spring can be fixed in the mounting groove 24 by welding, riveting, or other fixing methods, while the inner end is connected to the coil 2 via the central shaft 20. The central shaft 20 passes through the conductive disk 23 and enters the mounting groove 24, which can be achieved by threaded connection, snap-fit connection, or other mechanical connection methods to ensure a firm connection. The depth of the mounting groove 24 can be slightly greater than the thickness of the coil spring, so that after the coil spring is installed, its outer end can be completely embedded in the mounting groove 24, preventing the coil spring from shifting or loosening during operation. In addition, the inner wall of the mounting groove 24 can be designed as a smooth surface to reduce the frictional resistance of the coil spring during operation and improve the operating efficiency of the coil 2.
[0044] like Figure 4,5 and 8-11, the positioning control assembly comprises a positioning disc 51 fixed on the wire disc 2 and rotating synchronously with the wire disc 2, a positioning block 52 rotating in the module housing 1 beside the positioning disc 51, a torsion spring 53 driving the positioning block 52 to reset, and a positioning gear 54 coaxially arranged with the tooth disc. The circumferential edge of the positioning disc 51 is regularly provided with a plurality of positioning grooves 511, and the positioning block 52 comprises a swing rod 521 in the middle and first and second clamping arms 522 and 523 arranged on both sides of the swing rod 521. When the positioning disc 51 rotates clockwise or counterclockwise with the wire disc 2, the edge of the positioning disc 51 acts on the swing rod 521 to drive the positioning block 52 to swing clockwise or counterclockwise, and the first and second clamping arms 522 and 523 on both sides drive the positioning gear 54 to rotate in a certain direction. And the positioning gear 54 cooperates with the first and second clamping arms 522 and 523 to control the swing angle of the positioning block 52, and further control the swing rod 521 to enter or exit the rotation path of the positioning groove 511 of the positioning disc 51. Specifically, the positioning disc 51 rotates synchronously with the wire disc 2, the positioning groove 511 of the edge thereof interacts with the swing rod 521 of the positioning block 52 to drive the positioning block 52 to swing. The first and second clamping arms 522 and 523 of the positioning block 52 cooperate with the positioning gear 54 to control the swing angle of the positioning block 52, thereby accurately controlling the swing rod 521 to enter or exit the rotation path of the positioning groove 511. This design ensures the positioning accuracy and controllability of the wire disc 2 during the winding and unwinding process, and solves the problem of inaccurate length of the charging wire 3 or data line during winding and unwinding. In a specific embodiment, the positioning gear 54 comprises a plurality of blades 541 arranged circumferentially, a first clamping groove 542 is formed between adjacent two blades 541, and a second clamping groove 543 is formed on each blade 541. As shown in the figure Figures 8-11 , the wire disc 2 rotates clockwise to wind the wire and counterclockwise to unwind the wire; wherein Figure 9 , when the end of the first clamping arm 522 is clamped into the second clamping groove 543, the swing rod 521 is pressed against the circumferential edge of the positioning disc 51, and the wire disc 2 can continuously pull the wire outwards. As shown in the figure Figure 10 , when the end of the second clamping arm 523 is clamped into the second clamping groove 543, the swing rod 521 can be clamped into the positioning groove 511 of the positioning disc 51 and limit the wire disc 2 to wind the wire. As shown in the figure Figure 11In the shown state, when the end of the second clamping arm 523 is clamped into the first clamping slot 542, the swing lever 521 exits the positioning slot 511 of the positioning disc 51 and rotates out of the path, and the wire reel 2 can continue to take up the wire. In this scheme, the design of the blades 541 of the positioning gear 54 and the clamping slots allows the first clamping arm 522 and the second clamping arm 523 to control the position of the swing lever 521 by clamping into different clamping slots, thereby accurately controlling the wire drawing and take-up actions of the wire reel 2. As a preferred embodiment, the blades 541 of the positioning gear 54 can be made of high-strength wear-resistant materials to improve their service life and reliability. In addition, the depth and width of the clamping slots can be adjusted according to actual needs to ensure that the clamping arms can be smoothly clamped and kept stable. Further, the shape and size of the swing lever 521 can also be optimized according to the size and weight of the wire reel 2 to ensure its stability and accuracy when pressed and clamped. Thus, the technical scheme of the present application realizes accurate positioning control of the wire reel 2 during wire drawing and take-up through the design of the blades 541 of the positioning gear 54 and the clamping slots. Compared with the prior art, this scheme has higher control accuracy and reliability, and can effectively solve the technical problem of inaccurate positioning control of the wire reel 2 during wire drawing and take-up.
[0045] In addition, the module housing 1 is also provided with a weak current module 6, and the weak current module 6 is arranged on the end face of the module housing 1 to form a power taking port 61. The weak current module 6 can include but is not limited to common weak current power supply interfaces such as USB interfaces and Type-C interfaces. The power taking port 61 can be formed by opening a corresponding interface slot on the end face of the module housing 1 and fixing the weak current module 6 in the interface slot, thereby realizing the power taking function. Specifically, the weak current module 6 can be connected to the circuit board inside the module housing 1 by welding or plugging to ensure stable transmission of power. As a preferred embodiment, the weak current module 6 can be integrated at the edge of the end face of the module housing 1, so that the user can easily access the power line during use. Through the above technical scheme, the technical problem of integrating the weak current module 6 in the module housing 1 and forming the power taking port 61 is solved. The arrangement of the weak current module 6 enables the module housing 1 to provide a weak current power supply interface, and the formation of the power taking port 61 facilitates the user to directly take power without the need for an additional power adapter. This design not only improves the functionality of the module housing 1, but also enhances its practicality and convenience. Compared with the prior art, the technical scheme of the present application integrates the weak current module 6 in the module housing 1, reduces the dependence on external equipment, simplifies the power taking process, and at the same time maintains the compactness and aesthetics of the module housing 1.
[0046] Example 2:
[0047] As Figure 12As shown, the embodiment provides a socket, the socket 7 comprises a pull wire module, the socket 7 is internally constructed with a mounting cavity 71, and the pull wire module is embedded in the mounting cavity 71. The pull wire module adopts the pull wire module described in embodiment 1. The application solves the problems of convenience, aesthetics, practicality and safety and reliability of strong and weak electricity by integrating the pull wire module into the socket 7. The design of the mounting cavity 71 in the socket 7 enables the pull wire module to be stably embedded therein, which not only maintains the neatness and aesthetics of the desktop, but also reduces the security risks. Through this design, users do not need to additionally equip data lines, and can directly take electricity through the socket 7, thereby improving the convenience and safety of use.
[0048] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "example", "specific example" or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily mean the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0049] Although the embodiments of the present application have been shown and described above, it should be understood that the above-described embodiments are exemplary and should not be construed as limiting the present application, and those skilled in the art can make changes, modifications, replacements and variations to the above-described embodiments without departing from the principles and spirits of the present application within the scope of the present application.
Claims
1. A stay module, characterized by: The module housing (1) is provided with a wire coil (2) inside, a charging wire (3) or a data wire wound on the wire coil (2), a return spring (4) connected to the wire coil (2) for providing a restoring force to the wire coil (2), and a positioning control assembly connected to the wire coil (2); the faceplate (12) of the module housing (1) is provided with a wire outlet (15), and the end of the charging wire (3) or the data wire extends out of the wire outlet (15) through a data connector.
2. A stay wire module according to claim 1, characterized in that: The end face of the module housing (1) is provided with a sink (16), and the wire outlet (15) is formed in the sink (16); when the wire coil (2) is fully wound, the charging wire (3) or the data wire and its end outside the wire outlet (15) can be accommodated in the sink (16).
3. A stay wire module according to claim 2, characterized in that: The end of the charging wire (3) or the data wire is magnetically adsorbed in the sink (16) or is buckled and fixed in the sink (16).
4. The guyed tower module of claim 2, wherein: The module housing (1) comprises a base and a faceplate (12) connected to the base, and the base comprises a left housing (13) and a right housing (14); the left housing (13) and the right housing (14) are buckled and fixed to form a shell cavity therebetween, and the faceplate (12) is fixed to the opening of the base formed by the left housing (13) and the right housing (14); the wire coil (2), the return spring (4) and the positioning control assembly are all arranged inside the shell cavity between the left housing (13) and the right housing (14).
5. The guyed tower module of claim 1, wherein: The wire coil (2) is further provided with a mounting disc (21), and the mounting disc (21) is provided with a brush (22) connected to the charging wire (3); the inside of the module housing (1) on one side of the mounting disc (21) is provided with a conductive disc (23), and the conductive disc (23) is provided with a plurality of concentric conductive rings (231), and the brush (22) is pressed against the plurality of concentric conductive rings (231).
6. A stay wire module according to claim 5, characterized in that: The return spring (4) is constructed as a coil spring, the outer end of the coil spring is fixedly arranged, and the inner end of the coil spring is connected to the shaft rod (20) of the wire coil (2).
7. A stay wire module according to claim 6, characterized in that: The back side of the conductive disc (23) is provided with a mounting groove (24), and the coil spring is arranged in the mounting groove (24); the shaft rod (20) of the wire coil (2) penetrates through the conductive disc (23) and enters the mounting groove (24).
8. The guyed tower module of claim 1, wherein: The positioning control assembly comprises a positioning disc (51) fixed on the wire disc (2) and rotating synchronously with the wire disc (2), a positioning block (52) rotatingly arranged in the module housing (1) beside the positioning disc (51), a torsion spring (53) driving the positioning block (52) to reset, and a positioning gear (54) coaxially arranged with the tooth disc; a plurality of positioning grooves (511) are regularly arranged on the circumferential edge of the positioning disc (51), the positioning block (52) comprises a swing rod (521) in the middle and first and second clamping arms (522, 523) arranged on both sides of the swing rod (521); when the wire disc (2) rotates clockwise or counterclockwise, the edge of the positioning disc (51) acts on the swing rod (521) to drive the positioning block (52) to swing clockwise or counterclockwise, and the first and second clamping arms (522, 523) on both sides drive the positioning gear (54) to rotate in a certain direction; and the positioning gear (54) cooperates with the first and second clamping arms (522, 523) to control the swing angle of the positioning block (52), thereby controlling the swing rod (521) to enter or exit the rotation path of the positioning grooves (511) of the positioning disc (51).
9. A stay wire module according to claim 8, characterized in that: The positioning gear (54) comprises a plurality of blades (541) regularly arranged circumferentially, a first clamping groove (542) is formed between two adjacent blades (541), and a second clamping groove (543) is arranged on each blade (541); when the end of the first clamping arm (522) is clamped into the second clamping groove (543), the swing rod (521) is pressed against the circumferential edge of the positioning disc (51), and the wire disc (2) can continuously pull the wire out; when the end of the second clamping arm (523) is clamped into the second clamping groove (543), the swing rod (521) can be clamped into the positioning groove (511) of the positioning disc (51) and limit the wire disc (2) to wind the wire; when the end of the second clamping arm (523) is clamped into the first clamping groove (542), the swing rod (521) exits the rotation path of the positioning groove (511) of the positioning disc (51), and the wire disc (2) can continuously wind the wire.
10. The guyed tower module of claim 1, wherein: The module housing (1) further comprises a weak current module (6), and a power taking port (61) is arranged on the end face of the module housing (1).
11. A socket, characterized by: The socket (7) comprises a mounting cavity (71), and the pull wire module is embedded in the mounting cavity (71).