Sliding door power supply structure and shower room

By using a combination structure of conductive strips and insulating strips in the shower room, combined with sensors and controllers, the problems of shower room wires being easily damaged in a humid environment and being interfered with during opening and closing are solved, and the sliding door is stably powered throughout the entire process, improving safety and convenience of use.

CN223462556UActive Publication Date: 2025-10-21GUANGDONG LEHUA HOME FURNISHING CO LTD
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Patent Information

Application Number
CN202422919706.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-28
Publication Date
2025-10-21
Estimated Expiration
2034-11-28

AI Technical Summary

Technical Problem

The service life of the existing shower room wires in a humid environment is short and leakage is prone to occur. In addition, the shower room door is interfered by the wires during opening and closing, affecting its use.

Method used

Conductive strips are embedded in insulating strips, with the two conductive strips serving as positive and negative poles. The insulating strips separate the conductive strips from contact with the guide rails. Sensors detect the position of the movable glass, and the controller controls the power supply of the conductive strips in combination with a preset program. The elastic conductive parts are always in close contact with the conductive strips to ensure continuous power supply during the sliding process of the hanging wheel.

Benefits of technology

The shower room sliding door is electrified throughout the entire process, avoiding short circuits between the conductive strips and the guide rails, ensuring that the movable glass remains stably energized during movement, and improving safety and convenience in use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a sliding door power supply structure and shower room, the sliding door power supply structure comprises movable glass, a guide rail, a hanging wheel, conductive strips, an insulating strip, an elastic conductive piece, a mounting seat, an inductor and a controller, two mounting grooves are arranged in the insulating strip, the number of the conductive strips is two, the two conductive strips are respectively embedded in the mounting grooves, the hanging wheel comprises a pulley and a hanging clamp which are connected, and the elastic conductive piece is arranged in the mounting seat. The mounting seat is fixedly arranged on a wheel frame of the pulley, the elastic conductive part is mounted on the mounting seat, the elastic conductive part is always in contact with the conductive strip in the process that the pulley slides along the guide rail, the movable glass is electrically connected with the elastic conductive part through a wire, and the sensor is used for sensing the position of the movable glass and electrically connected with the controller. And the controller is electrically connected with the conductive strips. A whole-course electrified structure is provided for the shower room sliding door, the conductive strip is arranged to enable the movable glass to be electrified in the moving process, and the elastic conductive piece can be in stable contact with the conductive strip under the condition that the hanging wheel jumps up and down.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a shower room technical field especially relates to a sliding door power supply structure and shower room. BACKGROUND

[0002] With the development of individualization and diversification of consumer demand, the shower room not only solves the independent bathing space and dry-wet separation, but also plays a decorative role. In the shower screen, glass often occupies most of the area, and single-state glass (such as white glass, frosted glass and film glass) cannot meet the individualization requirements of users. The electric glass (such as hot-melt LED light-emitting glass, 3D display glass and dimming glass) has more use states and is more popular with users.

[0003] The existing shower room adopts ordinary wire connection, and the service life of the wire is not long in the humid environment of the bathroom, and the shower room door is easily interfered during the opening and closing process, affecting the use of the shower room door. SUMMARY

[0004] The utility model aims at at least one of the above technical problems in the prior art to some extent. To this end, the utility model provides a sliding door power supply structure.

[0005] To achieve the above purpose, the technical scheme of the utility model is as follows:

[0006] The utility model further provides a shower room with the above sliding door power supply structure.

[0007] According to the sliding door power supply structure of the first aspect of the utility model, two installation grooves are arranged in the insulating strip, two conductive strips are embedded in the installation grooves respectively, the insulating strip is installed in the guide rail along the length direction of the guide rail and fixed to the upper wall of the guide rail, the hanging wheel includes a pulley and a hanging clamp connected with each other, the hanging clamp is fixedly connected with the movable glass, the pulley is slidably installed in the guide rail, the mounting seat is fixedly arranged on the wheel frame of the pulley, the elastic conductive piece is installed on the mounting seat, the elastic conductive piece has two and corresponds to two conductive strips one by one, the elastic conductive piece is always in contact with the conductive strip in the sliding process of the pulley along the guide rail, the movable glass and the elastic conductive piece are electrically connected through wires, the inductor is located at one end of the length direction of the guide rail, the inductor is used for inducting the position of the movable glass, the inductor is electrically connected with the controller, and the controller is electrically connected with the conductive strip.

[0008] According to the sliding door power supply structure of the utility model, at least the following advantages are achieved:

[0009] 1. The utility model provides a full -range electrification structure for shower room sliding door, and the conductive strip is embedded in the insulating strip, two conductive strips are respectively as positive and negative, and the conductive effect is started, and the insulating strip disconnects the conductive strip, avoids the short circuit of conductive strip and guide rail contact, and the inductor is installed in the guide rail one end, is used to detect the movable glass switch door state, and the mounting seat is fixed to the hanging wheel with screw, and the elastic conductive part is always in close contact with the conductive strip, guarantees the continuous electrification of the sliding process of hanging wheel. The external power supply leads to the controller in the wall material, and the controller combines the feedback of the inductor with the preset program and controls whether the output is given to the conductive strip, and the conductive strip passes through the elastic conductive part and wire and leads the electricity to the movable glass.

[0010] 2. The utility model discloses a conductive structure in shower room sliding door is increased, and the power supply problem of partial electrification accessories of shower room is solved, and the movable glass keeps electrification in the movement process also with the conductive strip of conductive structure, and the controllable area changes from both ends to the whole process, and the elastic conductive part can be in the situation of up and down jumping on the hanging wheel and stably contact with the conductive strip.

[0011] According to some embodiments of the utility model, the insulating strip is a rubber strip, the upper surface of the insulating strip has a plurality of bosses, and the bosses are arranged at intervals along the length direction of the insulating strip, the bosses have a circular hole, the upper wall of the guide rail has a first through hole, the insulating strip is fixed on the upper wall of the guide rail by embedding the bosses into the first through hole, and the first screw is screwed into the circular hole from the first through hole to lock the insulating strip on the guide rail.

[0012] According to some embodiments of the utility model, the elastic conductive part is a contact type structure, the elastic conductive part includes a contact base and a conductive contact part on the top of the contact base, an elastic member is arranged in the contact base to enable the conductive contact part to be elastically displaced in the up-down direction, the top of the mounting seat is provided with a first mounting hole, the contact base is fixed in the first mounting hole, and the conductive contact part is in contact with the conductive strip.

[0013] According to some embodiments of the utility model, the elastic conductive part is a conductive spring piece, one end of the conductive spring piece is in contact with the conductive strip, and the other end is fixed to the mounting seat.

[0014] According to some embodiments of the utility model, the elastic conductive piece is bearing type structure, the elastic conductive piece includes conductive shaft, bearing, movable block and spring, the movable block is equipped with the first accommodating groove of opening upwards, the lower part of conductive bearing is placed in the first accommodating groove, the upper part exposes the first accommodating groove, the both sides wall of movable block is opened second through -hole respectively, the conductive shaft is equipped with second through -hole and the shaft hole of bearing, the mounting seat is equipped with the second accommodating groove of opening upwards, movable block and spring are placed in the second accommodating groove, the spring is located the lower part of movable block to make movable block can be elastically displaced along up and down direction, the both sides wall of second accommodating groove is equipped with limit long hole, the length direction of limit long hole is along up and down direction setting, the both ends of conductive shaft are equipped in limit long hole.

[0015] According to some embodiments of the utility model, the mounting seat is equipped with lead groove, the wire is installed in the lead groove through glue, the wire is distributed along the lead groove.

[0016] According to some embodiments of the utility model, the inductor includes shell and hall inductive element arranged in the shell, and the mounting seat is equipped with the third accommodating groove, and the third accommodating groove is equipped with a magnet.

[0017] According to some embodiments of the utility model, the shell further comprises a Bluetooth module, the shell comprises a main housing part and a clamping plate part, the clamping plate part is horizontally arranged on the top of the main housing part, a long slot is formed in the upper wall of the end of the guide rail, the long slot is arranged along the length direction of the guide rail, the width of the long slot is matched with the thickness of the main housing part, the inductor is clamped in the long slot, the clamping plate is above the upper wall, and the clamping plate is connected with the upper wall through a second screw.

[0018] According to some embodiments of the utility model, the main housing part is provided with a wire supporting groove.

[0019] According to some embodiments of the utility model, the clamping plate part is provided with an adjusting long hole, the length direction of the adjusting long hole is arranged along the length direction of the guide rail, the upper wall of the guide rail is provided with a second mounting hole, and the second mounting hole is located beside the long slot, and the second screw is arranged in the adjusting long hole and the second mounting hole.

[0020] According to some embodiments of the utility model, the guide rail comprises a stainless steel outer frame and an aluminum profile, the aluminum profile is embedded in the stainless steel outer frame, a wire channel is formed between the aluminum profile and the stainless steel outer frame, and the wire channel is arranged along the length direction of the guide rail.

[0021] The shower room according to the second aspect of the utility model comprises the movable door power supply structure.

[0022] Additional aspects and advantages of the present application will be partially given in the following description, partially will become obvious from the following description, or will be understood by the practice of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0023] The above and / or additional aspects and advantages of the present application will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings, in which:

[0024] Figure 1 is the overall structure diagram of the sliding door power supply structure of the present application;

[0025] Figure 2 is the installation schematic diagram of the conductive strip and the insulating strip of the present application;

[0026] Figure 3 is the exploded view of the first embodiment of the elastic conductive piece of the present application;

[0027] Figure 4 is the structure schematic diagram of the second embodiment of the elastic conductive piece of the present application;

[0028] Figure 5 is the structure schematic diagram of the third embodiment of the elastic conductive piece of the present application;

[0029] Figure 6 is the exploded view of the third embodiment of the elastic conductive piece of the present application;

[0030] Figure 7 is the installation schematic diagram of the inductor of the present application;

[0031] Figure 8 is the assembly drawing of the inductor of the present application.

[0032] The drawings show: movable glass 100, guide rail 200, first through hole 210, long groove 220, stainless steel outer frame 230, aluminum profile 240, wiring groove 250, second mounting hole 260, pulley 310, wheel carrier 311, hanging clamp 320, conductive strip 400, insulating strip 500, boss 510, elastic conductive piece 600, contact base 610, conductive contact part 620, conductive spring piece 630, conductive shaft 640, bearing 650, movable block 660, first accommodating groove 661, second through hole 662, spring 670, mounting seat 700, first mounting hole 710, second accommodating groove 720, limiting long hole 721, lead groove 730, third accommodating groove 740, inductor 800, main housing part 810, clamping plate part 820, adjusting long hole 821, wire supporting groove 830, magnet 900. DETAILED DESCRIPTION

[0033] Embodiments of the present application will be described in detail below, examples of which are shown in the drawings, wherein the same or similar reference numerals 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.

[0034] Referring to Figures 1-8 A sliding door power supply structure, comprising a movable glass 100, a guide rail 200, a hanging wheel, a conductive strip 400, an insulating strip 500, an elastic conductive piece 600, a mounting seat 700, an inductor 800 and a controller, the insulating strip 500 is provided with two mounting grooves, the conductive strip 400 has two and is embedded in the mounting grooves respectively, the insulating strip 500 is mounted in the guide rail 200 along the length direction of the guide rail 200 and is fixed to the upper wall of the guide rail 200, the hanging wheel comprises a pulley 310 and a hanging clamp 320 connected with each other, the hanging clamp 320 is fixedly connected with the movable glass 100, the pulley 310 is slidably mounted in the guide rail 200, the mounting seat 700 is fixedly arranged on a wheel frame 311 of the pulley 310, the elastic conductive piece 600 is mounted on the mounting seat 700, the elastic conductive piece 600 has two and corresponds to the two conductive strips 400 one by one, in the process of sliding of the pulley 310 along the guide rail 200, the elastic conductive piece 600 is always in contact with the conductive strip 400, the movable glass 100 and the elastic conductive piece 600 are electrically connected through a wire, the inductor 800 is located at one end of the length direction of the guide rail 200, the inductor 800 is used for sensing the position of the movable glass 100, the inductor 800 is electrically connected with the controller, and the controller is electrically connected with the conductive strip 400. Specifically, the shower room further comprises a fixed glass, the controller is electrically connected with the fixed glass, the movable glass 100 and the fixed glass are both light-adjusting glasses, the controller is installed in a wall material, the conductive strip 400 is a copper strip, and the mounting seat 700 is fixed on the wheel frame 311 of the pulley 310 by using a screw. The guide rail 200 structure adopts a left-right arrangement structure, the buffer is arranged in the left-right direction instead of the up-down direction, and the compact arrangement mode reduces the front view height of the guide rail 200, and is more simple and beautiful. A decorative cover is clamped on the top of the movable glass 100 and is used for covering the wire routing of the top of the movable glass 100.

[0035] Working principle: the utility model discloses a shower room sliding door provides full electrification structure, and the conductive strip 400 is embedded in the insulating strip 500, and two conductive strips 400 are respectively as positive and negative, and the conductive effect is started, and the insulating strip 500 disconnects the conductive strip 400, avoids the contact short circuit of the conductive strip 400 and guide rail 200, and the inductor 800 is installed at one end of guide rail 200, is used to detect the movable glass 100 switch door state, and the mounting seat 700 is fixed to the hanging wheel with screw, and the elastic conductive part 600 is always in close contact with the conductive strip 400, guarantees the continuous electrification of the sliding process of hanging wheel. External power supply leads to the controller in wall material, and the controller combines the feedback of preset program and inductor 800, controls whether output is given to the conductive strip 400 and fixed glass, and the conductive strip 400 passes through the elastic conductive part 600 and wire and leads electricity to the movable glass 100.

[0036] In some embodiments of the utility model, the insulating strip 500 is a rubber strip, the upper surface of the insulating strip 500 has a plurality of bosses 510, and the bosses 510 are arranged at intervals along the length direction of the insulating strip 500, the bosses 510 have a circular hole, the upper wall of the guide rail 200 is provided with a first through hole 210, and the insulating strip 500 is fixed on the upper wall of the guide rail 200 by embedding the bosses 510 into the first through hole 210 and rotating the first screw into the circular hole from the first through hole 210 to lock the insulating strip 500 on the guide rail 200. The rubber strip is provided with two mounting grooves, and the rubber strip separates the conductive strip 400 and the mounting conductive strip 400; the rubber strip is embedded into the guide rail 200 through the bosses 510 to maintain the flatness of the rubber strip and the conductive strip 400, and then the first screw is locked to fix the rubber strip on the guide rail 200.

[0037] In some embodiments of the utility model, referring to Figure 3 The elastic conductive part 600 is a contact type structure, the elastic conductive part 600 includes a contact base 610 and a conductive contact part 620 located at the top of the contact base 610, the contact base 610 is provided with an elastic member to enable the conductive contact part 620 to be elastically displaced in the up-down direction, the top of the mounting seat 700 is provided with a first mounting hole 710, the contact base 610 is fixedly arranged in the first mounting hole 710, and the conductive contact part 620 is in contact with the conductive strip 400. Even if the hanging wheel jumps up and down during movement, the stability of the contact between the conductive contact part 620 and the conductive strip 400 can be ensured. The first mounting hole 710 is used to fix the contact base 610, and the elastic conductive part 600 is installed, and then the wire is welded to the contact base 610 using electric iron.

[0038] In some embodiments of the utility model, referring to Figure 4, the elastic conductive part 600 is a conductive elastic sheet 630, one end of the conductive elastic sheet 630 is in contact with the conductive strip 400, and the other end is fixed to the mounting seat 700. The bending part of the conductive elastic sheet 630 has a certain deformation amount, so that even if the hoisting wheel jumps up and down during movement, the stability of the contact between the conductive elastic sheet 630 and the conductive strip 400 can be ensured. The other end of the conductive elastic sheet 630 is fixed on the mounting seat 700 by a screw, and after the conductive elastic sheet 630 is installed, the electric iron is used to weld the wire to the elastic sheet.

[0039] In some embodiments of the utility model, refer to Figures 5-6 , the elastic conductive part 600 is a bearing 650 type structure, the elastic conductive part 600 includes a conductive shaft 640, a bearing 650, a movable block 660 and a spring 670, the movable block 660 is provided with a first containing groove 661 with an upward opening, the lower part of the conductive shaft 640 is placed in the first containing groove 661, and the upper part is exposed from the first containing groove 661, the two side walls of the movable block 660 are respectively provided with second through holes 662, the conductive shaft 640 is arranged in the second through holes 662 and the shaft hole of the bearing 650, the mounting seat 700 is provided with a second containing groove 720 with an upward opening, the movable block 660 and the spring 670 are placed in the second containing groove 720, the spring 670 is located below the movable block 660 so that the movable block 660 can be elastically displaced in the up-down direction, the two side walls of the second containing groove 720 are provided with limiting long holes 721, the length direction of the limiting long holes 721 is arranged in the up-down direction, and the two ends of the conductive shaft 640 are arranged in the limiting long holes 721. The limiting long holes 721 are used to limit the up-down position of the conductive shaft 640, the bearing 650 is installed on the movable block 660 through the conductive shaft 640, so that even if the hoisting wheel jumps up and down during movement, the stability of the contact between the bearing 650 and the conductive strip 400 can be ensured, and after the elastic conductive part 600 is installed, the electric iron is used to weld the wire to the conductive shaft 640.

[0040] In some embodiments of the utility model, the mounting seat 700 is provided with a lead slot 730, the wire is installed in the lead slot 730 through glue, and the wire is arranged along the lead slot 730. The lead slot 730 is used to guide the wire from the elastic conductive part 600 to below the pulley 310, and the wire is sealed with glue after being placed in the lead slot 730, that is, fixed and waterproof.

[0041] In some embodiments of the utility model, the inductor 800 includes a shell and a Hall inductive element arranged inside the shell, the Hall inductive element is arranged, a third accommodating groove 740 is arranged on the mounting seat 700, and a magnet 900 is arranged in the third accommodating groove 740. When the Hall inductive element in the inductor 800 senses the magnetic field of the magnet 900, the feedback is carried out to the controller to cut off the power supply, at this time, it is the door closing state, and the movable glass 100 and the fixed glass are in the power-off state, that is, opaque. As long as it is not the door closing state, the Hall inductive element cannot sense the magnetic field of the magnet 900, and the movable glass 100 and the fixed glass are in the power-on state, that is, transparent. The Hall inductive element has a certain inductive distance, as long as the magnet 900 is in the inductive distance, the power supply can be triggered, the situation that the door closing is not in place and the atomization state cannot be switched is avoided, and the use experience is improved.

[0042] In some embodiments of the utility model, a Bluetooth module is further arranged in the shell, the shell includes a main shell part 810 and a clamping plate part 820, the clamping plate part 820 is horizontally arranged at the top of the main shell part 810, an upper wall of the end part of the guide rail 200 is provided with a long groove 220, the long groove 220 is arranged along the length direction of the guide rail 200, the width of the long groove 220 is matched with the thickness of the main shell part 810, the inductor 800 is clamped into the long groove 220, the clamping plate is located above the upper wall, and the clamping plate is connected with the upper wall through a second screw. The inductor 800 is vertically placed. In the power-on state, the remote controller can send signals to the Bluetooth module in the inductor 800, the inductor 800 receives the signals and then feeds back to the controller, and the state of the dimming glass is switched. Because the Bluetooth module of the inductor 800 receives and transmits signals and is interfered by metal materials, the remote control signal sensing distance is shortened, therefore, the shell of the inductor 800 is made of non-metal material, and because the guide rail 200 is made of metal material, if the inductor 800 is arranged in the relatively closed guide rail 200, the signals are interfered, therefore, the long groove 220 is arranged on the upper wall of the guide rail 200, and a non-metal space is reserved for signal transmission.

[0043] In some embodiments of the utility model, the main shell part 810 is provided with a wire supporting groove 830. The wire supporting groove 830 can suspend the wires of the conductive strip 400.

[0044] In some embodiments of the utility model, the clamping plate part 820 is provided with an adjusting long hole 821, the length direction of the adjusting long hole 821 is arranged along the length direction of the guide rail 200, the upper wall of the guide rail 200 is provided with a second mounting hole 260, the second mounting hole 260 is located beside the long groove 220, and the second screw is arranged in the adjusting long hole 821 and the second mounting hole 260. The inductor 800 can be adjusted by sliding along the long groove 220 and is fixed by using the second screw.

[0045] In some embodiments of the utility model, guide rail 200 includes stainless steel outer frame 230 and aluminum profile 240, aluminum profile 240 is embedded in stainless steel outer frame 230, and wiring groove 250 is formed between aluminum profile 240 and stainless steel outer frame 230, and wiring groove 250 is arranged along the length direction of guide rail 200. Wiring groove 250 facilitates the wiring of the two ends of guide rail 200.

[0046] A shower room comprises the sliding door power supply structure.

[0047] Although the embodiments of the utility model 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 utility model, and the scope of the utility model is defined by the claims and their equivalents.

Claims

1. A sliding door power supply structure characterized by comprising: The utility model provides an active glass (100), guide rail (200), hanging wheel, conductive strip (400), insulating strip (500), elastic conductive piece (600), mounting seat (700), inductor (800) and controller are included, two mounting grooves are equipped in the insulating strip (500), the conductive strip (400) has two and is embedded in the mounting groove respectively, the insulating strip (500) is installed in the guide rail (200) along the length direction of guide rail (200) and is fixed to the upper wall of guide rail (200), the hanging wheel includes the pulley (310) and the hanging clamp (320) connected, the hanging clamp (320) is fixedly connected with the active glass (100), the pulley (310) is slidably installed in the guide rail (200), the mounting seat (700) is fixed on the wheel frame (311) of pulley (310), the elastic conductive piece (600) is installed on the mounting seat (700), the elastic conductive piece (600) has two and corresponds with two conductive strips (400) one to one, the elastic conductive piece (600) is always in contact with the conductive strip (400) in the process that the pulley (310) slides along the guide rail (200), the active glass (100) is electrically connected with the elastic conductive piece (600) through wire, the inductor (800) is located at one end in the length direction of guide rail (200), the inductor (800) is used for sensing the position of active glass (100), the inductor (800) is electrically connected with the controller, and the controller is electrically connected with the conductive strip (400).

2. The sliding door power supply structure according to claim 1, characterized by The insulating strip (500) is a rubber strip, the upper surface of the insulating strip (500) has a plurality of bosses (510), and the bosses (510) are arranged at intervals along the length direction of the insulating strip (500), the bosses (510) have a circular hole, the upper wall of the guide rail (200) has a first through hole (210), the insulating strip (500) is fixed to the upper wall of the guide rail (200) by embedding the bosses (510) into the first through hole (210), and the insulating strip (500) is tightly locked on the guide rail (200) by rotating a first screw into the circular hole from the first through hole (210).

3. The sliding door power supply structure according to claim 1, wherein The elastic conductive piece (600) is a contact type structure, the elastic conductive piece (600) includes a contact base (610) and a conductive contact part (620) located at the top of the contact base (610), the contact base (610) is provided with an elastic member to enable the conductive contact part (620) to be elastically displaced in the up-down direction, the top of the mounting seat (700) is provided with a first mounting hole (710), the contact base (610) is fixedly arranged in the first mounting hole (710), and the conductive contact part (620) is in contact with the conductive strip (400).

4. The sliding door power supply structure according to claim 1, wherein The elastic conductive part (600) is a conductive elastic sheet (630), one end of the conductive elastic sheet (630) is in contact with the conductive strip (400), and the other end is fixed to the mounting seat (700).

5. The sliding door power supply structure according to claim 1, wherein The elastic conductive part (600) is a bearing (650) type structure, the elastic conductive part (600) comprises a conductive shaft (640), a bearing (650), a movable block (660) and a spring (670), the movable block (660) is provided with a first accommodating groove (661) with an upward opening, the lower part of the conductive shaft (640) is placed in the first accommodating groove (661), and the upper part of the conductive shaft (640) is exposed from the first accommodating groove (661), the two side walls of the movable block (660) are respectively provided with second through holes (662), the conductive shaft (640) is arranged in the second through holes (662) and the shaft hole of the bearing (650), the mounting seat (700) is provided with a second accommodating groove (720) with an upward opening, the movable block (660) and the spring (670) are placed in the second accommodating groove (720), the spring (670) is located below the movable block (660) so that the movable block (660) can be elastically displaced in the up-down direction, the two side walls of the second accommodating groove (720) are provided with limiting long holes (721), the length direction of the limiting long holes (721) is arranged in the up-down direction, and the two ends of the conductive shaft (640) are arranged in the limiting long holes (721).

6. The sliding door power supply structure according to any one of claims 1 to 5, characterized in that, The mounting seat (700) is provided with a lead slot (730), the lead wire is mounted in the lead slot (730) through glue, and the lead wire is arranged along the lead slot (730).

7. The sliding door power supply structure according to claim 1, wherein The inductor (800) comprises a shell and a Hall inductor element arranged in the shell, the mounting seat (700) is provided with a third accommodating groove (740), and a magnet (900) is arranged in the third accommodating groove (740).

8. The sliding door power supply structure according to claim 7, wherein The shell further comprises a Bluetooth module, the shell comprises a main shell part (810) and a clamping plate part (820), the clamping plate part (820) is arranged horizontally at the top of the main shell part (810), an upper wall of an end of the guide rail (200) is provided with a long groove (220), the long groove (220) is arranged along the length direction of the guide rail (200), the width of the long groove (220) is matched with the thickness of the main shell part (810), the inductor (800) is clamped into the long groove (220), the clamping plate is located above the upper wall, and the clamping plate is connected with the upper wall through a second screw.

9. The sliding door power supply structure according to claim 1, wherein The guide rail (200) comprises a stainless steel outer frame (230) and an aluminum profile (240), the aluminum profile (240) is embedded in the stainless steel outer frame (230), a wiring groove (250) is formed between the aluminum profile (240) and the stainless steel outer frame (230), and the wiring groove (250) is arranged along the length direction of the guide rail (200).

10. A shower cubicle, characterised in that, The door is powered by the structure of any one of claims 1-9. The door is powered by the structure of any one of claims 1-9.