Connection mechanism, power generation floor, and power generation floor assembly

CN116464237BActive Publication Date: 2026-09-15SHANGHAI YINSHENG TECH CO LTD
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Patent Information

Application Number
CN202310505620.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-06
Publication Date
2026-09-15
Estimated Expiration
2043-05-06

AI Technical Summary

Technical Problem

[0003]然而,多个发电地板之间插接时,连接不可靠

Benefits of technology

[0059] In this application, when the locking mechanism switches from the locked state to the unlocked state, the connecting shaft moves axially to make the external thread abut against the threaded hole of the adjacent generator plate, releasing the spring force and driving the connecting shaft to rotate, thus realizing the threaded connection between the external thread and the threaded hole of the adjacent generator plate. This facilitates the splicing and fixing of multiple generator plates, resulting in high assembly efficiency.

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Abstract

The application provides a connecting mechanism, a power generation floor and a power generation floor assembly. The connecting mechanism for the power generation floor comprises a support seat, a connecting shaft which is slidingly connected to the support seat and can rotate around its axis, an outer thread provided at one end of the connecting shaft, a mainspring which is connected to the support seat and is in transmission connection with the connecting shaft, and a lock mechanism which is configured to be switchable between a locked state and an unlocked state. In the locked state, the lock mechanism fixes the connecting shaft, and the mainspring is continuously wound up. In the unlocked state, the connecting shaft moves axially to make the outer thread abut a threaded hole of an adjacent power generation floor. The elastic force of the mainspring is released to drive the connecting shaft to rotate, so that the outer thread can be in threaded connection with the threaded hole of the adjacent power generation floor.
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Description

Technical Field

[0001] This application relates to the field of power generation floor technology, and in particular to a connection mechanism, a power generation floor, and a power generation floor assembly. Background Technology

[0002] In the prior art, the panels in the power generation floor are connected to the base through a universal connection structure, and multiple power generation floors are spliced ​​together, with adjacent power generation floors being threaded or plugged into each other.

[0003] However, when multiple power generation floors are plugged in, the connection is unreliable.

[0004] However, when multiple power generation floors are connected by threads, disassembly and separation are cumbersome and require the use of external disassembly tools. Summary of the Invention

[0005] This application provides a connection mechanism, a power generation floor, and a power generation floor assembly, which facilitates the assembly and disassembly of the power generation floor.

[0006] According to a first aspect of this application, a connection mechanism for a power generation floor is provided. The connection mechanism for the power generation floor includes:

[0007] Support base;

[0008] A connecting shaft is slidably connected to the support base and can rotate around its axis; one end of the connecting shaft is provided with an external thread.

[0009] A mainspring, the mainspring being connected to the support base, and the mainspring being drively connected to the connecting shaft; and

[0010] A locking mechanism configured to switch between a locked state and an unlocked state;

[0011] In the locked state, the locking mechanism fixes the connecting shaft, and the spring remains continuously wound.

[0012] In the unlocked state, the connecting shaft moves axially to make the external thread abut against the threaded hole of the adjacent power generation floor; the spring force is released, thereby driving the connecting shaft to rotate, so that the external thread can be threadedly connected to the threaded hole of the adjacent power generation floor.

[0013] Optionally, it also includes a first support shaft that is fixedly protruding from the surface of the support base and a limiting rod that is rotatably connected to the support base;

[0014] The spring is sleeved on the first support shaft;

[0015] A spring box is fitted onto the spring;

[0016] The inner ring of the mainspring is connected to the first support shaft, and the outer ring is connected to the mainspring barrel;

[0017] The outer peripheral wall of the spring barrel is provided with multiple gear teeth, and a groove is provided between adjacent gear teeth;

[0018] One end of the limiting rod is connected to the connecting shaft, and the other end is provided with a pawl;

[0019] In the locked state, the pawl is located in the slot, causing the spring to remain continuously wound.

[0020] In the unlocked state, the connecting shaft moves axially to make the external thread abut against the threaded hole of the adjacent power generation floor, and drives the limiting rod to rotate so that the pawl disengages from the slot, thereby releasing the spring force.

[0021] Optionally, the spring box is connected to the connecting shaft via a first pull cord;

[0022] A first winding part is fixedly provided on the spring box;

[0023] A second winding portion is fixedly provided on the connecting shaft;

[0024] One end of the first pull cord is connected to the first winding part, and the other end is connected to the second winding part, so that when the spring is released, the connecting shaft can be rotated through the first pull cord.

[0025] Optionally, the locking mechanism includes a locking rod, a clearance member, a first slider, a second slider, and a first elastic member; a limit groove is provided on the outer peripheral wall of the connecting shaft;

[0026] The locking rod and the first slider are slidably connected to the support base; the clearance member is rotatably connected to the locking rod;

[0027] The second slider is disposed on the radial side of the connecting shaft and slidably connected to the support base, and is limited to reciprocating only along the radial direction of the connecting shaft; the second slider is provided with an inclined surface and a stop block disposed on the side facing the connecting shaft;

[0028] The first slider is slidably connected to the support base and is limited to moving only along the axial direction of the locking rod; the first slider is provided with a pusher for abutting against the inclined surface;

[0029] The first elastic element is disposed between the connecting shaft and the support base;

[0030] In the locked state, the stop block is confined within the limiting groove to fix the connecting shaft, one end of the locking rod protrudes to the outside of the side surface of the support seat, and the first elastic element elastically deforms.

[0031] The locking lever is configured to be pressed against by an adjacent power generation floor and moved axially to switch the locking mechanism to the unlocked state;

[0032] During the process of switching the locking mechanism to the unlocked state, the locking rod and the avoidance member move axially together and drive the first slider to move axially through one end of the avoidance member. The pusher pushes the inclined surface to make the second slider move away from the connecting shaft so that the stop block disengages from the limiting groove, so that the first elastic member can release its elastic force and drive the connecting shaft to move axially so that the external thread abuts against the adjacent power generation floor thread hole.

[0033] Optionally, a second elastic element is provided between the locking rod and the support base;

[0034] A third elastic element is provided between the second slider and the support base;

[0035] A fourth elastic element is provided between the avoidance element and the locking rod;

[0036] In the locked state, the locking rod is pressed and fixed onto the support by the second elastic element;

[0037] During the process of the locking mechanism switching to the unlocked state, the second elastic element and the third elastic element elastically deform.

[0038] During the axial movement of the connecting shaft to the point where the external thread abuts against the adjacent power generation floor threaded hole, the connecting shaft presses against the other end of the avoidance member, thereby causing the avoidance member to rotate and the fourth elastic member to elastically deform, and causing one end of the avoidance member to axially move away from the first slider; then the third elastic member releases its elastic force, thereby causing the second slider to move towards the connecting shaft to abut against the outer peripheral wall of the connecting shaft, and the first slider moves towards the avoidance member axially by pushing the pusher member through the inclined surface.

[0039] Optionally, the connecting shaft is configured to be axially moved away from the adjacent power generation floor and reset to a separated position;

[0040] At the separation position, the third elastic element drives the stop block to move into the limiting groove; the fourth elastic element releases its elastic force, driving the avoidance component to rotate and reset, so that the avoidance component corresponds to the axial position of the first slider.

[0041] When the locking rod moves axially away from the adjacent power generation floor, the second elastic element releases its elastic force, causing the locking rod and the avoidance element to return to their axial positions, thus switching the locking mechanism to the locked state.

[0042] Optionally, it may also include an unlocking mechanism;

[0043] The unlocking mechanism is configured to reverse the connecting shaft to disassemble the external thread from the threaded hole of the power generation floor, wind the spring, and move the connecting shaft axially away from the adjacent power generation floor to reset the disassembled position.

[0044] Optionally, the unlocking mechanism includes a rotating wheel, a second pull rope, a first guide part, a slider, and a second guide part;

[0045] The rotating wheel and the first guide portion are respectively rotatably connected to the support base;

[0046] One end of the second pull rope is connected to the rotating wheel, and the other end is connected to the connecting shaft; the second pull rope is arranged to bypass the first guide portion;

[0047] The connecting shaft is configured such that when the wheel is operated to rotate, it can be reversed by the second pull rope, thereby disassembling and separating the external thread from the threaded hole of the power generation floor, and tightening the spring.

[0048] The sliding member is slidably connected to the support base and is limited to moving only along the axial direction of the connecting shaft; a fifth elastic member is provided between the sliding member and the connecting shaft;

[0049] The second guide portion is rotatably connected to the slider, and the second pull rope also passes around the second guide portion;

[0050] The sliding member is configured such that when the wheel is operated to rotate, it can be driven axially by the second pull rope, thereby directly or through the fifth elastic member driving the connecting shaft to move axially away from the adjacent power generation floor and reset to the separation position.

[0051] According to a second aspect of this application, a power generation floor is provided. The power generation floor includes:

[0052] Base;

[0053] The panel is connected to the base via a universal joint structure; and

[0054] In the aforementioned connecting mechanism, the support base is fixedly connected to the base.

[0055] According to a third aspect of this application, a power generation floor assembly is provided. The power generation floor assembly includes:

[0056] Multiple power generation floors as described above, wherein threaded holes are provided on the power generation floors;

[0057] The external thread of one of the power generation floor panels is threadedly connected to the threaded hole of the adjacent power generation floor panel, so that the plurality of power generation floor panels can be detachably spliced ​​and fixed.

[0058] The beneficial effects of this application include:

[0059] In this application, when the locking mechanism switches from the locked state to the unlocked state, the connecting shaft moves axially to make the external thread abut against the threaded hole of the adjacent generator plate, releasing the spring force and driving the connecting shaft to rotate, thus realizing the threaded connection between the external thread and the threaded hole of the adjacent generator plate. This facilitates the splicing and fixing of multiple generator plates, resulting in high assembly efficiency.

[0060] The locking rod of the locking mechanism can be pressed against the adjacent power generation floor and moved axially, allowing the locking mechanism to quickly switch from the locked state to the unlocked state. The splicing operation is simple and highly automated.

[0061] By setting up an unlocking mechanism, the connecting shaft can be reversed, thereby separating the external thread from the threaded hole of the generator floor, and the spring can be wound up. This also causes the connecting shaft to move axially away from the adjacent generator floor to reset. When the locking rod moves axially away from the adjacent generator floor, the second elastic element can release its elastic force, thereby resetting the locking rod and ultimately switching the locking mechanism to the locked state. Disassembly between multiple generator floors is convenient and efficient.

[0062] The power generation floor and power generation floor components provided by this invention can generate electricity using human power, which is green, healthy, energy-saving and environmentally friendly.

[0063] It should be understood that the above general description and the following detailed description are merely exemplary and do not limit this application. Attached Figure Description

[0064] Figure 1 This is a three-dimensional structural diagram of a power generation floor provided in one embodiment of this application.

[0065] Figure 2 It corresponds Figure 1 A schematic diagram of the connection mechanism in the power generation floor.

[0066] Figure 3 It corresponds Figure 2 A structural diagram from another perspective.

[0067] Figure 4 It corresponds Figure 3 A schematic diagram of the connection structure between the connecting shaft, the locking mechanism, and the mainspring.

[0068] Figure 5 It corresponds Figure 4 A schematic diagram of the connection structure between the first and second sliders in the diagram.

[0069] Figure label:

[0070] 1-Base;

[0071] 12-Threaded hole;

[0072] 2-Connecting mechanism;

[0073] 22-Support base;

[0074] 24-Connecting shaft;

[0075] 242-Second winding section;

[0076] 244 - Limiting groove;

[0077] 246 - Groove;

[0078] 26 - First support shaft;

[0079] 28-Cylinder;

[0080] 282-First Winding Section;

[0081] 284-Gear teeth;

[0082] 32-Limit rod;

[0083] 322-Claw;

[0084] 34-Locking rod;

[0085] 36 - Avoidance parts;

[0086] 38 - First slider;

[0087] 382 - Pushing component;

[0088] 40 - Second slider;

[0089] 402 - Clearance Hole;

[0090] 404-slope;

[0091] 42 - First elastic element;

[0092] 44 - Second elastic element;

[0093] 46-Rotator;

[0094] 48 - First guide section;

[0095] 50 - Sliding component;

[0096] 52-Second guide section.

[0097] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application. Detailed Implementation

[0098] To better understand the technical solution of this application, the embodiments of this application will be described in detail below with reference to the accompanying drawings.

[0099] According to one embodiment of this application, a power generation floor assembly is provided. The power generation floor assembly includes multiple power generation floors. The multiple power generation floors are detachably spliced ​​and fixed together.

[0100] Please see Figure 1 Each power generation floor includes a base 1, a panel, and a connecting mechanism 2. The panel is detachably connected to the base 1 via a universal joint structure, allowing the panel to swing omnidirectionally relative to the base 1. The panel is driven to the motor shaft of the generator. Threaded holes 12 are provided on the side surface of the power generation floor.

[0101] When a person steps down on the panel, the panel can swing in any direction depending on the position of the step, thereby improving the panel's rotational flexibility; and the panel can drive the generator's motor shaft to rotate, thereby generating electricity, which is energy-saving and environmentally friendly.

[0102] Therefore, the power generation floor and power generation floor components provided by the present invention can generate electricity using human power, which is green, healthy, energy-saving and environmentally friendly.

[0103] Please see Figure 2 and Figure 3 The connecting mechanism 2 includes a support base 22, a connecting shaft 24, a spring, a locking mechanism, and an unlocking mechanism. The support base 22 is fixedly connected to the base 1. For example, the support base 22 can be threaded onto the base 1 with screws.

[0104] The connecting shaft 24 is slidably connected to the support base 22, and the connecting shaft 24 can rotate around its axis. Specifically, the support base 22 may be provided with a boss 662, and the boss 662 may be provided with a first through hole. Part of the connecting shaft 24 is inserted into the first through hole. The connecting shaft 24 and the first through hole may be spaced apart, so that the connecting shaft 24 can rotate around its axis and reciprocate along its axial direction Z.

[0105] When the connecting shaft 24 reciprocates along its axial direction, it can move towards the adjacent power generation floor or away from the adjacent power generation floor.

[0106] One end of the connecting shaft 24 is provided with an external thread. The external thread of the connecting shaft 24 is configured to mate with the threaded hole 12. The external thread of the connecting shaft 24 on one power generation floor can be threadedly connected to the threaded hole 12 of the adjacent power generation floor, allowing multiple power generation floors to be disassembled, spliced, and fixed.

[0107] One end of the connecting shaft 24 protrudes beyond the side surface of the support base 22. At least a portion of the external thread at one end of the connecting shaft 24 is located outside the side surface of the support base 22. Thus, the external thread at one end of the connecting shaft 24 can move axially to abut against the threaded hole 12 of the adjacent power generation floor; when the connecting shaft 24 rotates, its external thread can be threadedly connected to the threaded hole 12 of the adjacent power generation floor.

[0108] The support base 22 is provided with a first support shaft 26, a second support shaft, and a limiting rod 32. The first support shaft 26 protrudes from the surface of the support base 22 and is fixedly connected to the support base 22. The mainspring is sleeved on the first support shaft 26, and the inner coil of the mainspring is connected to the first support shaft 26.

[0109] A mainspring barrel 28 is fitted onto the mainspring. The outer ring of the mainspring is connected to the mainspring barrel 28. Thus, the outer ring of the mainspring barrel 28 can rotate together with the mainspring barrel 28. Multiple gear teeth 284 are provided on the outer peripheral wall of the mainspring barrel 28. A groove is provided between two adjacent gear teeth 284.

[0110] The second support shaft protrudes from the surface of the support base 22 and is fixedly connected to the support base 22. The limiting rod 32 is rotatably sleeved on the second support shaft. Thus, the limiting rod 32 is rotatably connected to the support base 22.

[0111] The two ends of the limiting rod 32 are located on the radial sides of the second support shaft. One end of the limiting rod 32 is connected to the connecting shaft 24, and the other end of the limiting rod 32 is provided with a pawl 322.

[0112] The spring barrel 28 is connected to the connecting shaft 24 via a first pull cord. A first winding portion 282 is fixedly provided on the spring barrel 28. A second winding portion 242 is fixedly provided on the connecting shaft 24.

[0113] One end of the first pull rope is connected to the first winding part 282 and is wound around the first winding part 282 one or more times.

[0114] The other end of the first pull rope is connected to the second winding part 242 and is wound around the second winding part 242 one or more times.

[0115] When the spring is released, the spring barrel 28 rotates. When the spring barrel 28 rotates, it can drive the connecting shaft 24 to rotate via the first pull rope.

[0116] The locking mechanism can switch between locked and unlocked states.

[0117] When the locking mechanism is in the locked state, the locking mechanism fixes the connecting shaft 24. At this time, the connecting shaft 24 is fixed in the separated position by the locking mechanism; the pawl 322 on the first limiting member is located in the slot of the spring box 28, which can keep the spring continuously tightened.

[0118] When the locking mechanism is in the unlocked state, the connecting shaft 24 can move towards the adjacent power generation plate until its external thread abuts against the threaded hole 12 of the adjacent power generation plate. During this movement, the connecting shaft 24 drives one end of the limiting rod 32 to rotate, causing the pawl 322 to disengage from the slot, thus releasing the spring force and causing the connecting shaft 24 to rotate. As the spring drives the connecting shaft 24 to rotate, the external thread can thread-connect with the threaded hole 12 of the adjacent power generation plate.

[0119] The locking mechanism can switch between a locked state and an unlocked state, thereby fixing the connecting shaft 24 or enabling the connecting shaft 24 to move axially toward the adjacent power generation floor.

[0120] Specifically, please refer to Figure 3 and Figure 4 The locking mechanism includes a locking rod 34, a clearance member 36, a first slider 38, a second slider 40, and a first elastic member 42, all mounted on the support base 22. The locking rod 34 is axially parallel to the connecting shaft 24.

[0121] The locking rod 34 is slidably connected to the support base 22. The locking rod 34 can reciprocate along its axial direction. A second through hole may be provided on the boss 662 of the support base 22. Part of the structure of the locking rod 34 passes through the second through hole. The locking rod 34 and the second through hole may be spaced apart, so that the locking rod 34 can reciprocate along its axial direction.

[0122] A second elastic element 44 is provided between the locking rod 34 and the support base 22. The second elastic element 44 is made of a material with good elasticity and can produce elastic deformation when subjected to force.

[0123] One end of the locking rod 34 protrudes beyond the side surface of the support base 22. This protrusion of the locking rod 34 allows it to abut against an adjacent power generation floor, thus enabling it to be pressed against by the adjacent power generation floor. The connecting shaft 24 and the locking rod 34 may protrude beyond the same side surface of the support base 22.

[0124] The first slider 38 is slidably connected to the support base 22. The first slider 38 can reciprocate relative to the support base 22 along the axial direction of the locking rod 34.

[0125] A third support shaft may be protruding from the locking rod 34. A clearance member 36 is rotatably mounted on the third support shaft. Thus, the clearance member 36 is rotatably connected to the locking rod 34 and can rotate around the third support shaft. When the locking rod 34 moves axially, it can cause the clearance member 36 to move axially along with it.

[0126] A fourth elastic element is provided between the avoidance member 36 and the locking rod 34. The fourth elastic element is made of a material with good elasticity and can produce elastic deformation when subjected to force. For example, the fourth elastic element can be a spring structure.

[0127] The second slider 40 is disposed on the radial side of the connecting shaft 24. The second slider 40 is slidably connected to the support base 22 and is limited to reciprocating movement only along the radial direction of the connecting shaft 24.

[0128] Please see Figure 4 and Figure 5 The second slider 40 is provided with a clearance hole 402. The inner surface of the clearance hole 402 is provided with a slope 404. The slope 404 is inclined relative to the axial direction of the locking rod 34.

[0129] A stop is provided on the second slider 40. The stop is located on the side of the second slider 40 facing the connecting shaft 24. A limiting groove 244 is provided on the outer peripheral wall of the connecting shaft 24. The stop on the second limiting block is structurally matched with the limiting groove 244 on the connecting shaft 24 so that the stop on the second limiting block can enter into the limiting groove 244.

[0130] A third elastic element is provided between the second slider 40 and the support base 22. The third elastic element is made of a material with good elasticity and can produce elastic deformation when subjected to force. For example, the third elastic element can be a spring structure.

[0131] The first slider 38 is slidably connected to the support base 22 and is limited to moving only along the axial direction of the locking rod 34. A pusher 382 is provided on the first slider 38, protruding from the surface of the first slider 38. The pusher 382 passes into the clearance hole 402 and abuts against the inclined surface 404 on the second slider 40.

[0132] The first elastic element 42 is made of a material with good elasticity, and it can produce elastic deformation when subjected to force. The first elastic element 42 is disposed between the connecting shaft 24 and the support seat 22. For example, the first elastic element 42 can be a spring.

[0133] When the locking mechanism is in the locked state, the stop block is limited in the limiting groove 244, thereby fixing the connecting shaft 24; the locking rod 34 is pressed and fixed on the support base 22 by the second elastic member 42, and one end of the locking rod 34 protrudes to the outside of the side surface of the base 1; the first elastic member 42 elastically deforms.

[0134] The locking lever 34 can be pressed against the adjacent power generation floor and moved axially to switch the locking mechanism to the unlocked state.

[0135] During the process of switching the locking mechanism from the locked state to the unlocked state, the locking rod 34 and the avoidance member 36 move axially together and drive the first slider 38 to move axially through one end of the avoidance member 36. The pusher 382 on the first slider 38 pushes the inclined surface 404 on the second slider 40, causing the second slider 40 to move away from the connecting shaft 24 until the stop block is disengaged from the limiting groove 244. This allows the first elastic member 42 to release its elastic force and drive the connecting shaft 24 to move axially until the external thread abuts against the threaded hole 12 of the adjacent power generation floor.

[0136] During the process of the locking mechanism switching from the locked state to the unlocked state, the second elastic element 44 and the third elastic element are elastically deformed.

[0137] During the axial movement of the connecting shaft 24 to the point where the external thread abuts against the adjacent power generation floor threaded hole 12, the connecting shaft 24 presses against the other end of the relief member 36, thereby causing the relief member 36 to rotate and the fourth elastic member to deform elastically, and causing one end of the relief member 36 to move axially away from the first relief slider 38; then the third elastic member releases its elastic force, thereby causing the second slider 40 to move towards the connecting shaft 24 to abut against the outer peripheral wall of the connecting shaft 24, and the first slider 38 moves axially towards the relief member 36 by pushing the pusher 382 through the inclined surface 404.

[0138] The unlocking mechanism is configured to drive the connecting shaft 24 to reverse, thereby disassembling and separating the external thread from the threaded hole 12 of the power generation floor, and winding the spring, and driving the connecting shaft 24 to move away from the adjacent power generation floor along its axial direction to reset to the separated position.

[0139] Specifically, please refer to Figure 2 The unlocking mechanism includes a rotating wheel 46, a second pull rope, a first guide part 48, a slider 50, and a second guide part 52. The rotating wheel 46 is rotatably connected to the support base 22. The first guide part 48 is rotatably connected to the support base 22.

[0140] The second pull rope is connected at one end to the rotating wheel 46 and at the other end to the connecting shaft 24. The second pull rope also passes around the first guide portion 48. The first guide portion 48 may include two first guide rotating wheels that are rotatably connected to the support base 22. The second pull rope passes around the two first guide rotating wheels in sequence.

[0141] The slider 50 is slidably connected to the support base 22. The slider 50 is limited to moving only along the axial direction of the connecting shaft 24. The second guide portion 52 includes a second guide wheel rotatably connected to the slider 50. A second pull rope is also disposed around the second guide portion 52.

[0142] When the rotating wheel 46 is operated to rotate, the second pull rope can drive the connecting shaft 24 to reverse. During the process of the second pull rope driving the connecting shaft 24 to reverse, the external thread can be disassembled from the threaded hole 12 of the power generation floor, and the spring can be tightened.

[0143] When the wheel 46 is rotated, the second pull rope can drive the sliding member 50 to move axially through the second guide part 52, thereby driving the connecting shaft 24 to move away from the adjacent power generation floor along its axial direction and reset to the separation position.

[0144] Of course, in some other embodiments, a fifth elastic element is provided between the slider 50 and the connecting shaft 24. The fifth elastic element is made of a material with good elasticity and can produce elastic deformation when subjected to force. When the wheel 46 is rotated, the second pull rope can drive the slider 50 to move axially relative to the connecting shaft 24 through the second guide part 52, causing the fifth elastic element to produce elastic deformation. The fifth elastic element will then release its elastic force, driving the connecting shaft 24 to move axially away from the adjacent power generation floor and reset to the separated position.

[0145] When the connecting shaft 24 moves away from the adjacent power generation floor along its axial direction and resets to the separated position, the third elastic element can release its elastic force, thereby driving the stop block to move into the limiting groove 244; the fourth elastic element can release its elastic force, thereby driving the avoidance member 36 to rotate and reset, so that the avoidance member 36 corresponds to the axial position of the first slider 38.

[0146] When the locking rod 34 moves axially away from the adjacent power generation floor, the second elastic element 44 can release its elastic force, thereby driving the locking rod 34 and the avoidance element 36 to return to their axial position, and finally switching the locking mechanism to the locked state.

[0147] In addition, please see Figure 1 In this embodiment, the power generation floor can adopt a rectangular structure as a whole. Both the base 1 and the panel adopt rectangular structures and overlap each other with gaps. Each side of the rectangular base 1 is connected to a connecting mechanism 2, and the support seats 22 of the four connecting mechanisms 2 are fixedly connected to the four sides of the rectangular base 1. The base 1 can be provided with clearance through holes, which are axially aligned with the first through hole and the second through hole, respectively.

[0148] A seal can be installed in the gap between the edge of the base 1 and the edge of the panel. The seal prevents moisture and other impurities from entering the interior of the power generation floor, thus achieving the waterproof function of the power generation floor.

[0149] In this application, when the locking mechanism switches from the locked state to the unlocked state, the connecting shaft moves axially to make the external thread abut against the threaded hole of the adjacent generator plate, releasing the spring force and driving the connecting shaft to rotate, thus realizing the threaded connection between the external thread and the threaded hole of the adjacent generator plate. This facilitates the splicing and fixing of multiple generator plates, resulting in high assembly efficiency.

[0150] The locking rod of the locking mechanism can be pressed against the adjacent power generation floor and moved axially, allowing the locking mechanism to quickly switch from the locked state to the unlocked state. The splicing operation is simple and highly automated.

[0151] By setting up an unlocking mechanism, the connecting shaft can be reversed, thereby separating the external thread from the threaded hole of the generator floor, and the spring can be wound up. This also causes the connecting shaft to move axially away from the adjacent generator floor to reset. When the locking rod moves axially away from the adjacent generator floor, the second elastic element can release its elastic force, thereby resetting the locking rod and ultimately switching the locking mechanism to the locked state. Disassembly between multiple generator floors is convenient and efficient.

[0152] It should be understood that the described embodiments are merely some, not all, of the embodiments in this application. All other embodiments obtained by those skilled in the art based on the embodiments in this application without inventive effort are within the scope of protection of this application.

[0153] The terminology used in the embodiments of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application. The singular forms “a,” “the,” and “the” used in the embodiments of this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise.

[0154] It should be understood that the term "and / or" used in this article is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, and B existing alone. Additionally, the character " / " in this article generally indicates that the preceding and following related objects have an "or" relationship.

[0155] It should be understood that, in the description of this application, unless otherwise expressly specified and limited, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance, nor are they used to describe a specific order or sequence.

[0156] Depending on the context, the word "if" as used here can be interpreted as "when," "when," "in response to determination," or "in response to detection." Similarly, depending on the context, the phrase "if determination" or "if detection (of the stated condition or event)" can be interpreted as "when determination," "in response to determination," "when detection (of the stated condition or event)," or "in response to detection (of the stated condition or event)."

[0157] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.

[0158] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, can be embodied in the form of a computer software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) and includes several instructions to cause a terminal (which may be a mobile phone, computer, control device, or network device, etc.) to execute the methods described in the various embodiments of this application.

[0159] The embodiments of this application have been described above with reference to the accompanying drawings. However, this application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.

Claims

1. A connection mechanism for a power generation floor, comprising: Support base; A connecting shaft is slidably connected to the support base and is rotatable about its axis; One end of the connecting shaft is provided with an external thread; A mainspring, which is connected to the support base and is drively connected to the connecting shaft; and A locking mechanism configured to switch between a locked state and an unlocked state; In the locked state, the locking mechanism fixes the connecting shaft, and the spring remains continuously wound. In the unlocked state, the connecting shaft moves axially to make the external thread abut against the adjacent power generation floor threaded hole; the spring force is released, thereby driving the connecting shaft to rotate, so that the external thread can be threadedly connected to the adjacent power generation floor threaded hole; It also includes a first support shaft that is fixedly protruding from the surface of the support base and a limiting rod that is rotatably connected to the support base; The spring is sleeved on the first support shaft; A spring box is fitted onto the spring; The inner ring of the mainspring is connected to the first support shaft, and the outer ring is connected to the mainspring barrel; The outer peripheral wall of the spring barrel is provided with multiple gear teeth, and a groove is provided between adjacent gear teeth; One end of the limiting rod is connected to the connecting shaft, and the other end is provided with a pawl; In the locked state, the pawl is located in the slot, causing the spring to remain continuously wound. In the unlocked state, the connecting shaft moves axially to make the external thread abut against the threaded hole of the adjacent power generation floor, and drives the limiting rod to rotate so that the pawl disengages from the slot, thereby releasing the spring force.

2. The connecting mechanism according to claim 1, characterized in that: The spring box is connected to the connecting shaft via a first pull cord; A first winding part is fixedly provided on the spring box; A second winding portion is fixedly provided on the connecting shaft; One end of the first pull cord is connected to the first winding part, and the other end is connected to the second winding part, so that when the spring is released, the connecting shaft can be rotated through the first pull cord.

3. The connecting mechanism according to claim 1, characterized in that: The locking mechanism includes a locking rod, a clearance member, a first slider, a second slider, and a first elastic member; a limit groove is provided on the outer peripheral wall of the connecting shaft; The locking rod and the first slider are slidably connected to the support base; the clearance member is rotatably connected to the locking rod; The second slider is disposed on the radial side of the connecting shaft and slidably connected to the support base, and is limited to reciprocating only along the radial direction of the connecting shaft; the second slider is provided with an inclined surface and a stop block disposed on the side facing the connecting shaft; The first slider is slidably connected to the support base and is limited to moving only along the axial direction of the locking rod; the first slider is provided with a pusher for abutting against the inclined surface; The first elastic element is disposed between the connecting shaft and the support base; In the locked state, the stop block is confined within the limiting groove to fix the connecting shaft, one end of the locking rod protrudes to the outside of the side surface of the support seat, and the first elastic element elastically deforms. The locking lever is configured to be pressed against by an adjacent power generation floor and moved axially to switch the locking mechanism to the unlocked state; During the process of switching the locking mechanism to the unlocked state, the locking rod and the avoidance member move axially together and drive the first slider to move axially through one end of the avoidance member. The pusher pushes the inclined surface to make the second slider move away from the connecting shaft so that the stop block disengages from the limiting groove, so that the first elastic member can release its elastic force and drive the connecting shaft to move axially so that the external thread abuts against the adjacent power generation floor thread hole.

4. The connecting mechanism according to claim 3, characterized in that: A second elastic element is provided between the locking rod and the support base; A third elastic element is provided between the second slider and the support base; A fourth elastic element is provided between the avoidance element and the locking rod; In the locked state, the locking rod is pressed and fixed onto the support by the second elastic element; During the process of the locking mechanism switching to the unlocked state, the second elastic element and the third elastic element elastically deform. During the axial movement of the connecting shaft to the point where the external thread abuts against the adjacent power generation floor threaded hole, the connecting shaft presses against the other end of the avoidance member, thereby causing the avoidance member to rotate and the fourth elastic member to elastically deform, and causing one end of the avoidance member to axially move away from the first slider; then the third elastic member releases its elastic force, thereby causing the second slider to move towards the connecting shaft to abut against the outer peripheral wall of the connecting shaft, and the first slider moves towards the avoidance member axially by pushing the pusher member through the inclined surface.

5. The connecting mechanism according to claim 4, characterized in that: The connecting shaft is configured to be able to move axially away from the adjacent power generation floor and reset to the separated position; At the separation position, the third elastic element drives the stop block to move into the limiting groove; the fourth elastic element releases its elastic force, driving the avoidance component to rotate and reset, so that the avoidance component corresponds to the axial position of the first slider. When the locking rod moves axially away from the adjacent power generation floor, the second elastic element releases its elastic force, causing the locking rod and the avoidance element to return to their axial positions, thus switching the locking mechanism to the locked state.

6. The connecting mechanism according to claim 1, characterized in that, It also includes unlocking mechanisms; The unlocking mechanism is configured to reverse the connecting shaft to disassemble the external thread from the threaded hole of the power generation floor, wind the spring, and move the connecting shaft axially away from the adjacent power generation floor to reset to the separated position.

7. The connecting mechanism according to claim 6, characterized in that: The unlocking mechanism includes a rotating wheel, a second pull rope, a first guide part, a sliding member, and a second guide part; The rotating wheel and the first guide portion are respectively rotatably connected to the support base; One end of the second pull rope is connected to the rotating wheel, and the other end is connected to the connecting shaft; the second pull rope is arranged to bypass the first guide portion; The connecting shaft is configured such that when the wheel is operated to rotate, it can be reversed by the second pull rope, thereby disassembling and separating the external thread from the threaded hole of the power generation floor, and tightening the spring. The sliding member is slidably connected to the support base and is limited to moving only along the axial direction of the connecting shaft; a fifth elastic member is provided between the sliding member and the connecting shaft; The second guide portion is rotatably connected to the slider, and the second pull rope also passes around the second guide portion; The sliding member is configured such that when the wheel is operated to rotate, it can be driven axially by the second pull rope, thereby directly or through the fifth elastic member driving the connecting shaft axially away from the adjacent power generation floor to reset to the separation position.

8. A power-generating floor, characterized in that, include: Base; A panel, which is connected to the base via a universal joint structure; and According to any one of claims 1-7, the support base is fixedly connected to the base.

9. A power generation floor assembly, characterized in that, include: Multiple power generation floors according to claim 8, wherein the power generation floor is provided with threaded holes; The external thread of one of the power generation floor panels is threadedly connected to the threaded hole of the adjacent power generation floor panel, so that the plurality of power generation floor panels can be detachably spliced ​​and fixed.

Citation Information

Patent Citations

  • Treading power generation floor

    CN115853224A