Clean energy infinite circulation power equipment

By designing clean energy infinite cycle power equipment and using water resources to drive water turbines to generate electricity, the problem of clean energy being restricted by natural conditions has been solved, the continuous and stable supply of clean energy has been achieved, and environmental pollution and energy losses have been reduced.

CN120332054APending Publication Date: 2025-07-18陆其波
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Patent Information

Application Number
CN202510310553.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

Existing clean energy technologies such as solar and wind energy are limited by natural conditions, and are not efficient and have insufficient stability during energy conversion and storage.

Method used

A clean energy infinite cycle power equipment is designed, including roof, working bin and water turbine. By lifting components and buffering the circulating movement of the water tank, water resources are used to drive the turbine to generate electricity, realizing the circulation of water in the water storage bin and working bin. A pure mechanical structure and a check valve are used to control the water flow, simplify wiring, and reduce energy losses.

Benefits of technology

It has achieved a continuous and stable supply of clean energy power, reduced dependence on traditional energy, reduced environmental pollution, and has broad economic and social benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of clean energy, and particularly relates to clean energy infinite circulation power equipment which comprises a roof, a working bin and a water turbine. A lifting assembly is installed in the working bin, the water drainage end of the lifting assembly is fixedly connected with a water return pipe, the movable end of the lifting assembly is fixedly connected with a collecting rope, and the end, away from the lifting assembly, of the collecting rope is fixedly connected with a buffer water tank. According to the clean energy circulation power equipment, a temporary storage water tank moves downwards to drive a lifting assembly to move downwards, water in a working bin enters the lifting assembly, the lifting assembly moves downwards, the temporary storage water tank moves upwards, and the water in the lifting assembly is drained into a water storage bin through a water return pipe; water can circulate in the water storage bin and the working bin, the water turbine can be continuously driven to work and generate electricity only through a certain amount of water, continuous and stable clean energy power is circularly provided, and dependence on traditional energy is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of clean energy, and particularly relates to a clean energy infinite cycle power device. Background Art

[0002] Under the dual pressures of global energy structure transformation and environmental protection, finding efficient, stable and sustainable clean energy solutions has become the consensus of the international community. With the rapid growth of the global economy and the continuous increase in population, the consumption of traditional fossil fuels (such as coal, oil and natural gas) has risen sharply, which not only leads to the increasing depletion of resources, but also causes environmental pollution and climate change problems.

[0003] Current clean energy technologies, such as solar energy and wind energy, although widely used, are often restricted by natural conditions during use. Solar power generation depends on sunlight intensity and duration, and the power generation efficiency will drop significantly at night or on rainy and cloudy days; wind power generation is affected by natural factors such as wind speed and wind direction, and it is difficult to ensure power generation stability. Moreover, there are problems such as low efficiency and insufficient stability in the energy conversion and storage processes. Summary of the Invention

[0004] In order to overcome the defects of the prior art pointed out above, the inventor of the present invention has conducted in-depth research and completed the present invention after a large amount of creative labor.

[0005] Specifically, the technical problem to be solved by the present invention is: to provide a clean energy infinite cycle power device to solve the technical problems that current clean energy technologies, such as solar energy and wind energy, are often restricted by natural conditions and have low efficiency and insufficient stability in the energy conversion and storage processes.

[0006] To solve the above technical problems, the present invention provides the following technical solutions:

[0007] A clean energy infinite cycle power device includes a roof, a working chamber and a water turbine. The driving end of the water turbine is fixedly connected to the driving end of a generator. The drainage end of the water turbine is connected to the water inlet end of the working chamber close to the water turbine through a pipeline. A water storage tank is installed on the top of the roof. A first drainage pipe is installed between the water outlet end of the water storage tank close to the water turbine and the water inlet end of the water turbine.

[0008] A lifting component is installed inside the working chamber. The drainage end of the lifting component is fixedly connected to a return pipe, and the water outlet end of the return pipe faces above the water storage tank. The movable end of the lifting component is fixedly connected to a collecting rope. One end of the collecting rope away from the lifting component is fixedly connected to a buffer water tank, and the buffer water tank moves up and down vertically. Two guide wheels for limiting the collecting rope are installed at the bottom of the roof.

[0009] An I-shaped plate is provided at the top of the buffer water tank. A water injection port is provided on one side of the top of the buffer water tank. A second drain pipe is fixed at the drainage end of the water storage bin near the buffer water tank. A drain port is provided at the bottom of the buffer water tank. A water blocking component is installed at a position inside the buffer water tank opposite to the drain port and at a position inside the water storage bin opposite to the water inlet of the second drain pipe. A second ejector rod coaxial with the second drain pipe is installed directly below each second drain pipe inside the buffer water tank. Three first ejector rods are installed directly below the drain port inside the working bin.

[0010] As an improved technical solution, the lifting component includes a set of fixed connecting plates fixed to the top of the working bin and a set of piston components fixed inside the roof. The adjacent two piston components are connected by a communicating pipe. The water outlet end of the piston component near the return water pipe is fixedly connected to a first one-way valve through a pipe, and the water outlet end of the first one-way valve is connected to the water inlet end of the return water pipe. The air inlet end of the piston component far from the first one-way valve is fixedly connected to a second one-way valve through a pipe. The air inlet end of the second one-way valve is fixedly connected to an air inlet pipe. A static cross beam plate is welded between the bottoms of the set of fixed connecting plates. A G object is fixedly connected between the movable ends of the set of piston components. A row of fixed columns is fixed to the top of the G object. A movable cross beam plate is fixedly connected between the tops of the row of fixed columns. A set of pulley groups are installed between the opposite sides of the static cross beam plate and the movable cross beam plate.

[0011] As an improved technical solution, the pulley group includes a set of static pulleys rotatably installed at the bottom of the static cross beam plate and a set of movable pulleys installed at the top of the movable cross beam plate, and the adjacent upper and lower movable pulleys and static pulleys are staggered. A suspension rope is provided between the set of movable pulleys and the set of static pulleys.

[0012] As an improved technical solution, the piston component includes a piston cylinder. Communication holes are provided at the lower positions on both sides of the piston cylinder. A ring of water injection holes is provided at the upper position on the peripheral surface of the piston cylinder. A piston head is arranged inside the piston cylinder. A piston rod coaxial with the piston head is fixed to the top of the piston head.

[0013] As an improved technical solution, the first one-way valve and the second one-way valve have the same structure. The first one-way valve includes a round pipe. A tapered hole is provided at one end of the round pipe. A round hole coaxial with the tapered hole is provided at the other end of the round pipe. A tapered plug is arranged inside the tapered hole. A disc coaxial with the tapered plug is fixed to the end of the tapered plug located inside the round pipe. A spring is installed inside the round pipe.

[0014] As an improved technical solution, four first guide rails are fixed between the opposite surfaces of the roof and the working bin, and the four first guide rails are respectively located at the four corners of the buffer water tank. On both sides of the front and back of the buffer water tank, first sliders are installed, and the first sliders are slidably limited on the first guide rails.

[0015] As an improved technical solution, the water blocking assembly includes a rotatably installed water baffle and a vertical plate located on the side of the water baffle. Three hanging springs are fixed between the water baffle and the vertical plate, and sealing strips are bonded to the four sides at the bottom of the water baffle.

[0016] As an improved technical solution, a notch is provided on the side of the water baffle close to the vertical plate, an installation shaft is fixed inside the notch, and three shaft blocks are rotatably installed at equal intervals on the installation shaft.

[0017] After adopting the above technical solutions, the beneficial effects of the present invention are as follows:

[0018] 1. In the present invention, when the buffer water tank moves downward, it drives the lifting component to move downward, enabling the water inside the working bin to enter the lifting component. When the lifting component moves downward and the buffer water tank moves upward, the water inside the lifting component is discharged into the storage bin through the return water pipe, realizing the circulation of water inside the storage bin and the working bin. Only a certain amount of water is needed to continuously drive the water turbine to work and generate electricity, providing continuous and stable clean energy power in a cycle, reducing the dependence on traditional energy sources, achieving infinite cycle power with a fixed amount of water. At the same time, using water resources as the source power reduces environmental pollution during the production and use of energy, promotes sustainable development, and can be widely applied in fields such as transportation, industry, and civil use, with huge economic and social benefits.

[0019] 2. In the present invention, when the piston head is lifted to be above the water injection hole, the water resources inside the working bin are injected into the piston cylinder through the water injection hole. As the piston head continuously descends inside the piston cylinder, the water resources inside the piston cylinder are extruded outwards through the communication hole and finally enter the return water pipe through the first one-way valve and are discharged into the inner cavity of the storage bin. Without an external water pump, during the movement of the lifting component itself, the water resources inside the working bin can be re-transported back into the roof, facilitating the recycling of water resources and avoiding waste.

[0020] 3. In the present invention, the first one-way valve and the second one-way valve are controlled to open and close through pressure, so that when one is in the open state, the other is in the closed state, ensuring the normal movement of air flow and water flow. At the same time, no electricity is required for control, ensuring its stability when working underwater and extending its service life. And under the action of no pressure, the conical plug is driven by the elastic force of the spring to reset and block the conical hole.

[0021] 4. In the present invention, the buffer water tank slides vertically between the four guide rails 1 through the slider 1 to ensure the stability of the buffer water tank in vertical lifting, so that the buffer water tank is in a stable vertical lifting movement. The floating ball is limited between the two guide rails 2 to prevent the floating ball from floating around inside the buffer water tank. It can only be lifted vertically, thereby ensuring the accuracy of the measured distance;

[0022] 5. In the present invention, when the top rod collides with the bottom of the sealing strip, as the top rod continues to rise, the sealing strip rotates with the installation axis as the rotation point, and compresses the hanging spring. At this time, the water baffle plate blocks the water inlet and outlet. When the top rod descends and gradually releases the conflict with the water baffle plate, the water baffle plate is gradually reset under the elastic action of the hanging spring, and finally the water baffle plate blocks the water inlet and outlet again, so that the water flow cannot pass through the water inlet. The water inlet and outlet are realized by a purely mechanical structure, which simplifies the difficulty of wiring, makes the device run more stably, reduces energy loss, and reduces the cost of use. In addition, when the water baffle plate blocks the water inlet and outlet, the sealing strip is used to improve the sealing of the blocking. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative labor. Among them:

[0024] Figure 1 It is a schematic diagram of the overall structure of the clean energy circulation power equipment of the present invention.

[0025] Figure 2 This is a schematic diagram of the internal structure of the working chamber of the clean energy circulation power equipment of the present invention.

[0026] Figure 3 It is a schematic diagram of the structure of the lifting assembly of the clean energy circulation power equipment of the present invention.

[0027] Figure 4 It is a schematic diagram of the cross-sectional structure of the circular tube of the clean energy circulation power equipment of the present invention.

[0028] Figure 5 It is a schematic structural diagram of the piston assembly of the clean energy circulation power equipment of the present invention.

[0029] Figure 6 It is a partial structural schematic diagram of the cache water tank and water storage tank of the clean energy circulation power equipment of the present invention.

[0030] Figure 7 This is a schematic diagram of the structure of the cache water tank of the clean energy circulation power equipment of the present invention.

[0031] Figure 8 It is a schematic bottom view structure diagram of the buffer water tank of the clean energy circulating power equipment of the present invention.

[0032] Figure 9 It is a schematic structure diagram of the water blocking component of the clean energy circulating power equipment of the present invention.

[0033] Explanation of reference numerals:

[0034] 1. Roof; 2. Working bin; 3. Lifting component; 31. Fixed connecting plate; 32. Static crossbeam plate; 33. Hanging wheel group; 331. Moving pulley; 332. Static pulley; 333. Hanging rope; 34. Moving crossbeam plate; 35. Fixed column; 36. G object; 37. Piston component; 371. Piston cylinder; 372. Communication hole; 373. Piston head; 374. Water injection hole; 375. Piston rod; 38. Communication pipe; 39. Check valve one; 391. Round pipe; 392. Spring; 393. Disc; 394. Conical hole; 395. Conical plug; 310. Check valve two; 311. Intake pipe; 4. Gathering rope; 41. Guide wheel; 5. Buffer water tank; 51. Guide rail one; 52. Jack two; 53. I-shaped plate; 54. Slide block one; 55. Water injection port; 56. Jack one; 57. Drain port; 58. Water blocking component; 581. Baffle plate; 582. Sealing strip; 583. Vertical plate; 584. Mounting shaft; 585. Hanging spring; 586. Shaft block; 6. Water storage bin; 61. Drain pipe one; 62. Return pipe; 63. Drain pipe two; 7. Water turbine; 71. Generator. Detailed implementation manners

[0035] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present invention.

[0036] It should be noted that all directional indications (such as up, down, left, right, front, back...) in the embodiments of the present invention are only used to explain the relative position relationship and movement conditions between components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.

[0037] At the same time, the meaning of "and / or" or "and / or" appearing throughout the text is that it includes three solutions. Taking "A and / or B" as an example, it includes solution A, or solution B, or a solution that satisfies both A and B at the same time.

[0038] In addition, in the present invention, descriptions such as "first" and "second" are only for descriptive purposes and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include at least one such feature. Additionally, the technical solutions between various embodiments may be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0039] As Figures 1 to 9 Collectively shown, this embodiment provides a clean energy infinite cycle power device. This clean energy cycle power device includes a roof 1, a working chamber 2, and a water turbine 7. The working chamber 2 is located below the roof 1, and the water turbine 7 is located on one side of the working chamber 2. The driving end of the water turbine 7 is fixedly connected to the driving end of a generator 71. The drainage end of the water turbine 7 is connected to the water inlet end on the side of the working chamber 2 close to the water turbine 7 through a pipeline. A water storage tank 6 is installed on the top of the roof 1. A first drainage pipe 61 is installed between the water outlet end on the side of the water storage tank 6 close to the water turbine 7 and the water inlet end of the water turbine 7.

[0040] A lifting component 3 is installed inside the working chamber 2. The drainage end of the lifting component 3 is fixedly connected to a return water pipe 62, and the water outlet end of the return water pipe 62 faces directly above the water storage tank 6. The movable end of the lifting component 3 is fixedly connected to a collecting rope 4. The end of the collecting rope 4 away from the lifting component 3 is fixedly connected to a buffer water tank 5, and the buffer water tank 5 is vertically movable up and down. Two guide wheels 41 for limiting the collecting rope 4 are installed at the bottom of the roof 1.

[0041] An I-shaped plate 53 is provided at the top of the buffer water tank 5. A water injection port 55 is opened on one side of the top of the buffer water tank 5. A second drainage pipe 63 is fixed at the drainage end of the water storage tank 6 close to the buffer water tank 5. A drainage port 57 is opened at the bottom of the buffer water tank 5. Water blocking components 58 are installed inside the buffer water tank 5 directly opposite the drainage port 57 and inside the water storage tank 6 directly opposite the water inlet of the second drainage pipe 63. Inside the buffer water tank 5, directly below each second drainage pipe 63, a top rod two 52 coaxial with the second drainage pipe 63 is installed. The top rod two 52 passes through the water injection port 55 and enters the inside of the drainage pipe 63. Inside the working chamber 2, directly below the drainage port 57, three top rods one 56 are installed.

[0042] To achieve the circulation of water inside the water storage bin 6 and the working bin 2, only a certain amount of water is needed to continuously drive the water turbine 7 to work and generate electricity, providing continuous and stable clean energy power through circulation, reducing the dependence on traditional energy sources, enabling quantitative water to achieve infinite cyclic power. At the same time, using water resources as the source power reduces environmental pollution during the process of energy production and use, promotes sustainable development, and can be widely applied in fields such as transportation, industry, and civil use, with huge economic and social benefits.

[0043] As Figures 1 to 3 As shown jointly, in this embodiment, the lifting assembly 3 includes a set of fixed connecting plates 31 fixed to the top of the working bin 2, and a set of piston assemblies 37 fixed inside the roof 1. The adjacent two piston assemblies 37 are connected through a communicating pipe 38. The water outlet end of the piston assembly 37 near the water return pipe 62 is fixedly connected to a check valve 39 through a pipe, and the water outlet end of the check valve 39 is connected to the water inlet end of the water return pipe 62. The air inlet end of the piston assembly 37 far from the check valve 39 is fixedly connected to a check valve 310 through a pipe, and the air inlet end of the check valve 310 is fixedly connected to an air inlet pipe 311. A static crossbeam plate 32 is welded between the bottoms of the set of fixed connecting plates 31. A G object 36 is fixedly connected between the moving ends of the set of piston assemblies 37. A row of fixed columns 35 is fixed on the top of the G object 36, and a moving crossbeam plate 34 is fixedly connected between the tops of the row of fixed columns 35. Hoist wheel groups 33 are installed between the opposite sides of the static crossbeam plate 32 and the moving crossbeam plate 34, and the moving ends of the hoist wheel groups 33 are fixedly connected to the collecting rope 4 after passing through the through cavity opened at the top of the static crossbeam plate 32.

[0044] As Figures 1 to 2 As shown jointly, in this embodiment, the hoist wheel group 33 includes a set of static pulleys 332 rotatably installed at the bottom of the static crossbeam plate 32, and a set of moving pulleys 331 installed at the top of the moving crossbeam plate 34, and the adjacent upper and lower moving pulleys 331 and static pulleys 332 are staggeredly distributed. A lifting rope 333 is arranged between the set of moving pulleys 331 and the set of static pulleys 332, and one end of the lifting rope 333 is fixed to the bottom of the static crossbeam plate 32, and the other end is fixedly connected to the collecting rope 4.

[0045] As Figures 1 to 5 As shown jointly, in this embodiment, the piston assembly 37 includes a piston cylinder 371. Communication holes 372 are opened at the lower positions on both sides of the piston cylinder 371. A ring of water injection holes 374 is opened at the upper position of the peripheral surface of the piston cylinder 371. A piston head 373 is arranged inside the piston cylinder 371. A coaxial piston rod 375 is fixed to the top of the piston head 373, and the top end of the piston rod 375 passes through the top end of the piston cylinder 371 and is fixedly connected to the bottom of the G object 36.

[0046] When the buffer water tank 5 is at the lowest point inside the working bin 2, the piston head 373 is lifted to a position above the water injection hole 374. At this time, the water resource inside the working bin 2 is injected into the inside of the piston cylinder 371 through the water injection hole 374. When the object G 36 descends, it drives the piston head 373 to move downward. At this time, under the action of pressure, the check valve II 310 is in a closed state, and the check valve I 39 is in an open state. As the piston head 373 continuously descends inside the piston cylinder 371, the water resource inside the piston cylinder 371 will be extruded outward through the communication hole 372, and finally enter the inside of the return water pipe 62 through the check valve I 39 and be discharged into the inner cavity of the water storage bin 6. Without an external water pump, during the movement of the lifting assembly 3 itself, the water resource located inside the working bin 2 can be re-transported back into the roof 1, which is conducive to the recycling of water resources, avoids waste, and realizes the cycle.

[0047] As Figures 1 to 4 As shown together, in this embodiment, the structures of the check valve I 39 and the check valve II 310 are the same. The check valve I 39 includes a circular tube 391. One end of the circular tube 391 is provided with a tapered hole 394, and the other end of the circular tube 391 is provided with a circular hole coaxial with the tapered hole 394. Inside the tapered hole 394 is provided a tapered plug 395. One end of the tapered plug 395 located inside the circular tube 391 is fixed with a coaxial disk 393. A spring 392 is installed inside the circular tube 391, and one end of the spring 392 close to the disk 393 is installed on the disk 393. The diameter of the disk 393 is smaller than the inner diameter of the circular tube 391.

[0048] The working principles of the check valve I 39 and the check valve II 310 are as follows:

[0049] When the pressure moves from the tapered plug 395 towards the spring 392, the pressure pushes the tapered plug 395 to compress the circular tube 391, so that the tapered plug 395 contacts and blocks the tapered hole 394. The air flow and water flow enter the inside of the circular tube 391 through the water injection hole 374 and are discharged from the circular hole at the other end of the circular tube 391. At this time, it is in an open state. When the pressure moves from the spring 392 towards the tapered plug 395, under the combined action of the pressure and the elasticity of the spring 392, the double kinetic energy presses the tapered plug 395 inside the tapered hole 394. At this time, it is in a closed state. The check valve I 39 and the check valve II 310 are controlled to open and close through pressure, so that when one is in an open state, the other is in a closed state, ensuring that the air flow and water flow can move normally. At the same time, no electricity is required for control, ensuring its stability when working underwater, extending its service life, and under the action of no pressure, the tapered plug 395 is driven by the elasticity of the spring 392 to self-reset and block the tapered hole 394.

[0050] As Figure 1 、 Figures 6 to 8As shown together, in this embodiment, four first guide rails 51 are fixed between the opposite surfaces of the roof 1 and the working bin 2, and the four first guide rails 51 are respectively located at the four corners of the buffer water tank 5. Sliders 54 are installed on both sides of the front and back of the buffer water tank 5, and the sliders 54 are slidably limited on the first guide rails 51. The I-shaped plate 53 is fixed between the four first guide rails 51. The buffer water tank 5 slides vertically between the four first guide rails 51 through the sliders 54 to ensure the stability of the vertical lifting of the buffer water tank 5 and make the buffer water tank 5 in a stable vertical lifting motion.

[0051] As Figures 7 to 9 As shown together, in this embodiment, the water blocking component 58 includes a water blocking plate 581 rotatably installed, and a vertical plate 583 located on the side of the water blocking plate 581. Three hanging springs 585 are fixed between the water blocking plate 581 and the vertical plate 583. Sealing strips 582 are bonded to the four sides of the bottom of the water blocking plate 581. When the water blocking plate 581 blocks the water inlet and outlet, the sealing performance of the block is improved through the sealing strips 582.

[0052] As Figures 7 to 9 As shown together, in this embodiment, a notch is provided on the side of the water blocking plate 581 close to the vertical plate 583. An installation shaft 584 is fixed inside the notch, and three shaft blocks 586 are rotatably installed at equal intervals on the installation shaft 584, and the shaft blocks 586 are fixed inside the bin body.

[0053] The use principle of the water blocking component 58 is as follows:

[0054] When the ejector rod abuts against the bottom of the sealing strip 582, as the ejector rod continuously rises, the sealing strip 582 rotates with the installation shaft 584 as the rotation point and compresses the hanging spring 585. At this time, the water blocking of the water inlet and outlet by the water blocking plate 581 is released. When the ejector rod descends and gradually releases the abutment against the water blocking plate 581, under the elastic action of the hanging spring 585, the water blocking plate 581 gradually resets, and finally the water blocking plate 581 blocks the water inlet and outlet again, so that the water flow cannot pass through the water inlet and outlet again. The water inlet and outlet are realized by a pure mechanical structure, which simplifies the wiring difficulty, makes the device operate more stably, reduces the energy consumption and the use cost.

[0055] During use, the water stored in the water storage bin 6 is sent to the inside of the water turbine 7 through the first drain pipe 61. The water falling from a high altitude drives the water turbine 7 to work under its impact force and drives the generator 71 to generate electricity. The water after passing through the inside of the water turbine 7 returns to the inside of the working bin 2 through the pipeline;

[0056] In the initial state, the inside of the buffer water tank 5 is in an emptied state. The buffer water tank 5 is fixed in the air. At this time, the second ejector rod 52 passes through the drain pipe 63 and enters the inside of the water storage bin 6, and will push open the water blocking component 58 located inside 6, so that the water inside the water storage bin 6 flows through the second drain pipe 63 into the inside of the buffer water tank 5;

[0057] As the water resources inside the buffer water tank 5 continuously increase, when the water resources inside the water storage tank 5 reach the threshold value, under the action of gravity, the buffer water tank 5 will gradually move out of the inside of the water storage bin 6 due to gravity, and the pushing open of the water blocking component 58 will be released. The water blocking component 58 blocks the water inside the water storage bin 6 from entering the inside of the drain pipe 63. The buffer water tank 5 falls freely downward and drives the lifting component 3 to move through the collecting rope 4;

[0058] When the buffer water tank 5 moves downward, the collecting rope 4 pulls the static pulley 332 upward, then lifts the weight G 36 upward, thereby moving the piston head 373 inside the piston assembly 37 upward. Under the action of pressure, the second one-way valve 310 is in an open state, and the first one-way valve 39 is in a closed state. External air enters the inside of the piston assembly 37 through the air inlet pipe 311 to ensure that air flow can continuously enter the inside of the piston assembly 37;

[0059] As the buffer water tank 5 continues to descend, finally the first ejector rod 56 passes through the drain port 57 and enters the inside of the buffer water tank 5. At this time, the first ejector rod 56 will push open the water blocking component 58 located inside the buffer water tank 5. The water inside the buffer water tank 5 is discharged through the drain port 57 and falls into the inside of the working bin 2. As the water inside the buffer water tank 5 is continuously discharged, the weight of the buffer water tank 5 gradually decreases. Under the action of the gravity of the weight G 36, the buffer water tank 5 is moved upward to reset. Finally, after the water inside the buffer water tank 5 is drained, the first ejector rod 56 disengages from the inside of the buffer water tank 5, and the water blocking component 58 blocks the drain port 57 again. The buffer water tank 5 is reset in the air, and the inside of the buffer water tank 5 is filled with water, and this process repeats;

[0060] When the buffer water tank 5 is at the lowest point inside the working bin 2, the piston head 373 is lifted above the water injection hole 374. At this time, the water resources inside the working bin 2 are injected into the inside of the piston cylinder 371 through the water injection hole 374. When the weight G 36 descends, it drives the piston head 373 to move downward. At this time, under the action of pressure, the second one-way valve 310 is in a closed state, and the first one-way valve 39 is in an open state. As the piston head 373 continuously descends inside the piston cylinder 371, the water resources inside the piston cylinder 371 will be squeezed out through the communication hole 372, and finally enter the inside of the return pipe 62 through the first one-way valve 39 and are discharged into the inner cavity of the water storage bin 6.

[0061] It should be understood that the use of these embodiments is only for illustrating the present invention rather than intending to limit the protection scope of the present invention. In addition, it should also be understood that after reading the technical content of the present invention, those skilled in the art can make various changes, modifications and / or variations to the present invention, and all these equivalent forms also fall within the protection scope defined by the appended claims of this application.

Claims

1. An infinite cyclic power device for clean energy, characterized in that: It includes a roof (1), a working bin (2) and a water turbine (7). The driving end of the water turbine (7) is fixedly connected to the driving end of a generator (71). The drainage end of the water turbine (7) is connected to the water inlet end of the working bin (2) near the water turbine (7) through a pipeline. A water storage bin (6) is installed at the top of the roof (1). A drain pipe one (61) is installed between the water outlet end of the water storage bin (6) near the water turbine (7) and the water inlet end of the water turbine (7). A lifting component (3) is installed inside the working bin (2). The drainage end of the lifting component (3) is fixedly connected to a return water pipe (62), and the water outlet end of the return water pipe (62) faces directly above the water storage bin (6). The movable end of the lifting component (3) is fixedly connected to a collecting rope (4). One end of the collecting rope (4) far from the lifting component (3) is fixedly connected to a buffer water tank (5), and the buffer water tank (5) moves up and down vertically. Two guide wheels (41) for limiting the collecting rope (4) are installed at the bottom of the roof (1). An I-shaped plate (53) is arranged at the top of the buffer water tank (5). A water injection port (55) is opened on one side of the top of the buffer water tank (5). A drain pipe two (63) is fixed at the drainage end of the water storage bin (6) near the buffer water tank (5). A drain port (57) is opened at the bottom of the buffer water tank (5). Water blocking components (58) are installed at positions inside the buffer water tank (5) directly facing the drain port (57) and at positions inside the water storage bin (6) directly facing the water inlet of the drain pipe two (63). Thumb rods two (52) coaxial with the drain pipe two (63) are installed directly below each drain pipe two (63) inside the buffer water tank (5). Three thumb rods one (56) are installed directly below the drain port (57) inside the working bin (2).

2. The clean energy recycling power equipment according to claim 1, wherein: The lifting component (3) includes a group of fixed connecting plates (31) fixed at the top of the working bin (2) and a group of piston components (37) fixed inside the roof (1). The adjacent two piston components (37) are connected to each other through a communicating pipe (38). The water outlet end of the piston component (37) near the return water pipe (62) is fixedly connected to a check valve one (39) through a pipeline, and the water outlet end of the check valve one (39) is connected to the water inlet end of the return water pipe (62). The air inlet end of the piston component (37) far from the check valve one (39) is fixedly connected to a check valve two (310) through a pipeline. The air inlet end of the check valve two (310) is fixedly connected to an air inlet pipe (311). A static cross beam plate (32) is welded between the bottoms of the group of fixed connecting plates (31). A G object (36) is fixedly connected between the movable ends of the group of piston components (37). A row of fixed columns (35) is fixed at the top of the G object (36). A movable cross beam plate (34) is fixedly connected between the tops of the row of fixed columns (35). Hanging wheel groups (33) are installed on both sides of the opposite surfaces of the static cross beam plate (32) and the movable cross beam plate (34).

3. The clean energy recycling power equipment according to claim 2, characterized in that: The hanging pulley set (33) includes a set of static pulleys (332) rotatably installed at the bottom of the static crossbeam plate (32), and a set of moving pulleys (331) installed at the top of the moving crossbeam plate (34), and the adjacent upper and lower moving pulleys (331) and static pulleys (332) are staggeredly distributed. A lifting rope (333) is arranged between a set of the moving pulleys (331) and a set of the static pulleys (332).

4. The clean energy recycling power equipment according to claim 3, characterized in that: The piston assembly (37) includes a piston cylinder (371). Communication holes (372) are formed at lower positions on both sides of the piston cylinder (371). A ring of water injection holes (374) is formed at an upper position on the peripheral surface of the piston cylinder (371). A piston head (373) is arranged inside the piston cylinder (371). A piston rod (375) coaxial with the piston head (373) is fixed at the top of the piston head (373).

5. The clean energy recycling power equipment according to claim 4, characterized in that: The structure of the first one-way valve (39) is the same as that of the second one-way valve (310). The first one-way valve (39) includes a circular tube (391). A tapered hole (394) is formed at one end of the circular tube (391). A circular hole coaxial with the tapered hole (394) is formed at the other end of the circular tube (391). A tapered plug (395) is arranged inside the tapered hole (394). A disc (393) coaxial with the tapered plug (395) is fixed at one end of the tapered plug (395) located inside the circular tube (391). A spring (392) is installed inside the circular tube (391).

6. The clean energy recycling power equipment according to claim 5, characterized in that: Four first guide rails (51) are fixed between the opposite surfaces of the roof (1) and the working bin (2), and the four first guide rails (51) are respectively located at the four corners of the buffer water tank (5). Sliders (54) are installed on both sides of the front and back of the buffer water tank (5), and the sliders (54) are limited to slide on the first guide rails (51).

7. The clean energy cycle power equipment according to claim 6, characterized in that: The water blocking assembly (58) includes a water baffle (581) rotatably installed and a vertical plate (583) located on the side of the water baffle (581). Three hanging springs (585) are fixed between the water baffle (581) and the vertical plate (583). Sealing strips (582) are bonded to the four sides at the bottom of the water baffle (581).

8. The clean energy recycling power equipment according to claim 7, characterized in that: A notch is arranged on one side of the water baffle (581) close to the vertical plate (583). A mounting shaft (584) is fixed inside the notch. Three shaft blocks (586) are rotatably installed at equal intervals on the mounting shaft (584).