Dual power coupling type wind and steam complementary power generation device

By designing a dual-power coupled wind and steam complementary power generation device, the continuous operation of the wind power generation device and the reduction of fuel consumption in the absence of wind were realized, solving the problems of wind power generation equipment being unable to generate electricity continuously and consuming a lot of fuel in the absence of wind.

CN120083656BActive Publication Date: 2026-07-03BEIJING DONGCHEN RUIFENG CHEM
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
BEIJING DONGCHEN RUIFENG CHEM
Filing Date
2025-03-12
Publication Date
2026-07-03

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    Figure HDA0005307888820000031
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Abstract

The application provides a double-power coupling type wind and steam complementary power generation device, relates to the technical field of wind power generation devices, and comprises a generator set, a wind power generation device is installed at the top of the generator set, the wind power generation device comprises a mounting rod, a gear box is fixed at the top of the mounting rod, connecting shafts are arranged at the two ends of the gear box, a first fan blade is arranged at the front end of the gear box, and a second fan blade is arranged at the rear end of the gear box, a sleeve frame is fixed at the positions of the first fan blade and the second fan blade corresponding to the connecting shafts, and the sleeve frame is sleeved on the connecting shafts, and an opening is arranged at the upper end of the sleeve frame, compared with the prior art, the two groups of fan blades can be used alternately, one group of damaged fan blades is disassembled and sent to the lower part for maintenance, and the other group of fan blades is used for replacement, so that the continuous operation of the wind power generation device is maintained, high-temperature compressed gas is sent into the steam power generation device through a compression assembly, the consumption of fuel is reduced, and power generation is jointly completed.
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Description

Technical Field

[0001] This invention relates to the field of wind power generation technology, specifically to a dual-power coupled wind and steam complementary power generation device. Background Technology

[0002] The main methods of power generation include wind energy, hydro energy and thermal energy. For some household power generation equipment, wind power is a common small power generation device. The basic principle of electrical-coupled wind power generation is to convert wind energy into mechanical energy: the wind turbine (also called blade) of the wind turbine is composed of multiple blades, usually three. When the wind blows over the blades, the kinetic energy of the wind acts on the blades, causing them to rotate. This rotation converts the kinetic energy of the wind into mechanical energy. The rotation of the wind turbine shaft is connected to the generator through a transmission system (such as a gearbox).

[0003] Similarly, using the high-temperature steam generated by steam engines to operate steam turbines and generators is also a common practice in existing technology.

[0004] The two power generation methods mentioned above are common power generation technologies in reality. Wind power generation cannot continuously generate electricity when there is no wind, while thermal power generation requires too much fuel consumption. The two cannot be used to complement each other well. For household wind power generation equipment, once the wind turbine is damaged, it is inconvenient to disassemble and the use of wind power generation will be suspended. Summary of the Invention

[0005] To address the shortcomings of existing technologies, the present invention aims to provide a dual-power coupled wind and steam complementary power generation device to solve the problems mentioned in the background art. The present invention has a novel structure, with two sets of fan blades that can be used alternately. If one set is damaged, it can be disassembled and sent down for repair, while the other set is used in place, thereby maintaining the continuous operation of the wind power generation device. High-temperature compressed gas is introduced into the steam power generation device through the compression component, reducing fuel consumption and jointly completing the power generation.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a dual-power coupled wind and steam complementary power generation device, comprising a generator set, a wind power generation device mounted on the top of the generator set, the wind power generation device including a mounting rod, a gearbox fixed to the top of the mounting rod, and connecting shafts provided at both ends of the gearbox, a first blade at the front end of the gearbox, and a second blade at the rear end of the gearbox, with sleeves fixed to the first and second blades at positions corresponding to the connecting shafts, the sleeves fitting onto the connecting shafts, and an opening at the upper end of the sleeves, the surface of the mounting rod... The assembly is equipped with a disassembly component, which includes a screw. The screw is rotatably mounted on one side of the mounting rod via a bearing bracket, and a movable frame is threaded onto the surface of the screw. A clamping frame is provided on the top of the movable frame corresponding to the two sides of the sleeve frame, and the clamping frame holds the two sides of the sleeve frame. A steam power generation device is provided on the back of the generator assembly. An exhaust pipe is provided on one side of the steam power generation device, and a compression assembly is provided on the other side of the steam power generation device. The compression assembly includes a compression box, an air inlet is provided on one side of the compression box, and a piston rod is slidably inserted into the top of the compression box. The piston rod is drivenly connected to the movable frame.

[0007] Furthermore, threaded holes are provided on both sides of the connecting shaft, and bolts are threaded into the sleeve corresponding to the positions on both sides of the connecting shaft, with the bolts threaded into the inside of the threaded holes, and a square slot is provided on the outer end of the bolt.

[0008] Furthermore, the disassembly assembly also includes a vertical plate, the movable frame is fixed to the outside of the clamping frame with the vertical plate, and a rod is slidably inserted into the inside of the vertical plate. The rod is fixedly connected to the clamping frame. A bidirectional electric push rod is fixed inside the movable frame, and the extended end of the bidirectional electric push rod is fixedly connected to the vertical plate.

[0009] Furthermore, the movable frame is rotatably mounted with a shaft at the bottom of the sleeve frame, and a transmission belt is slidably sleeved at both ends of the shaft. The pulley on the other side of the transmission belt corresponds to the position of the bolt, and an insert shaft is fixed to the pulley on the other side of the transmission belt. A protrusion is provided on the insert shaft corresponding to the position of the bolt square slot.

[0010] Furthermore, the transmission belts at both ends of the shaft slide along the shaft via mounting plates. A connecting plate is fixed to the bottom of the mounting plate of the transmission belt. The connecting plate is fixedly connected to the bottom of the vertical plate in the opposite direction. The two sets of connecting plates are staggered.

[0011] Furthermore, the upper and lower surfaces of the shaft are provided with raised strips, and the pulley at the lower end of the transmission belt is slidably engaged with the shaft and the raised strips.

[0012] Furthermore, an internal gear disk is rotatably mounted on the surface at the bottom of the mounting rod of the generator set. The mounting rod is fixed at the center of the internal gear disk. A first gear is meshed with one side of the internal gear disk corresponding to the screw. The first gear is rotatably mounted on the top of the generator set through a bearing.

[0013] Furthermore, a socket is fixed to the top of the first gear, and a one-way electric push rod is fixed to the bottom of the screw, with the extended end of the one-way electric push rod inserted into the socket.

[0014] Furthermore, the compression assembly also includes a turntable. The turntable is rotatably mounted on the top of the compression box via a bearing bracket, and a connecting rod is rotatably mounted on the surface of the turntable near the outer edge via a rotating shaft. The other end of the connecting rod is rotatably connected to the top of the piston rod via a rotating shaft.

[0015] Furthermore, a second gear is fixed to the outer side of the turntable, a toothed plate is meshed with one side of the second gear, a vertical frame is fixed to the top of the toothed plate, and the top of the vertical frame is fixedly connected to the movable frame.

[0016] The beneficial effects of this invention are:

[0017] 1. In this invention, each time the screw drives the moving frame to descend or ascend, the vertical frame drives the toothed plate to move up and down, so that the toothed plate meshes with the second gear and drives the turntable to rotate. During the rotation of the turntable, the piston rod is moved through the connecting rod. The piston rod makes a reciprocating up and down motion inside the compression box, and air is intermittently added into the compression box through the air inlet. After the gas is compressed by the piston plate, it is sent into the steam power generation device. Because the air compression generates heat, it preheats the water in the steam power generation device and reduces fuel consumption.

[0018] 2. In this invention, after a set of fan blades is clamped and removed by the moving frame, the extended end of the unidirectional electric push rod is inserted into the socket of the first gear. The insertion method of this part is the same as that of bolts and shafts, which adopts a block insertion method. It can be driven to rotate through the snap-fit ​​action. The rotation of the screw can synchronously drive the first gear to rotate and mesh with the internal gear plate. In turn, the internal gear plate drives the mounting rod to rotate, replacing the spare second fan blade at the rear end to the unobstructed position at the front end for continued power generation.

[0019] 3. In this invention, when the first fan blade at the front end malfunctions, the screw is driven by a motor, and the moving frame moves vertically. When the clamping frame approaches the sleeve frame position, the extended end of the bidirectional electric push rod drives the two vertical plates to move. The clamping frame clamps onto the connecting end of the fan blade. At the same time, due to the connection of the connecting plates, the two transmission belts slide along the shaft, inserting the top insertion shaft into the outer end of the bolt. The shaft can be driven by a motor, so that the transmission belts on both sides synchronously drive the insertion shaft to rotate. Because of the engagement between the insertion shaft and the outer end of the bolt, the bolt is rotated and moved out of the screw hole of the connecting shaft. During this process, the removal of the bolt and the clamping frame clamping onto the connecting end of the fan blade are completed simultaneously.

[0020] 4. The transmission belt of the present invention can slide along the shaft. Because the protrusions at the upper and lower ends of the shaft can maintain the shaft's drive on the transmission belt while sliding, the synchronous clamping of the fan blade and release of the connection between the fan blade and the connecting shaft can be achieved, making it convenient to disassemble and remove.

[0021] 5. Compared with the prior art, the present invention allows two sets of fan blades to be used alternately. If one set is damaged, it can be disassembled and sent down for repair, while the other set is used in place, thereby maintaining the continuous operation of the wind power generation device. High-temperature compressed gas is sent into the steam power generation device through the compression component, reducing fuel consumption and jointly completing the power generation. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of a dual-power coupled wind and steam complementary power generation device according to the present invention.

[0023] Figure 2 This is a schematic diagram showing the connection between the disassembly components and the compression components of a dual-power coupled wind and steam complementary power generation device according to the present invention;

[0024] Figure 3 This is a schematic diagram of the wind power generation device structure of a dual-power coupled wind and steam complementary power generation device according to the present invention;

[0025] Figure 4 This is a schematic diagram of the bottom structure of the disassembly assembly of a dual-power coupled wind and steam complementary power generation device according to the present invention;

[0026] Figure 5 This is a schematic diagram of the connection between the fan blades and gearbox of a dual-power coupled wind and steam complementary power generation device according to the present invention;

[0027] Figure 6 This is a schematic diagram of the disassembly components and frame connection of a dual-power coupled wind and steam complementary power generation device according to the present invention;

[0028] Figure 7 This is a schematic diagram of the top structure of the disassembly assembly of a dual-power coupled wind and steam complementary power generation device according to the present invention;

[0029] Figure 8 This is a schematic diagram of the compression component structure of a dual-power coupled wind and steam complementary power generation device according to the present invention.

[0030] In the diagram: 1. Generator set; 2. Wind power generation device; 21. Mounting rod; 22. Gearbox; 23. First blade; 24. Second blade; 25. Connecting shaft; 26. Screw hole; 27. Sleeve frame; 28. Bolt; 3. Disassembly assembly; 31. Screw; 32. Moving frame; 33. One-way electric push rod; 34. Internal gear plate; 35. First gear; 36. Socket; 37. Two-way electric push rod; 38. Vertical plate; 39. Drive belt; 310. Shaft; 311. Protruding strip; 312. Insert shaft; 313. Insert rod; 314. Clamping frame; 315. Connecting plate; 4. Steam power generation device; 41. Exhaust pipe; 5. Compression assembly; 51. Compression box; 52. Air inlet; 53. Piston rod; 54. Turntable; 55. Connecting rod; 56. Second gear; 57. Gear plate; 58. Vertical frame. Detailed Implementation

[0031] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0032] Please see Figures 1 to 8This invention provides a technical solution: a dual-power coupled wind and steam complementary power generation device, including a generator set 1. A wind power generation device 2 is installed on the top of the generator set 1. The wind power generation device 2 includes a mounting rod 21. A gearbox 22 is fixed to the top of the mounting rod 21, and connecting shafts 25 are provided at both ends of the gearbox 22. A first fan blade 23 is provided at the front end of the gearbox 22, and a second fan blade 24 is provided at the rear end of the gearbox 22. A sleeve frame 27 is fixed at the position of the first fan blade 23 and the second fan blade 24 corresponding to the position of the connecting shaft 25, and the sleeve frame 27 is sleeved on the connecting shaft 25. An opening is provided at the upper end of the sleeve frame 27. A disassembly assembly 3 is provided on the surface of the mounting rod 21. The disassembly assembly 3 includes a screw 31. The screw 31 is rotatably mounted on one side of the mounting rod 21 through a bearing bracket, and a movable frame 32 is threaded onto the surface of the screw 31. A clamping frame 3 is provided at the top of the movable frame 32 corresponding to the two sides of the sleeve frame 27. 14. The clamping frame 314 is clamped on both sides of the sleeve frame 27. The back of the generator set 1 is provided with a steam power generation device 4. One side of the steam power generation device 4 is provided with an exhaust pipe 41, and the other side of the steam power generation device 4 is provided with a compression assembly 5. The compression assembly 5 includes a compression box 51. One side of the compression box 51 is provided with an air inlet 52, and a piston rod 53 is slidably inserted into the top of the compression box 51. The piston rod 53 is connected to the moving frame 32 in a transmission connection. When using the device, in a windy environment, the wind power generation device 2 is connected to the generator set 1 to generate electricity. In a windless environment, the steam power generation device 4 is connected to the generator set 1 to generate electricity. When the fan blade at the front end of the wind power generation device 2 is damaged and does not rotate, it is removed by disassembling the assembly 3 and replaced with a spare second fan blade 24 to maintain the continuous operation of wind power generation. High temperature gas is added into the steam power generation device 4 through the compression assembly 5 to preheat the water and reduce fuel consumption.

[0033] In this embodiment, threaded holes 26 are provided on both sides of the connecting shaft 25. Bolts 28 are threaded into the sleeve 27 corresponding to the positions on both sides of the connecting shaft 25, and the bolts 28 are threaded into the inside of the threaded holes 26. The outer end of the bolt 28 is provided with a square slot. The disassembly assembly 3 also includes a vertical plate 38. The vertical plate 38 is fixed to the outside of the clamping frame 314 on the movable frame 32, and a rod 313 is slidably inserted into the inside of the vertical plate 38. The rod 313 is fixedly connected to the clamping frame 314. A bidirectional electric push rod 37 is fixed inside the movable frame 32, and the extended end of the bidirectional electric push rod 37 is fixed to the vertical plate 38. The movable frame 32 is rotatably mounted on a shaft 310 at the bottom of the sleeve frame 27. A transmission belt 39 is slidably sleeved at both ends of the shaft 310. A pulley on the other side of the transmission belt 39 corresponds to the position of the bolt 28. A shaft 312 is fixed to the pulley on the other side of the transmission belt 39, and a protrusion is provided on the shaft 312 corresponding to the position of the square slot of the bolt 28. The transmission belts 39 at both ends of the shaft 310 slide along the shaft 310 via mounting plates. A connecting plate 315 is fixed to the bottom of the mounting plate of the transmission belt 39. The connecting plate 315 is fixedly connected to the bottom of the vertical plate 38 in the opposite direction. Two sets of connecting plates 315... 15. The shaft 310 has protrusions 311 on its upper and lower surfaces. The lower pulley of the transmission belt 39 slides and engages with the shaft 310 and the protrusions 311. When the first fan blade 23 at the front apex malfunctions, the screw 31 is driven by a motor, and the moving frame 32 moves vertically. When the clamping frame 314 approaches the sleeve frame 27, the extended end of the bidirectional electric push rod 37 drives the two vertical plates 38 to move. The clamping frame 314 clamps onto the connecting end of the fan blade. Simultaneously, due to the connection of the connecting plate 315, the two transmission belts 39 slide along the shaft 310, inserting the top insertion shaft 312 into the outer end of the bolt 28. 310 can be driven by a motor, so that the transmission belts 39 on both sides synchronously drive the insert shaft 312 to rotate. Because the insert shaft 312 is engaged with the outer end of the bolt 28, the bolt 28 is rotated and moved out of the screw hole 26 of the connecting shaft 25. During this process, the removal of the bolt 28 and the clamping of the clamping frame 314 on the fan blade connection end are completed synchronously. The transmission belt 39 can slide along the shaft 310. Because the protrusions 311 at the upper and lower ends of the shaft 310 can maintain the drive of the shaft 310 on the transmission belt 39 while sliding, the synchronous clamping of the fan blade and the release of the connection between the fan blade and the connecting shaft 25 can be achieved, making it easy to disassemble and remove it.

[0034] In this embodiment, an internal gear disk 34 is rotatably mounted on the surface of the bottom of the mounting rod 21 of the generator set 1. The mounting rod 21 is fixed at the center of the internal gear disk 34. A first gear 35 is meshed with one side of the internal gear disk 34 corresponding to the screw 31. The first gear 35 is rotatably mounted on the top of the generator set 1 via a bearing. A socket 36 is fixed to the top of the first gear 35. A one-way electric push rod 33 is fixed to the bottom of the screw 31, and the extended end of the one-way electric push rod 33 is inserted into the socket 36. After the movable frame 32 clamps and removes a set of fan blades, the extended end of the one-way electric push rod 33 is inserted into the socket 36 of the first gear 35. The insertion method of this part is the same as that of the bolt 28 and the insert shaft 312. They all adopt a block insertion method, which can drive the rotation through the snap-fit ​​action. The rotation of the screw 31 can synchronously drive the first gear 35 to rotate and mesh with the internal gear disk 34. Then the internal gear disk 34 drives the mounting rod 21 to rotate, replacing the spare second fan blade 24 at the rear end to the unobstructed position at the front end to continue generating electricity.

[0035] In this embodiment, the compression assembly 5 further includes a turntable 54. The turntable 54 is rotatably mounted on the top of the compression box 51 via a bearing bracket, and a connecting rod 55 is rotatably mounted on the outer edge surface of the turntable 54 via a rotating shaft. The other end of the connecting rod 55 is rotatably connected to the top of the piston rod 53 via a rotating shaft. A second gear 56 is fixed to the outer side of the turntable 54, and a toothed plate 57 is meshed with one side of the second gear 56. A vertical frame 58 is fixed to the top of the toothed plate 57, and the top of the vertical frame 58 is fixedly connected to the movable frame 32. Each time the screw 31 drives the movable frame 32 to descend or ascend, the vertical frame 58 drives the toothed plate 57 to move up and down, so that the toothed plate 57 meshes with the second gear 56 and drives the turntable 54. As the turntable 54 rotates, the piston rod 53 moves via the connecting rod 55. The piston rod 53 reciprocates inside the compression chamber 51. During this process, solenoid valves are installed in both the air inlet 52 and the exhaust pipe 41. The bottom of the compression chamber 51 is connected to the interior of the steam power generation device 4 via a pipe. Air is intermittently added into the compression chamber 51 through the air inlet 52. After the gas is compressed by the piston plate, it is sent into the steam power generation device 4. Because the air compression generates heat, it preheats the water in the steam power generation device 4, reducing fuel consumption. In this part, the steam power generation device 4 is existing technology. It generates steam by heating water and sends it into the steam turbine. The steam turbine then drives the generator to generate electricity.

[0036] When using the device, in windy conditions, it generates electricity by connecting the wind power generation device 2 to the generator set 1. In windless conditions, it generates electricity by connecting the steam power generation device 4 to the generator set 1. When the first fan blade 23 at the front end fails, the screw 31 is driven by the motor, and the moving frame 32 moves vertically. When the clamping frame 314 approaches the sleeve frame 27, the extended end of the bidirectional electric push rod 37 drives the two vertical plates 38 to move. The clamping frame 314 clamps onto the connecting end of the fan blade. At the same time, due to the connection of the connecting plate 315, the two transmission belts 39 slide along the shaft 310, inserting the top insertion shaft 312 into the outer end of the bolt 28. The shaft 310 can be driven by a motor, so that the transmission belts 39 on both sides synchronously drive the insert shaft 312 to rotate. Because the insert shaft 312 is engaged with the outer end of the bolt 28, the bolt 28 is rotated and moved out of the screw hole 26 of the connecting shaft 25. In this process, the removal of the bolt 28 and the clamping of the clamping frame 314 on the fan blade connection end are completed synchronously. The transmission belt 39 can slide along the shaft 310. Because the protrusions 311 at the upper and lower ends of the shaft 310 can maintain the drive of the shaft 310 on the transmission belt 39 while sliding, the synchronous clamping of the fan blade and the release of the connection between the fan blade and the connecting shaft 25 are achieved, making it easy to disassemble and remove. After the movable frame 32 clamps and removes a set of fan blades, the extended end of the one-way electric push rod 33 is inserted into the socket 36 of the first gear 35. The insertion method of this part is the same as that of the bolt 28 and the insert shaft 312, which adopts a block insertion method. It can drive the rotation through the snap-fit ​​action. The rotation of the screw 31 can synchronously drive the first gear 35 to rotate and mesh with the internal gear plate 34. Then the internal gear plate 34 drives the mounting rod 21 to rotate, replacing the spare second fan blade 24 at the rear end to the unobstructed position at the front end for continued power generation. Each time the screw 31 drives the movable frame 32 to descend or rise, the vertical frame 58 drives the toothed plate 57 to rise and fall. The movement causes the toothed plate 57 to mesh with the second gear 56, driving the turntable 54 to rotate. During the rotation of the turntable 54, the piston rod 53 is moved through the connecting rod 55. The piston rod 53 reciprocates and moves up and down inside the compression chamber 51. During this process, solenoid valves are installed in the air inlet 52 and the exhaust pipe 41. The bottom of the compression chamber 51 is connected to the inside of the steam power generation device 4 through a pipe. Air is intermittently added into the compression chamber 51 through the air inlet 52. After the gas is compressed by the piston plate, it is sent into the steam power generation device 4. Because the air compression generates heat, it preheats the water in the steam power generation device 4, reducing fuel consumption.

[0037] The foregoing has shown and described the basic principles and main features of the present invention and its advantages. It will be apparent to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments, and that the present invention can be implemented in other specific forms without departing from the spirit or basic features of the present invention.

[0038] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A dual-power coupled wind and steam complementary power generation device, comprising a generator set (1), wherein a wind power generation device (2) is installed on the top of the generator set (1), the wind power generation device (2) comprises a mounting rod (21), a gearbox (22) is fixed on the top of the mounting rod (21), and connecting shafts (25) are provided at both ends of the gearbox (22), a first fan blade (23) is provided at the front end of the gearbox (22), and a second fan blade (24) is provided at the rear end of the gearbox (22), and a sleeve frame (27) is fixed at the position of the first fan blade (23) and the second fan blade (24) corresponding to the position of the connecting shaft (25), and the sleeve frame (27) is sleeved on the connecting shaft (25), characterized in that: The upper end of the sleeve frame (27) is provided with an opening. The surface of the mounting rod (21) is provided with a disassembly assembly (3). The disassembly assembly (3) includes a screw (31). The screw (31) is rotatably mounted on one side of the mounting rod (21) through a bearing bracket. A movable frame (32) is threaded onto the surface of the screw (31). A clamping frame (314) is provided on the top of the movable frame (32) corresponding to the two sides of the sleeve frame (27). The clamping frame (314) is clamped on both sides of the sleeve frame (27). A steam power generation device (4) is provided on the back of the generator set (1). An exhaust pipe (41) is provided on one side of the steam power generation device (4). A compression assembly (5) is provided on the other side of the steam power generation device (4). The compression assembly (5) includes a compression box (51). An air inlet (52) is provided on one side of the compression box (51). A piston rod (53) is slidably inserted into the top of the compression box (51). The piston rod (53) is connected to the movable frame (32) in a transmission.

2. The dual-power coupled wind and steam complementary power generation device according to claim 1, characterized in that: The connecting shaft (25) has screw holes (26) on both sides. The sleeve (27) is threaded with bolts (28) on both sides of the connecting shaft (25), and the bolts (28) are threaded into the screw holes (26). The outer end of the bolts (28) is provided with a square slot.

3. The dual-power coupled wind and steam complementary power generation device according to claim 1, characterized in that: The disassembly assembly (3) also includes a vertical plate (38). The movable frame (32) is fixed to the vertical plate (38) on the outside of the clamping frame (314), and a plug rod (313) is slidably inserted into the interior of the vertical plate (38). The plug rod (313) is fixedly connected to the clamping frame (314). A bidirectional electric push rod (37) is fixed inside the movable frame (32), and the extended end of the bidirectional electric push rod (37) is fixedly connected to the vertical plate (38).

4. The dual-power coupled wind and steam complementary power generation device according to claim 3, characterized in that: The movable frame (32) is rotatably mounted on the bottom of the sleeve frame (27) with a shaft (310). The two ends of the shaft (310) are slidably sleeved with a transmission belt (39). The pulley on the other side of the transmission belt (39) corresponds to the position of the bolt (28). The pulley on the other side of the transmission belt (39) is fixed with a plug shaft (312), and the plug shaft (312) is provided with a protrusion at the position of the block slot of the bolt (28).

5. A dual-power coupled wind and steam complementary power generation device according to claim 4, characterized in that: The transmission belts (39) at both ends of the shaft (310) slide along the shaft (310) via mounting plates. A connecting plate (315) is fixed to the bottom of the mounting plate of the transmission belt (39). The connecting plate (315) is fixedly connected to the bottom of the vertical plate (38) in the opposite direction. The two sets of connecting plates (315) are staggered.

6. A dual-power coupled wind and steam complementary power generation device according to claim 5, characterized in that: The upper and lower surfaces of the shaft (310) are provided with protrusions (311), and the pulley at the lower end of the transmission belt (39) is slidably engaged with the shaft (310) and the protrusions (311).

7. A dual-power coupled wind and steam complementary power generation device according to claim 6, characterized in that: The generator set (1) has an internal gear disk (34) rotatably mounted on the surface of the bottom of the mounting rod (21). The mounting rod (21) is fixed at the center of the internal gear disk (34). The internal gear disk (34) is meshed with a first gear (35) on one side of the screw (31). The first gear (35) is rotatably mounted on the top of the generator set (1) through a bearing.

8. A dual-power coupled wind and steam complementary power generation device according to claim 7, characterized in that: The first gear (35) has a socket (36) fixed on top, and the screw (31) has a one-way electric push rod (33) fixed on the bottom, with the extended end of the one-way electric push rod (33) inserted into the socket (36).

9. A dual-power coupled wind and steam complementary power generation device according to claim 1, characterized in that: The compression assembly (5) also includes a turntable (54). The top of the compression box (51) is rotatably mounted on the turntable (54) via a bearing bracket. A connecting rod (55) is rotatably mounted on the surface of the turntable (54) near the outer edge via a rotating shaft. The other end of the connecting rod (55) is rotatably connected to the top of the piston rod (53) via a rotating shaft.

10. A dual-power coupled wind and steam complementary power generation device according to claim 9, characterized in that: A second gear (56) is fixed to the outside of the turntable (54), and a toothed plate (57) is meshed with one side of the second gear (56). A vertical frame (58) is fixed to the top of the toothed plate (57), and the top of the vertical frame (58) is fixedly connected to the movable frame (32).

Citation Information

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