Wind power photovoltaic combined power generation device
By adjusting the angle of the photovoltaic panels through a wind-powered rotation mechanism and a reset mechanism, the problem of the wind-powered photovoltaic combined power generation device overturning in strong winds is solved, thus improving the stability and power generation efficiency of the device.
Patent Information
- Application Number
- CN202411627233.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2044-11-14
AI Technical Summary
Existing wind-solar combined power generation devices are prone to tipping over in strong winds, affecting device stability and power generation efficiency.
A device was designed that includes an installation frame, a wind-powered rotation mechanism, a photovoltaic panel, a connection mechanism, and a reset mechanism. The wind-powered rotation mechanism drives the photovoltaic panel to rotate between different positions to reduce the wind-exposed area. The reset mechanism adjusts the angle of the photovoltaic panel to adapt to different wind conditions when the wind force changes.
This effectively prevents the device from overturning in strong winds, improving the stability and power generation efficiency of the device, especially increasing the power generation efficiency of the photovoltaic panels during midday.
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Figure CN119519537B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to the technical field of clean energy, in particular to a wind and photovoltaic combined power generation device. BACKGROUND
[0002] At present, the research and utilization of clean energy has become a focus of attention for countries around the world, and wind and solar energy is one of the most common and widely used clean energy. Wind power generation and photovoltaic power generation respectively convert wind energy and solar energy into electrical energy, becoming a sustainable energy choice to replace traditional fossil energy.
[0003] The wind and photovoltaic combined power generation device is a power generation system that utilizes the combination of wind energy and solar energy, including both wind power generation components and photovoltaic power generation components, to achieve more stable and continuous power supply. This combination takes advantage of the complementary characteristics of wind energy and solar energy under different time and weather conditions, improving the overall efficiency and reliability of the power generation system.
[0004] The wind and photovoltaic combined power generation device under the prior art is usually installed in an environment with strong wind, such as an open prairie or a harsh Gobi desert. The wind power generation components have high power generation performance under strong wind, and similarly, to ensure the power generation efficiency of the photovoltaic components, the photovoltaic panels usually have a certain inclination angle, so the photovoltaic components will also be subjected to a large wind load, causing the power generation device to be prone to overturning under strong wind. SUMMARY
[0005] One of the technical problems to be solved by the present disclosure is how to avoid the wind and photovoltaic combined power generation device from overturning under the action of wind.
[0006] To solve the above technical problems, the present disclosure provides a wind and photovoltaic combined power generation device, which comprises: a mounting frame, the mounting frame being provided with a mounting shaft; a wind rotating mechanism, the wind rotating mechanism being rotatably arranged on the mounting shaft and being capable of rotating around the axis of the mounting shaft under the action of wind; a photovoltaic panel, the photovoltaic panel being connected to the top of the mounting frame and being capable of rotating between a first position at an acute angle with the axis of the mounting shaft and a second position at a right angle with the axis of the mounting shaft; a connecting mechanism, a first end of the connecting mechanism being connected to the photovoltaic panel, a second end of the connecting mechanism being radially movably connected to the wind rotating mechanism, the second end of the connecting mechanism being capable of doing centrifugal motion relative to the mounting shaft when the wind rotating mechanism rotates, so as to pull the photovoltaic panel to rotate from the first position to the second position; and a reset mechanism, the reset mechanism being installed on the wind rotating mechanism, the reset mechanism being configured to drive the photovoltaic panel to rotate to the first position through the connecting mechanism after the centrifugal motion of the second end of the connecting mechanism disappears.
[0007] In some embodiments, the wind rotating mechanism comprises a steering sleeve rotatably sleeved on the mounting shaft, and a plurality of power generation fan blades are distributed on the outer periphery of the steering sleeve.
[0008] In some embodiments, the connecting mechanism comprises a first connecting rod, a second connecting rod, and a first sliding ring and a second sliding ring sleeved on the mounting shaft and capable of axial sliding and rotating on the mounting shaft; the first sliding ring and the second sliding ring are circumferentially slidably connected along the mounting shaft, a first end of the first connecting rod is movably connected to the power generation fan blade, a second end of the first connecting rod is rotatably connected to the first sliding ring, a first end of the second connecting rod is rotatably connected to the photovoltaic panel, and a second end of the second connecting rod is rotatably connected to the second sliding ring.
[0009] In some embodiments, the first sliding ring comprises a lower sliding disc and an upper sliding disc sleeved on the mounting shaft and a connecting plate connecting the lower sliding disc and the upper sliding disc, and the second sliding ring is circumferentially slidably clamped between the lower sliding disc and the upper sliding disc along the mounting shaft, so that the first sliding ring can drive the second sliding ring to slide along the axial direction of the mounting shaft.
[0010] In some embodiments, the power generation fan blade is provided with a sliding groove perpendicular to the axial direction of the mounting shaft, a centrifugal block slidably arranged in the sliding groove is connected to the first end of the first connecting rod, and the reset mechanism comprises a reset spring, a first end of the reset spring is connected to the centrifugal block, and a second end of the reset spring is connected to an end of the sliding groove away from the mounting shaft.
[0011] In some embodiments, the mounting shaft is fixed with a power generation motor, the power generation motor is provided with an input rotating shaft parallel to the mounting shaft, and the steering sleeve is provided with a transmission belt capable of driving the input rotating shaft to rotate.
[0012] In some embodiments, a rotating base is fixed on the outer periphery of the mounting shaft, and one end of the steering sleeve is rotatably placed in the rotating base through a plurality of rolling balls distributed around the axis of the mounting shaft.
[0013] In some embodiments, the mounting shaft is fixed with a disc perpendicular to the axis thereof, the rotating base is fixedly connected to one side of the disc, the power generation motor is mounted on the other side of the disc, and the input rotating shaft rotatably penetrates the disc to connect the transmission belt located on one side of the disc.
[0014] In some embodiments, the wind power photovoltaic combined power generation device comprises a plurality of photovoltaic panels, and the plurality of photovoltaic panels are distributed around the axis of the mounting shaft on the top of the mounting frame.
[0015] In some embodiments, the top of the mounting frame is provided with a plurality of connecting rods distributed around the axis of the mounting shaft, and each photovoltaic panel is rotatably connected to one connecting rod.
[0016] By the technical scheme, the wind power and photovoltaic combined power generation device provided by the present disclosure can accelerate the rotation of the wind power rotating mechanism when the wind power is large, drive the photovoltaic panel to the second position with small wind receiving area through the connecting mechanism, avoid the device from overturning under the action of wind power, and make the photovoltaic panel turn to the first position conducive to light receiving through the reset mechanism when the wind power is small, thereby effectively improving the stability and power generation efficiency of the device. BRIEF DESCRIPTION OF DRAWINGS
[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present disclosure or the prior art, the drawings needed to be used in the embodiments or prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and other drawings can be obtained by those skilled in the art without creative labor.
[0018] Figure 1 is a structural schematic diagram of the wind power and photovoltaic combined power generation device disclosed by the present disclosure;
[0019] Figure 2 is a sectional structural schematic diagram of the wind power and photovoltaic combined power generation device disclosed by the present disclosure;
[0020] Figure 3 is a structural schematic diagram of the wind power rotating mechanism and part of the mounting frame disclosed by the present disclosure;
[0021] Figure 4 is a structural schematic diagram of a single photovoltaic panel disclosed by the present disclosure;
[0022] Figure 5 is an enlarged view of A part in Figure 2 ;
[0023] Figure 6 is a partial structural schematic diagram of the wind power and photovoltaic combined power generation device disclosed by the present disclosure Figure 1 .
[0024] Figure 7 is an enlarged view of B part in Figure 6 ;
[0025] Figure 8 is an enlarged view of C part in Figure 2 ;
[0026] Figure 9 is a partial structural schematic diagram of the wind power and photovoltaic combined power generation device disclosed by the present disclosure Figure 2 .
[0027] BRIEF DESCRIPTION OF DRAWINGS
[0028] 1, mounting frame; 101, mounting shaft; 102, rotating base; 103, disc; 104, base; 105, support column; 106, support ring; 107, fixed seat; 108, connecting rod; 2, wind power rotating mechanism; 201, steering sleeve; 202, power generation fan blade; 203, ball; 204, sliding groove; 3, photovoltaic panel; 301, sliding block; 302, damping groove; 303, damping spring; 304, hinged seat; 4, connecting mechanism; 401, first connecting rod; 402, second connecting rod; 403, first sliding ring; 404, second sliding ring; 405, lower sliding disc; 406, upper sliding disc; 407, connecting plate; 408, centrifugal block; 5, reset mechanism; 501, reset spring; 6, power generation motor; 601, input rotating shaft; 602, transmission belt; 7, cleaning mechanism; 701, cleaning strip; 702, cleaning base; 703, cleaning connecting rod; 704, rotating rod; 705, pulling rod; 706, pulling spring. DETAILED DESCRIPTION
[0029] The embodiments of the present disclosure will be described in further detail below with reference to the drawings and examples. The detailed description and drawings of the following examples are used to exemplarily illustrate the principles of the present disclosure, but cannot be used to limit the scope of the present disclosure, and the present disclosure can be implemented in many different forms, not limited to the specific examples disclosed herein, but includes all technical solutions falling within the scope of the claims.
[0030] The present disclosure provides these embodiments in order to make the present disclosure thorough and complete, and fully express the scope of the present disclosure to those skilled in the art. It should be noted that: unless otherwise specified, the relative arrangement of components and steps, the composition of materials, numerical expressions and values set forth in these examples should be interpreted as merely exemplary, and not as a limitation.
[0031] It should be noted that, in the description of the present disclosure, unless otherwise specified, the meaning of "a plurality of" is greater than or equal to two; the orientation or positional relationship indicated by the terms "upper", "lower", "left", "right", "inner", "outer" and the like is only for the purpose of facilitating the description of the present disclosure and simplifying the description, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present disclosure. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.
[0032] In addition, the "first", "second", and similar words used in the disclosure do not represent any order, number or importance, but are only used to distinguish different parts. "Vertical" is not strictly vertical, but within the allowable range of error. "Parallel" is not strictly parallel, but within the allowable range of error. "Include" or "contain" and similar words mean that the elements before the word cover the elements listed after the word, and do not exclude the possibility of also covering other elements.
[0033] It should also be noted that in the description of the present disclosure, unless otherwise explicitly specified and limited, the terms "mount", "connect", "connection" should be understood broadly, for example, it can be fixed connection, or detachable connection, or integral connection; it can be directly connected, or indirectly connected through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in the present disclosure can be understood according to the specific circumstances. When it is described that a specific device is located between the first device and the second device, there can be or can not be an intermediate device between the specific device and the first device or the second device.
[0034] All terms used in the present disclosure have the same meaning as understood by those skilled in the art to which the present disclosure belongs, unless otherwise specifically defined. It should also be understood that terms defined in general dictionaries should be interpreted to have meanings consistent with their meanings in the context of the relevant art, and should not be interpreted in an idealized or excessively formalized sense, unless otherwise defined herein.
[0035] Techniques, methods and devices known to those skilled in the relevant art can not be discussed in detail, but in appropriate cases, the techniques, methods and devices should be considered as part of the specification.
[0036] As Figures 1 to 9As shown, the wind and photovoltaic combined power generation device provided by the present disclosure comprises a mounting frame 1, a mounting shaft 101 is arranged on the mounting frame 1; a wind rotating mechanism 2, the wind rotating mechanism 2 is rotatably arranged on the mounting shaft 101 and can rotate around the axis of the mounting shaft 101 under the action of wind force; a photovoltaic panel 3, the photovoltaic panel 3 is connected to the top of the mounting frame 1 and can rotate between a first position at an acute angle with the axis of the mounting shaft 101 and a second position at a right angle with the axis of the mounting shaft 101; a connecting mechanism 4, a first end of the connecting mechanism 4 is connected to the photovoltaic panel 3, a second end of the connecting mechanism 4 is radially movably connected to the wind rotating mechanism 2, and the second end of the connecting mechanism 4 can make centrifugal motion relative to the mounting shaft 101 when the wind rotating mechanism 2 rotates, so as to pull the photovoltaic panel 3 to rotate from the first position to the second position; and a reset mechanism 5, the reset mechanism 5 is installed on the wind rotating mechanism 2, and the reset mechanism 5 is configured to drive the photovoltaic panel 3 to rotate to the first position through the connecting mechanism 4 after the centrifugal motion of the second end of the connecting mechanism 4 disappears.
[0037] Specifically, the photovoltaic panel 3 is rotatably connected to the top of the mounting frame 1, and the mounting shaft 101 is usually vertically placed when the device is put into use. In the case of small wind force, the rotating speed of the wind rotating mechanism 2 around the axis of the mounting shaft 101 under the action of wind force is small, the radial displacement of the second end of the connecting mechanism 4 relative to the mounting shaft 101 that can be generated in the centrifugal motion is also small, and correspondingly, the first end of the connecting mechanism 4 can only pull the photovoltaic panel 3 to rotate a small angle, the photovoltaic panel 3 is closer to the first position at an acute angle with the vertical direction (i.e. the axis direction of the mounting shaft 101), at this time, the photovoltaic panel 3 is inclinedly arranged on the top of the mounting frame 1, which is conducive to receiving sunlight; in the case of large wind force, the rotating speed of the wind rotating mechanism 2 around the axis of the mounting shaft 101 under the action of wind force is large, the radial displacement of the second end of the connecting mechanism 4 relative to the mounting shaft 101 that can be generated in the centrifugal motion is also large, and correspondingly, the first end of the connecting mechanism 4 can pull the photovoltaic panel 3 to rotate a large angle, at this time, the photovoltaic panel 3 is closer to the second position at a right angle with the vertical direction, i.e. the photovoltaic panel 3 tends to be prostrate, which effectively reduces the wind area of the photovoltaic panel 3 and avoids the phenomenon that the device is overturned under the action of large wind force. When the wind force gradually decreases, the reset mechanism 5 can push the second end of the connecting mechanism 4 to move radially inward, and correspondingly, the first end of the connecting mechanism 4 drives the photovoltaic panel 3 to rotate towards the first position, so that the photovoltaic panel 3 maintains a certain angle with the vertical direction when there is no wind or the wind force is small, so that the photovoltaic panel 3 can be inclinedly arranged on the top of the mounting frame 1, which is conducive to receiving light and improves the power generation efficiency.
[0038] In actual use, it is found that the wind force is the largest at noon due to the influence of the convection of hot and cold air caused by the direct sunlight at noon. At this time, the wind rotating mechanism 2 in the device rotates at a relatively fast speed, which can drive the second end of the connecting mechanism 4 to produce a relatively large radial displacement relative to the installation shaft 101 in the centrifugal motion, and correspondingly make the photovoltaic panel 3 closer to the second position perpendicular to the vertical direction, which not only avoids the device from being overturned by the wind force, but also is more conducive to the photovoltaic panel 3 to receive the direct sunlight at noon, thereby improving the power generation efficiency of the photovoltaic panel 3 at noon. While in other time periods when the wind force is relatively small, the sunlight is inclined to shine, at this time, the wind rotating mechanism 2 in the device rotates at a relatively slow speed, so that the photovoltaic panel 3 can be inclined to be arranged on the top of the installation frame 1, which is conducive to receiving the inclined sunlight.
[0039] In some embodiments, the installation frame 1 includes a base 104 for placing the installation shaft 101, and a plurality of support columns 105 are arranged on the base 104 and surround and are parallel to the installation shaft 101. The top end of the support column 105 is provided with a support ring 106, and the photovoltaic panel 3 is connected to a connecting rod 108 arranged on the support ring 106. The first side of the photovoltaic panel 3 is hinged to the end of the connecting rod 108 away from the support ring 106, and the second side opposite to the first side of the photovoltaic panel 3 is hinged to the first end of the connecting mechanism 4. In the initial state, the second side of the photovoltaic panel 3 is higher than the first side, so that it maintains an inclined posture conducive to light receiving. When the first end of the connecting mechanism 4 pulls the second side of the photovoltaic panel 3 to make it rotate downward, the photovoltaic panel 3 tends to be prostrate to reduce the wind receiving area. At the same time, the support ring 106 has a circular hole in the middle for the connecting mechanism 4 to pass through, so that the wind rotating mechanism 2 located below the support ring 106 can indirectly drive the photovoltaic panel 3 to rotate through the connecting mechanism 4.
[0040] As shown in Figure 1 , Figure 2 , Figure 3 and Figure 6 , in some embodiments, the wind rotating mechanism 2 includes a turning sleeve 201 which is rotatably sleeved on the installation shaft 101, and a plurality of power generation fan blades 202 are distributed on the outer periphery of the turning sleeve 201.
[0041] Specifically, the wind rotating mechanism 2 is uniformly distributed along the circumference of the mounting shaft 101, avoiding the generation of unbalanced torque during the rotation of the wind rotating mechanism 2, causing the lateral swing of the mounting frame 1 or even the overturning. The second end of the connecting mechanism 4 is radially movable and connected to the power generation fan blade 202. When the power generation fan blade 202 rotates around the axis of the mounting shaft 101 under the action of wind force, the second end of the connecting mechanism 4 is affected by centrifugal inertia and is thrown to the far end of the power generation fan blade 202 away from the mounting shaft 101. Correspondingly, the first end of the connecting mechanism 4 can drive the photovoltaic panel 3 to rotate to the second position to reduce the wind area of the device and avoid overturning under the action of wind force. When the wind force decreases, the second end of the connecting mechanism 4 moves to the near end of the power generation fan blade 202 close to the mounting shaft 101 under the action of the reset mechanism 5. Correspondingly, the first end of the connecting mechanism 4 drives the photovoltaic panel 3 to rotate to the first position, so that the photovoltaic panel 3 can be inclined and arranged on the top of the mounting frame 1, which is more conducive to receiving light and improves the photovoltaic power generation efficiency.
[0042] As shown in Figures 1 to 9 In some embodiments, the connecting mechanism 4 includes a first connecting rod 401, a second connecting rod 402, and a first sliding ring 403 and a second sliding ring 404 sleeved on the mounting shaft 101 and capable of sliding and rotating along the axis of the mounting shaft 101; the first sliding ring 403 and the second sliding ring 404 are slidably connected along the circumference of the mounting shaft 101, the first end of the first connecting rod 401 is movably connected to the power generation fan blade 202, the second end of the first connecting rod 401 is rotatably connected to the first sliding ring 403, the first end of the second connecting rod 402 is rotatably connected to the photovoltaic panel 3, and the second end of the second connecting rod is rotatably connected to the second sliding ring.
[0043] Specifically, when the power generation fan blade 202 of the wind rotating mechanism 2 rotates around the mounting shaft 101, the first end of the first connecting rod 401 connected to the power generation fan blade 202 moves away from the mounting shaft 101 along the radial direction, and the second end of the first connecting rod 401 drives the first sliding ring 403 to slide along the axis of the mounting shaft 101, and the second sliding ring 404 connected to the first sliding ring 403 also slides along the axis of the mounting shaft 101 under the drive of the first sliding ring 403, so that the second connecting rod 402 can pull the second side of the photovoltaic panel 3 to rotate downward to approach the second position. The first end of the second connecting rod 402 is hingedly connected to the hinge seat 304 on the second side of the photovoltaic panel 3, and the second sliding ring 404 is limited by the second connecting rod 402 and can only move along the axis of the mounting shaft 101, and cannot rotate around the shaft.
[0044] It can be seen that when the first end of the first link 401 moves outward along the radial direction of the mounting shaft 101 due to centrifugal motion or moves inward along the radial direction of the mounting shaft 101 due to the influence of the reset mechanism 5, the second end of the second link 402 can drive the photovoltaic panel 3 to rotate toward the second position or toward the first position, so as to reduce the wind-receiving area or receive solar energy more conveniently when appropriate.
[0045] like Figure 8 As shown, in some embodiments, the first slip ring 403 includes a lower slip plate 405 and an upper slip plate 406 sleeved on the mounting shaft 101, and a connecting plate 407 connecting the lower slip plate 405 and the upper slip plate 406. The second slip ring 404 is slidably engaged between the lower slip plate 405 and the upper slip plate 406 along the circumference of the mounting shaft 101, so that the first slip ring 403 can drive the second slip ring 404 to slide along the axial direction of the mounting shaft 101.
[0046] Specifically, the first end of the first connecting rod 401 is hinged to the outer periphery of the lower sliding plate 405. The upper sliding plate 406 is fixedly connected to the lower sliding plate 405 through a cylindrical connecting plate 407 movably sleeved on the outer periphery of the mounting shaft 101, so as to move together with the lower sliding plate 405. The second slip ring 404 is circumferentially slidably engaged between the lower sliding plate 405 and the upper sliding plate 406. When the first slip ring 403 moves upward along the axial direction of the mounting shaft 101, the second slip ring 404 moves upward under the push of the lower sliding plate 405. When the first slip ring 403 moves downward along the axial direction of the mounting shaft 101, the second slip ring 404 moves downward under the push of the upper sliding plate 406. Meanwhile, the contact surfaces of the lower sliding plate 405 and the upper sliding plate 406 with the second slip ring 404 are in circumferential sliding contact. Therefore, the circumferential sliding of the lower sliding plate 405 and the upper sliding plate 406 along the mounting shaft 101 will not be transmitted to the second slip ring 404, thus avoiding torsional damage at the connection between the second slip ring 404, the second connecting rod 402 and the photovoltaic panel 3.
[0047] like Figure 6 and Figure 9 As shown, in some embodiments, the generator fan blade 202 is provided with a sliding groove 204 perpendicular to the axial direction of the mounting shaft 101. The first end of the first connecting rod 401 is connected to a centrifugal block 408 that is slidably disposed in the sliding groove 204. The reset mechanism 5 includes a reset spring 501. The first end of the reset spring 501 is connected to the centrifugal block 408, and the second end of the reset spring 501 is connected to the end of the sliding groove 204 away from the mounting shaft 101.
[0048] Specifically, when the reset spring 501 is in a relaxed state, the centrifugal block 408 slides to the end of the sliding groove 204 close to the mounting shaft 101. When the power generation fan blade 202 is rotated by wind force, the centrifugal block 408 connected to the first end of the first connecting rod 401 slides outward along the sliding groove 204 under the influence of centrifugal inertia, and the compressed reset spring 501 provides a centripetal force for the centrifugal block 408. When the rotation speed of the power generation fan blade 202 remains constant and the reset spring 501 is compressed to an appropriate stroke, the elastic force of the reset spring 501 can just provide a centripetal force for the centrifugal block 408, at this time, the centrifugal block 408 remains stationary in the sliding groove 204, and the photovoltaic panel 3 stops rotating. With the change of wind force, the rotation speed of the power generation fan blade 202 changes, and the balance between the elastic force provided by the reset spring 501 and the centripetal force required by the centrifugal block 408 is broken, and the centrifugal block 408 slides inward or outward along the sliding groove 204 to find a new balance point, while driving the photovoltaic panel 3 to rotate to adapt to different wind force. It can be seen that when the wind force increases, the centrifugal block 408 slides outward, driving the photovoltaic panel 3 to tend to the second position to reduce the wind area, and when the wind force decreases, the centrifugal block 408 slides inward under the elastic force of the reset spring 501, driving the photovoltaic panel 3 to tend to the first position to facilitate light receiving. It can be seen that the cooperation of the centrifugal block 408 and the reset spring 501 in the sliding groove 204 can make the photovoltaic panel 3 rotate corresponding to the wind speed to switch to the appropriate inclination angle.
[0049] As shown in Figure 2 and Figure 3 in some embodiments, the mounting shaft 101 is fixed with a power generation motor 6, and the power generation motor 6 is provided with an input rotating shaft 601 parallel to the mounting shaft 101, and the steering sleeve 201 is provided with a transmission belt 602 capable of driving the input rotating shaft 601 to rotate.
[0050] Specifically, the mounting shaft 101 is fixedly connected with a fixed seat 107, and the power generation motor 6 is arranged on the fixed seat 107 on one side of the mounting shaft 101. The input rotating shaft 601 of the power generation motor 6 is parallel to the mounting shaft 101, and the end of the input rotating shaft 601 away from the power generation motor 6 is in transmission connection with the steering sleeve 201 through the transmission belt 602. When the wind power rotating mechanism 2 rotates around the mounting shaft 101 under the action of wind force, the steering sleeve 201 drives the input rotating shaft 601 to rotate around its axis through the transmission belt 602, so as to drive the power generation motor 6 to generate electricity.
[0051] As shown in Figure 7 in some embodiments, the mounting shaft 101 is fixed with a rotating base 102, and one end of the steering sleeve 201 is rotatably placed in the rotating base 102 through a plurality of rolling balls 203 distributed around the axis of the mounting shaft 101.
[0052] Specifically, the end of the steering sleeve 201 is provided with a groove accommodating a plurality of balls 203, when the steering sleeve 201 rotates around the axis of the mounting shaft 101, the balls 203 at the bottom of the steering sleeve 201 slide on the first side of the rotating base 102, the arrangement of the balls 203 effectively reduces the friction between the steering sleeve 201 and the rotating base 102, avoiding energy loss. At the same time, the transmission belt 602 is arranged on the second side of the rotating base 102 away from the steering sleeve 201, and the rotating base 102 effectively isolates the steering sleeve 201 and the transmission belt 602, avoiding friction and collision between them, causing damage to the equipment.
[0053] As shown in Figure 2 and Figure 3 shown, in some embodiments, a disc 103 perpendicular to the axis of the mounting shaft 101 is fixed on the mounting shaft 101, the rotating base 102 is fixedly connected to one side of the disc 103, and the generator 6 is installed on the other side of the disc 103. The input shaft 601 can rotate through the disc 103 to connect the transmission belt 602 on the side of the disc 103.
[0054] Specifically, the disc 103 is fixed below the wind-driven mechanism 2, which is used to support the wind-driven mechanism 2 while isolating it from the generator 6, avoiding mutual interference between them. The position of the fixing seat 107 on the mounting shaft 101 is also below the disc 103. In addition, the disc 103 is provided with a hole, which facilitates the input shaft 601 of the generator 6 to pass through the hole to connect the transmission belt 602 above the disc 103, so as to drive the generator 6 to generate electricity.
[0055] As shown in Figure 1 shown, in some embodiments, the wind power photovoltaic combined power generation device includes a plurality of photovoltaic panels 3, which are distributed around the axis of the mounting shaft 101 on the top of the mounting frame 1.
[0056] Specifically, a plurality of connecting rods 108 are uniformly distributed around the axis of the mounting shaft 101 on the support ring 106 on the top of the mounting frame 1. Each connecting rod 108 has a photovoltaic panel 3 hinged to the end away from the support ring 106. The plurality of photovoltaic panels 3 are uniformly distributed around the axis of the mounting shaft 101, and the number of photovoltaic panels 3 is the same as the number of power generation blades 202 in the wind-driven mechanism 2 and corresponds to the horizontal projection position. The connecting mechanism 4 has a plurality of first connecting rods 401 and second connecting rods 402, each set of first connecting rods 401 and second connecting rods 402 connects a corresponding set of power generation blades 202 and photovoltaic panels 3. When the wind-driven mechanism 2 is rotated by wind force, the centrifugal blocks 408 on the plurality of power generation blades 202 maintain the same or approximate spacing with the mounting shaft 101, so that the plurality of photovoltaic panels 3 maintain the same or approximate angle with the mounting shaft 101, and the device is balanced in each direction, avoiding overturning.
[0057] As shown in Figure 2 and Figure 5 In some embodiments, the top of the mounting frame 1 is provided with a plurality of connecting rods 108 distributed around the axis of the mounting shaft 101, and each photovoltaic panel 3 is rotatably connected to one connecting rod 108.
[0058] Specifically, the first side of the photovoltaic panel 3 is provided with a damping groove 302 and a sliding block 301 capable of sliding in the damping groove 302, wherein the damping groove 302 is attached to the back of the photovoltaic panel 3 and located in the rotation plane of the photovoltaic panel 3, the end of the damping groove 302 is connected with a damping spring 303, the other end of the damping spring 303 is connected to the sliding block 301, when the second side of the photovoltaic panel 3 is rotated around the end of the connecting rod 108 under the pulling of the connecting mechanism 4, the sliding block 301 and the damping spring 303 cooperate in the damping groove 302 to reduce the impact on the photovoltaic panel 3 during rotation, avoiding vibration damage to the photovoltaic panel 3 during repeated changes in wind force.
[0059] As shown in Figure 1 , Figure 2 and Figure 9 In some embodiments, the wind power photovoltaic combined power generation device further comprises a cleaning mechanism 7, the cleaning mechanism 7 comprises a cleaning strip 701 capable of sliding along the circumference of the mounting shaft 101 and attached to the light-receiving surface of the plurality of photovoltaic panels 3; wherein the wind power rotating mechanism 2 is connected to the cleaning mechanism 7 and can drive the cleaning strip 701 to slide along the circumference of the mounting shaft 101.
[0060] Specifically, the cleaning mechanism 7 is arranged at the top of the mounting shaft 101, when the wind power rotating mechanism 2 is rotated around the mounting shaft 101 under the action of wind force, the cleaning strip 701 of the cleaning mechanism 7 is driven to rotate around the mounting shaft 101 to rotate the light-receiving surface of the plurality of photovoltaic panels 3 in turn. Wherein the cleaning strip 701 itself has a certain compressibility, which can be a cleaning cotton cloth or a cleaning sponge, when the cleaning strip 701 is not rotated around the mounting shaft 101, the cleaning strip 701 can be compressed and attached to the light-receiving surface of the photovoltaic panel 3, when the cleaning strip 701 is rotated around the mounting shaft 101, the photovoltaic panel 3 is turned to the second position, the cleaning strip 701 is decompressed, the volume expands, and can continue to contact the light-receiving surface of the photovoltaic panel 3 during rotation to complete the cleaning of the photovoltaic panel 3.
[0061] In some embodiments, the cleaning mechanism 7 comprises a cleaning link 703 connecting the wind rotating mechanism 2 and the cleaning strip 701, one end of the cleaning link 703 is connected to the steering sleeve 201 of the wind rotating mechanism 2, and the other end is connected with the cleaning strip 701 capable of rotating and adhering to the light-receiving surface of the photovoltaic panel 3, when the wind rotating mechanism 2 rotates under the action of wind, the steering sleeve 201 drives the cleaning link 703 to rotate around the mounting shaft 101, so that the cleaning strip 701 can slide along the circumference of the mounting shaft 101 to wipe the light-receiving surface of the photovoltaic panel 3.
[0062] In some embodiments, the cleaning mechanism 7 comprises a cleaning base 702 arranged at the top end of the mounting shaft 101 and fixedly connected with the steering sleeve 201, the steering sleeve 201 extends to the top of the mounting shaft 101 to connect the cleaning base 702, and one end of the cleaning link 703 is fixedly connected to the cleaning base 702 to receive the rotation from the steering sleeve 201.
[0063] As shown in Figure 2 some embodiments, the first sliding ring 403 is slidingly arranged on the outer circumference of the steering sleeve 201, and the steering sleeve 201 is provided with a reduced-diameter section in the axial direction of the mounting shaft 101 for limiting the axial displacement of the first sliding ring 403, by determining the positions of the two ends of the reduced-diameter section of the steering sleeve 201 in the axial direction of the mounting shaft 101, the first position and the second position to which the photovoltaic panel 3 can rotate can be correspondingly determined, thereby avoiding unnecessary steering of the photovoltaic panel 3.
[0064] As shown in Figure 9 some embodiments, the end of the cleaning link 703 away from the cleaning base 702 is hingedly connected with a rotating rod 704, the other end of the rotating rod 704 is connected with the cleaning strip 701, and the middle part of the cleaning link 703 is hingedly connected with a pulling rod 705, meanwhile, the rotating rod 704 and the pulling rod 705 are rotatably connected with each other to form an intersection, and a pulling spring 706 is further arranged between the rotating rod 704 and the pulling rod 705. When the wind is small, the light-receiving surface of the photovoltaic panel 3 is easy to accumulate more dust, and it is close to the first position, the light-receiving surface of the photovoltaic panel 3 can press the cleaning strip 701, so that the pulling spring 706 between the rotating rod 704 and the pulling rod 705 is in a stressed state, the elastic force of the pulling spring 706 acts on the rotating rod 704 and the pulling rod 705 to make them tend to rotate relative to each other, and as the photovoltaic panel 3 steers to the first position, the degree of pressing between the cleaning strip 701 and the light-receiving surface of the photovoltaic panel 3 is greater, which is conducive to wiping the light-receiving surface of the photovoltaic panel 3. When the wind is large, the light-receiving surface of the photovoltaic panel 3 is not easy to accumulate dust, and it is relatively close to the second position, the light-receiving surface of the photovoltaic panel 3 gradually moves away from the cleaning strip 701, and as the photovoltaic panel 3 is closer to the second position, the friction between the cleaning strip 701 and the light-receiving surface of the photovoltaic panel 3 is smaller, which is conducive to reducing the kinetic energy loss of the steering sleeve 201 in the rotating process of driving the cleaning strip 701 to rotate, so as to further improve the power generation efficiency of the power generation motor 6.
[0065] So far, the embodiments of the present disclosure have been described in detail. In order to avoid obscuring the concept of the present disclosure, some details known in the art are not described. Those skilled in the art can fully understand how to implement the technical solutions disclosed herein according to the above description.
[0066] Although some specific embodiments of the present disclosure have been described in detail through examples, those skilled in the art should understand that the above examples are only for illustration, not for limiting the scope of the present disclosure. Those skilled in the art should understand that the above embodiments can be modified or some technical features can be replaced by equivalents without departing from the scope and spirit of the present disclosure. In particular, as long as there is no structural conflict, the technical features mentioned in each embodiment can be combined in any way.
Claims
1. A wind and photovoltaic combined power generation device, characterized by comprising: a wind turbine; a photovoltaic module; a power storage device; a power distribution device; and a control device. The utility model relates to a wind-driven photovoltaic power generation device, comprising: a mounting frame (1) provided with a mounting shaft (101); a wind-driven rotating mechanism (2) rotatably arranged on the mounting shaft (101) and capable of rotating around the axis of the mounting shaft (101) under the action of wind force; the wind-driven rotating mechanism (2) comprises a rotating sleeve (201) rotatably sleeved on the mounting shaft (101), and a plurality of power generation fan blades (202) are distributed on the outer periphery of the rotating sleeve (201); a photovoltaic panel (3) connected to the top of the mounting frame (1) and capable of rotating between a first position at an acute angle with the axis of the mounting shaft (101) and a second position at a right angle with the axis of the mounting shaft (101); a connecting mechanism (4) with a first end connected to the photovoltaic panel (3) and a second end radially movably connected to the wind-driven rotating mechanism (2), the second end of the connecting mechanism (4) being capable of making centrifugal motion relative to the mounting shaft (101) when the wind-driven rotating mechanism (2) rotates to pull the photovoltaic panel (3) to rotate from the first position to the second position; the connecting mechanism (4) comprises a first connecting rod (401), a second connecting rod (402), and a first sliding ring (403) and a second sliding ring (404) sleeved on the mounting shaft (101) and capable of sliding and rotating in the axial direction of the mounting shaft (101); the first sliding ring (403) and the second sliding ring (404) are circumferentially slidably connected along the mounting shaft (101), the first end of the first connecting rod (401) is movably connected to the power generation fan blade (202), the second end of the first connecting rod (401) is rotatably connected to the first sliding ring (403), the first end of the second connecting rod (402) is rotatably connected to the photovoltaic panel (3), and the second end of the second connecting rod (402) is rotatably connected to the second sliding ring (404); the first sliding ring (403) comprises a lower sliding disc (405) and an upper sliding disc (406) sleeved on the mounting shaft (101) and a connecting plate (407) connecting the lower sliding disc (405) and the upper sliding disc (406), and the second sliding ring (404) is circumferentially slidably clamped between the lower sliding disc (405) and the upper sliding disc (406) along the mounting shaft (101) to enable the first sliding ring (403) to drive the second sliding ring (404) to slide in the axial direction of the mounting shaft (101); and a reset mechanism (5) installed on the wind-driven rotating mechanism (2), the reset mechanism (5) being configured to drive the photovoltaic panel (3) to rotate to the first position through the connecting mechanism (4) after the centrifugal motion of the second end of the connecting mechanism (4) disappears. The power generation fan blade (202) is provided with a sliding groove (204) perpendicular to the axial direction of the mounting shaft (101), the first end of the first connecting rod (401) is connected with a centrifugal block (408) slidingly arranged in the sliding groove (204), the reset mechanism (5) comprises a reset spring (501), the first end of the reset spring (501) is connected to the centrifugal block (408), and the second end of the reset spring (501) is connected to one end of the sliding groove (204) away from the mounting shaft (101).
2. The wind-PV hybrid power plant of claim 1, wherein, The mounting shaft (101) is fixed with a power generation motor (6), the power generation motor (6) is provided with an input rotating shaft (601) parallel to the mounting shaft (101), and the steering sleeve (201) is provided with a transmission belt (602) capable of driving the input rotating shaft (601) to rotate.
3. The wind-PV hybrid power plant of claim 2, wherein, The mounting shaft (101) is fixed with a rotating base (102), one end of the steering sleeve (201) is rotatably placed in the rotating base (102) through a plurality of rolling balls (203) distributed around the axis of the mounting shaft (101).
4. The wind-PV hybrid power plant of claim 3, wherein, The mounting shaft (101) is fixed with a disc (103) perpendicular to the axis thereof, the rotating base (102) is fixedly connected to one side of the disc (103), the power generation motor (6) is mounted on the other side of the disc (103), and the input rotating shaft (601) rotatably penetrates the disc (103) to connect the transmission belt (602) located on one side of the disc (103).
5. The wind-PV hybrid power plant of claim 1, wherein, The wind power photovoltaic combined power generation device comprises a plurality of photovoltaic panels (3), and the plurality of photovoltaic panels (3) are distributed around the axis of the mounting shaft (101) on the top of the mounting frame (1).
6. The wind-PV hybrid power plant of claim 5, wherein, The top of the mounting frame (1) is provided with a plurality of connecting rods (108) distributed around the axis of the mounting shaft (101), and each photovoltaic panel (3) is rotatably connected to one connecting rod (108).
Citation Information
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