An offshore wind power device with a floating foundation
By designing suspension mechanisms, drive mechanisms, adjustment mechanisms and blowing mechanisms in offshore wind power devices, the problem that workers find it difficult to stably grasp water on the surface of the ladder and escalator during maintenance operations is solved, and higher safety and reliability are achieved.
Patent Information
- Application Number
- CN202510287016.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-03-12
AI Technical Summary
In the daily maintenance operations of large-scale offshore suspended basic wind power, it is difficult for staff to grasp the ladder steadily, which increases the risk of operation, and the surface of the escalator is prone to accumulation of water to affect use.
A floating-based offshore wind power device is designed, including a suspension mechanism, a driving mechanism, a power storage mechanism, a regulation mechanism and a blowing mechanism. The suspension mechanism cleans the surface of the wind power suspension part body by sliding on the suspension plate on the slide rod. The driving mechanism converts the kinetic energy washed by the waves into electrical energy. The adjustment mechanism adjusts the angle of the ladder for easy use by staff. The blowing mechanism blows the surface of the ladder to prevent water from staying for a long time.
Through the cleaning of the suspension mechanism and the blow drying of the blowing mechanism, the growth of algae is reduced, the reliability and safety of wind power equipment is improved, the safety of staff use of the ladder is ensured, and the risks of maintenance operations are reduced.
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Figure CN119796427B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of floating offshore wind power, and specifically to an offshore wind power device with a floating foundation. Background Art
[0002] Offshore wind power refers to a power generation method that utilizes the wind energy in the sea areas below the average spring high tide line along the coast or in the relevant sea areas where there are no inhabited islands, and converts the wind energy into electrical energy through wind turbines. The floating foundation is a structural form used to support wind turbines in offshore wind power. It anchors the floating body structure to the seabed using an anchoring system and serves as a foundation platform for installing wind turbines. It is particularly suitable for sea areas with relatively deep water depths and has the characteristics of low cost and convenient transportation.
[0003] In the daily maintenance operations of large offshore floating foundation wind power, workers usually need to take a boat to reach near the floating foundation. Subsequently, they need to climb up to the platform surface using a ladder. However, due to the small-angle sway of the floating foundation under the scouring of sea waves, and the fact that the boat body is also affected by sea waves, this relative movement makes it difficult for workers to stably grasp the ladder, increasing the danger of the operation. In addition, the escalator on the floating foundation is prone to residual moisture on its surface due to long-term splashing of sea waves. This not only may cause corrosion or dampness of the escalator but also affects the use by workers. Summary of the Invention
[0004] The purpose of the present invention is to provide an offshore wind power device with a floating foundation to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: An offshore wind power device with a floating foundation, including the main body of the wind power floating member. A working platform is fixed on the surface of the main body of the wind power floating member. A protective railing for protection is fixed on the surface of the working platform. A wind power column main body is arranged on the surface of the main body of the wind power floating member. An entrance is arranged on one side of the surface of the protective railing. A plurality of sliding rods are fixed on the surface of the main body of the wind power floating member. A fixed shell is fixed on the surface of the main body of the wind power floating member. It further includes:
[0006] A suspension mechanism arranged on the surface of the sliding rod for cleaning the surface of the main body of the wind power floating member, and a driving mechanism is arranged on the surface of the suspension mechanism;
[0007] A power storage mechanism for generating electricity and transmitted on the surface of the driving mechanism. An adjusting mechanism is arranged on the surface of the power storage mechanism. A ladder for climbing is arranged on the surface of the adjusting mechanism;
[0008] A blowing mechanism transmitted on the surface of the suspension mechanism.
[0009] Preferably, the suspension mechanism includes a suspension plate that slides on the surface of a slide bar. An inner ring plate is fixed to the surface of the suspension plate. A number of brushes are fixed to the surface of the inner ring plate. A water leakage groove is formed on the surface of the inner ring plate. A number of connecting blocks are fixed to the surface of the suspension plate. The other end of the connecting block is fixed with a working rod.
[0010] Preferably, the suspension plate is conical in shape, and the side with a smaller diameter is away from the working platform.
[0011] Preferably, the driving mechanism includes a toothed plate fixed to one end of a number of working rods. A driven gear meshes with the surface of the toothed plate. A first rotating rod is fixed to the inner cavity of the driven gear. The other end of the first rotating rod is provided with a ratchet housing through bevel gear transmission. A number of active toothed plates are fixed to the inner cavity of the ratchet housing. A driven toothed plate is attached to the surface of the active toothed plate. One side of the surface of the driven toothed plate is fixed with a second rotating rod. Ratchet inner rods are rotatably arranged on both sides of the surface of the second rotating rod. Springs are sleeved on both sides of the surface of the second rotating rod. One end of the spring is fixed to the surface of the second rotating rod, and the other end of the spring is fixed to the surface of the ratchet inner rod.
[0012] Preferably, limiting columns are rotatably arranged on both sides of the surface of the first rotating rod, and the other end of the limiting column is fixed to the surface of the fixed shell.
[0013] Preferably, the power storage mechanism includes a rotor body fixed to one side of the ratchet inner rod. A stator body is arranged on the surface of the rotor body. Electric connection lines are connected to both sides of the surface of the stator body. The other end of the electric connection line is connected to a power storage body, and the power storage body is fixed to the inner cavity of the fixed shell.
[0014] Preferably, the adjustment mechanism includes a protective shell, an electric push rod, a horizontal gyroscope, and a connecting shell. The number of connecting shells is several and they are respectively fixed to both sides of the surface of the wind power suspension part body. The electric push rod is fixed to the inner cavity of the connecting shell. The electric push rod is electrically connected to the power storage body. The protective shell protects the connecting wires. The other end of the electric push rod is rotatably connected to the ladder. The horizontal gyroscope is fixed to the surface of the ladder.
[0015] Preferably, the air blowing mechanism includes a piston head fixed to one end of a number of the working rods and a number of air outlet grooves formed on the surface of the ladder. A piston tube is slidably arranged on the surface of the piston head. The other end of the piston tube is communicated with a connecting air pipe. One end of the connecting air pipe is communicated with an air inlet pipe, and the other end of the connecting air pipe is communicated with an air outlet pipe. A connecting hose is communicated with the surface of the air outlet pipe, and the other end of the connecting hose is communicated with the inner cavity of the ladder.
[0016] Preferably, the air intake pipe is in an arc shape, and one end of the air intake pipe faces the fixed shell.
[0017] Preferably, a first one-way valve is provided on the surface of the air inlet pipe, and a second one-way valve is provided on the surface of the air outlet pipe.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] In daily work, the present invention can make the suspension mechanism work under the action of water waves, and then under the action of the suspension mechanism, the driving mechanism can be made to work. Under the action of the driving mechanism, the power storage mechanism converts the kinetic energy of the water waves into electrical energy, and then assists the work of the adjusting mechanism. Under the action of the adjusting mechanism, the angle of the ladder can be adjusted, which is convenient for the staff on the ship to use the ladder to reach the surface of the working platform, thereby improving the practicality of the device. In addition, under the drive of the suspension mechanism, the blowing mechanism can blow air on the surface of the ladder to prevent water from staying on the surface of the ladder for a long time and affecting the daily use of the ladder. In addition, the suspension mechanism can also clean the surface of the wind power suspension body to reduce the possibility of algae growing on the surface of the wind power suspension body. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0021] Figure 2 It is a schematic diagram of a partial three-dimensional structure of the wind power suspension body of the present invention;
[0022] Figure 3 It is a schematic diagram of the three-dimensional structure of the present invention after the wind power suspension component body is removed;
[0023] Figure 4 It is a schematic diagram of the partial three-dimensional structure of the fixed shell after being cut open in the present invention;
[0024] Figure 5 It is a schematic diagram of a partial three-dimensional structure of the suspension mechanism in the present invention;
[0025] Figure 6 It is a partial three-dimensional structural schematic diagram of the suspension mechanism and the driving mechanism in the present invention;
[0026] Figure 7 It is a schematic diagram of a partial three-dimensional structure of the driving mechanism in the present invention;
[0027] Figure 8 For the present invention Figure 7 A schematic diagram of the enlarged local three-dimensional structure at point A in the middle;
[0028] Figure 9 It is a partial three-dimensional structural schematic diagram of the blowing mechanism in the present invention;
[0029] Figure 10 It is a partial three-dimensional structural schematic diagram of the adjustment mechanism in the present invention;
[0030] Figure 11 For the present invention Figure 10 The partial three-dimensional structural schematic diagram after magnifying the position B in the present invention.
[0031] In the figure: 1. Wind power suspension part body; 2. Working platform; 3. Guardrail; 4. Wind power column body; 5. Entrance; 6. Slide bar; 7. Suspension mechanism; 71. Suspension plate; 72. Inner ring plate; 73. Brush; 74. Water leakage groove; 75. Connecting block; 76. Working rod; 8. Driving mechanism; 81. Tooth plate; 82. Driven gear; 83. First rotating rod; 84. Ratchet housing; 85. Active tooth plate; 86. Driven tooth plate; 87. Second rotating rod; 88. Ratchet inner rod; 89. Spring; 9. Power storage mechanism; 91. Rotor body; 92. Stator body; 93. Electrical connection wire; 94. Power storage body; 10. Adjustment mechanism; 101. Protective shell; 102. Electric push rod; 103. Horizontal gyroscope; 104. Connecting shell; 11. Ladder; 12. Fixed shell; 13. Blowing mechanism; 131. Piston head; 132. Piston tube; 133. Connecting air pipe; 134. Intake pipe; 135. Exhaust pipe; 136. Connecting hose; 137. Air outlet groove; 14. First one-way valve; 15. Second one-way valve; 16. Limit post. Specific embodiments
[0032] 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 the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0033] Please refer to Figures 1-11 As shown in the figure, an offshore wind power device with a floating foundation includes a wind power suspension part body 1. A working platform 2 is fixed on the surface of the wind power suspension part body 1. A guardrail 3 for protection is fixed on the surface of the working platform 2. A wind power column body 4 is arranged on the surface of the wind power suspension part body 1. An entrance 5 is arranged on one side of the surface of the guardrail 3. A plurality of slide bars 6 are fixed on the surface of the wind power suspension part body 1. A fixed shell 12 is fixed on the surface of the wind power suspension part body 1. It further includes:
[0034] A suspension mechanism 7 arranged on the surface of the slide bar 6 for cleaning the surface of the wind power suspension part body 1, and a driving mechanism 8 is arranged on the surface of the suspension mechanism 7;
[0035] The electricity storage mechanism 9 that is driven on the surface of the drive mechanism 8 for power generation. An adjustment mechanism 10 is arranged on the surface of the electricity storage mechanism 9, and a ladder 11 for climbing is arranged on the surface of the adjustment mechanism 10;
[0036] The air blowing mechanism 13 that is driven on the surface of the suspension mechanism 7.
[0037] The suspension mechanism 7 includes a suspension plate 71 that slides on the surface of the slide rod 6. An inner ring plate 72 is fixed on the surface of the suspension plate 71. A plurality of brushes 73 are fixed on the surface of the inner ring plate 72. A water leakage groove 74 is formed on the surface of the inner ring plate 72. A plurality of connecting blocks 75 are fixed on the surface of the suspension plate 71. The other end of the connecting block 75 is fixed with a working rod 76. In this embodiment, through the arrangement of the suspension plate 71, the inner ring plate 72, the brush 73, the water leakage groove 74, the connecting block 75 and the working rod 76, the suspension plate 71 that slides on the slide rod 6 can be impacted by the sea waves, so that the suspension plate 71 can slide on the surface of the slide rod 6. Then, the plurality of connecting blocks 75 fixed on the surface of the suspension plate 71 can drive the working rod 76 to perform reciprocating motion. In addition, the inner ring plate 72 fixed on the surface of the suspension plate 71 can make the brush 73 clean the surface of the wind power suspension part body 1, reducing the possibility of algae growing on the surface of the wind power suspension part body 1.
[0038] The shape of the suspension plate 71 is conical, and the side with a smaller diameter is away from the working platform 2. In this embodiment, through this setting, when the suspension plate 71 is washed by the sea waves, under the action of the cone, the contact area between the suspension plate 71 and the sea waves can be increased, and the movement amplitude of the suspension plate 71 can be increased, improving the practicability of the device.
[0039] The driving mechanism 8 includes a toothed plate 81 fixed to one end of a number of working rods 76. A driven gear 82 is engaged with the surface of the toothed plate 81. A first rotating rod 83 is fixed inside the cavity of the driven gear 82. The other end of the first rotating rod 83 is provided with a ratchet housing 84 through bevel gear transmission. A number of driving toothed plates 85 are fixed inside the cavity of the ratchet housing 84. A driven toothed plate 86 is attached to the surface of the driving toothed plate 85. On one side of the surface of the driven toothed plate 86, a second rotating rod 87 is fixed. On both sides of the surface of the second rotating rod 87, ratchet inner rods 88 are rotatably arranged. On both sides of the surface of the second rotating rod 87, springs 89 are sleeved. One end of the spring 89 is fixed to the surface of the second rotating rod 87, and the other end of the spring 89 is fixed to the surface of the ratchet inner rod 88. In this embodiment, through the arrangement of the toothed plate 81, the driven gear 82, the first rotating rod 83, the ratchet housing 84, the driving toothed plate 85, the driven toothed plate 86, the second rotating rod 87 and the ratchet inner rod 88, when the working rod 76 moves reciprocally, the toothed plate 81 fixed to one side of the working rod 76 can be lifted and lowered, and then the driven gear 82 engaged with the surface of the toothed plate 81 can rotate. Under the action of the driven gear 82, the first rotating rod 83 drives the ratchet housing 84 to rotate. A number of driving toothed plates 85 fixed inside the cavity of the ratchet housing 84 are attached to the driven toothed plate 86. When the acting directions of the driving toothed plate 85 and the driven toothed plate 86 match each other, the driven toothed plate 86 drives the ratchet inner rod 88 to rotate through the second rotating rod 87 and the spring 89. On the contrary, if the acting directions of the driving toothed plate 85 and the driven toothed plate 86 do not match, the driving toothed plate 85 will not enable the driven toothed plate 86 to work.
[0040] On both sides of the surface of the first rotating rod 83, limit posts 16 are rotatably arranged. The other ends of the limit posts 16 are fixed to the surface of the fixed housing 12. In this embodiment, through the arrangement of the limit posts 16, restrictions are provided for the rotation of the first rotating rod 83, and the stability of the first rotating rod 83 during rotation is improved.
[0041] The power storage mechanism 9 includes a rotor body 91 fixed to one side of the ratchet inner rod 88. A stator body 92 is arranged on the surface of the rotor body 91. On both sides of the surface of the stator body 92, electrical connection lines 93 are connected. The other ends of the electrical connection lines 93 are connected to a power storage body 94. The power storage body 94 is fixed inside the cavity of the fixed housing 12. In this embodiment, through the arrangement of the rotor body 91, the stator body 92, the electrical connection lines 93 and the power storage body 94, when the ratchet inner rod 88 rotates, the rotor body 91 and the stator body 92 fixed to one side of the ratchet inner rod 88 can work, and then under the action of the electrical connection lines 93, the power storage body 94 stores electricity.
[0042] The working principles of the rotor body 91, the stator body 92, the electrical connection wire 93, and the power storage body 94 are prior arts and will not be elaborated here. In addition, the structure of the power storage body 94 not only has a storage battery, but also has a voltage conversion mechanism that is partially used in conjunction with the storage battery.
[0043] The adjusting mechanism 10 includes a protective shell 101, an electric push rod 102, a horizontal gyroscope 103, and a connecting shell 104. The number of connecting shells 104 is several, and they are respectively fixed on both sides of the surface of the wind power suspension member body 1. The electric push rod 102 is fixed in the inner cavity of the connecting shell 104. The electric push rod 102 is electrically connected to the power storage body 94. The protective shell 101 protects the connecting wires. The other end of the electric push rod 102 is rotatably connected to the ladder 11. The horizontal gyroscope 103 is fixed on the surface of the ladder 11. In this embodiment, through the settings of the protective shell 101, the electric push rod 102, the horizontal gyroscope 103, and the connecting shell 104, under the action of the horizontal gyroscope 103, the level of the ladder 11 can be detected. Furthermore, under the action of the horizontal gyroscope 103, the information processing mechanism of this device controls the electric push rod 102. Then, under the action of the electric push rod 102, the ladder 11 can always be kept vertical, which is convenient for the staff to use the ladder 11.
[0044] The air blowing mechanism 13 includes a piston head 131 fixed to one end of several working rods 76 and several air outlet grooves 137 opened on the surface of the ladder 11. A piston tube 132 is slidably arranged on the surface of the piston head 131. The other end of the piston tube 132 communicates with a connecting air pipe 133. One end of the connecting air pipe 133 communicates with an air inlet pipe 134. The other end of the connecting air pipe 133 communicates with an air outlet pipe 135. The surface of the air outlet pipe 135 communicates with a connecting hose 136. The other end of the connecting hose 136 communicates with the inner cavity of the ladder 11. In this embodiment, through the settings of the piston head 131, the piston tube 132, the connecting air pipe 133, the air inlet pipe 134, the air outlet pipe 135, the connecting hose 136, and the air outlet grooves 137, when the working rod 76 moves up and down, the piston head 131 can slide in the inner cavity of the piston tube 132. Then, under the action of the connecting air pipe 133, the air flows. Under the action of the air inlet pipe 134, the outside air enters the connecting air pipe 133 and the piston tube 132. Under the action of the air outlet pipe 135, the air acts on the surface of the ladder 11 through the connecting hose 136 and the air outlet grooves 137.
[0045] The shape of the air inlet pipe 134 is arc-shaped, and one end of the air inlet pipe 134 faces the fixed shell 12. In this embodiment, through this setting, the air inlet of the air inlet pipe 134 faces downward, which can avoid water from entering the air blowing mechanism 13 through the air inlet of the air inlet pipe 134 and improve the practicability of this device.
[0046] A first one-way valve 14 is provided on the surface of the intake pipe 134, and a second one-way valve 15 is provided on the surface of the outlet pipe 135. In this embodiment, through the settings of the first one-way valve 14 and the second one-way valve 15, the acting directions of the intake pipe 134 and the outlet pipe 135 are defined, improving the stability of the intake pipe 134 and the outlet pipe 135 during operation.
[0047] Working principle: During the daily use of this device, the working platform 2, the guardrail 3, and the wind power column body 4 can be suspended on the sea surface by the device composed of several wind power suspension member bodies 1. The main body of the wind power suspension member body 1 is made of high-strength steel, with a ballast tank and a buoyancy tank inside. The floating state is adjusted through a dynamic ballast system. The working principle of the wind power column body 4 is prior art and will not be elaborated here.
[0048] During the daily suspension of the wind power suspension member body 1, it will shake due to the scouring of the sea waves, and then the contact surface between the wind power suspension member body 1 and the sea surface will change, resulting in the growth of more algae on the contact part between the wind power suspension member body 1 and the sea surface. During the daily scouring of the sea waves, the suspension plate 71 will rise and fall, and then the inner ring plate 72 fixed on the surface of the suspension plate 71 can make the brush 73 clean the surface of the wind power suspension member body 1, thereby reducing the possibility of algae growing on the surface of the wind power suspension member body 1. In addition, during the daily rise and fall of the suspension plate 71, several connecting blocks 75 will drive the working rod 76 to rise and fall.
[0049] Under the action of the rise and fall of several working rods 76, the toothed plate 81 and the piston head 131 can be lifted and lowered.
[0050] When the toothed plate 81 rises and falls, the driven gear 82 meshing with the surface of the toothed plate 81 can mesh with the toothed plate 81, thereby causing the driven gear 82 to rotate. And the first rotating rod 83 fixed inside the driven gear 82 can, under the action of the ratchet housing 84, make the active toothed plate 85 and the driven toothed plate 86 fit together. If the working directions of the active toothed plate 85 and the driven toothed plate 86 are the same, then the ratchet inner rod 88 can drive the rotor body 91 to rotate. If the directions of the active toothed plate 85 and the driven toothed plate 86 do not fit together, then the rotor body 91 does not work, improving the practicality of the power storage mechanism 9.
[0051] When the rotor body 91 rotates, electromagnetic cutting occurs between the rotor body 91 and the stator body 92. Then, under the action of the electrical connection line 93, the power storage body 94 can work to achieve the effect of power storage. This device converts the kinetic energy of nature into electrical energy through the scouring of the sea waves, improving the energy conservation of this device.
[0052] When the staff needs to use the ladder 11 to ascend to the surface of the working platform 2, the staff can make the adjusting mechanism 10 work. Under the action of the horizontal gyroscope 103, the vertical state of the ladder 11 can be detected, and then the electric push rod 102 can be made to work through the central control device. Under the action of the upper and lower electric push rods 102, the ladder 11 is kept vertical, which is convenient for the staff on the ship to grab the ladder 11 and use the ladder 11. After the staff is located on the surface of the ladder 11, the staff can turn off the adjusting mechanism 10, so that the ladder 11 and the wind power suspension part body 1 remain relatively stationary, improving the practicability of the device.
[0053] Due to the water waves, water is likely to accumulate on the surface of the ladder 11, which may make the surface of the ladder 11 slippery or corroded. Then, when the piston head 131 moves up and down following the working rod 76, the piston head 131 can slide in the inner cavity of the piston tube 132, causing the air pressure in the inner cavity of the piston tube 132 to change. Under the action of the connecting air pipe 133, the air inlet pipe 134 and the air outlet pipe 135, the air reaches the air outlet groove 137 through the connecting hose 136. Then, under the action of the air outlet groove 137, the gas is blown onto the surface of the ladder 11, thereby blowing the surface of the ladder 11 to achieve the purpose of blowing the water on the surface of the ladder 11, and preventing the water from staying on the surface of the ladder 11 for a long time and affecting the normal use of the ladder 11.
[0054] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the element.
[0055] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An offshore wind power device with a floating foundation, comprising a wind power suspension body (1), characterized in that: A working platform (2) is fixed on the surface of the wind power suspension body (1), a guardrail (3) for protection is fixed on the surface of the working platform (2), a wind power column body (4) is arranged on the surface of the wind power suspension body (1), an entrance (5) is arranged on one side of the surface of the guardrail (3), a plurality of sliding rods (6) are fixed on the surface of the wind power suspension body (1), and a fixing shell (12) is fixed on the surface of the wind power suspension body (1), and further comprising: A suspension mechanism (7) disposed on the surface of the slide bar (6) and used for cleaning the surface of the wind power suspension component body (1), wherein a driving mechanism (8) is disposed on the surface of the suspension mechanism (7); A power storage mechanism (9) for generating electricity is driven on the surface of the driving mechanism (8), an adjustment mechanism (10) is provided on the surface of the power storage mechanism (9), and a ladder (11) for climbing is provided on the surface of the adjustment mechanism (10); An air blowing mechanism (13) driven on the surface of the suspension mechanism (7); The suspension mechanism (7) comprises a suspension plate (71) sliding on the surface of the slide rod (6); an inner ring plate (72) is fixed on the surface of the suspension plate (71); a plurality of brushes (73) are fixed on the surface of the inner ring plate (72); a water leakage groove (74) is provided on the surface of the inner ring plate (72); a plurality of connecting blocks (75) are fixed on the surface of the suspension plate (71); a working rod (76) is fixed at the other end of the connecting block (75).
2. The offshore wind power device with a floating foundation according to claim 1, characterized in that: The suspension plate (71) is in a conical shape, and the side with a smaller diameter is away from the working platform (2).
3. The offshore wind power device with a floating foundation according to claim 1, characterized in that: The driving mechanism (8) comprises a toothed plate (81) fixed to one end of a plurality of working rods (76), a surface of the toothed plate (81) meshing with a driven gear (82), an inner cavity of the driven gear (82) being fixed with a first rotating rod (83), the other end of the first rotating rod (83) being provided with a ratchet housing (84) through a bevel gear transmission, a plurality of active toothed plates (85) being fixed to the inner cavity of the ratchet housing (84), a surface of the active toothed plate (85) being provided with a driven toothed plate (86) in close contact, a second rotating rod (87) being fixed to one side of the surface of the driven toothed plate (86), ratchet inner rods (88) being rotatable on both sides of the surface of the second rotating rod (87), springs (89) being sleeved on both sides of the surface of the second rotating rod (87), one end of the spring (89) being fixed to the surface of the second rotating rod (87), and the other end of the spring (89) being fixed to the surface of the ratchet inner rod (88).
4. The offshore wind power device with a floating foundation according to claim 3, characterized in that: Limiting posts (16) are rotatably provided on both sides of the surface of the first rotating rod (83), and the other ends of the limiting posts (16) are fixed to the surface of the fixed shell (12).
5. The offshore wind power device with a floating foundation according to claim 3, characterized in that: The power storage mechanism (9) comprises a rotor body (91) fixed to one side of the ratchet inner rod (88); a stator body (92) is provided on the surface of the rotor body (91); both sides of the surface of the stator body (92) are connected to electrical connection wires (93); the other end of the electrical connection wire (93) is connected to a power storage body (94); and the power storage body (94) is fixed to the inner cavity of the fixed shell (12).
6. The offshore wind power device with a floating foundation according to claim 5, characterized in that: The regulating mechanism (10) comprises a protective shell (101), an electric push rod (102), a horizontal gyroscope (103) and a connecting shell (104); the connecting shells (104) are multiple in number and are respectively fixed to two sides of the surface of a wind power suspension body (1); the electric push rod (102) is fixed to the inner cavity of the connecting shell (104); the electric push rod (102) is electrically connected to a power storage body (94); the protective shell (101) protects the connecting wires; the other end of the electric push rod (102) is rotatably connected to a ladder (11); and the horizontal gyroscope (103) is fixed to the surface of the ladder (11).
7. The offshore wind power device with a floating foundation according to claim 1, characterized in that: The blowing mechanism (13) comprises a piston head (131) fixed to one end of a plurality of the working rods (76) and a plurality of air outlet grooves (137) opened on the surface of the ladder (11); a piston tube (132) is slidably provided on the surface of the piston head (131); the other end of the piston tube (132) is connected to a connecting air pipe (133); one end of the connecting air pipe (133) is connected to an air inlet pipe (134); the other end of the connecting air pipe (133) is connected to an air outlet pipe (135); the surface of the air outlet pipe (135) is connected to a connecting hose (136); the other end of the connecting hose (136) is connected to the inner cavity of the ladder (11).
8. The offshore wind power device with a floating foundation according to claim 7, characterized in that: The air intake pipe (134) is in an arc shape, and one end of the air intake pipe (134) faces the fixed shell (12).
9. The offshore wind power device with a floating foundation according to claim 7, characterized in that: A first one-way valve (14) is provided on the surface of the air inlet pipe (134), and a second one-way valve (15) is provided on the surface of the air outlet pipe (135).
Citation Information
Patent Citations
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