A tower mounting platform for real-time wind power monitoring
Patent Information
- Application Number
- CN202522200013.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-16
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-10-16
AI Technical Summary
[0004]本实用新型的目的在于解决现有固定式或简易悬挂式的塔筒安装平台在对塔筒不同高度段进行连续作业或实时监控时,需要反复拆卸与安装,操作步骤繁琐,使用极为不方便,增加了作业人员的劳动强度和安全风险,显著降低了工作的效率的问题,提供一种无需多次拆卸即可沿着塔筒连续作业,安装和拆卸方便、工作效率高的塔筒安装平台
[0017]1. During installation, the clamping drive device is first installed on the first and second flat plates. Then, the semi-circular holes of the first and second flat plates are fitted onto the tower, aligning and securing them together to form a support platform capable of supporting workers and placing work equipment. Workers can then control the clamping drive device as needed, moving the support platform upwards or downwards along the tower's axis. Once at the desired height, the clamping drive device clamps the platform at that position on the tower. In other words, this invention allows for continuous movement and clamping of the support platform to different heights on the tower without repeated disassembly and reassembly. Operation and use are extremely simple, convenient, and quick, greatly improving work efficiency.
Smart Images

Figure CN224705890U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a tower installation platform, and more particularly to a tower installation platform for real-time monitoring of wind power. Background Technology
[0002] With the global energy structure shifting towards clean energy, the wind power industry is experiencing rapid development. Real-time wind power monitoring is becoming increasingly important as a key link in ensuring the efficient operation of wind farms and stable grid connection.
[0003] Currently, most work platforms used for tower installation or wind power monitoring equipment commissioning are fixed or simple suspended. When continuous operation or real-time monitoring of different height sections of the tower is required, traditional platforms often need to be repeatedly disassembled and reinstalled. The operation steps are cumbersome and extremely inconvenient to use, which increases the labor intensity and safety risks of the workers and significantly reduces the efficiency of the work. Summary of the Invention
[0004] The purpose of this utility model is to solve the problem that existing fixed or simple suspended tower installation platforms require repeated disassembly and installation when performing continuous operation or real-time monitoring of different height sections of the tower. This is cumbersome, inconvenient, increases the labor intensity and safety risks of operators, and significantly reduces work efficiency. The present invention provides a tower installation platform that can be used for continuous operation along the tower without multiple disassemblies, is easy to install and disassemble, and has high work efficiency.
[0005] The objective of this utility model can be achieved by the following technical solutions:
[0006] A tower mounting platform for real-time wind power monitoring includes a first plate and a second plate that can be detachably mounted together, and a clamping drive device fixedly mounted on the bottom end of the first plate and the second plate. The upper surfaces of the first plate and the second plate are used to support personnel or equipment. Both the first plate and the second plate are formed with semi-circular holes, and the two semi-circular holes are connected together, so that the first plate and the second plate can be slidably fitted onto the tower. The clamping drive device clamps onto the tower and drives the first plate and the second plate to move up and down along the axis of the tower.
[0007] As a preferred embodiment, the clamping drive device includes a fixed frame, a support rod, a push rod, a motor, and rollers. The fixed frame has elongated through holes on both sides, and the two ends of the support rod are slidably fitted into the two elongated through holes. The rollers are fixedly mounted on the support rod. The motor is fixedly mounted on one end of the push rod, with its shaft connected to the support rod, and the other end of the push rod receiving external power. When the push rod applies a thrust towards the tower, the two ends of the support rod slide within the elongated through holes, and the support rod pushes the rollers towards the tower, causing the rollers to press against the tower, forming a roller clamping mechanism. When the motor drives the support rod to rotate, the support rod drives the rollers to rotate, causing the rollers to move the fixed frame, the first plate, and the second plate along the tower's axis, moving up and down, forming a roller moving mechanism.
[0008] As a preferred embodiment, the fixing frame includes a first half-connecting frame and a second half-connecting frame, both of which have elongated through holes, and are equipped with a support rod, a push rod, a motor, and rollers.
[0009] As a preferred embodiment, the push rod is connected to the motor via a U-shaped plate. The motor is a dual-head motor, which is installed in the U-shaped groove of the U-shaped plate. The support rod is connected to the output end of the dual-head motor.
[0010] As a preferred embodiment, a guide groove is formed in the elongated through hole, and both ends of the support rod are slidably installed in the guide groove through a guide mechanism; the guide mechanism includes a support sleeve and a guide rod, the support sleeve is slidably sleeved on the support rod, one end of the guide rod is connected to the support sleeve, and the other end of the guide rod is slidably sleeved in the guide groove.
[0011] As a preferred embodiment, the first plate is detachably connected to the second plate via a first latching mechanism. The first latching mechanism includes a first cylinder, a first screw, a first handle, a first lifting block, and a first locking block. The first cylinder is fixedly installed in a first mounting hole on the first or second plate. The first screw is installed in the first cylinder, connecting it to the first cylinder via a threaded drive. A T-slot is formed at the lower end of the first screw. A T-shaped rod is provided at the upper end of the first lifting block, and the T-shaped rod is installed in the T-slot with a clearance fit. The first handle is fixedly installed at the upper end of the first screw. One end of the first locking block is hinged to the lower end of the first lifting block, and the middle part of the first locking block is hinged to the first cylinder. A first locking groove corresponding to the position of the first locking block is formed on the first or second plate. When the first screw rotates downward, it drives the first lifting block to slide downward, causing the first locking block to swing and pass through a first through hole at the lower end of the first cylinder and engage in the first locking groove.
[0012] As a preferred embodiment, the first half-connecting frame is detachably connected to the second half-connecting frame via a second snap-fit mechanism. The second snap-fit mechanism includes a second cylinder, a second screw, a second handle, a second lifting block, and a second locking block. The second cylinder is fixedly connected to a second mounting hole on the first or second half-connecting frame. The second screw is installed inside the second cylinder, connecting it to the second cylinder via a threaded drive. A T-slot is formed at the lower end of the second screw. A T-shaped rod is provided at the upper end of the second lifting block, and the T-shaped rod is installed in the T-slot with a clearance fit. The second handle is fixedly installed at the upper end of the second screw. One end of the second locking block is hinged to the lower end of the second lifting block, and the middle part of the second locking block is hinged to the second cylinder. A second locking groove corresponding to the position of the second locking block is formed on the first or second half-connecting frame. When the second screw rotates inside the second cylinder, it drives the second lifting block to move, causing the second locking block to swing and pass through a second through hole at the lower end of the second cylinder, engaging or disengaging from the second locking groove.
[0013] As a preferred embodiment, a limiting block is provided at one end of the support rod extending out of the long through hole.
[0014] As a preferred embodiment, the first semi-connecting frame is provided with a first elastic clamping device, which includes a first semi-arc clamping block, a first sliding rod, and a first elastic element. The first sliding rod is slidably mounted on the first semi-connecting frame, with one end of the first sliding rod fixedly connected to the first semi-arc clamping block. The two ends of the first elastic element press against the first semi-connecting frame and the first semi-arc clamping block, respectively. The first elastic element presses the semi-arc clamping block towards the tower, so that the first semi-arc clamping block presses against the outer surface of the tower.
[0015] As a preferred embodiment, the second semi-connecting frame is provided with a second elastic clamping device, which includes a second semi-arc clamping block, a second sliding rod, and a second elastic element. The second sliding rod is slidably mounted on the second semi-connecting frame, with one end of the second sliding rod fixedly connected to the second semi-arc clamping block. The two ends of the second elastic element press against the second semi-connecting frame and the second semi-arc clamping block, respectively. The second elastic element presses the second semi-arc clamping block towards the tower, so that the second semi-arc clamping block presses against the outer surface of the tower.
[0016] The present invention has the following beneficial effects:
[0017] 1. During installation, the clamping drive device is first installed on the first and second flat plates. Then, the semi-circular holes of the first and second flat plates are fitted onto the tower, aligning and securing them together to form a support platform capable of supporting workers and placing work equipment. Workers can then control the clamping drive device as needed, moving the support platform upwards or downwards along the tower's axis. Once at the desired height, the clamping drive device clamps the platform at that position on the tower. In other words, this invention allows for continuous movement and clamping of the support platform to different heights on the tower without repeated disassembly and reassembly. Operation and use are extremely simple, convenient, and quick, greatly improving work efficiency.
[0018] 2. During operation, the push rod moves the support rod towards the tower, causing the rollers fixed to the support rod to press against the tower. At this time, because the motor is stopped and self-locking, the support rod is locked by the motor and cannot rotate, ensuring the rollers remain pressed against the tower without rolling. This guarantees that the load-bearing platform formed by the first and second flat plates can be clamped at the required height on the tower. When the height of the load-bearing platform needs to be adjusted, the motor is started, causing it to rotate the support rod. The support rod then moves the rollers along the tower's axis, thus raising or lowering the entire load-bearing platform. The entire operation is extremely simple and convenient.
[0019] 3. The fixing frame of this utility model is designed to be detachably connected by two half-connecting frames. The first half-connecting frame and the second half-connecting frame are respectively fixedly connected to the first plate and the second plate, forming two half-shell connecting platforms. During installation, it is only necessary to put the two half-shell connecting platforms onto the tower and fix them together to complete the installation. Similarly, it is only necessary to disassemble the two half-shell connecting platforms to complete the disassembly. Installation and disassembly are simpler, more convenient, and faster, improving work efficiency.
[0020] 4. This utility model eliminates the need for two motors to drive a support rod and a roller respectively, which saves on the number of motors used and improves the synchronicity and stability of the rotation of the support rod and roller. Attached Figure Description
[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0022] Figure 1 This is a structural schematic diagram of the tower installation platform for real-time monitoring of wind power according to this utility model.
[0023] Figure 2 yes Figure 1 A bottom view.
[0024] Figure 3 This is a schematic diagram of the first half of the connecting frame of the clamping drive device for the tower installation platform used for real-time monitoring of wind power according to this utility model.
[0025] Figure 4 yes Figure 1 A cross-sectional view along the axis of the first latching mechanism.
[0026] Figure 5 yes Figure 2 A cross-sectional view along the axis of the second mounting hole.
[0027] Figure 6 This is a structural diagram of the first or second locking mechanism.
[0028] Figure 7 yes Figure 6 A cross-sectional view along the axial direction of the first or second cylinder.
[0029] Figure 8 yes Figure 7 Enlarged view of the lower part.
[0030] Figure 9 This is a schematic diagram of the structure of the first elastic clamping device or the second elastic clamping device. Detailed Implementation
[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model. Example
[0032] Reference Figures 1 to 8This embodiment relates to a tower installation platform, including a first plate 1 and a second plate 2 that can be detachably installed together, and a clamping drive device 3 fixedly installed on the bottom end of the first plate 1 and the second plate 2; the upper surfaces of the first plate 1 and the second plate 2 are used to support personnel or equipment; and both the first plate 1 and the second plate 2 are formed with semi-circular holes 12, and the two semi-circular holes 12 are connected together, so that the first plate 1 and the second plate 2 can be slidably fitted onto the tower; the clamping drive device 3 clamps onto the tower, and the clamping drive device 3 drives the first plate 1 and the second plate 2 to move along the axial direction of the tower or downward.
[0033] During installation, the clamping drive device 3 is first installed on the first plate 1 and the second plate 2. Then, the semi-circular holes 12 of the first plate 1 and the second plate 2 are fitted onto the tower, so that the semi-circular holes 12 of the first plate 1 and the second plate 2 are aligned and fastened together, forming a support platform that can support workers standing on it and placing work equipment. Then, the workers can control the clamping drive device 3 as needed to drive the support platform to move up or down along the axis of the tower. After moving to the desired height, the clamping drive device 3 clamps the support platform at the corresponding height position on the tower. That is, the present invention can continuously drive the support platform to the desired position and clamp it at that position by the clamping drive device 3, without the need for repeated disassembly and installation of the support platform. This allows the support platform to be moved and fixed to different height positions on the tower, making operation and use extremely simple, convenient and quick, greatly improving work efficiency.
[0034] The clamping drive device 3 includes a fixed frame 31, a support rod 32, a push rod 33, a motor 34, and rollers 35. The fixed frame 31 is fixedly connected to the first plate 1 and the second plate 2. Elongated through holes 36 are opened on both sides of the fixed frame 31. The two ends of the support rod 32 are slidably fitted into the two elongated through holes 36 respectively. The rollers 35 are fixedly installed on the support rod 32. The motor 34 is fixedly installed on one end of the push rod 33, and the shaft of the motor 34 is connected to the support rod 32. The other end of the push rod 33 is externally connected to… Power; when the push rod 33 applies a thrust towards the tower direction to the support rod 32, the two ends of the support rod 32 slide in the long through hole 36, and the support rod 32 pushes the roller 35 to move towards the tower, so that the roller 35 presses against the tower, forming a roller clamping mechanism. When the motor 34 drives the support rod 32 to rotate, the support rod 32 drives the roller 35 to rotate, so that the roller 35 drives the fixed frame 31, the first plate 1 and the second plate 2 to move up and down along the axis of the tower, forming a roller moving mechanism.
[0035] The push rod 33 is connected to the power output end of the external drive device. During operation, the push rod 33 pushes the support rod 32 towards the tower, causing the roller 35 fixed on the support rod 32 to press against the tower. At this time, since the motor 34 is in a stopped and self-locking state, the support rod 32 is locked by the motor 34 and cannot rotate, allowing the roller 35 to press firmly against the tower without rolling, ensuring that the bearing platform formed by the first plate 1 and the second plate 2 can be clamped at the corresponding height required by the tower. When it is necessary to adjust the height of the bearing platform, the motor 34 is started, causing the motor 34 to drive the support rod 32 to rotate; the support rod 32 drives the roller 35 to move along the axis of the tower, thereby driving the entire bearing platform to rise or fall. The entire operation process is extremely simple and convenient.
[0036] The fixed frame 31 includes a first half-connecting frame 311 and a second half-connecting frame 312. Both the first half-connecting frame 311 and the second half-connecting frame 312 have elongated through holes 36, and are equipped with a support rod 32, a push rod 33, a motor 34, and rollers 35. In this structure, the fixed frame 31 is designed to be detachably connected together by two half-connecting frames. The first half-connecting frame 311 and the second half-connecting frame 312 are respectively fixedly connected to the first plate 1 and the second plate 2, forming two semi-shell connecting platforms. During installation, simply fitting the two semi-shell connecting platforms onto the tower and fixing them together completes the installation. Similarly, disassembly is completed by disassembling the two semi-shell connecting platforms. Installation and disassembly are simpler, more convenient, and faster, improving work efficiency.
[0037] The push rod 33 is connected to the motor 34 via a U-shaped plate 37. The motor 34 is a double-headed motor, which is fixedly installed in the U-shaped groove of the U-shaped plate 37. The support rod 32 is connected to the output end of the double-headed motor. This structure uses one double-headed motor to drive two support rods 32, ensuring that the two support rods 32 can rotate synchronously, allowing the rollers 35 on the two support rods 32 to rotate synchronously, thus achieving stable movement of the support platform. The shaft of the double-headed motor extends out from both sides of the U-shaped groove of the U-shaped plate 37 and is fixedly connected to one support rod 32. This structure eliminates the need for two separate motors to drive one support rod 32 and one roller 35, saving on the number of motors used and improving the synchronicity and stability of the rotation of the support rods 32 and rollers 35.
[0038] A guide groove 361 is formed inside the elongated through hole 36. Both ends of the support rod 32 are slidably installed in the guide groove 361 through the guide mechanism 38. The guide mechanism 38 includes a support sleeve 381 and a guide rod 382. The support sleeve 381 is slidably sleeved on the support rod 32. One end of the guide rod 382 is connected to the support sleeve 381, and the other end of the guide rod 382 is slidably sleeved in the guide groove 361. When the push rod 33 pushes the U-shaped plate 37 and drives the support rod 32 to move forward and backward, the guide rod 382 will slide in the guide groove 361 and guide the support rod 32 through the support sleeve 381. The groove can form longitudinal support for the support rod 32 through the guide rod 382 and the support sleeve 381, disperse the pressure on the guide rod 382 from the support rod 32, avoid excessive bending deformation of the guide rod 382 due to force, and extend its service life.
[0039] The first plate 1 is detachably connected to the second plate 2 via a first latching mechanism 4. The first latching mechanism 4 includes a first cylinder 41, a first screw 42, a first handle 43, a first lifting block 44, and a first locking block 45. The first cylinder 41 is fixedly installed in a first mounting hole 46 on the first plate 1 or the second plate 2. The first screw 42 is installed in the first cylinder 41, thus threading the first screw 42 and the first cylinder 41 together. The lower end of the first screw 42 has a T-slot 421. The upper end of the first lifting block 44 has a T-shaped rod 441, which is installed in the T-slot 421 with a clearance fit. The first handle 43 is fixedly installed... The first screw 42 is mounted on the upper end of the first screw 42; one end of the first locking block 45 is hinged to the lower end of the first lifting block 44, and the middle part of the first locking block 45 is hinged to the first cylinder 41; the first plate 1 or the second plate 2 has a first locking groove 47 corresponding to the position of the first locking block 45; when the first screw 42 is driven to rotate downward by turning the first handle 43, since the T-slot of the first screw 42 and the T-rod of the first lifting block 44 are connected by clearance fit, the first screw 42 will not drive the first lifting block 44 to rotate, so that the first screw 42 will only drive the first lifting block 44 to slide downward, causing the first locking block 45 to swing and pass through the first through hole 48 on the lower end of the first cylinder 41 and be locked into the first locking groove 47. When the first screw 42 is rotated upward by turning the first handle 43, the first screw 42 only causes the first lifting block 44 to slide upward, causing the first locking block 45 to swing and disengage from the first locking groove 47, thus separating the first plate 1 and the second plate 2 from each other. The first plate 1 and the second plate 2 can then be detached. A first latching mechanism is located at the connection point of the first plate 1 and the second plate 2. Multiple first latching mechanisms 4 detachably connect the first plate 1 and the second plate 2 together, achieving stability and reliability in their connection.
[0040] The first half-connecting frame 311 is detachably connected to the second half-connecting frame 312 via the second snap-fit mechanism 5. The second snap-fit mechanism 5 includes a second cylinder 51, a second screw 52, a second handle 53, a second lifting block 54, and a second locking block 55. The second cylinder 51 is fixedly connected to the second mounting hole 56 on the first half-connecting frame 311 or the second half-connecting frame 312. The second screw 52 is installed in the second cylinder 51, thus threading the second screw 52 and the second cylinder 51 together. The lower end of the second screw 52 has a T-slot 521. The upper end of the second lifting block 54 has a T-shaped rod 541, which is installed in the T-slot 521. The second screw 52 has a groove 521, and the T-shaped rod 541 is connected to the T-shaped groove 521 with a clearance fit; the second handle 53 is fixedly installed on the upper end of the second screw 52; one end of the second locking block 55 is hinged to the lower end of the second lifting block 54, and the middle part of the second locking block 55 is hinged to the second cylinder 51; the first half connecting frame 311 or the second half connecting frame 312 has a second locking groove 57 corresponding to the position of the second locking block 55; when the second screw 52 rotates in the second cylinder 51, the second screw 52 drives the second lifting block 54 to move, causing the second locking block 55 to swing and pass through the second through hole 58 on the lower end of the second cylinder 51 and engage or disengage from the second locking groove 57.
[0041] The second mounting hole 56 penetrates the side of the first half-connecting frame 311 and the second half-connecting frame 312, and the second cylinder 51 is fixedly connected to the second mounting hole 56 of the first half-connecting frame 311 or the second half-connecting frame 312. A second slot is formed on the inner wall of the second mounting hole 56 of the first half-connecting frame 311 or the second mounting hole 56 of the second half-connecting frame 312; if the second cylinder 51 is fixedly installed in the second mounting hole 56 of the first half-connecting frame 311, then the second slot 57 is formed on the inner wall of the second mounting hole 56 of the second half-connecting frame 312; if the second cylinder 51 is fixedly installed in the second mounting hole 56 of the second half-connecting frame 312, then the second slot is formed on the inner wall of the second mounting hole 56 of the first half-connecting frame 311. Figure 2 and Figure 5As shown, the second cylinder 51 is fixedly installed in the second mounting hole 56 of the first half-connecting frame 311. When the second handle 53 is turned, causing the second screw 52 to rotate to the right, the second screw 52 drives the second lifting block 54 to move to the right. Then, the second lifting block 54 drives the second locking block 55 to swing and engage with the second slot 57 on the inner wall of the second mounting hole 56 of the second half-connecting frame 312, thus realizing the installation and fastening between the first half-connecting frame 311 and the second half-connecting frame 312. When the second handle 53 is turned in the opposite direction, the second screw 52 rotates to the left. Then, the second screw 52 drives the second lifting block 54 to move to the left. Then, the second lifting block 54 drives the second locking block 55 to swing and disengage from the second slot 57 on the inner wall of the second mounting hole 56 of the second half-connecting frame 312, thus realizing the quick disassembly between the first half-connecting frame 311 and the second half-connecting frame 312.
[0042] A limiting block 6 is provided at one end of the support rod 32 extending out of the elongated through hole 36. Since the support sleeve 381 and the support rod 32 are movably connected, the limiting block 6 is provided at the end of the support rod 32 to prevent the support sleeve 381 from coming off the support rod 32.
[0043] like Figure 9 As shown, a first elastic clamping device 7 is provided on the first semi-connecting frame 311. The first elastic clamping device 7 includes a first semi-arc clamping block 71, a first sliding rod 72, and a first elastic element 73. The first sliding rod 72 is slidably mounted on the first semi-connecting frame 311, and one end of the first sliding rod 72 is fixedly connected to the first semi-arc clamping block 71. The two ends of the first elastic element 73 press against the first semi-connecting frame 311 and the first semi-arc clamping block 71 respectively. The first elastic element 73 presses the semi-arc clamping block towards the tower, so that the first semi-arc clamping block 71 presses against the outer surface of the tower. The first elastic element 73 is a spring. The spring can also be sleeved on the first sliding rod 72. When the clamping drive device 3 drives the bearing platform to move and clamp it at the desired height position on the tower, the first elastic element 73 is compressed and generates a reverse elastic force, pushing the first semi-circular clamping block 71 to always press against the surface of the tower, ensuring that the first semi-circular clamping block 71 always keeps in contact with the tower surface. This allows the entire bearing platform to be clamped more stably and reliably on the tower. Even if there are slight protrusions or depressions on the tower surface, the elastic deformation of the first elastic element 73 can adjust the elastic force in time, ensuring that the first semi-circular clamping block 71 always keeps in contact with the tower surface, avoiding gaps caused by uneven tower surface. The first sliding rod 72 is fixedly connected to the first semi-circular clamping block 71 through the first fixing block 74.
[0044] The second semi-connecting frame 312 is provided with a second elastic clamping device 8. The second elastic clamping device 8 includes a second semi-arc clamping block 81, a second sliding rod 82, and a second elastic element 83. The second sliding rod 82 is slidably installed on the second semi-connecting frame 312. One end of the second sliding rod 82 is fixedly connected to the second semi-arc clamping block 81. The two ends of the second elastic element 83 press against the second semi-connecting frame 312 and the second semi-arc clamping block 81 respectively. The second elastic element 83 presses the second semi-arc clamping block 81 towards the tower, so that the second semi-arc clamping block 81 presses against the outer surface of the tower. When the clamping drive device 3 drives the bearing platform to move and clamp it at the desired height position on the tower, the second elastic element 83 is compressed and generates a reverse elastic force, pushing the second semi-circular clamping block 81 to always press against the surface of the tower, ensuring that the second semi-circular clamping block 81 always keeps in contact with the tower surface. This allows the entire bearing platform to be clamped more stably and reliably on the tower. Even if there are slight protrusions or depressions on the tower surface, the elastic deformation of the second elastic element 83 can adjust the elastic force in time, ensuring that the second semi-circular clamping block 81 always keeps in contact with the tower surface, avoiding gaps caused by uneven tower surface. The second sliding rod 82 is fixedly connected to the second semi-circular clamping block 81 through the second fixing block 84.
[0045] The above-disclosed embodiment is merely a preferred embodiment of the present utility model and should not be construed as limiting the scope of the present utility model. Therefore, any equivalent variations made in accordance with the claims of the present utility model shall still fall within the scope of the present utility model.
Claims
1. A tower installation platform for real-time monitoring of wind power, characterized in that, The system includes a first plate and a second plate that can be detachably installed together, and a clamping drive device fixedly installed on the bottom end of the first plate and the second plate; the upper surfaces of the first plate and the second plate are used to support personnel or equipment, and both the first plate and the second plate are formed with semi-circular holes, which are connected together to allow the first plate and the second plate to be slidably fitted onto the tower; the clamping drive device clamps onto the tower and drives the first plate and the second plate to move along the axial direction of the tower or downward. The clamping drive device includes a fixed frame, a support rod, a push rod, a motor, and rollers. The fixed frame has elongated through holes on both sides, and the two ends of the support rod are slidably fitted into the two elongated through holes respectively. The rollers are fixedly installed on the support rod. The motor is fixedly installed on one end of the push rod, and the motor shaft is connected to the support rod. The other end of the push rod is externally powered. When the push rod applies a thrust towards the tower, the two ends of the support rod slide within the elongated through holes, and the support rod pushes the rollers towards the tower, causing the rollers to press against the tower, forming a roller clamping mechanism. When the motor drives the support rod to rotate, the support rod drives the rollers to rotate, causing the rollers to move the fixed frame, the first plate, and the second plate along the tower's axis, moving up and down, forming a roller moving mechanism.
2. The tower installation platform for real-time wind power monitoring according to claim 1, characterized in that, The fixed frame includes a first half-connecting frame and a second half-connecting frame, both of which have the elongated through hole, and are provided with the support rod, push rod, motor and roller.
3. A tower installation platform for real-time wind power monitoring according to claim 1, characterized in that, The push rod is connected to the motor via a U-shaped plate. The motor is a double-headed motor, which is installed in the U-shaped groove of the U-shaped plate. The support rod is connected to the output end of the double-headed motor.
4. A tower installation platform for real-time wind power monitoring according to claim 1 or 2, characterized in that, The elongated through hole has a guide groove, and both ends of the support rod are slidably installed in the guide groove through a guide mechanism; the guide mechanism includes a support sleeve and a guide rod, the support sleeve is slidably sleeved on the support rod, one end of the guide rod is connected to the support sleeve, and the other end of the guide rod is slidably sleeved in the guide groove.
5. A tower installation platform for real-time wind power monitoring according to claim 1, characterized in that, The first plate is detachably connected to the second plate via a first latching mechanism. The first latching mechanism includes a first cylinder, a first screw, a first handle, a first lifting block, and a first locking block. The first cylinder is fixedly installed in a first mounting hole on the first or second plate. The first screw is installed in the first cylinder, connecting it to the first cylinder via a threaded drive. A T-slot is provided at the lower end of the first screw. A T-shaped rod is provided at the upper end of the first lifting block, and the T-shaped rod is installed in the T-slot with a clearance fit. The first handle is fixedly installed at the upper end of the first screw. One end of the first locking block is hinged to the lower end of the first lifting block, and the middle part of the first locking block is hinged to the first cylinder. A first locking groove corresponding to the position of the first locking block is provided on the first or second plate. When the first screw rotates downward, it drives the first lifting block to slide downward, causing the first locking block to swing and pass through the first through hole at the lower end of the first cylinder and engage in the first locking groove.
6. A tower installation platform for real-time wind power monitoring according to claim 2, characterized in that, The first half-connecting frame is detachably connected to the second half-connecting frame via a second snap-fit mechanism. The second snap-fit mechanism includes a second cylinder, a second screw, a second handle, a second lifting block, and a second locking block. The second cylinder is fixedly connected to the second mounting hole on the first or second half-connecting frame. The second screw is installed in the second cylinder, connecting it to the second cylinder via a threaded drive. A T-slot is provided at the lower end of the second screw. A T-shaped rod is provided at the upper end of the second lifting block, and the T-shaped rod is installed in the T-slot with a clearance fit. The second handle is fixedly installed at the upper end of the second screw. One end of the second locking block is hinged to the lower end of the second lifting block, and the middle part of the second locking block is hinged to the second cylinder. A second locking groove corresponding to the position of the second locking block is provided on the first or second half-connecting frame. When the second screw rotates in the second cylinder, it drives the second lifting block to move, causing the second locking block to swing and pass through the second through hole on the lower end of the second cylinder, engaging or disengaging from the second locking groove.
7. A tower installation platform for real-time wind power monitoring according to claim 1, characterized in that, A limiting block is provided at one end of the support rod that extends out of the long through hole.
8. A tower installation platform for real-time wind power monitoring according to claim 2, characterized in that, The first semi-connecting frame is provided with a first elastic clamping device, which includes a first semi-arc clamping block, a first sliding rod, and a first elastic element. The first sliding rod is slidably installed on the first semi-connecting frame, and one end of the first sliding rod is fixedly connected to the first semi-arc clamping block. The two ends of the first elastic element press against the first semi-connecting frame and the first semi-arc clamping block respectively. The first elastic element presses the semi-arc clamping block towards the tower, so that the first semi-arc clamping block presses against the outer surface of the tower.
9. A tower installation platform for real-time wind power monitoring according to claim 2, characterized in that, The second semi-connecting frame is provided with a second elastic clamping device, which includes a second semi-arc clamping block, a second sliding rod, and a second elastic element. The second sliding rod is slidably installed on the second semi-connecting frame, and one end of the second sliding rod is fixedly connected to the second semi-arc clamping block. The two ends of the second elastic element press against the second semi-connecting frame and the second semi-arc clamping block respectively. The second elastic element presses the second semi-arc clamping block towards the tower, so that the second semi-arc clamping block presses against the outer surface of the tower.