Portable offshore wind power wave height measuring equipment
By introducing adjustment components and dehumidification components into offshore wind power wave height measurement equipment, the data error problem caused by environmental influences in laser measurement devices was solved, and more accurate wind power wave height measurement was achieved.
Patent Information
- Application Number
- CN202510826862.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-19
- Publication Date
- 2025-09-19
AI Technical Summary
The existing offshore wind power wave height measurement device is affected by the environment, which causes the optical path of the laser measurement device to deviate, resulting in measurement data errors.
A portable offshore wind power wave height measurement device was designed, which includes an adjustment component and a dehumidification component. The adjustment component adjusts the position of the measuring device to keep it consistent with the direction of wind and waves through an electric push rod, a motor and a gear system. The dehumidification component removes the influence of fog through a dehumidifier and a suction nozzle.
It effectively avoids the deviation of measurement data and improves the accuracy and reliability of measurement data.
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Figure CN120668087A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of offshore wind wave height measurement, and in particular relates to a portable offshore wind power wave height measurement device. Background Art
[0002] Offshore wind power technology is now increasingly mature, and my country has begun constructing offshore wind farms. Offshore wind farm sites require certain wind speeds and strength. Since wave energy itself is generated by wind, offshore wind farms are also rich sources of wave energy. Combining offshore wind power development with the utilization of wave energy resources can effectively expand the generating capacity of offshore power plants and improve their overall economic viability.
[0003] When using existing measurement devices, most laser measurement devices often experience scattering or absorption of the light emitted by the laser detection device due to the influence of the detection environment. This causes a certain deviation in the laser measurement device's light path, which in turn affects the measurement data of the laser measurement device and causes errors in the final data. To this end, we propose a portable offshore wind power wave height measurement device. Summary of the Invention
[0004] The present invention overcomes the shortcomings of the prior art and proposes a portable offshore wind power wave height measurement device; it solves the problem that the data of the laser measurement device currently used for offshore wind power wave height measurement is prone to deviation.
[0005] In order to achieve the above object, the present invention is implemented through the following technical solutions.
[0006] A portable offshore wind power wave height measuring device includes a main body mechanism, which includes a base and a column. The column is fixedly arranged at the upper end of the base. A processing mechanism is arranged on the column. The processing mechanism includes an adjustment component and a dehumidification component. The adjustment component includes a liftable connecting frame, a fixed frame is rotatably arranged on the connecting frame, an adjustment frame is rotatably arranged on the fixed frame, a mobile platform is slidably arranged on the adjustment frame, and a laser measurement scanner body and a laser rangefinder body are arranged on the mobile platform; the dehumidification component includes a dehumidifier body, a swinging frame and a suction nozzle. The swinging frame is rotatably arranged on the mobile platform, and the suction nozzle is arranged on the swinging frame. The suction nozzle is connected to the dehumidifier body through a conveying pipe.
[0007] Furthermore, the adjusting assembly also includes a first electric push rod, a first motor, a second motor, a rotating shaft, a driving gear, and a driven gear; two first electric push rods are fixedly arranged at the upper end of the column, and the piston rods of the two first electric push rods are vertically upward and fixedly connected to the lower end face of the connecting frame; the connecting frame includes a horizontal plate and a vertical plate, the lower end of the vertical plate is fixedly connected to the middle of the upper end face of the horizontal plate, the first motor is fixedly arranged at the front end face of the vertical plate of the connecting frame, and the fixed frame is fixedly arranged on the output shaft of the first motor, and the fixed frame and the vertical plate of the connecting frame are rotatably connected through a connecting bearing; a hinge seat is fixedly arranged at the left and right edges of the front end face of the fixed frame respectively, and a left and right horizontal rotating shaft is rotatably arranged between the two hinge seats, and the two ends of the rotating shaft extend to the outside of the two hinge seats; a second motor is fixedly arranged at the center of the front end face of the fixed frame, and a driving gear is fixedly arranged on the output shaft of the second motor, and a driven gear is fixedly sleeved on the outside of the middle part of the rotating shaft, and the driving gear is meshed with the driven gear.
[0008] Furthermore, the adjusting assembly also includes a screw rod, a third motor, and a sliding rod; the adjusting frame includes a horizontal plate and two symmetrical longitudinal plates, and the two ends of the horizontal plate are fixedly connected to the two longitudinal plates respectively; the rotating shaft is located behind the horizontal plate, and the two ends of the rotating shaft are fixedly connected to the two longitudinal plates respectively, and a screw rod is rotatably arranged in front of the horizontal plate, and the two ends of the screw rod are rotatably connected to the two longitudinal plates respectively; a third motor is fixedly arranged on one side of the adjusting frame, and the output shaft of the third motor is fixedly connected to the end of the screw rod, and a sliding rod is also fixedly arranged between the two longitudinal plates, and the sliding rod remains parallel to the screw rod.
[0009] Furthermore, the adjustment component also includes a connecting plate, a heating plate, a second electric push rod, a movable plate, an infrared heating lamp, and a thermal imager; the movable platform includes a vertical section and a horizontal section, and the lower end of the vertical section is fixedly connected to the rear end of the horizontal section; the vertical section of the movable platform is screwed to the outer side of the screw rod and slidably sleeved on the outer side of the slide rod; the laser measuring scanner body is fixedly arranged on the front side of the vertical section of the movable platform, and a connecting plate is fixedly arranged on one side of the vertical section of the movable platform, and the heating plate, the second electric push rod, and the laser rangefinder body are fixedly arranged on the upper, middle and lower ends of the front end surface of the connecting plate respectively, one end of the piston rod of the second electric push rod faces the front side and is fixedly provided with the movable plate, and the front and rear two infrared heating lamps and the front and rear two thermal imagers are fixedly arranged on the left and right sides of the upper end surface of the movable plate respectively.
[0010] Furthermore, the dehumidification component also includes a placement table and an air inlet pipe; a placement table is fixedly arranged on one side of the column, and the dehumidifier body is fixedly arranged on the upper end of the placement table. An air inlet pipe and an air outlet pipe are arranged on the dehumidifier body, and the air inlet pipe is fixedly connected to the end of the delivery pipe away from the suction nozzle.
[0011] Furthermore, a rotating shaft is rotatably provided at the front end of the horizontal section of the movable platform, a rotating gear is fixedly provided at the lower end of the rotating shaft, a rotating disk is fixedly provided at the upper end of the rotating shaft, and a vertical connecting column is fixedly provided at the outer edge of the upper end surface of the rotating disk; a rack is fixedly provided on the front side of the lower end of the horizontal section of the adjusting frame, and the rack is kept meshed with the rotating gear; a concave frame is fixedly provided on the front side of the upper end surface of the horizontal section of the movable platform, and the concave frame includes a left and right horizontal swing shaft and two left and right symmetrical fixing rods, the lower ends of the two fixing rods are fixedly connected to the upper end surface of the horizontal section of the movable platform, and the swing shaft is fixedly provided between the upper ends of the two fixed rods; the upper end of the swing frame is rotatably provided on the outside of the swing shaft, and the connecting column maintains sliding contact with the swing frame; a mounting plate is fixedly provided on the upper end of the swing frame, and the suction nozzle is fixedly provided on the mounting plate.
[0012] Furthermore, a cleaning mechanism is provided at the upper end of the dehumidifier body, and the cleaning mechanism includes a processing box; a processing box is fixedly provided at the upper end of the dehumidifier body, and the processing box is a square box structure with an open upper end, and an openable box cover is rotatably provided at the upper end opening of the processing box; a locking block is provided on the box cover, and a locking frame is provided on the processing box, and the locking frame and the locking block are engaged with each other.
[0013] Furthermore, a connecting pipe is fixedly provided on the air outlet pipe of the dehumidifier body, and the end of the connecting pipe away from the air outlet pipe extends to the inside of the processing box; a fixed pipe is fixedly provided on the outer wall of the processing box away from the connecting pipe, and a hose is fixedly provided on the fixed pipe, and a nozzle is fixedly provided on the end of the hose away from the fixed pipe, and the nozzle is fixedly provided on one side of the movable platform through a fixed plate.
[0014] Furthermore, a dust-proof net is fixedly installed in the middle of the inner side of the processing box, and the dust-proof net is located between the connecting pipe and the fixed pipe; two upper and lower parallel cleaning racks are provided on the side of the dust-proof net close to the connecting pipe, and the cleaning racks maintain sliding contact with the dust-proof net; a movable rack is fixedly installed between the same ends of the two cleaning racks, and the movable rack includes a vertical rod and two horizontal rods, one end of the two horizontal rods is fixedly connected to the upper and lower ends of the vertical rod respectively, and the other ends of the two horizontal rods are fixedly connected to the end portions of the two cleaning racks respectively; a waist-shaped rack is fixedly installed in the middle of the horizontal rod of the movable rack, and a waist-shaped groove is provided inside the waist-shaped rack.
[0015] Furthermore, a fourth motor is fixedly provided on the outer wall of the processing box, a rotating disk is fixedly provided on the output shaft of the fourth motor, a fixed column is fixedly provided at the outer edge of the rotating disk, and the fixed column is movably inserted into the waist-shaped frame; two upper and lower limit seats are fixedly provided on the inner wall of the processing box close to the fourth motor, and the vertical rods of the movable rack are slidably inserted into the two limit seats respectively; a vertical slide groove is provided on the inner wall of the processing box away from the fourth motor, and a slider is fixedly provided on the end of the two cleaning racks away from the movable rack, and the two sliders are slidably engaged in the inside of the slide groove.
[0016] The beneficial effects of the present invention compared to the prior art are: 1. The present invention is provided with an adjustment component, so that before measuring the height of offshore waves, the measuring device is aligned with the direction of offshore waves, thereby assisting in adjusting the position of the detection device, avoiding the phenomenon of measurement data errors caused by the inconsistency between the measuring device and the direction of offshore waves to be measured, thereby ensuring the accuracy of the measurement data.
[0017] 2. The present invention is provided with a dehumidification component, which enables the device to remove fog from the surrounding environment during the measurement process, thereby avoiding the scattering or absorption of the laser emitted by the measuring device due to the influence of water vapor during the detection process, thereby further ensuring the accuracy of the measurement data. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be further described in detail below with reference to the accompanying drawings: Figure 1 It is a schematic structural diagram of the present invention as a whole; Figure 2 It is a schematic diagram of the connection between the main body mechanism and the connecting frame; Figure 3 is a schematic diagram of the connection between the fixed frame and the rotating shaft; Figure 4 It is a schematic diagram of the connection between the adjustment frame and the moving platform; Figure 5 It is a schematic diagram of the connections between the various components on the mobile platform; Figure 6 It is a schematic diagram of the connection between the moving platform and the concave frame, swing frame and suction nozzle; Figure 7 It is a schematic diagram of the connection between the rotating shaft, swing frame, concave frame, mounting plate, suction nozzle, rotating gear, and rotating disk; Figure 8 It is a schematic diagram of the connection between the dehumidifier body and the processing mechanism; Figure 9 It is a schematic diagram of the internal structure of the processing box; Figure 10It is a schematic diagram of the connection between the cleaning rack, the moving rack, the fourth motor, and the rotating disk; Among them, 1 is the main body, 11 is the base, 12 is the column, 2 is the processing mechanism, 21 is the adjustment component, 2101 is the first electric push rod, 2102 is the connecting frame, 2103 is the first motor, 2104 is the fixing frame, 2105 is the rotating shaft, 2106 is the driven gear, 2107 is the second motor, 2108 is the driving gear, 2109 is the adjusting frame, 2110 is the screw rod, 2111 is the third motor, 2112 is the moving platform, 2113 is the laser measuring scanner body, 2114 is the connecting plate, 2115 is the heating plate, 2116 is the laser rangefinder body, 2117 is the second electric push rod, 2118 is the moving plate, 2119 is the infrared heating lamp, 2120 is the thermal imager, 2121 is the connecting bearing, 2122 is the sliding rod, and 22 is the dehumidification component , 2201 is a placing table, 2202 is a dehumidifier body, 2203 is an air inlet pipe, 2204 is a delivery pipe, 2205 is a rack, 2206 is a rotating shaft, 2207 is a rotating gear, 2208 is a rotating disk, 2209 is a connecting column, 2210 is a concave frame, 2211 is a swing frame, 2212 is a mounting plate, 2213 is a suction nozzle, 3 is a cleaning mechanism, 301 is a processing box, 302 is a dustproof net, 303 is an air outlet pipe, 304 is a connecting pipe, 305 is a fixed pipe, 306 is a hose, 307 is a fixed plate, 308 is a nozzle, 309 is a fourth motor, 310 is a rotating disk, 311 is a fixed column, 312 is a moving frame, 313 is a cleaning frame, 314 is a locking block, 315 is a locking frame, 316 is a limiting seat, 317 is a slider, and 318 is a slide. DETAILED DESCRIPTION
[0019] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present invention more clearly understood, the present invention is further described in detail with reference to the embodiments and the accompanying drawings. It should be understood that the specific embodiments described herein are merely for explaining the present invention and are not intended to limit the present invention. The technical solutions of the present invention will be described in detail below with reference to the embodiments and the accompanying drawings, but the scope of protection is not limited thereto.
[0020] like Figure 1As shown in FIG10 , the present invention provides a portable offshore wind power wave height measuring device, including a main body mechanism 1, the main body mechanism 1 including a base 11 and a column 12, the column 12 is fixedly arranged on the upper end of the base 11, a processing mechanism 2 is arranged on the column 12, the processing mechanism 2 includes an adjustment component 21 and a dehumidification component 22, the adjustment component 21 includes a liftable connecting frame 2102, a fixing frame 2104 is rotatably arranged on the connecting frame 2102, and an adjusting component 2104 is rotatably arranged on the fixing frame 2104. The frame 2109 is provided with a movable platform 2112 for sliding movement on the adjustment frame 2109, and a laser measuring scanner body 2113 and a laser rangefinder body 2116 are provided on the movable platform 2112; the dehumidification component 22 includes a dehumidifier body 2202, a swing frame 2211 and a suction nozzle 2213, a swing frame 2211 is rotatably provided on the movable platform 2112, and a suction nozzle 2213 is provided on the swing frame 2211, and the suction nozzle 2213 is connected to the dehumidifier body 2202 through a conveying pipe 2204.
[0021] The base 11 is a horizontally arranged square plate structure, and the column 12 is a vertically arranged square column structure, and the lower end of the column 12 is fixedly arranged at the center of the upper end surface of the base 11. A moving wheel is rotatably arranged at the four corners of the lower end surface of the base 11.
[0022] The adjustment component 21 also includes a first electric push rod 2101, a first motor 2103, a rotating shaft 2105, a driving gear 2108, a driven gear 2106, a second motor 2107, a screw rod 2110, a third motor 21112111, a connecting plate 2114, a heating plate 2115, a second electric push rod 2117, a moving plate 2118, an infrared heating lamp 2119, a thermal imager 2120, and a sliding rod 2122.
[0023] Two first electric push rods 2101 are fixedly mounted on the upper end of the column 12. The piston rods of the two first electric push rods 2101 are vertically upward and fixedly connected to the lower end surface of the connecting frame 2102. The connecting frame 2102 includes a horizontal plate and a vertical plate. The vertical plate is located in a vertical plane in the left-right direction. The lower end of the vertical plate is fixedly connected to the middle of the upper end surface of the horizontal plate. One end of the piston rod of the two first electric push rods 2101 is fixedly connected to the lower end surface of the horizontal plate. A first motor 2103 is fixedly mounted on the front end surface of the vertical plate of the connecting frame 2102. The output shaft of the first motor 2103 faces the front side. The fixed frame 2104 is fixedly mounted on the output shaft of the first motor 2103. The fixed frame 2104 is rotatably connected to the vertical plate of the connecting frame 2102 via a connecting bearing 2121. The fixing frame 2104 is a square plate-like structure located within a left-right vertical plane. A hinged seat is fixedly mounted on the left and right edges of the front end of the fixing frame 2104. A horizontal rotating shaft 2105 is rotatably mounted between the two hinged seats, with both ends of the rotating shaft 2105 extending outward from the two hinged seats. A second motor 2107 is fixedly mounted at the center of the front end of the fixing frame 2104. A driving gear 2108 is fixedly mounted on the output shaft of the second motor 2107. A driven gear 2106 is fixedly mounted on the outer side of the middle portion of the rotating shaft 2105, and the driving gear 2108 meshes with the driven gear 2106.
[0024] The adjustment frame 2109 comprises a transverse plate and two symmetrical longitudinal plates. The longitudinal plates are square plate-like structures located in a front-to-back vertical plane, while the transverse plates are square plate-like structures located in a left-to-right vertical plane. The ends of the transverse plates are fixedly connected to the middle portions of the adjacent end surfaces of the two longitudinal plates. A rotation shaft 2105 is located behind the transverse plates, with its ends fixedly connected to the two longitudinal plates, driving the adjustment frame 2109 to rotate synchronously. A horizontal screw rod 2110 is rotatably mounted in front of the transverse plates, with its ends rotatably connected to the two longitudinal plates. A third motor 21112111 is fixedly mounted on one side of the adjustment frame 2109. The output shaft of the third motor 21112111 is fixedly connected to the ends of the screw rod 2110, driving the screw rod 2110 to rotate synchronously via the third motor 21112111. A sliding rod 2122 is fixedly provided between the two longitudinal plates. The sliding rod 2122 is parallel to the screw rod 2110 and is located in front of the transverse plate.
[0025] The movable platform 2112 comprises a vertical section and a horizontal section, with the lower end of the vertical section fixedly connected to the rear end of the horizontal section. The vertical section of the movable platform 2112 is threaded onto the outside of the screw rod 2110 and slidably sleeved onto the outside of the slide rod 2122. The laser measurement scanner body 2113, a Handyscan 700 scanner, is fixedly mounted on the front side of the vertical section of the movable platform 2112. A connecting plate 2114, a square plate-like structure located within the left and right vertical planes, is fixedly mounted on one side of the vertical section of the movable platform 2112. A heating plate 2115, a second electric push rod 2117, and a laser rangefinder body 2116, model GLM400, are fixedly mounted on the upper, middle, and lower ends of the front end of the connecting plate 2114, respectively. The piston rod of the second electric push rod 2117 faces forward. A movable plate 2118 is fixed to this end. The movable plate 2118 is a square plate-like structure located in a vertical plane. Two infrared heating lamps 2119 and two thermal imagers 2120, each model FLIR One Pro, are fixed to the left and right sides of the upper end surface of the movable plate 2118. The laser scanner body 2113, the laser rangefinder body 2116, and the thermal imagers 2120 are all electrically connected to external computer equipment via wires.
[0026] The dehumidification assembly 22 also includes a placement table 2201, an air inlet pipe 2203, a rack 2205, a rotating shaft 2206, a rotating gear 2207, a rotating disk 2208, a connecting column 2209, and a concave frame 2210.
[0027] A placement platform 2201 is fixedly set on one side of the column 12, and the dehumidifier body 2202 is fixedly set on the upper end of the placement platform 2201. An air inlet pipe 2203 and an air outlet pipe 303 are set on the dehumidifier body 2202. The air inlet pipe 2203 is fixedly connected to the end of the delivery pipe 2204 away from the suction nozzle 2213.
[0028] A vertical rotating shaft 2206 is rotatably mounted at the front end of the horizontal section of the movable platform 2112. A rotating gear 2207 is fixedly mounted at the lower end of the rotating shaft 2206. A horizontal, circular rotating disk 2208 is fixedly mounted at the upper end of the rotating disk 2208. A vertical connecting post 2209 is fixedly mounted at the outer edge of the upper end surface of the rotating disk 2208. A rack 2205 is fixedly mounted at the front end of the lower end of the horizontal section of the adjustment frame 2109. The rack 2205 extends parallel to the axis of the screw rod 2110 and meshes with the rotating gear 2207. A concave frame 2210 is fixedly mounted at the front end of the upper end of the horizontal section of the movable platform 2112. The concave frame 2210 comprises a horizontal swing shaft and two symmetrical fixed rods. The lower ends of the two fixed rods are fixedly connected to the upper end surface of the horizontal section of the movable platform 2112. The swing shaft is fixedly mounted between the upper ends of the two fixed rods. The upper end of the swing frame 2211 is rotatably arranged outside the swing shaft, and the connecting column 2209 maintains sliding contact with the swing frame 2211. A mounting plate 2212 is fixedly arranged on the upper end of the swing frame 2211, and the suction nozzle 2213 is fixedly arranged on the mounting plate 2212.
[0029] A cleaning mechanism 3 is also provided at the upper end of the dehumidifier body 2202, and the cleaning mechanism 3 includes a processing box 301, a dustproof net 302, a connecting pipe 304, a fixed pipe 305, a hose 306, a fixed plate 307, a nozzle 308, a fourth motor 309, a rotating disk 310, a fixed column 311, a movable frame 312, a cleaning frame 313, a locking block 314, a locking frame 315, a limit seat 316, a slider 317, and a slide groove 318.
[0030] A processing box 301 is fixedly mounted on the upper end of the dehumidifier body 2202. The processing box 301 is a square box structure with an open top. A rotatable lid is mounted on the upper opening of the processing box 301. A locking block 314 is mounted on the lid, and a locking bracket 315 is mounted on the processing box 301. The locking bracket 315 engages with the locking block 314 to secure the lid and processing box 301 to each other.
[0031] A connecting pipe 304 is fixedly mounted on the outlet pipe 303 of the dehumidifier body 2202. The end of the connecting pipe 304, away from the outlet pipe 303, extends into the processing box 301. A fixed pipe 305 is fixedly mounted on the outer wall of the processing box 301, away from the connecting pipe 304. A flexible tube 306 is fixedly mounted on the fixed pipe 305. A nozzle 308 is fixedly mounted on the end of the flexible tube 306 away from the fixed pipe 305. The nozzle 308 is fixed to one side of the movable platform 2112 via a fixing plate 307.
[0032] A dust screen 302 is fixedly provided in the middle of the inside of the processing box 301, and the dust screen 302 is located between the connecting pipe 304 and the fixed pipe 305. Two parallel cleaning racks 313 are provided on the side of the dust screen 302 near the connecting pipe 304, and the cleaning rack 313 keeps sliding contact with the dust screen 302. A mobile rack 312 is fixedly provided between the same end of the two cleaning racks 313, and the mobile rack 312 comprises a vertical rod and two horizontal rods, one end of the two horizontal rods is fixedly connected to the upper and lower ends of the vertical rod respectively, and the other end of the two horizontal rods is fixedly connected to the end of the two cleaning racks 313 respectively. A waist-shaped frame is fixedly provided in the middle of the horizontal rod of the mobile rack 312, and a waist-shaped groove is provided inside the waist-shaped frame. A fourth motor 309 is fixedly provided on the outer wall of the processing box 301. A vertical circular rotating disk 310 is fixedly provided on the output shaft of the fourth motor 309. A fixed column 311 is fixedly provided at the outer edge of the rotating disk 310. The fixed column 311 is movably plugged into the inside of the waist-shaped frame. Two upper and lower limit seats 316 are fixedly provided on the inner wall of the processing box 301 near the side of the fourth motor 309. The vertical rods of the mobile frame 312 are slidably plugged into the inside of the two limit seats 316. A vertical chute 318 is provided on the inner wall of the processing box 301 away from the side of the fourth motor 309. The chute 318 is a T-shaped slot structure. A slider 317 is fixedly provided on one end of the two cleaning frames 313 away from the mobile frame 312. The slider 317 is a T-shaped block structure. The two sliders 317 are both slidably connected to the inside of the chute 318.
[0033] The working principle of the present invention is: Step 1: When in use, first move the device to a position in front of the sea's wave height. Then, use the external remote control device to activate the first electric push rod 2101 and the first motor 2103. The power provided by the first electric push rod 2101 drives the connecting frame 2102 to move up and down, adjusting the height of the laser measurement scanner body 2113 according to the height of the location to be measured. The power provided by the first motor 2103 then drives the fixed frame 2104 to rotate, so that the movement trajectory of the laser measurement scanner body 2113 is aligned with the direction of the location to be measured. The laser rangefinder body 2116 is then activated and used to measure the distance between the heating plate 2115 and the location to be measured. The power provided by the second electric push rod 2117 drives the movable plate 2118 to move, so that the movable plate 2118 is located midway between the heating plate 2115 and the location to be measured. The infrared heating lamp 2119 is then turned on. The heat provided by the two infrared heating lamps 2119 in front and behind is used to heat the heating plate 2115 and the edge position in the same plane as the position to be measured, and then the thermal imager 2120 is used to display the heat gradient. After that, the measurement device and the position to be measured are judged to be consistent based on the heat difference at the same position. If they are consistent, the temperature gradient generated by the thermal imager 2120 is consistent. If not, the power provided by the second motor 2107 is used to drive the driving wheel to rotate, the driving gear 2108 drives the driven gear 2106 to rotate, and the driven gear 2106 drives the rotating shaft 2105 and the adjustment frame 2109 to adjust the angle so that the measurement device and the position to be measured are consistent, thereby ensuring the accuracy of the measurement data. After the adjustment is completed, the third motor 21112111 is turned on, and the power provided by the third motor 21112111 is used to drive the screw 2110 to rotate, and the screw 2110 drives the moving platform 2112 to move, so that the moving platform 2112 drives the laser measurement scanner body 2113 to measure the position to be measured.
[0034] In step 2, during the movement of the moving platform 2112, the rack 2205 cooperates with the rotating gear 2207, causing the rotating gear 2207 to drive the rotating shaft 2206 and the rotating disk 2208 to rotate, thereby causing the rotating disk 2208 to drive the connecting column 2209 to rotate, thereby causing the connecting column 2209 to drive the swing frame 2211 to swing back and forth, and then the swing frame 2211 drives the mounting plate 2212 and the suction nozzle 2213 to swing back and forth, thereby facilitating the drying of the air between the laser measurement scanner body 2113 and the position to be measured. At the same time, the dehumidifier body 2202 is turned on, and the power provided by the dehumidifier body 2202 is used to extract the air between the laser measurement scanner body 2113 and the position to be measured, so that the air enters the dehumidifier body 2202 through the suction nozzle 2213, the delivery pipe 2204 and the air inlet pipe 2203, thereby drying the air.
[0035] Step three, during the detection process, turn on the fourth motor 309, and use the power provided by the fourth motor 309 to drive the rotating disk 310 to rotate, so that the rotating disk 310 drives the fixed column 311 connected to it to rotate, so that the fixed column 311 drives the movable frame 312 to move back and forth up and down under the restriction of the limit seat 316, so that the movable frame 312 drives the cleaning frame 313 to scrape the dust on the dustproof net 302. During the operation of the dehumidifier body 2202, the dried gas enters the interior of the processing box 301 after passing through the air outlet pipe 303 and the connecting pipe 304, so that the gas is filtered by the dustproof net 302, and then passes through the fixed pipe 305, the hose 306 and the nozzle 308 in turn and is blown to the surface of the position to be tested, so that the airflow is used to clean the surface of the position to be tested.
[0036] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
Claims
1. A portable offshore wind power wave height measurement device, characterized by: The invention comprises a main body mechanism (1), wherein the main body mechanism (1) comprises a base (11) and a column (12), wherein the column (12) is fixedly arranged at the upper end of the base (11), and a processing mechanism (2) is arranged on the column (12), wherein the processing mechanism (2) comprises an adjusting component (21) and a dehumidifying component (22), wherein the adjusting component (21) comprises a lifting connecting frame (2102), wherein a fixing frame (2104) is rotatably arranged on the connecting frame (2102), wherein an adjusting frame (2109) is rotatably arranged on the fixing frame (2104), and wherein the adjusting frame (2109) is rotatably arranged on the adjusting frame (2101). 9) is provided with a movable platform (2112) for sliding movement, and a laser measuring scanner body (2113) and a laser rangefinder body (2116) are provided on the movable platform (2112); the dehumidification component (22) comprises a dehumidifier body (2202), a swing frame (2211), and a suction nozzle (2213); a swing frame (2211) is provided for rotation on the movable platform (2112), and a suction nozzle (2213) is provided on the swing frame (2211); the suction nozzle (2213) is connected to the dehumidifier body (2202) via a delivery pipe (2204).
2. The portable offshore wind power wave height measuring device according to claim 1, characterized in that: The adjustment assembly (21) further comprises a first electric push rod (2101), a first motor (2103), a second motor (2107), a rotating shaft (2105), a driving gear (2108), and a driven gear (2106); two first electric push rods (2101) are fixedly provided at the upper end of the column (12), the piston rods of the two first electric push rods (2101) are vertically upward and fixedly connected to the lower end surface of the connecting frame (2102); the connecting frame (2102) comprises a horizontal plate and a vertical plate, the lower end of the vertical plate is fixedly connected to the middle part of the upper end surface of the horizontal plate, the first motor (2103) is fixedly provided at the front end surface of the vertical plate of the connecting frame (2102), and the fixed gear (2106) is fixedly provided on the output shaft of the first motor (2103). The fixed frame (2104) and the vertical plates of the fixed frame (2104) and the connecting frame (2102) are rotatably connected via a connecting bearing (2121); a hinge seat is fixedly provided at the left and right edges of the front end surface of the fixed frame (2104), and a left and right horizontal rotating shaft (2105) is rotatably provided between the two hinge seats, with both ends of the rotating shaft (2105 extending to the outside of the two hinge seats; a second motor (2107) is fixedly provided at the center of the front end surface of the fixed frame (2104), a driving gear (2108) is fixedly provided on the output shaft of the second motor (2107), and a driven gear (2106) is fixedly sleeved on the outside of the middle part of the rotating shaft (2105), and the driving gear (2108) is meshed with the driven gear (2106).
3. The portable offshore wind power wave height measuring device according to claim 2, characterized in that: The adjustment assembly (21) further comprises a screw rod (2110), a third motor (2111), and a slide rod (2122); the adjustment frame (2109) comprises a transverse plate and two symmetrical longitudinal plates, with the ends of the transverse plate being fixedly connected to the two longitudinal plates respectively; the rotation shaft (2105) is located behind the transverse plate, with the ends of the rotation shaft (2105) being fixedly connected to the two longitudinal plates respectively; a screw rod (2110) is rotatably arranged in front of the transverse plate, with the ends of the screw rod (2110) being rotatably connected to the two longitudinal plates respectively; a third motor (2111) is fixedly arranged on one side of the adjustment frame (2109), with the output shaft of the third motor (2111) being fixedly connected to the end of the screw rod (2110); a slide rod (2122) is also fixedly arranged between the two longitudinal plates, with the slide rod (2122) remaining parallel to the screw rod (2110).
4. The portable offshore wind power wave height measuring device according to claim 3, characterized in that: The adjustment assembly (21) further comprises a connecting plate (2114), a heating plate (2115), a second electric push rod (2117), a movable plate (2118), an infrared heating lamp (2119), and a thermal imager (2120); the movable platform (2112) comprises a vertical section and a horizontal section, the lower end of the vertical section being fixedly connected to the rear end of the horizontal section; the vertical section of the movable platform (2112) is screwed to the outer side of the screw rod (2110) and is slidably sleeved to the outer side of the slide rod (2122); the laser measuring scanner is fixedly provided on the front side of the vertical section of the movable platform (2112) The main body (2113) is fixedly provided with a connecting plate (2114) on one side of the vertical section of the movable platform (2112); a heating plate (2115), a second electric push rod (2117), and a laser rangefinder main body (2116) are fixedly provided at the upper, middle, and lower ends of the front end surface of the connecting plate (2114), respectively; one end of the piston rod of the second electric push rod (2117) faces the front side and is fixedly provided with a movable plate (2118); and two front and rear infrared heating lamps (2119) and two front and rear thermal imagers (2120) are fixedly provided on the left and right sides of the upper end surface of the movable plate (2118), respectively.
5. The portable offshore wind power wave height measuring device according to claim 4, characterized in that: The dehumidification component (22) further comprises a placement table (2201) and an air inlet pipe (2203); the placement table (2201) is fixedly arranged on one side of the column (12); the dehumidifier body (2202) is fixedly arranged on the upper end of the placement table (2201); an air inlet pipe (2203) and an air outlet pipe (303) are arranged on the dehumidifier body (2202); the air inlet pipe (2203) is fixedly connected to the end of the delivery pipe (2204) away from the suction nozzle (2213).
6. The portable offshore wind power wave height measuring device according to claim 5, characterized in that: A rotating shaft (2206) is rotatably provided at the front end of the horizontal section of the movable platform (2112); a rotating gear (2207) is fixedly provided at the lower end of the rotating shaft (2206); a rotating disk (2208) is fixedly provided at the upper end of the rotating shaft (2206); and a vertical connecting column (2209) is fixedly provided at the outer edge of the upper end surface of the rotating disk (2208); a rack (2205) is fixedly provided at the front side of the lower end of the horizontal section of the adjusting frame (2109); the rack (2205) is kept in meshing engagement with the rotating gear (2207); a rotating gear (2207) is fixedly provided at the front side of the upper end surface of the horizontal section of the movable platform (2112); There is a concave frame (2210), the concave frame (2210) comprising a left-right horizontal swing axis and two left-right symmetrical fixed rods, the lower ends of the two fixed rods being fixedly connected to the upper end surface of the horizontal section of the movable platform (2112), and the swing axis being fixedly arranged between the upper ends of the two fixed rods; the upper end of the swing frame (2211) is rotatably arranged outside the swing axis, and the connecting column (2209) maintains sliding contact with the swing frame (2211); a mounting plate (2212) is fixedly arranged at the upper end of the swing frame (2211), and the suction nozzle (2213) is fixedly arranged on the mounting plate (2212).
7. The portable offshore wind power wave height measuring device according to claim 5, characterized in that: A cleaning mechanism (3) is also provided at the upper end of the dehumidifier body (2202), and the cleaning mechanism (3) comprises a processing box (301); the processing box (301) is fixedly provided at the upper end of the dehumidifier body (2202), and the processing box (301) is a square box structure with an upper end opening, and a box cover that can be opened by rotation is provided at the upper end opening of the processing box (301); a locking block (314) is provided on the box cover, and a locking frame (315) is provided on the processing box (301), and the locking frame (315) and the locking block (314) are mutually engaged.
8. The portable offshore wind power wave height measuring device according to claim 7, characterized in that: A connecting pipe (304) is fixedly provided on the air outlet pipe (303) of the dehumidifier body (2202), and one end of the connecting pipe (304) away from the air outlet pipe (303) extends into the interior of the processing box (301); a fixed pipe (305) is fixedly provided on the outer wall of the processing box (301) away from the connecting pipe (304), a flexible pipe (306) is fixedly provided on the fixed pipe (305), and a nozzle (308) is fixedly provided on one end of the flexible pipe (306) away from the fixed pipe (305), and the nozzle (308) is fixedly provided on one side of the movable platform (2112) via a fixed plate (307).
9. The portable offshore wind power wave height measuring device according to claim 8, characterized in that: A dustproof net (302) is fixedly provided in the middle of the inner side of the processing box (301), and the dustproof net (302) is located between the connecting pipe (304) and the fixed pipe (305); two upper and lower parallel cleaning racks (313) are provided on the side of the dustproof net (302) close to the connecting pipe (304), and the cleaning racks (313) maintain sliding contact with the dustproof net (302); a movable rack (312) is fixedly provided between the same ends of the two cleaning racks (313), and the movable rack (312) includes a vertical rod and two horizontal rods, one end of the two horizontal rods is fixedly connected to the upper and lower ends of the vertical rod respectively, and the other ends of the two horizontal rods are fixedly connected to the ends of the two cleaning racks (313) respectively; a waist-shaped rack is fixedly provided in the middle of the horizontal rod of the movable rack (312), and a waist-shaped groove is provided inside the waist-shaped rack.
10. The portable offshore wind power wave height measuring device according to claim 9, characterized in that: A fourth motor (309) is fixedly provided on the outer wall of the processing box (301), a rotating disk (310) is fixedly provided on the output shaft of the fourth motor (309), a fixed column (311) is fixedly provided at the outer edge of the rotating disk (310), and the fixed column (311) is movably plugged into the waist-shaped frame; two upper and lower limit seats (316) are fixedly provided on the inner wall of the processing box (301) on the side close to the fourth motor (309), and the vertical rods of the movable frame (312) are slidably plugged into the two limit seats (316) respectively; a vertical slide groove (318) is provided on the inner wall of the processing box (301) on the side away from the fourth motor (309), and a slider (317) is fixedly provided on one end of the two cleaning frames (313) away from the movable frame (312), and the two sliders (317) are slidably engaged in the inside of the slide groove (318).