Large wind power generator cabin cover transfer tool
By designing a transfer fixture consisting of a car body, a second guide rail, and a slider, and combining it with a servo motor and a ratchet mechanism, the problems of surface damage and low transportation efficiency of the canopy in traditional transfer methods have been solved, achieving stable fixing and efficient transportation of the canopy.
Patent Information
- Application Number
- CN202520662333.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2035-04-10
AI Technical Summary
Traditional methods of transporting wind turbine nacelles result in damage to the nacelle surface, low transportation efficiency, and cumbersome procedures, which affect the service life of the nacelles.
The transfer fixture, which includes a car plate, a second guide rail, and a slider, is used to securely fix the canopy through an adjustment mechanism and a fastening mechanism. A servo motor and a ratchet mechanism are used to ensure stable winding of the fastening strap and prevent reverse rotation. Rubber pads and moving wheels are combined to improve movement stability.
It improves the ease and stability of securing the canopy, prevents damage to the canopy surface, and enhances transportation efficiency and service life.
Smart Images

Figure CN223877925U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to motor cabin transfer technical field, concretely is a large -scale wind driven generator cabin transfer frock. BACKGROUND
[0002] The wind driven generator cabin cover is used as the protective shell of the wind driven generator set, and the reliability thereof determines the stability and service life of the wind driven generator set, with the improvement of wind power efficiency, the wind driven generator is gradually large -sized, and the cabin cover of the wind driven generator needs to be assembled from multiple cover bodies, the cover body comprises a cover plate, connecting plates are fixed around the cover plate, the connecting plates of adjacent two cover bodies are attached, and the two connecting plates can be fixed under the cooperation of connecting bolts and connecting nuts.
[0003] Since the generator cabin cover is large, the traditional generator cabin cover moving mode fixes the cabin cover through iron chains during movement, but this mode can damage the paint surface of the cabin cover, and the iron chains can be loosened due to vibration during transportation, so that the cabin cover is separated from the transportation equipment, the transportation efficiency is slow, the process is complicated, and the service life of the cabin cover is reduced.
[0004] Therefore, a large -scale wind driven generator cabin transfer frock needs to be provided. UTILITY MODEL CONTENTS
[0005] The utility model aims at providing a large -scale wind driven generator cabin transfer frock to solve the problem that the transfer mode is relatively complicated and can affect the service life of the cabin cover in the background art.
[0006] To achieve the above object, the utility model provides the following technical scheme: a large -scale wind driven generator cabin transfer frok, including the car plate, second guide rail and sliding block, the car plate top end face fixed installation has the adjusting mechanism, the adjusting mechanism top end face fixed installation has the fastening mechanism, the fastening mechanism includes the installation sleeve, the installation sleeve inner wall with second guide rail side surface sliding connection, the installation sleeve side surface fixed installation has the mounting piece, the mounting piece inner wall fixed installation has the connecting rod, the connecting rod side surface rotationally installed has the rotating piece, the rotating piece inner wall rotationally installed has the sleeve through the bearing seat, the rotating piece side surface fixedly open has the out belt mouth, the sliding block side surface fixed installation has the shell, the shell side surface fixed installation has the supporting plate, the supporting plate top end face fixed installation has the fixed piece, the fixed piece side surface fixed installation has the servo motor.
[0007] Preferably, the servo motor transmission rod end surface fixed installation has the connecting rod, the connecting rod passes through the shell and is rotationally connected with the shell side surface through the bearing sleeve, the shell inner wall fixed installation has the second side plate, the second side plate side surface fixed installation has the reset spring.
[0008] Preferably, the connecting rod side is fixedly provided with a ratchet wheel, the connecting rod side is fixedly provided with a baffle, and the number of baffles is two.
[0009] Preferably, the shell inner wall is fixedly provided with a connecting plate, the second clamping block is rotatably installed on the connecting plate side through a bearing seat, the second clamping block side abuts against the ratchet wheel side, the shell side is fixedly provided with a through hole, the through hole inner wall is rotatably installed with a rotating rod through a bearing sleeve, the rotating rod end is fixedly provided with a push rod, the rotating rod part of the shell side is fixedly provided with a push block, and the push block side abuts against the second clamping block side.
[0010] Preferably, the adjusting mechanism comprises a bottom plate, the bottom plate bottom end surface is fixedly connected with the vehicle plate top end surface, the bottom plate side is fixedly provided with a first side plate, the first side plate bottom end surface is fixedly connected with the vehicle plate top end surface, the bottom plate top end surface is fixedly provided with a sliding block, the sliding block side is fixedly provided with a through hole, the through hole inner wall is slidably installed with a first guide rail, the sliding block side is fixedly provided with a fastening assembly, the fastening assembly inner wall is in extrusion contact connection with the first guide rail side, the vehicle plate top end surface is fixedly provided with a fixed plate, the fixed plate side is fixedly provided with a second guide rail, and the second guide rail side is in sliding connection with the sliding groove provided in the mounting sleeve inner wall.
[0011] Preferably, the mounting sleeve side is fixedly provided with a first clamping block, and the first clamping block side is fixedly provided with a fastening assembly.
[0012] Preferably, the vehicle plate bottom end surface is fixedly provided with a moving wheel, the vehicle plate top end surface is fixedly provided with a rubber pad, the vehicle plate top end surface is fixedly provided with a first rubber strip, the vehicle plate top end surface is fixedly provided with a second rubber strip, the vehicle plate top end surface is fixedly provided with a pulling block, the pulling block side is fixedly provided with a shock pad, and the pulling block side is fixedly provided with a hook.
[0013] Compared with the prior art, the utility model has the advantages that:
[0014] 1) the large wind turbine nacelle transfer tooling, first through the rotating part and the installation sleeve adjust the position and orientation of the belt outlet, through the adjustment of the orientation and angle of the fastening belt, can make the fastening belt more fit the nacelle, will not because the fastening belt itself torsional force and the nacelle surface friction, prevent the fastening belt will nacelle surface paint scraped or scratched, also can adjust the distance between the two installation sleeve, make binding more stable, then pull out the sleeve side fastening belt, across the nacelle and with connecting rod fixed, dial the dial lever, limit the rotation direction of the ratchet, at this time open the servo motor, drive the connecting rod rotation, make the fastening belt winding in the connecting rod side, fastening is completed after the servo motor stop rotation, then dial the dial lever drive the deflection of the dial block, move and push the second block and reset spring each other and block the ratchet, prevent reverse rotation after losing power connecting rod, can improve the stability of the nacelle, improve the convenience of nacelle fixed.
[0015] 2) the large wind turbine nacelle transfer tooling, use first hold tight and rotate, extrude the first block and tighten the second guide rail effectively fixed, then use the same way to rotate the fastening assembly and the slider and guide rail fixed, again through the fastening mechanism to fix the nacelle, then the car plate through the hook and transfer device fastening connection, and through the transfer device drive car plate and move wheel to move, can improve the stability of the device when moving. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 for the three-dimensional structure of the large wind turbine nacelle transfer tooling in the embodiment of the utility model shows a schematic diagram;
[0017] Figure 2 for the adjusting mechanism structure schematic view in the embodiment of the utility model;
[0018] Figure 3 for the fastening mechanism structure schematic view in the embodiment of the utility model;
[0019] Figure 4 for the dial block structure schematic view in the embodiment of the utility model;
[0020] Figure 5 for the servo motor structure schematic view in the embodiment of the utility model;
[0021] Figure 6 for the tight hoop structure schematic view in the embodiment of the utility model;
[0022] Figure 7 for the rotating part cross section structure schematic view in the embodiment of the utility model.
[0023] In the figure: 1, the car plate; 2, the moving wheel; 3, the adjusting mechanism; 301, the bottom plate; 302, the first side plate; 303, the first guide rail; 304, the sliding block; 305, the fastening assembly; 306, the fixed plate; 307, the second guide rail; 308, the first clamping block; 309, the fastening hoop; 4, the fastening mechanism; 401, the mounting sleeve; 402, the mounting piece; 403, the connecting rod; 404, the rotating piece; 405, the belt outlet; 406, the sleeve; 407, the shell; 408, the supporting plate; 409, the fixing piece; 410, the servo motor; 411, the connecting rod; 412, the ratchet wheel; 413, the baffle; 414, the second side plate; 415, the reset spring; 416, the connecting plate; 417, the second clamping block; 418, the push rod; 419, the push block; 5, the rubber pad; 6, the first rubber strip; 7, the second rubber strip; 8, the pulling block; 9, the shock pad; 10, the hook. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0025] Embodiment one
[0026] In combination with Figures 1-7The utility model provides a large -scale wind turbine nacelle transfer frock, including the second guide rail 307 and sliding block 304 of car plate 1, car plate 1 top face fixed installation has adjusting mechanism 3, adjusting mechanism 3 top face fixed installation has fastening mechanism 4, fastening mechanism 4 includes installation sleeve 401, and the inner wall of installation sleeve 401 is slidably connected with the side of second guide rail 307, and installation sleeve 401 side fixed mounting has mounting piece 402, and the inner wall of mounting piece 402 is fixedly installed with connecting rod 403, and the side of connecting rod 403 is rotatably installed with rotating part 404, and the inner wall of rotating part 404 is rotatably installed with sleeve 406 through bearing seat, and the side of rotating part 404 is fixedly provided with out belt mouth 405, and the side of sliding block 304 is fixedly installed with shell 407, and the side of shell 407 is fixedly installed with supporting plate 408, and the top surface of supporting plate 408 is fixedly installed with fixed piece 409, and the side of fixed piece 409 is fixedly installed with servo motor 410, and the end surface of servo motor 410 transmission rod is fixedly installed with connecting rod 411, and connecting rod 411 penetrates shell 407 and is rotatably connected with the side of shell 407 through bearing sleeve, and the inner wall of shell 407 is fixedly installed with second side plate 414, and the side of second side plate 414 is fixedly installed with return spring 415, and the side of connecting rod 411 is fixedly installed with ratchet wheel 412, and the side of connecting rod 411 is fixedly installed with baffle 413, and the number of baffle 413 is two, and the inner wall of shell 407 is fixedly installed with connecting plate 416, and the side of connecting plate 416 is rotatably installed with second clamping block 417 through bearing seat, and the side of second clamping block 417 is abutted with the side of ratchet wheel 412, and the side of shell 407 is fixedly provided with through -hole, and the inner wall of through -hole is rotatably installed with rotating rod through bearing sleeve, and the end surface of rotating rod is fixedly installed with push rod 418, and the part of shell 407 where rotating rod is located is fixedly installed with push block 419 on the side, and the side of push block 419 is abutted with the side of second clamping block 417,
[0027] Specifically, when transporting the nacelle, first, adjust the position where the nacelle needs to be fixed through the adjusting mechanism 3, adjust the position and orientation of the out belt mouth 405 through the rotating part 404 and the installation sleeve 401, further pull out the fastening belt on the side of the sleeve 406, pass over the nacelle and be fixed with the connecting rod 411, further push the push rod 418, limit the reverse rotation of the ratchet wheel 412, at this time, turn on the servo motor 410, and drive the connecting rod 411 to rotate through the servo motor 410, further drive the fastening belt to wind around the side of the connecting rod 411, and limit through the baffle 413, after fastening is completed, stop the rotation of the servo motor 410, then push the push rod 418 to drive the push block 419 to deflect, push the second clamping block 417 to move and abut against the ratchet wheel 412 through the cooperation of the return spring 415, to prevent the reverse rotation of the connecting rod 411 after losing power.
[0028] Example two
[0029] Reference Figures 1-7, further get, adjusting mechanism 3 includes bottom plate 301, bottom plate 301 bottom end surface and the top end surface of car plate 1 fixed connection, the side surface of bottom plate 301 is fixedly installed with first side plate 302, and the bottom end surface of first side plate 302 is fixedly connected with the top end surface of car plate 1, and the top end surface of bottom plate 301 is fixedly installed with sliding block 304, and the side surface of sliding block 304 is fixedly provided with through hole, and the inner wall of through hole is slidably installed with first guide rail 303, and the side surface of sliding block 304 is fixedly installed with fastening assembly 305, and the inner wall of fastening assembly 305 is in extrusion contact with the side surface of first guide rail 303, and the top end surface of car plate 1 is fixedly installed with fixed plate 306, and the side surface of fixed plate 306 is fixedly installed with second guide rail 307, and the side surface of second guide rail 307 is slidably connected with the sliding slot provided in the inner wall of mounting sleeve 401, and the side surface of mounting sleeve 401 is fixedly installed with first clamping block 308, and the side surface of first clamping block 308 is fixedly installed with fastening assembly 305, and the bottom end surface of car plate 1 is fixedly installed with moving wheel 2, and the top end surface of car plate 1 is fixedly installed with rubber pad 5, and the top end surface of car plate 1 is fixedly installed with first rubber strip 6, and the top end surface of car plate 1 is fixedly installed with second rubber strip 7, and the top end surface of car plate 1 is fixedly installed with pulling block 8, and the side surface of pulling block 8 is fixedly installed with shock pad 9, and the side surface of pulling block 8 is fixedly installed with hook 10;
[0030] Specifically, when using, first determine the position and orientation of the fixed cabin cover, then hold the fastening assembly 305 and rotate, further extrude the first clamping block 308 and tighten the second guide rail 307, further rotate the fastening assembly 305 to effectively fix the sliding block 304 and the first guide rail 303, then place the cabin cover above the rubber pad 5, further place the cabin cover on the rubber pad 5, and the cabin cover can be protected by the first rubber strip 6 and the second rubber strip 7, fix the cabin cover by the fastening mechanism 4, then fasten the car plate 1 with the transfer device through the hook 10, and move the car plate 1 and the moving wheel 2 by the transfer device.
[0031] Although the embodiments of the present application have been shown and described, it should be understood by those skilled in the art that various changes, modifications, replacements and modifications can be made to the embodiments without departing from the principles and spirits of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A large wind turbine nacelle transfer tooling, comprising a car plate (1), a second guide rail (307) and a sliding block (304), characterized in that: The top surface of the board (1) is fixedly installed with an adjusting mechanism (3), and the top surface of the adjusting mechanism (3) is fixedly installed with a fastening mechanism (4); The fastening mechanism (4) comprises a mounting sleeve (401), the inner wall of the mounting sleeve (401) is slidably connected with the side surface of the second guide rail (307), the side surface of the mounting sleeve (401) is fixedly installed with a mounting piece (402), the inner wall of the mounting piece (402) is fixedly installed with a connecting rod (403), the side surface of the connecting rod (403) is rotatably installed with a rotating piece (404), the inner wall of the rotating piece (404) is rotatably installed with a sleeve (406) through a bearing seat, the side surface of the rotating piece (404) is fixedly provided with a belt outlet (405), the side surface of the sliding block (304) is fixedly installed with an outer shell (407), the side surface of the outer shell (407) is fixedly installed with a supporting plate (408), the top surface of the supporting plate (408) is fixedly installed with a fixing piece (409), and the side surface of the fixing piece (409) is fixedly installed with a servo motor (410).
2. The large wind turbine nacelle transfer tooling of claim 1, wherein: The end surface of the transmission rod of the servo motor (410) is fixedly installed with a connecting rod (411), the connecting rod (411) penetrates through the outer shell (407) and is rotatably connected with the side surface of the outer shell (407) through a bearing sleeve, the inner wall of the outer shell (407) is fixedly installed with a second side plate (414), and the side surface of the second side plate (414) is fixedly installed with a return spring (415).
3. The large wind power generator nacelle transfer tooling according to claim 2, characterized in that: The side surface of the connecting rod (411) is fixedly installed with a ratchet wheel (412), the side surface of the connecting rod (411) is fixedly installed with a baffle (413), and the number of the baffles (413) is two.
4. The large wind turbine nacelle transfer tooling of claim 2, wherein: The inner wall of the outer shell (407) is fixedly installed with a connecting plate (416), the side surface of the connecting plate (416) is rotatably installed with a second clamping block (417) through a bearing seat, the side surface of the second clamping block (417) is abutted with the side surface of the ratchet wheel (412), the side surface of the outer shell (407) is fixedly provided with a through hole, the inner wall of the through hole is rotatably installed with a rotating rod through a bearing sleeve, the end surface of the rotating rod is fixedly installed with a push rod (418), the part of the outer shell (407) where the rotating rod is located is fixedly installed with a push block (419), and the side surface of the push block (419) is abutted with the side surface of the second clamping block (417).
5. The large wind power generator nacelle transfer tooling of claim 1, wherein: The adjusting mechanism (3) includes a bottom plate (301), the bottom end surface of the bottom plate (301) is fixedly connected with the top end surface of the vehicle plate (1), a first side plate (302) is fixedly installed on the side surface of the bottom plate (301), the bottom end surface of the first side plate (302) is fixedly connected with the top end surface of the vehicle plate (1), a sliding block (304) is fixedly installed on the top end surface of the bottom plate (301), a through hole is fixedly formed in the side surface of the sliding block (304), a first guide rail (303) is slidably installed on the inner wall of the through hole, a fastening assembly (305) is fixedly installed on the side surface of the sliding block (304), the inner wall of the fastening assembly (305) is in extrusion contact connection with the side surface of the first guide rail (303), a fixed plate (306) is fixedly installed on the top end surface of the vehicle plate (1), a second guide rail (307) is fixedly installed on the side surface of the fixed plate (306), and the side surface of the second guide rail (307) is in sliding connection with the sliding groove formed in the inner wall of the mounting sleeve (401).
6. The large wind power generator nacelle transfer tooling of claim 1, wherein: The side surface of the mounting sleeve (401) is fixedly installed with a first clamping block (308), and the first clamping block (308) is fixedly installed with a clamp (309) through screw fastening.
7. The large wind power generator nacelle transfer tooling of claim 1, wherein: The bottom end surface of the vehicle plate (1) is fixedly installed with a moving wheel (2), the top end surface of the vehicle plate (1) is fixedly installed with a rubber pad (5), the top end surface of the vehicle plate (1) is fixedly installed with a first rubber strip (6), the top end surface of the vehicle plate (1) is fixedly installed with a second rubber strip (7), the top end surface of the vehicle plate (1) is fixedly installed with a pulling block (8), the side surface of the pulling block (8) is fixedly installed with a shock pad (9), and the side surface of the pulling block (8) is fixedly installed with a hook (10).