An installation frame for a wind power conductive rail
Through the combined structure of the plug-in and locking components, the looseness and damage of the wind power conductive rail in the fan tower is solved, stable connection and convenient installation are achieved, and the installation stability of the conductive rail is enhanced.
Patent Information
- Application Number
- CN202410061059.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-16
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2044-01-16
AI Technical Summary
When existing wind-powered conductive rails are installed in the fan tower, the bolt connection is loose, resulting in inconsistent range of movement of the conductive rails, which is easy to damage the pull joints, and it is inconvenient to install.
The combined structure of the plug-in part and the locking part is adopted. Through the cooperation of the plug-in part and the connecting groove and the locking part of the fixing frame, the flexible connection of the conductive rail is achieved, avoiding loosening and damage, and simplifying the installation process.
Ensure the stable connection of the conductive rails in the fan tower, prevent joint damage, improve installation convenience, avoid loosening problems, and enhance installation stability.
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Figure CN117948256B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wind power conductive rails, and particularly to a mounting bracket for a wind power conductive rail. Background Art
[0002] In the prior art, in order to save costs, some wind farms use conductive rails instead of cables. The conductive rails are installed along the inner wall of the wind turbine tower. As the operation time increases, some bolts begin to loosen, resulting in some bolts being tightly connected and some bolts being loosely connected. The overall connection tightness of the conductive rails is different. When the wind turbine tower swings, the movement ranges of the conductive rails are different, which easily pulls the joints of the conductive rails and causes damage to the joints of the conductive rails. Moreover, the bolt connection method is quite inconvenient when installing the conductive rails. Summary of the Invention
[0003] In view of the problems existing in the existing mounting brackets for wind power conductive rails, the present invention is proposed.
[0004] Therefore, the object of the present invention is to provide a mounting bracket for a wind power conductive rail.
[0005] To solve the above technical problems, the present invention provides the following technical solutions: including,
[0006] A wind turbine tower, inside which there is a conductive rail;
[0007] A fixing bracket, which is arranged inside the wind turbine tower;
[0008] A plugging part, which is provided with a matching locking component, and the locking component is arranged on the fixing bracket;
[0009] Among them, the plugging part can connect the conductive rail to the fixing bracket, and the conductive rail is provided with a connection groove corresponding to the plugging part.
[0010] As a preferred scheme of the mounting bracket for the wind power conductive rail of the present invention, wherein: the fixing bracket includes a connecting column and a supporting plate arranged at the end of the connecting column;
[0011] Among them, the connecting column is arranged on the inner wall of the wind turbine tower, the locking component is arranged on the surface of the supporting plate, and the plugging part can be inserted into the supporting plate.
[0012] As a preferred scheme of the mounting bracket for the wind power conductive rail of the present invention, wherein: the plugging part includes a cylinder, a rectangular block arranged at the end of the cylinder, a fixing block arranged at the other end of the cylinder, and a baffle arranged on the outer side of the cylinder;
[0013] Among them, the cylinder is slidably connected with the conductive rail through the connection groove, the locking component can be sleeved on the rectangular block, the supporting plate is provided with a kidney-shaped groove corresponding to the cylinder, and the position of the kidney-shaped groove corresponds to the locking component.
[0014] As a preferred solution of the mounting bracket for the wind power conductor rail of the present invention, the locking component includes a sleeve assembly provided on the support plate, and a limiting assembly provided between the support plate and the sleeve assembly;
[0015] Wherein, the sleeve assembly is sleeved with the rectangular block.
[0016] As a preferred solution of the mounting frame for the wind power conductor rail of the present invention, wherein: the sleeve assembly includes a fixed cylinder arranged on the support plate, and a sliding cylinder member slidably arranged outside the fixed cylinder;
[0017] Wherein, the fixed cylinder is sleeved with the rectangular block, and the limiting assembly is arranged between the sliding cylinder and the support plate.
[0018] As a preferred solution of the mounting bracket for the wind power conductor rail of the present invention, the limiting assembly includes a guide rod provided on the support plate, and a return spring provided on the outer side of the guide rod;
[0019] The sliding cylinder is slidably connected to the guide rod, and the two ends of the return spring are respectively in contact with the sliding cylinder and the support plate.
[0020] As a preferred solution of the mounting frame for the wind power conductor rail of the present invention, wherein: a sliding bar is provided on the inner side of the sliding cylinder, and a stopper is connected to the top and bottom of the sliding cylinder;
[0021] Wherein, the fixed cylinder is provided with a long groove corresponding to the sliding bar, and the guide rod is slidingly connected to the stop block.
[0022] As a preferred solution of the mounting frame of the wind power conductor rail of the present invention, it further includes a buffer component, which includes a sleeve, an elastic component provided on the support plate, and an interference component provided on the baffle.
[0023] Wherein, the socket is arranged on the conductive rail.
[0024] As a preferred solution of the mounting frame of the wind power conductive rail of the present invention, wherein: the sleeve member includes a horizontal plate provided on the back of the conductive rail and a limit plate provided on the end of the horizontal plate;
[0025] The elastic component includes a fixing plate provided on the support plate, a support column provided on the top of the fixing plate, a first limiting block and a second limiting block provided at both ends of the support column, and a support spring provided on the outside of the support column;
[0026] Wherein, the two ends of the support spring respectively contact with the limiting block 1 and the fixing plate.
[0027] As a preferred solution of the mounting frame for the wind power conductor rail of the present invention, the interference assembly includes a long rod slidably arranged on the support plate, and a interference spring sleeved on the outside of the long rod;
[0028] Wherein, the support plate is provided with a through slot corresponding to the long rod.
[0029] The beneficial effects of the present invention are as follows: the plug-in portion can move with the conductive rail, so that multiple groups of conductive rails have the same movable stroke, and can move synchronously after the multiple groups of conductive rails are connected. The flexible connection between the plug-in portion and the sleeve assembly prevents the conductive rails from being pulled due to the shaking of the wind turbine tower, prevents the conductive rails from being pulled and damaged, ensures the connection stability of the conductive rail joint, and reduces equipment damage caused by loose contact. The rectangular block fits the inner wall of the fixed cylinder, which can always ensure that the installation direction is parallel to the inner wall of the wind turbine tower, avoiding damage caused by twisting during the shaking of the wind turbine tower.
[0030] At the same time, the plug-in part and the sleeve assembly cooperate to replace the traditional bolt installation, making the disassembly and assembly of the conductive rail more convenient and quick. The integrated setting of the plug-in part prevents the plug-in part itself from loosening. The sleeve assembly is arranged on the back of the support plate, and the connecting column fixes the relative distance between the sliding cylinder and the inner wall of the wind turbine tower, so that the sliding cylinder is not easily accidentally touched during use, causing the plug-in part to be unlocked, which largely avoids the problem of loosening of the conductive rail installation and makes the installation of the conductive rail more stable. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be derived from these drawings without inventive effort. Among them:
[0032] Figure 1 This is a schematic diagram of the conductive cabinet of the present invention installed on the wind turbine tower.
[0033] Figure 2 It is a structural schematic diagram of the locking component in the present invention.
[0034] Figure 3 It is a structural schematic diagram of the sleeve assembly in the present invention.
[0035] Figure 4 It is a structural schematic diagram of the connecting groove in the present invention.
[0036] Figure 5 It is a front view of the rectangular block in the present invention.
[0037] Figure 6 It is a structural schematic diagram of the buffer component in the present invention.
[0038] Figure 7 This is a schematic structural diagram of the interference component in the present invention. Specific Embodiments
[0039] To make the above objects, features, and advantages of the present invention more apparent and understandable, the following will provide a detailed description of the specific embodiments of the present invention in conjunction with the accompanying drawings of the specification.
[0040] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.
[0041] Secondly, the so-called "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation manner of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that mutually excludes other embodiments.
[0042] Furthermore, the present invention is described in detail in conjunction with the schematic diagrams. When describing the embodiments of the present invention in detail, for the convenience of explanation, the cross-sectional views showing the device structure will be enlarged locally not in accordance with the general scale, and the schematic diagrams are only examples and should not limit the scope of protection of the present invention herein. In addition, in actual production, three-dimensional spatial dimensions including length, width, and depth should be included.
[0043] Embodiment 1
[0044] Refer to Figures 1 - 5 , in the attached drawings, the illustrated wind turbine tower 100 and conductive rail 101 are only parts of the whole, not the entire wind turbine tower 100 and conductive rail 101. There is provided a mounting rack for a wind power conductive rail, including,
[0045] A wind turbine tower 100, inside which there is a conductive rail 101;
[0046] A fixing frame 200, which is arranged inside the wind turbine tower 100;
[0047] A plug-in part 300, which is provided with a matching locking component 400, and the locking component 400 is arranged on the fixing frame 200;
[0048] Among them, the plug-in part 300 can connect the conductive rail 101 to the fixing frame 200, and the conductive rail 101 is provided with a connection groove 102 corresponding to the plug-in part 300,
[0049] The wind turbine tower 100 is the main support of the wind turbine in the prior art. The fixing frame 200 is fixed to the inner wall of the wind turbine tower 100 by welding. Multiple groups of fixing frames 200 can be arranged in the wind turbine tower 100 as required. The insertion part 300 can be adjusted corresponding to the number of the fixing frames 200. Connection grooves 102 corresponding to the insertion part 300 are formed on both sides of the conductive rail 101. The insertion part 300 is inserted into the conductive rail 101 through the connection grooves 102. The number of the connection grooves 102 can be opened according to the number of the insertion parts 300 to be connected. When the conductive rail 101 needs to be installed in the wind turbine tower 100, the insertion part 300 is inserted into the connection groove 102, and then the insertion part 300 passes through the fixing frame 200 and is inserted into the locking component 400. By rotating the insertion part 300, it can be limited by the locking component 400. At this time, the insertion part 300 is engaged with the conductive rail 101, and the insertion part 300 can only slide horizontally and longitudinally in the locking component 400 and cannot rotate to be movably locked on the fixing frame 200, thus completing the fixation of the conductive rail 101 on the inner wall of the wind turbine tower 100. After the installation is completed, since the insertion part 300 can slide longitudinally or horizontally in the locking component 400, the conductive rail 101 is flexibly connected to the wind turbine tower 100 and has a certain amount of movement. During the use process, the shaking of the wind turbine tower 100 will not pull the conductive rail 101, avoiding damage to the conductive rail 101. And because the insertion part 300 is of an integral design and is locked by the locking component 400, it will not become loose even if it moves during the use process.
[0050] Further, the fixing frame 200 includes a connecting column 201 and a support plate 202 provided at the end of the connecting column 201. Among them, the connecting column 201 is provided on the inner wall of the wind turbine tower 100, the locking component 400 is provided on the surface of the support plate 202, and the insertion part 300 can be inserted into the support plate 202. Multiple groups of connecting columns 201 are fixedly provided on the back surface of the support plate 202. The support plate 202 and the connecting column 201 can be fixed by rigid connections such as welding, and the connecting column 201 can be fixed to the inner wall of the wind turbine tower 100 by rigid connections such as welding, so that the fixing frame 200 is stably installed on the inner wall of the wind turbine tower 100. Multiple groups of locking components 400 are provided on the back surface of the support plate 202. The conductive rail 101 is installed on the front surface of the support plate 202, and the insertion part 300 can pass through the support plate 202 and be inserted into the locking component 400 on its back surface.
[0051] Further, the insertion part 300 includes a cylinder 301, a rectangular block 302 provided at the end of the cylinder 301, a fixing block 303 provided at the other end of the cylinder 301, and a baffle 304 provided on the outer side of the cylinder 301. Among them, the cylinder 301 is slidably connected to the conductive rail 101 through the connection groove 102. The locking member 400 can be sleeved with the rectangular block 302. The support plate 202 is provided with a waist-shaped groove 202a corresponding to the cylinder 301. The position of the waist-shaped groove 202a corresponds to the locking member 400. A rectangular block 302 is fixedly provided at the end of the cylinder 301, and a fixing block 303 is fixedly provided at the other end. A stop block 401b-2 is fixedly provided on the outer side of the cylinder 301, so that the whole insertion part 300 is integrally and fixedly arranged. This setting enables the insertion part 300 to be fixed on the support plate 202 only by the locking member 400 and will not loosen by itself during use. The edge of the baffle 304 overlaps with the edge of the rectangular block 302, and the baffle 304 is arranged parallel to the rectangular block 302. The waist-shaped groove 202a penetrates through the support plate 202. Since the position of the waist-shaped groove 202a corresponds to the locking member 400, the rectangular block 302 can pass through the waist-shaped groove 202a and enter the locking member 400;
[0052] The width of the waist-shaped groove 202a is greater than or equal to the diameter of the cylinder 301. The cross-section of the rectangular block 302 is rectangular. The length of side M of the rectangle is shorter than the diameter of the cylinder 301. When side M of the rectangular block 302 is in a state parallel to the ground, it can pass through the waist-shaped groove 202a and the connection groove 102. The length of side N is longer than the diameter of the cylinder 301, and the width of the waist-shaped groove 202a is smaller than the length of side N. After the cylinder 301 passes through the waist-shaped groove 202a and enters the locking member 400 and rotates 90 degrees, at this time side N of the rectangular block 302 is in a state parallel to the ground, and the rectangular block 302 cannot pass through the waist-shaped groove 202a and is limited by the support plate 202. At the same time, the rectangular block 302 in this state is limited by the locking member 400 and cannot rotate, and then is locked by the locking member 400 to complete the installation of the conductive rail 101;
[0053] The connecting groove 102 is divided into a rectangular part P1 and an arc part P2. The arc part P2 is provided at the middle position of the rectangular part P1. The rectangular length and width of the cross-section of the rectangular part P1 are the same as those of the rectangular block 302, so that the rectangular block 302 and the baffle 304 can pass through the connecting groove 102. The radian of the arc part P2 fits the surface of the cylinder 301, so that the cylinder 301 can pass through the connecting groove 102. And because the diameter of the cylinder 301 is greater than the side M of the rectangular block 302, the cylinder 301 can only slide along the inner wall of the arc part P2 of the connecting groove 102. At the same time, because the distance between the baffle 304 and the fixing block 303 is equal to the depth of the connecting groove 102, and the rectangular part P1 and the rectangular block 302 overlap when the side M is parallel to the ground, when the insertion part 300 is locked after rotation, the conductive rail 101 is located between the baffle 304 and the fixing block 303. Coupled with the fact that the cylinder 301 is located in the arc part P2 at this time, the insertion part 300 cannot slide in the connecting groove 102. The insertion part 300 can follow the movement of the conductive rail 101, and the flexible connection between the insertion part 300 and the locking component 400 enables the conductive rail 101 to move within a certain range while maintaining its vertical installation state.
[0054] Further, the locking component 400 includes a sleeve assembly 401 provided on the support plate 202, and a limit assembly 402 provided between the support plate 202 and the sleeve assembly 401. Among them, the sleeve assembly 401 is sleeved with the rectangular block 302. A plurality of groups of sleeve assemblies 401 are fixedly provided on the back surface of the support plate 202. The limit assembly 402 can limit and guide the sleeve assembly 401 and can simultaneously push the sleeve assembly 401 to slide. The length of the cylinder 301 is greater than the inner cavity depth of the sleeve assembly 401 after contraction. After the rectangular block 302 enters the sleeve assembly 401, the sleeve assembly 401 is pushed to slide, so that the rectangular block 302 can extend out of the sleeve assembly 401, and then the rectangular block 302 can rotate without being restricted by the sleeve assembly 401. And the inner cavity depth of the extended sleeve assembly 401 is greater than the length of the cylinder 301, so that after the rectangular block 302 rotates 90 degrees and the sleeve assembly 401 is released to reset, the rectangular block 302 can no longer extend out of the sleeve assembly 401 to rotate. The side surface of the rectangular block 302 fits the inner walls on both sides of the sleeve assembly 401, so that it is limited and cannot rotate, and then the locking of the insertion part 300 is completed.
[0055] Further, the sleeve assembly 401 includes a fixed cylinder 401a provided on the support plate 202 and a sliding cylinder member 401b slidably provided outside the fixed cylinder 401a. Among them, the fixed cylinder 401a is sleeved with the rectangular block 302, and the limiting assembly 402 is provided between the sliding cylinder member 401b and the support plate 202. The fixed cylinder 401a is rectangular with a cavity inside. A plurality of groups of fixed cylinders 401a are fixedly provided on the support plate 202, and the position of the waist-shaped groove 202a corresponds to the inner cavity of the fixed cylinder 401a, so that the insertion portion 300 passes through the waist-shaped groove 202a and enters the fixed cylinder 401a. The inner wall of the fixed cylinder 401a can be attached to the side N of the rectangular block 302, and then the fixed cylinder 401a can limit the rectangular block 302, and the cylinder 301 can no longer rotate and separate from the support plate 202. At this time, the rectangular block 302 can slide along the inner wall of the fixed cylinder 401a, so that the insertion portion 300 is flexibly connected to the sleeve assembly 401.
[0056] A sliding cylinder member 401b is slidably connected to the outside of the fixed cylinder 401a, and the inner wall of the sliding cylinder member 401b is attached to the outer wall of the fixed cylinder 401a. When the sliding cylinder member 401b slides towards the support plate 202, the distance from the end of the sliding cylinder member 401b to the support plate 202 is shortened. Since the length of the cylinder 301 is greater than this distance, at this time, the rectangular block 302 can extend out of the sliding cylinder member 401b to rotate. When the sliding cylinder member 401b is pushed back to its original position by the limiting assembly 402, the distance from the end of the sliding cylinder member 401b to the support plate 202 becomes longer, and the limiting stroke of the fixed cylinder 401a is increased. And since the length of the cylinder 301 is less than this distance, at this time, the rectangular block 302 can no longer extend out of the sliding cylinder member 401b and is limited by the inner walls of the fixed cylinder 401a and the sliding cylinder member 401b and cannot rotate anymore. And due to the fixation of the connecting column 201, the distance from the support plate 202 to the inner wall of the wind turbine tower barrel 100 is fixed, and the support plate 202 itself will not move. And since the sliding cylinder member 401b is located on the back of the support plate 202, it is extremely difficult for the sliding cylinder member 401b to be accidentally touched and slid by an external force during use. Therefore, during use, it is difficult to unlock the insertion portion 300.
[0057] Further, the limiting assembly 402 includes a guide rod 402a provided on the support plate 202 and a return spring 402b provided outside the guide rod 402a. Among them, the sliding cylinder member 401b is slidably connected to the guide rod 402a, and the two ends of the return spring 402b are respectively in contact with the sliding cylinder member 401b and the support plate 202. The sliding cylinder member 401b is slidably connected to the guide rod 402a, and the guide rod 402a is fixedly provided on the support plate 202. The guide rod 402a prevents the sliding cylinder member 401b from detaching from the fixed cylinder 401a. A return spring 402b is sleeved outside the guide rod 402a. When the sliding cylinder member 401b slides and compresses the return spring 402b, when the sliding cylinder member 401b loses external force, the return spring 402b pushes the sliding cylinder member 401b back to its original position.
[0058] Further, a sliding strip 401b-1 is provided inside the sliding cylinder part 401b, and stoppers 401b-2 are connected to the top and bottom of the sliding cylinder part 401b; among them, the fixed cylinder 401a is provided with a long groove 401c corresponding to the sliding strip 401b-1, and the guide rod 402a is slidably connected to the stopper 401b-2. A plurality of groups of sliding strips 401b-1 are fixedly arranged on the inner side wall of the sliding cylinder part 401b. The side surface of the sliding strip 401b-1 away from the inner wall of the sliding cylinder part 401b is flush with the inner wall of the fixed cylinder 401a part. The plurality of groups of sliding strips 401b-1 are arranged at equal intervals, and the distance between the plurality of groups of sliding strips 401b-1 is smaller than the length of side M. When the rectangular block 302 extends in during use, the side of the rectangular block 302 contacts the side surface of the sliding strip 401b-1 and still cannot rotate. The setting of the distance between the sliding strips 401b-1 leaves no space for the rectangular block 302 to rotate, further ensuring the locking of the insertion part 300.
[0059] The inner wall of the fixed cylinder 401a is provided with long grooves 401c corresponding to the plurality of groups of sliding cylinder parts 401b, so that the sliding strip 401b-1 does not affect the sliding of the sliding cylinder part 401b outside the fixed cylinder 401a. At the same time, the setting of the distance between the sliding strips 401b-1 enables the fixed cylinder 401a to still limit the rectangular block 302. Stoppers 401b-2 are fixedly connected to the sides of the top and bottom of the sliding cylinder part 401b close to the support plate 202. The guide rod 402a is slidably connected to the stopper 401b-2, and the end of the guide rod 402a protrudes relatively, preventing the sliding cylinder part 401b from detaching from the fixed cylinder 401a. The end of the return spring 402b abuts against the stopper 401b-2, and then it can push the sliding cylinder part 401b to reset.
[0060] Operation process: When the conductive rail 101 needs to be installed on the wind turbine tower 100, the rectangular block 302 is aligned with the rectangular portion P1 of the connecting groove 102, and the plug-in portion 300 is passed through the connecting groove 102. Then, the plug-in portion 300 is passed through the waist-shaped groove 202a and plugged into the fixed cylinder 401a. The plug-in portion 300 is continuously pushed so that the fixed block 303 contacts the surface of the conductive rail 101, and the conductive rail 101 fits the support plate 202. At this time, the sliding cylinder 401b is manually pushed to slide toward the support plate 202. The stopper 401b-2 is compressed against the return spring 402b, so that the rectangular block 302 extends out of the fixed cylinder 401a. The plug-in portion 300 is rotated 90 degrees so that the side M of the rectangular block 302 corresponds to the inner wall of the sliding cylinder 401b, and then the sliding cylinder 401 is released. b. The return spring 402b pushes the sliding cylinder 401b to slide and reset. At this time, the edge M can fit with the inner wall of the sliding cylinder 401b and the fixed cylinder 401a, and the plug-in part 300 can no longer rotate. The conductive rail 101 is located between the baffle 304 and the fixed block 303, and the cylinder 301 is located in the arc-shaped part P2, so that the plug-in part 300 can move with the conductive rail 101, and the rectangular block 302 can slide up and down or laterally along the inner wall of the fixed cylinder 401a, so that the conductive rail 101 is flexibly connected to the support plate 202, thereby completing the installation of the conductive rail 101. When the conductive rail 101 needs to be disassembled, the sliding cylinder 401b is pushed again to slide toward the support plate 202, and the rectangular block 302 is pushed out of the sliding cylinder 401b and rotated 90 degrees.
[0061] The plug-in portion 300 can move with the conductive rail 101, so that multiple groups of conductive rails 101 have the same movable stroke. The flexible connection between the plug-in portion 300 and the sleeve assembly 401 prevents the conductive rails 101 from being pulled and damaged by the shaking of the wind tower 100, ensuring the stability of the connection at the joint of the conductive rail 101. The rectangular block 302 fits the inner wall of the fixing cylinder 401a, which can always ensure that the installation direction is parallel to the inner wall of the wind tower 100, avoiding damage caused by twisting during the shaking of the wind tower 100.
[0062] At the same time, the plug-in part 300 and the sleeve assembly 401 cooperate to replace the traditional bolt installation, making the disassembly and assembly of the conductive rail 101 more convenient and quick. At the same time, the integrated setting of the plug-in part 300 prevents the plug-in part 300 itself from loosening. The sleeve assembly 401 is arranged on the back of the support plate 202, and the connecting column 201 fixes the relative distance between the sliding cylinder 401b and the inner wall of the wind turbine tower 100, so that the sliding cylinder 401b is not easily accidentally touched during use, causing the plug-in part 300 to be unlocked, thereby avoiding the problem of loosening of the installation of the conductive rail 101 to a large extent, making the installation of the conductive rail 101 more stable.
[0063] Example 2
[0064] Reference Figures 1 - 7, this embodiment is different from the first embodiment in that it also includes a buffer component 500, which includes a socket 501, an elastic component 502 provided on the support plate 202, and a resistance component 503 provided on the baffle 304, wherein the socket 501 is provided on the conductive rail 101, the socket 501 is provided on the back of the conductive rail 101, and the elastic component 502 is provided at the top of the back of the support plate 202. During installation, the socket 501 can be placed on the top of the elastic component 502, and the elastic component 502 supports the conductive rail 101 so that the connecting groove 102 corresponds to the waist-shaped groove 202a, which facilitates the installation of the plug-in part 300. After the installation is completed, when the conductive rail 101 slides longitudinally along the inner wall of the wind turbine tower 100, the elastic component 502 buffers the conductive rail 101 to prevent the conductive rail 101 from moving significantly and colliding to cause damage.
[0065] Furthermore, the socket 501 includes a horizontal plate 501a provided on the back of the conductive rail 101, a limit plate 501b provided at the end of the horizontal plate 501a, and the elastic component 502 includes a fixed plate 502a provided on the support plate 202, a support column 502b provided on the top of the fixed plate 502a, a limit block 1 502c and a limit block 2 502d provided at both ends of the support column 502b, and a support spring 502e provided on the outside of the support column 502b; wherein, the ends of the support spring 502e respectively contact the limit block 1 502c and the fixed plate 502a;
[0066] A fixing plate 502a is fixed to the top of the back side of the support plate 202. Two sets of support columns 502b are slidably connected to the fixing plate 502a. A first limit block 502c and a second limit block 502d are fixed to the top and bottom ends of the support columns 502b, preventing the support columns 502b from separating from the fixing plate 502a. A support spring 502e is sleeved on the outside of the support column 502b and is arranged between the fixing plate 502a and the first limit block 502c, so that the support spring 502e elastically supports the first limit block 502c.
[0067] A horizontal plate 501a is fixed on the back of the conductive rail 101, and a limit plate 501b is fixed on the side of the horizontal plate 501a away from the conductive rail 101. The horizontal plate 501a can be placed on the top of the two sets of limit blocks 502c so that the elastic component 502 supports the conductive rail 101. When the horizontal plate 501a is placed on the top of the elastic component 502, the limit plate 501b is located on the side of the limit block 502c away from the support plate 202 to prevent the horizontal plate 501a from separating from the limit block 502c, so that the horizontal plate 501a will not separate from the limit block during installation. The top of the limit block 502c can push the conductive rail 101 horizontally, so that the cross plate 501a moves on the top of the limit block 502c, and then adjust the connection groove 102 to correspond with the waist-shaped groove 202a, so as to facilitate the installation of the plug-in part 300. After the conductive rail 101 is fixed by multiple groups of plug-in parts 300, the support rod elastically supports the conductive rail 101, so that the conductive rail 101 slides longitudinally along the inner wall of the wind turbine tower 100. The support spring 502e can buffer the conductive rail 101 to prevent the conductive rail 101 from being damaged due to impact caused by sliding.
[0068] The rest of the structure is the same as that of Example 1.
[0069] Example 3
[0070] Reference Figures 1 - 7 , this embodiment is different from the above embodiment in that: the interference component 503 includes a long rod 503a slidably arranged on the support plate 202, and a interference spring 503b sleeved on the outside of the long rod 503a; wherein the support plate 202 is provided with a through slot 202b corresponding to the long rod 503a, and the support plate 202 is provided with a through slot 202b, which is slidably connected to the long rod 503a through the through slot 202b, and circular plates are fixed at both ends of the long rod 503a to prevent the support plate 202 from separating from the support plate 202, and the two ends of the interference spring 503b interfere with the front face and circular plate of the support plate 202. When the conductive rail 101 is installed, the side of the conductive rail 101 close to the support plate 202 contacts the circular plate. When the rectangular block 302 slides along the depth direction of the fixed cylinder 401a, the interference spring 503b buffers the conductive rail 101.
[0071] The rest of the structure is the same as that of Example 2.
[0072] Importantly, it should be noted that the construction and arrangement of the present application shown in multiple different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who refer to this disclosure should easily understand that many modifications are possible without substantially departing from the novel teachings and advantages of the subject matter described in this application (e.g., changes in the dimensions, scales, structures, shapes, and proportions of various elements, as well as parameter values (such as temperature, pressure, etc.), installation arrangements, use of materials, colors, orientations, etc.). For example, an element shown as being integrally formed may be composed of multiple parts or elements, the positions of the elements may be inverted or otherwise changed, and the nature, number, or position of discrete elements may be altered or changed. Accordingly, all such modifications are intended to be included within the scope of the present invention. The order or sequence of any process or method steps may be changed or re-ordered according to alternative embodiments. In the claims, any "means-plus-function" clauses are intended to cover the structures that perform the recited function described herein, and not only structural equivalents but also equivalent structures. Other substitutions, modifications, changes, and omissions may be made in the design, operating conditions, and arrangement of the exemplary embodiments without departing from the scope of the present invention. Therefore, the present invention is not limited to a particular embodiment, but extends to various modifications that still fall within the scope of the appended claims.
[0073] In addition, in order to provide a concise description of the exemplary embodiments, not all features of the actual embodiments may be described (i.e., those features that are not relevant to the currently contemplated best mode of carrying out the present invention or those features that are not relevant to implementing the present invention).
[0074] It should be understood that in the development of any actual implementation, as in any engineering or design project, numerous specific implementation decisions may be made. Such development efforts may be complex and time-consuming, but for those of ordinary skill in the art who benefit from this disclosure, without undue experimentation, such development efforts will be a routine task of design, fabrication, and production.
[0075] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.
Claims
1. An installation bracket for a wind power conductive rail, characterized in that: including, a wind turbine tower barrel (100) with a conductive rail (101) provided inside; a fixing bracket (200) provided inside the wind turbine tower barrel (100); a plug-in part (300) provided with a matching locking part (400), and the locking part (400) is provided on the fixing bracket (200); wherein, the plug-in part (300) can connect the conductive rail (101) to the fixing bracket (200), and the conductive rail (101) is provided with a connection groove (102) corresponding to the plug-in part (300); the fixing bracket (200) includes a connecting column (201) and a support plate (202) provided at the end of the connecting column (201); wherein, the connecting column (201) is provided on the inner wall of the wind turbine tower barrel (100), the locking part (400) is provided on the surface of the support plate (202), and the plug-in part (300) can be inserted into the support plate (202); the plug-in part (300) includes a cylinder (301), a rectangular block (302) provided at the end of the cylinder (301), a fixing block (303) provided at the other end of the cylinder (301), and a baffle (304) provided on the outer side of the cylinder (301); wherein, the cylinder (301) is slidably connected to the conductive rail (101) through the connection groove (102), the locking part (400) can be sleeved with the rectangular block (302), the support plate (202) is provided with a kidney-shaped groove (202a) corresponding to the cylinder (301), and the position of the kidney-shaped groove (202a) corresponds to the locking part (400); the locking part (400) includes a sleeve assembly (401) provided on the support plate (202) and a limit assembly (402) provided between the support plate (202) and the sleeve assembly (401); wherein, the sleeve assembly (401) is sleeved with the rectangular block (302).
2. The mounting bracket of the wind power conducting rail according to claim 1, characterized in that: the sleeve assembly (401) includes a fixed cylinder (401a) provided on the support plate (202) and a sliding cylinder part (401b) slidably provided on the outer side of the fixed cylinder (401a); wherein, the fixed cylinder (401a) is sleeved with the rectangular block (302), and the limit assembly (402) is provided between the sliding cylinder part (401b) and the support plate (202).
3. The mounting bracket for a wind power conducting rail according to claim 2, characterized in that: the limit assembly (402) includes a guide rod (402a) provided on the support plate (202) and a return spring (402b) provided on the outer side of the guide rod (402a); wherein, the sliding cylinder part (401b) is slidably connected to the guide rod (402a), and both ends of the return spring (402b) are in contact with the sliding cylinder part (401b) and the support plate (202) respectively.
4. The mounting bracket of the wind power conductive rail according to claim 3, characterized in that: a sliding strip (401b-1) is provided inside the sliding cylinder part (401b), and a stop block (401b-2) is connected to the top and bottom of the sliding cylinder part (401b); wherein, the fixed cylinder (401a) is provided with a long groove (401c) corresponding to the sliding strip (401b-1), and the guide rod (402a) is slidably connected to the stop block (401b-2).
5. The mounting bracket for a wind power conducting rail according to claim 4, characterized in that: It also includes a buffer component (500), which includes a sleeve (501), an elastic component (502) provided on the support plate (202), and a resistance component (503) provided on the baffle (304). Wherein, the socket (501) is arranged on the conductive rail (101).
6. The mounting bracket of the wind power conducting rail according to claim 5, characterized in that: The socket (501) comprises a horizontal plate (501a) provided on the back of the conductive rail (101) and a limiting plate (501b) provided on the end of the horizontal plate (501a); The elastic component (502) includes a fixing plate (502a) provided on the support plate (202), a support column (502b) provided on the top of the fixing plate (502a), a limiting block 1 (502c) and a limiting block 2 (502d) provided at both ends of the support column (502b), and a support spring (502e) provided on the outside of the support column (502b); Wherein, the two ends of the support spring (502e) respectively contact the limiting block 1 (502c) and the fixing plate (502a).
7. The mounting bracket of the wind power conductive rail according to claim 6, characterized in that: The resistance component (503) comprises a long rod (503a) slidably arranged on the support plate (202), and a resistance spring (503b) sleeved on the outside of the long rod (503a); The support plate (202) is provided with a through slot (202b) corresponding to the long rod (503a).
Citation Information
Patent Citations
Wind power generation conductor rail clamping structure
CN219371969U
Outdoor current-carrying bus for wind power
CN220341986U