Box-type substation for wind power generation
By designing a movable and heat dissipation mechanism for the prefabricated substation, the installation and heat issues of prefabricated substations for wind power generation in complex environments have been solved, achieving convenient movement and effective heat dissipation, and improving safety and efficiency.
Patent Information
- Application Number
- CN202410956051.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-17
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2044-07-17
AI Technical Summary
The installation environment of prefabricated substations for wind power generation is limited in places such as coastal areas and mountain gaps. The long box body cannot meet the usage scenarios and is not easy to move. The sealed design leads to high temperature safety hazards.
The box-shaped outer shell is designed with a moving mechanism and a heat dissipation mechanism. The moving mechanism uses a drive motor to drive gears and casters to achieve the folding and movement of the box-shaped outer shell, while the heat dissipation mechanism uses rainwater circulation cooling pipes for heat exchange.
It enables convenient movement and effective heat dissipation of the prefabricated substation in complex environments, reduces the impact of temperature on the transformer, and improves safety and efficiency.
Smart Images

Figure CN118841864B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of box-type substations, in particular to a box-type substation for wind power generation. BACKGROUND
[0002] A box-type substation, also known as a prefabricated substation or a prefabricated substation, is a kind of high-voltage switchgear, distribution transformer and low-voltage distribution device arranged in an integrated factory according to a certain wiring scheme. It is a compact indoor and outdoor distribution device that organically combines voltage reduction, low-voltage distribution and other functions in a moisture-proof, rust-proof, dust-proof, rat-proof, fire-proof, theft-proof, heat-proof, fully-enclosed and mobile steel structure box. It is particularly suitable for urban network construction and renovation. It is a new type of substation that has emerged after the construction of the substation. The box-type substation is suitable for mines, factories, enterprises, oil and gas fields and wind power stations. It replaces the original civil distribution room and distribution station, becoming a new type of complete substation and distribution device.
[0003] Since the box-type substation for wind power generation is mostly used in coastal and mountain gap areas, the installation environment of the box-type substation in such areas has certain limitations. The existing box-type substation for wind power generation is generally long in box body and is generally arranged side by side, so it cannot meet the use scene in these places and needs to be constructed to some extent. Some existing box-type substations are not convenient to move and are generally installed by hoisting, which is relatively cumbersome. Since the box-type substation is generally designed with a sealing mechanism, the box-type substation will generate heat during use. High temperature not only affects the working efficiency of the transformer in the box, but also has great safety hazards.
[0004] To solve the above problems, a box-type substation for wind power generation is proposed. SUMMARY
[0005] The present application aims to provide a box-type substation for wind power generation, which solves the problem that the box-type substation for wind power generation is mostly used in coastal and mountain gap areas, the installation environment of the box-type substation in such areas has certain limitations, the existing box-type substation for wind power generation is generally long in box body and is generally arranged side by side, so it cannot meet the use scene in these places and needs to be constructed to some extent. Some existing box-type substations are not convenient to move, and some mobile box-type substations have the problem that the box-type substation is generally designed with a sealing mechanism, and the box-type substation will generate heat during use. High temperature not only affects the working efficiency of the transformer in the box, but also has great safety hazards.
[0006] In order to achieve the above object, the present application provides the following technical scheme: a box-type substation for wind power generation, comprising a box-type shell and a moving mechanism arranged on one side of the box-type shell, a heat dissipation mechanism is arranged on the box-type shell, the box-type shell is provided with two groups, a sunshade is fixedly connected to the upper portion of the outer wall of the box-type shell, supporting legs are fixedly connected to the lower portion of the outer wall of the box-type shell, grooves are arranged on the upper portion of one side of the box-type shell, an adjusting box is fixedly connected to the interior of one of the grooves, a drive motor is fixedly connected to the lower portion of one of the grooves, the output end of the drive motor penetrates into the interior of the adjusting box, a first adjusting assembly is arranged on the lower portion of the adjusting box, a transmission plate is slidably connected to the interior of the adjusting box, a first gear slot is arranged on one side of the transmission plate;
[0007] A first opening is arranged on one side of the adjusting box, an adjusting groove is arranged on one side of the adjusting box and located below the first opening, second openings are arranged on the lower portions of the two sides of the adjusting box, a driven shaft is fixedly connected to the output end of the drive motor and located in the interior of the adjusting box, a second gear is fixedly connected to the lower portion of the driven shaft, the transmission plate is slidably connected to one of the second openings, one end of the transmission plate penetrates through one of the second openings and extends into the interior of one of the box-type shells.
[0008] The first adjusting assembly comprises a stand fixedly connected to one end of one side of one of the box-type shells, an adjusting column rotatably connected to the upper portion of the stand, a fixed plate fixedly connected to one side of the adjusting column and one side of the stand, a first gear arranged on the upper portion of the adjusting column, the two fixed plates penetrating through the inner sides of one end of the two box-type shells, and the transmission plate meshingly connected to the second gear, the first gear slot meshingly connected to the first gear.
[0009] Further, the moving mechanism comprises a connecting assembly and a first limiting assembly arranged on one side of the interior of the two box-type shells, the moving mechanism further comprises a supporting assembly arranged on the lower portion of the interior of the two box-type shells, a reset assembly arranged on one side of the upper end of the supporting assembly, and a second adjusting assembly arranged on the other side of the upper end of the supporting assembly.
[0010] Further, the connecting assembly comprises a fourth gear fixedly connected to the driven shaft and a third gear rotatably connected to the interior of the adjusting box, the third gear meshingly connected to the fourth gear, the connecting assembly further comprises a connecting plate arranged in the interior of the box-type shell, a second gear slot arranged on one side of the connecting plate, a first trapezoidal block fixedly connected to the lower portion of the other side of the connecting plate, the two second gear slots meshingly connected to the third gear and the fourth gear, one of the connecting plates corresponding to the first opening, and the other connecting plate corresponding to the adjusting groove.
[0011] Further, the first limiting component comprises a limiting plate arranged on one side of the inside of the box-shaped shell, one side of the limiting plate is provided with a sliding groove, two groups of the connecting plates are respectively in sliding connection with two groups of the sliding grooves, one end of the connecting plate penetrates through the groove and extends to the inside of the adjusting box, the inside of the supporting leg is provided with a hollow groove, the supporting component comprises a connecting frame in sliding connection with the inside of the box-shaped shell, the connecting frame is fixedly connected with supporting rods around the lower part, the supporting rods are fixedly connected with universal wheels at the lower part, and the universal wheels are located in the hollow groove.
[0012] Further, the reset component comprises spring columns fixedly connected with one side of the upper part of the connecting frame, the spring columns are provided with two groups, the upper part of the two groups of the spring columns is fixedly connected with a positioning plate, and the positioning plate is fixedly connected with the inside of the box-shaped shell, the second adjusting component comprises a supporting plate fixedly connected with the other side of the one end of the connecting frame, and the upper part of the supporting plate is fixedly connected with a second trapezoidal block.
[0013] Further, the heat dissipation mechanism comprises a collecting component arranged on the upper part of the sunshade plate and a collecting box fixedly connected with the upper part of the inside of the box-shaped shell, the heat dissipation mechanism further comprises a heat dissipation plate arranged on the bottom of the inner wall of the box-shaped shell, and the inside of the collecting box is provided with a second limiting component and a second heat dissipation component.
[0014] Further, the collecting component comprises a flow guide groove arranged on the sunshade plate and a collecting groove arranged on one side of the upper part of the sunshade plate, the flow guide groove is provided with multiple groups, the multiple groups of the flow guide grooves are connected with the collecting groove, the first heat dissipation component comprises a heat dissipation plate fixedly connected with the bottom of the inner wall of the box-shaped shell, the heat dissipation plate is fixedly connected with a heat dissipation water pipe, and two ends of the heat dissipation water pipe are fixedly connected with the two sides of the collecting box.
[0015] Further, one side of the upper part of the collecting box is provided with an air outlet, a connecting block is fixedly connected with one side of the upper part of the outer wall of the collecting box, the connecting block is fixedly connected with the collecting groove, the inside of the collecting box is fixedly connected with a shunt box and a water pump, one end of the shunt box is fixedly connected with the heat dissipation water pipe, the other end of the water pump is fixedly connected with the heat dissipation water pipe, the upper part of the shunt box is provided with a circular hole, and the circular hole is provided with multiple groups.
[0016] Further, the second limiting component comprises an air inlet pipe arranged on one side of the upper part of the collecting box, the lower part of the air inlet pipe is fixedly connected with a baffle, one end of the air inlet pipe penetrates through one side of the outer wall of the box-shaped shell, the second limiting component further comprises a water outlet pipe arranged on one side of the collecting box, the other end of the water outlet pipe penetrates through one side of the outer wall of the box-shaped shell, the air inlet pipe is located below one end of the heat dissipation water pipe, and the water outlet pipe is located below the air inlet pipe.
[0017] Further, the second heat dissipation component comprises an impeller in rotary connection with the inside of one end of the heat dissipation water pipe, one side of the impeller is fixedly connected with a first driven roller, the second heat dissipation component further comprises a fan in rotary connection with the inside of the baffle, one side of the fan is rotatably connected with a second driven roller, and the second driven roller and the first driven roller are provided with a belt.
[0018] The present application has the following advantages compared with the prior art:
[0019] 1. The wind power box-type substation provided by the present application is characterized in that: through starting the driving motor, the output end of the driving motor drives the driven shaft to rotate, the driven shaft drives the fourth gear to rotate, the fourth gear meshes with the third gear, the fourth gear drives the third gear to rotate, the third gear and the fourth gear respectively mesh with two groups of second tooth grooves, the connecting plates are simultaneously moved inwards or outwards, the connecting plates drive the first trapezoidal blocks to move, the first trapezoidal blocks move from one end of the second trapezoidal blocks to the other end of the second trapezoidal blocks, the first trapezoidal blocks extrude the second trapezoidal blocks to make the second trapezoidal blocks move, the second trapezoidal blocks move the connecting frames through the support plates, the connecting frames drive the four groups of support rods to move, the four groups of support rods drive the four groups of universal wheels to move, the four groups of universal wheels are lowered and extended from the inside of the hollow grooves, at this time, the four groups of universal wheels support the box-type outer shells, through starting the driven shaft, the two groups of connecting plates are moved, then the eight groups of universal wheels support the two groups of box-type outer shells, at this time, the two groups of box-type outer shells can be moved, so that the box-type outer shells are convenient to move, meanwhile, the first trapezoidal blocks extrude the second trapezoidal blocks to lock the universal wheels, when the first trapezoidal blocks are no longer above the second trapezoidal blocks, the four groups of spring columns are reset, then the two groups of connecting frames move upwards, so that the universal wheels move to the inside of the hollow grooves, at this time, the box-type outer shells are supported by the supporting legs, the box-type outer shells are no longer convenient to move.
[0020] 2. The wind power box-type substation provided by the present application is characterized in that: through starting the driving motor, the driven shaft is rotated, the driven shaft drives the second gear to rotate, simultaneously, the driven shaft drives the transmission plate to move, simultaneously, the driven shaft drives the fourth gear to rotate, the fourth gear makes the universal wheels first lower to support the box-type outer shells, at this time, the box-type outer shells can be moved, when the box-type outer shells can be moved, the first tooth grooves mesh with the first gears to make the first gears rotate, the first gears drive the adjusting columns to rotate, the adjusting columns drive one group of the fixing plates to move, the fixing plates drive one group of the box-type outer shells to rotate, when the folding of the two groups of the box-type outer shells is completed, the first tooth grooves no longer mesh with the first gears, at this time, the driven shaft continues to rotate, so that the two groups of connecting plates are moved, so that the first trapezoidal blocks are no longer above the second trapezoidal blocks, at this time, the box-type outer shells are no longer convenient to move, through starting the driven shaft, the folding of the two groups of the box-type outer shells is completed.
[0021] 3. The application provides a box-type power substation for wind power generation, which collects rainwater through a plurality of guide grooves, and the rainwater reaches the inside of the collecting box through the collecting groove and the connecting block, and the rainwater is circulated by entering one end of the heat dissipation water pipe and leaving the other end of the heat dissipation water pipe through the starting of the water pump. Since the heat dissipation water pipe is coiled in the inside of the heat dissipation plate, the contact area of the heat dissipation water pipe and the bottom inner wall of the box-type shell is increased, so that the temperature in the inside of the box-type shell is more fully conducted to the rainwater in the inside of the heat dissipation water pipe. When the rainwater is circulated in the inside of the heat dissipation water pipe, the heat dissipation of the inside of the box-type shell is completed. When the rainwater leaves the other end of the heat dissipation water pipe, the impact force of the rainwater drives the impeller to rotate, the impeller drives the first driven roller to rotate, the first driven roller drives the second driven roller to rotate through the belt, and the second driven roller drives the fan to rotate. The rotation of the fan makes the air enter the inside of the collecting box through the air inlet pipe, so that the air circulation is formed in the inside of the collecting box. The water flow leaving one end of the heat dissipation water pipe is dispersed through a plurality of round holes on the distribution box, so that the heat exchange rate of the water flow and the air is increased. The rainwater circulating once is cooled, and better heat dissipation effect is achieved. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 It is a schematic diagram of the overall structure of the application;
[0023] Figure 2 It is a schematic diagram of the adjusting box structure of the application;
[0024] Figure 3 It is a schematic diagram of the first adjusting assembly structure of the application;
[0025] Figure 4 It is a schematic diagram of the connecting assembly structure of the application;
[0026] Figure 5 It is a schematic diagram of the first limiting assembly structure of the application;
[0027] Figure 6 It is a schematic diagram of the supporting assembly structure of the application;
[0028] Figure 7 It is a schematic diagram of the collecting assembly structure of the application;
[0029] Figure 8 It is a schematic diagram of the first heat dissipation assembly structure of the application;
[0030] Figure 9 It is a schematic diagram of the connecting block structure of the application;
[0031] Figure 10 It is a sectional view of the collecting box structure of the application;
[0032] Figure 11 It is an enlarged view of structure A in the application; Figure 10 in the application.
[0033] In the figure: 1, box shell; 11, sun visor; 12, support leg; 13, adjusting box; 131, adjusting groove; 132, first opening; 133, second opening; 14, groove; 15, drive motor; 151, driven shaft; 152, second gear; 16, first adjusting assembly; 161, fixed plate; 162, adjusting column; 1621, first gear; 163, stand; 17, transmission plate; 171, first tooth groove; 2, moving mechanism; 21, connecting assembly; 211, third gear; 212, connecting plate; 2121, second tooth groove; 2122, first trapezoidal block; 213, fourth gear; 22, first limiting assembly; 221, limiting plate; 222, sliding groove; 23, support assembly; 231, connecting frame; 232, support rod; 233, universal wheel; 24, hollow groove; 25, reset assembly; 251, positioning plate; 252, spring column; 26, second adjusting assembly; 261, second trapezoidal block; 262, support plate; 3, heat dissipation mechanism; 31, collection assembly; 311, flow guide groove; 312, collection groove; 32, collection box; 321, connecting block; 322, air outlet; 323, water pump; 33, first heat dissipation assembly; 331, heat dissipation water pipe; 332, heat dissipation plate; 34, shunt box; 341, round hole; 35, second limiting assembly; 351, air inlet pipe; 352, baffle; 353, water outlet pipe; 36, second heat dissipation assembly; 361, impeller; 362, second driven roller; 363, belt; 364, second driven roller; 365, fan. DETAILED DESCRIPTION
[0034] The technical solutions in the embodiments of the present application will be described clearly and completely 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 work fall within the scope of protection of the present application.
[0035] In order to solve the technical problem that the existing box-type substation for wind power generation is generally long in box body and is arranged in parallel, thereby failing to meet the use scene in these places, as shown in the prior art, the following preferred technical solutions are provided: Figures 1-4
[0036] The utility model provides a box type substation for wind power generation, including box type shell 1 and the moving mechanism 2 of setting in one side of box type shell 1, be equipped with heat dissipation mechanism 3 on box type shell 1, box type shell 1 is equipped with two groups, the sunshade 11 of fixed connection is established on the upper outer wall of box type shell 1, the support leg 12 of fixed connection is established around the lower outer wall of box type shell 1, the recess 14 of one side upper of box type shell 1 is equipped with, the recess 14 inside of one group is fixedly connected with the adjusting box 13, the recess 14 lower of one group is fixedly connected with drive motor 15, the output of drive motor 15 penetrates to the inside of adjusting box 13, the first adjusting assembly 16 of adjusting box 13 lower is equipped with, the transmission plate 17 of sliding connection is equipped in the inside of adjusting box 13, one side of transmission plate 17 is equipped with first gear slot 171,
[0037] The side of adjusting box 13 is equipped with first opening 132, the side of adjusting box 13 is equipped with adjusting groove 131, adjusting groove 131 is located the lower of first opening 132, the lower of both sides of adjusting box 13 is equipped with second opening 133, the output of drive motor 15 is fixedly connected with driven shaft 151, and driven shaft 151 is located the inside of adjusting box 13, the lower of driven shaft 151 is fixedly connected with second gear 152, transmission plate 17 is slidingly connected with one group of second opening 133, one end of transmission plate 17 penetrates a group of second opening 133 and extends to the inside of one group of box type shell 1;
[0038] The first adjusting assembly 16 includes the stand 163 of fixed connection in one end of one group of box type shell 1 side, the upper rotatable connection of stand 163 has adjusting column 162, the side of adjusting column 162 and the side of stand 163 are fixedly connected with fixed plate 161, the upper of adjusting column 162 is equipped with first gear 1621, and both sides fixed plate 161 respectively penetrates the inside of one end of both groups of box type shell 1, and one side of transmission plate 17 is engagedly connected with second gear 152, first gear slot 171 is engagedly connected with first gear 1621, when both groups of box type shell 1 are side by side, one end of transmission plate 17 is located the outside of adjusting box 13, the other end of transmission plate 17 is engagedly connected with second gear 152, when second gear 152 starts, second gear 152 engages transmission plate 17, and transmission plate 17 moves, transmission plate 17 moves to the inside of one group of box type shell 1, when first gear slot 171 engages first gear 1621, another group of box type shell 1 rotates, the top of fixed plate 161 penetrates the bottom of adjusting box 13, and first gear 1621 is located the inside of adjusting box 13.
[0039] Specifically, by starting the driving motor 15, the output end of the driving motor 15 drives the driven shaft 151 to rotate, the driven shaft 151 drives the fourth gear 213 to rotate, the fourth gear 213 engages the third gear 211, the fourth gear 213 drives the third gear 211 to rotate, the third gear 211 and the fourth gear 213 engage two groups of second tooth grooves 2121 respectively, the connecting plate 212 moves inward or outward at the same time, the connecting plate 212 drives the first trapezoidal block 2122 to move, the first trapezoidal block 2122 moves from one end of the second trapezoidal block 261 to the other end of the second trapezoidal block 261, the first trapezoidal block 2122 extrudes the second trapezoidal block 261, the second trapezoidal block 261 moves the connecting frame 231 through the support plate 262, the connecting frame 231 drives the four groups of support rods 232 to move, the four groups of support rods 232 drive the four groups of universal wheels 233 to move, the four groups of universal wheels 233 are lowered from the inside of the hollow groove 24, at this time the four groups of universal wheels 233 support the box-shaped shell 1, by starting the driven shaft 151, the two groups of connecting plates 212 move, then the eight groups of universal wheels 233 support the two groups of box-shaped shells 1, at this time the two groups of box-shaped shells 1 can move, so that the box-shaped shell 1 is convenient to move, at the same time the first trapezoidal block 2122 extrudes the second trapezoidal block 261 to lock the universal wheel 233, when the first trapezoidal block 2122 is no longer above the second trapezoidal block 261, the four groups of spring columns 252 reset, then the two groups of connecting frames 231 move upward, so that the universal wheel 233 moves to the inside of the hollow groove 24, at this time the box-shaped shell 1 is supported by the supporting leg 12, and the box-shaped shell 1 is no longer convenient to move.
[0040] In order to solve the technical problem that some existing box-type substations are not convenient to move and are generally installed by hoisting, which is relatively cumbersome, Figures 4-6 As shown in the drawings, the following preferred technical solutions are provided:
[0041] The moving mechanism 2 comprises a connecting assembly 21 and a first limiting assembly 22 arranged on one side of the inside of the box shell 1 of the two groups, and further comprises a supporting assembly 23 arranged below the inside of the box shell 1 of the two groups, and the upper end of the supporting assembly 23 is provided with a reset assembly 25 on one side, and the upper end of the supporting assembly 23 is provided with a second adjusting assembly 26 on the other side, the connecting assembly 21 comprises a fourth gear 213 fixedly connected to the driven shaft 151 and a third gear 211 rotatably connected to the inside of the adjusting box 13, the third gear 211 is in meshing connection with the fourth gear 213, and the connecting assembly 21 further comprises a connecting plate 212 arranged in the inside of the box shell 1, one side of the connecting plate 212 is provided with a second tooth groove 2121, and the other side of the connecting plate 212 is fixedly connected with a first trapezoidal block 2122 below, the two groups of second tooth grooves 2121 are in meshing connection with the third gear 211 and the fourth gear 213 respectively, one group of connecting plates 212 corresponds to the first opening 132, and the other group of connecting plates 212 corresponds to the adjusting groove 131, the first limiting assembly 22 comprises a limiting plate 221 arranged on one side of the inside of the box shell 1, one side of the limiting plate 221 is provided with a sliding groove 222, the two groups of connecting plates 212 are in sliding connection with the two groups of sliding grooves 222 respectively, one end of the connecting plate 212 penetrates through the groove 14 and extends to the inside of the adjusting box 13, the inside of the supporting leg 12 is provided with a hollow groove 24, the supporting assembly 23 comprises a connecting frame 231 in sliding connection with the inside of the box shell 1, supporting rods 232 are fixedly connected to the lower part of the periphery of the connecting frame 231, universal wheels 233 are fixedly connected to the lower part of the supporting rods 232, and the universal wheels 233 are located in the inside of the hollow groove 24, the reset assembly 25 comprises spring columns 252 fixedly connected to the upper part of one side of one end of the connecting frame 231, the two groups of spring columns 252 are fixedly connected with positioning plates 251 above, and the positioning plates 251 are fixedly connected to the inside of the box shell 1, the second adjusting assembly 26 comprises a supporting plate 262 fixedly connected to the other side of one end of the connecting frame 231, and a second trapezoidal block 261 is fixedly connected to the upper part of the supporting plate 262, when the box shell 1 starts to rotate side by side, one group of connecting plates 212 gradually moves away from the adjusting groove 131 from the inside of the adjusting groove 131, the two groups of limiting plates 221 limit the two groups of connecting plates 212 respectively, one group of connecting plates 212 is located above the other group of connecting plates 212, and since the positioning plates 251 are fixedly connected to the inside of the box shell 1, when the second trapezoidal block 261 is not subjected to force, the spring columns 252 are located at the original position, the spring columns 252 drive the connecting frame 231, so that the universal wheels 233 are located in the inside of the hollow groove 24, and the bottom end of the universal wheels 233 is lower than the bottom end of the hollow groove 24.
[0042] Specifically, by starting the driving motor 15, the driven shaft 151 is rotated, the second gear 152 is rotated by the driven shaft 151, the transmission plate 17 is moved by the driven shaft 151, and the fourth gear 213 is rotated by the driven shaft 151. The fourth gear 213 makes the universal wheel 233 first descend the support box shell 1, at this time the box shell 1 can be moved, when the box shell 1 is movable, the first gear slot 171 engages the first gear 1621, the first gear 1621 is rotated, the adjusting column 162 is rotated by the first gear 1621, one group of the fixed plate 161 is moved by the adjusting column 162, and one group of the box shell 1 is rotated by the fixed plate 161. When the folding of the two groups of box shells 1 is completed, the first gear slot 171 is no longer engaged with the first gear 1621, at this time the driven shaft 151 continues to rotate, the two groups of connecting plates 212 are moved, so that the first trapezoidal block 2122 is no longer above the second trapezoidal block 261, at this time the box shell 1 is no longer convenient to move, and the folding of the two groups of box shells 1 is completed by starting the driven shaft 151.
[0043] In order to solve the technical problem that the box-type substation generally adopts a sealing mechanism design and heat is generated in the use process of the box-type substation, such as Figures 7-11 As shown in the drawings, the following preferred technical solutions are provided:
[0044] The heat dissipation mechanism 3 comprises a collecting assembly 31 arranged above the sunshade plate 11 and a collecting box 32 fixedly connected above the inside of the box-shaped shell 1, and further comprises a heat dissipation plate 332 arranged at the bottom of the inner wall of the box-shaped shell 1, and the inside of the collecting box 32 is provided with a second limiting assembly 35 and a second heat dissipation assembly 36, the collecting assembly 31 comprises a flow guide groove 311 arranged on the sunshade plate 11 and a collecting groove 312 arranged on one side above the sunshade plate 11, the flow guide groove 311 is provided in multiple groups, and the multiple groups of flow guide grooves 311 are connected with the collecting groove 312, the first heat dissipation assembly 33 comprises the heat dissipation plate 332 fixedly connected at the bottom of the inner wall of the box-shaped shell 1, the heat dissipation plate 332 is fixedly connected with a heat dissipation water pipe 331, two ends of the heat dissipation water pipe 331 are fixedly connected with the two sides of the collecting box 32, an air outlet 322 is arranged above one side of the collecting box 32, a connecting block 321 is fixedly connected with one side above the outer wall of the collecting box 32, the connecting block 321 is fixedly connected with the collecting groove 312, the inside of the collecting box 32 is fixedly connected with a shunt box 34 and a water pump 323, one end of the shunt box 34 is fixedly connected with the heat dissipation water pipe 331, the other end of the water pump 323 is fixedly connected with the heat dissipation water pipe 331, a circular hole 341 is arranged above the shunt box 34, the circular hole 341 is provided in multiple groups, the second limiting assembly 35 comprises an air inlet pipe 351 arranged above one side of the collecting box 32, a baffle 352 is fixedly connected below the air inlet pipe 351, one end of the air inlet pipe 351 penetrates through one side of the outer wall of the box-shaped shell 1, the second limiting assembly 35 further comprises a water outlet pipe 353 arranged on one side of the collecting box 32, the other end of the water outlet pipe 353 penetrates through one side of the outer wall of the box-shaped shell 1, the air inlet pipe 351 is located below one end of the heat dissipation water pipe 331, and the water outlet pipe 353 is located below the air inlet pipe 351, the second heat dissipation assembly 36 comprises an impeller 361 rotationally connected to the inside of one end of the heat dissipation water pipe 331, a first driven roller 362 is fixedly connected to one side of the impeller 361, the second heat dissipation assembly 36 further comprises a fan 365 rotationally connected to the inside of the baffle 352, a second driven roller 364 is rotationally connected to one side of the fan 365, and a belt 363 is arranged on the first driven roller 362 and the second driven roller 364, the top of the collecting box 32 is located above the box-shaped shell 1, the air outlet 322 is located above the box-shaped shell 1, the other end of the heat dissipation water pipe 331 penetrates through the top of the box-shaped shell 1 and extends into the inside of the collecting box 32, the position of the air inlet pipe 351 is lower than that of the shunt box 34, so that air flows below the shunt box 34, since one end of the water outlet pipe 353 penetrates through one side of the outer wall of the box-shaped shell 1, the water outlet pipe 353 limits the water in the inside of the collecting box 32, when the water is higher than the bottom of the water outlet pipe 353, the water is discharged from the water outlet pipe 353, so that too much water in the inside of the collecting box 32 does not affect the rotation of the fan 365, and air flows in the inside of the collecting box 32.
[0045] Specific, through a plurality of guide groove 311 for collecting rainwater, rainwater through the collection tank 312 and connecting block 321 to the inside of the collection tank 32, by starting the water pump 323, rainwater from the one end of the heat dissipation pipe 331 into, by the other end of the heat dissipation pipe 331 out of the cycle, because the heat dissipation pipe 331 coiled in the heat sink 332 inside, increase the contact area of heat dissipation pipe 331 and the bottom of the tank shell 1 inner wall, so that the tank shell 1 inside the temperature more fully to the rainwater in the heat dissipation pipe 331, when the rainwater in the heat dissipation pipe 331 inside the cycle, complete the tank shell 1 inside the heat dissipation, when the rainwater from the other end of the heat dissipation pipe 331, the impact of the rainwater driven impeller 361 rotation, impeller 361 driven first driven roller 362 rotation, first driven roller 362 through the belt 363 thus driven second driven roller 364 rotation, second driven roller 364 driven fan 365 rotation, fan 365 rotation, so that air from the air inlet pipe 351 into the collection tank 32 inside, the inside of the collection tank 32 form air circulation, heat dissipation pipe 331 one end of the water flow from the shunt box 34 on a plurality of round hole 341 for dispersion, thus increasing the rate of heat exchange between water and air, the rainwater back after a cycle of cooling, to achieve better heat dissipation effect.
[0046] It should be noted that in this document, such as first and second relationship terms are merely used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply that there is any such actual relationship or order between these entities or operations. Moreover, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or equipment.
[0047] The above description is only the preferred embodiment of the present application, but the protection scope of the present application is not limited to this, any skilled person in the art within the technical range disclosed by the present application, according to the technical solution and the invention concept of the present application, equivalent replacement or change, should be covered in the protection scope of the present application.
Claims
1. A box-type substation for wind power generation, comprising a box-type outer shell (1) and a moving mechanism (2) disposed on one side of the box-type outer shell (1), wherein a heat dissipation mechanism (3) is provided on the box-type outer shell (1), characterized in that: The box-type outer shell (1) is provided in two sets. A sunshade (11) is fixedly connected to the upper part of the outer wall of the box-type outer shell (1). Support legs (12) are fixedly connected to the lower part of the outer wall of the box-type outer shell (1). A groove (14) is provided on the upper part of one side of the box-type outer shell (1). An adjustment box (13) is fixedly connected inside one set of the grooves (14). A drive motor (15) is fixedly connected below one set of the grooves (14). The output end of the drive motor (15) passes through the interior of the adjustment box (13). A first adjustment component (16) is provided below the adjustment box (13). A transmission plate (17) is slidably connected inside the adjustment box (13). A first tooth groove (171) is provided on one side of the transmission plate (17). The regulating box (13) has a first opening (132) on one side and an adjusting groove (131) on one side. The adjusting groove (131) is located below the first opening (132). The regulating box (13) has a second opening (133) on both sides below. The output end of the drive motor (15) is fixedly connected to a driven shaft (151), and the driven shaft (151) is located inside the regulating box (13). A second gear (152) is fixedly connected below the driven shaft (151). The transmission plate (17) is slidably connected to one of the sets of second openings (133). One end of the transmission plate (17) passes through one set of second openings (133) and extends into the interior of one set of box-type outer shells (1). The first adjustment component (16) includes a column (163) fixedly connected to one end of one of the box-type housings (1). An adjustment column (162) is rotatably connected above the column (163). A fixing plate (161) is fixedly connected to one side of the adjustment column (162) and one side of the column (163). A first gear (1621) is provided above the adjustment column (162). The fixing plates (161) on both sides pass through the inner side of one end of the two box-type housings (1), and one side of the transmission plate (17) is meshed with the second gear (152). The first tooth groove (171) is meshed with the first gear (1621).
2. A prefabricated substation for wind power generation as described in claim 1, characterized in that: The moving mechanism (2) includes a connecting component (21) and a first limiting component (22) disposed inside one side of the two sets of box-type housings (1). The moving mechanism (2) also includes a support component (23) disposed below the inside of the two sets of box-type housings (1). A reset component (25) is provided on one side of the upper end of the support component (23), and a second adjustment component (26) is provided on the other side of the upper end of the support component (23).
3. A prefabricated substation for wind power generation as described in claim 2, characterized in that: The connecting assembly (21) includes a fourth gear (213) fixedly connected to the driven shaft (151) and a third gear (211) rotatably connected inside the adjusting box (13). The third gear (211) meshes with the fourth gear (213). The connecting assembly (21) also includes a connecting plate (212) disposed inside the box-type outer shell (1). A second tooth groove (2121) is provided on one side of the connecting plate (212), and a first trapezoidal block (2122) is fixedly connected to the lower side of the other side of the connecting plate (212). The two sets of second tooth grooves (2121) mesh with the third gear (211) and the fourth gear (213) respectively. One set of the connecting plates (212) corresponds to the first opening (132), and the other set of the connecting plates (212) corresponds to the adjusting groove (131).
4. A prefabricated substation for wind power generation as described in claim 3, characterized in that: The first limiting component (22) includes a limiting plate (221) disposed on one side inside the box-type outer shell (1). A groove (222) is provided on one side of the limiting plate (221). The two sets of connecting plates (212) are slidably connected to the two sets of grooves (222). One end of the connecting plate (212) passes through the groove (14) and extends into the interior of the adjustment box (13). The support leg (12) is provided with a hollow groove (24). The support component (23) includes a connecting frame (231) slidably connected inside the box-type outer shell (1). Support rods (232) are fixedly connected to the lower periphery of the connecting frame (231). A caster wheel (233) is fixedly connected to the lower part of the support rod (232). The caster wheel (233) is located inside the hollow groove (24).
5. A prefabricated substation for wind power generation as described in claim 4, characterized in that: The reset assembly (25) includes a spring column (252) fixedly connected to one side of the connecting frame (231). There are two sets of spring columns (252). A positioning plate (251) is fixedly connected above the two sets of spring columns (252). The positioning plate (251) is fixedly connected inside the box-type outer shell (1). The second adjustment assembly (26) includes a support plate (262) fixedly connected to the other side of one side of the connecting frame (231). A second trapezoidal block (261) is fixedly connected above the support plate (262).
6. A prefabricated substation for wind power generation as described in claim 1, characterized in that: The heat dissipation mechanism (3) includes a collection component (31) disposed above the sunshade (11) and a collection box (32) fixedly connected to the inside of the box-type outer shell (1). The heat dissipation mechanism (3) also includes a heat dissipation plate (332) disposed at the bottom of the inner wall of the box-type outer shell (1). The inside of the collection box (32) is provided with a second limiting component (35) and a second heat dissipation component (36).
7. A prefabricated substation for wind power generation as described in claim 6, characterized in that: The collection component (31) includes a guide channel (311) on the sunshade (11) and a collection trough (312) on one side above the sunshade (11). The guide channel (311) is provided in multiple sets, and the multiple sets of guide channels (311) are connected to the collection trough (312). The first heat dissipation component (33) includes a heat dissipation plate (332) fixedly connected to the bottom of the inner wall of the box-type outer shell (1). A heat dissipation water pipe (331) is fixedly connected above the heat dissipation plate (332), and the two ends of the heat dissipation water pipe (331) are respectively fixedly connected to the two sides of the collection box (32).
8. A prefabricated substation for wind power generation as described in claim 7, characterized in that: An air outlet (322) is provided on the upper side of one side of the collection box (32). A connecting block (321) is fixedly connected to the upper side of the outer wall of the collection box (32). The connecting block (321) is fixedly connected to the collection trough (312). A diversion box (34) and a water pump (323) are fixedly connected inside the collection box (32). The diversion box (34) is fixedly connected to one end of the heat dissipation water pipe (331). The water pump (323) is fixedly connected to the other end of the heat dissipation water pipe (331). A round hole (341) is provided on the upper side of the diversion box (34). Multiple sets of round holes (341) are provided.
9. A prefabricated substation for wind power generation as described in claim 8, characterized in that: The second limiting component (35) includes an air inlet pipe (351) disposed above one side of the collection box (32), and a baffle (352) is fixedly connected below the air inlet pipe (351). One end of the air inlet pipe (351) penetrates one side of the outer wall of the box-type outer shell (1). The second limiting component (35) also includes a water outlet pipe (353) disposed on one side of the collection box (32), and the other end of the water outlet pipe (353) penetrates one side of the outer wall of the box-type outer shell (1). The air inlet pipe (351) is located below one end of the heat dissipation water pipe (331), and the water outlet pipe (353) is located below the air inlet pipe (351).
10. A prefabricated substation for wind power generation as described in claim 7, characterized in that: The second heat dissipation assembly (36) includes an impeller (361) rotatably connected to one end of a heat dissipation pipe (331), a first driven roller (362) fixedly connected to one side of the impeller (361), and a fan (365) rotatably connected to the inside of a baffle (352), a second driven roller (364) rotatably connected to one side of the fan (365), and belts (363) installed on the second driven roller (364) and the first driven roller (362).
Citation Information
Patent Citations
Box-type substation with cooling device
CN213125338U
Box-type substation
CN214798535U