High-power automatic transformer with integrated structure

By designing adaptive installation and positioning components, the problems of low installation efficiency and insufficient stability of transformers on different shaped bearing platforms are solved, achieving fast, stable and theft-proof installation.

CN122067896APending Publication Date: 2026-05-19LIAONING YONGFA ELECTRIC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
LIAONING YONGFA ELECTRIC CO LTD
Filing Date
2026-03-04
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing high-power integrated automated transformers suffer from poor adaptability, insufficient stability, and cumbersome operation during installation, especially when installed on bearing platforms of different shapes, resulting in low efficiency and easy loss.

Method used

The system employs adaptive installation and positioning components, including a first mounting plate, a second mounting plate, a rotating cylinder, a mounting base, a sliding ball, and a positioning plate. Through the cooperation of these components, the transformer achieves adaptive installation and rapid positioning. Locking devices, telescopic rods, magnets, and other structures enhance the stability and anti-theft features of the installation.

Benefits of technology

This technology enables rapid installation and positioning of transformers on bearing platforms of different shapes, improving construction efficiency, enhancing installation stability, and reducing the risk of malicious dismantling and theft.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a high-power automatic transformer with an integrated structure, and belongs to the technical field of transformers. The high-power automatic transformer comprises a transformer body, a supporting frame is fixedly mounted at the bottom of the transformer body, a mounting mechanism is arranged at the bottom of the supporting frame, and a bearing platform is arranged at the bottom of the mounting mechanism; according to the high-power automatic transformer with the integrated structure, when the first mounting plate and the second mounting plate are pushed to rotate, the high-power automatic transformer can rotate around the axis of the rotating cylinder through cooperation of parts, and when the first mounting plate and the second mounting plate rotate to a specified angle, the self-adaptive mounting assembly can rotate around the axis of the rotating cylinder; the first mounting plate and the second mounting plate are placed on the bearing platform, and the first mounting plate and the second mounting plate are mounted on the bearing platform through the locking pieces, so that the first mounting plate and the second mounting plate can adapt to bearing platforms of different shapes to be mounted conveniently.
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Description

Technical Field

[0001] This invention relates to the field of transformer technology, specifically to a high-power integrated automated transformer. Background Technology

[0002] With the optimization of energy structure and the accelerated construction of smart grids, the demand for power density, integration, and automation levels of core equipment in power systems continues to rise. High-power transformers, as key carriers for power transmission and conversion, are widely used in new energy grid integration, urban distribution network upgrades, and large-scale industrial applications; their performance directly determines the efficiency and stability of the power grid. Before use, transformers need to be installed in suitable locations for convenient operation.

[0003] Authorization announcement number CN120565240B discloses a high-power integrated automated transformer, relating to the field of transformer technology. It includes a gable roof and a transformer body, with a positioning adjustment mechanism, a quick installation mechanism, and a buffer protection mechanism provided between the gable roof and the transformer body. The positioning adjustment mechanism includes triangular bases fixedly connected to both sides of the top of the gable roof, each triangular base having a moving groove at its top. A positioning plate is fixedly connected to the center of the top of the gable roof, and a second V-shaped plate is also included, with the bottom end of the second V-shaped plate matching the top end of the positioning plate. This invention uses a roller structure to allow the transformer body to move within a certain range. The device moves on the A-frame roof and, through the cooperation of the positioning column and the positioning groove, can quickly and accurately align the position of the mounting groove and the mounting column, avoiding the need for a crane during adjustment, thus avoiding tedious adjustments, reducing the time required, and improving adjustment efficiency. In this invention, the transformer body needs to be installed on a matching A-frame roof. If the angle of the A-frame roof changes, the positioning plate cannot be assembled, indicating poor adaptability of the positioning adjustment mechanism. Furthermore, the structure used to install and fix the transformer body in this invention involves the interlocking of components through springs, which results in poor stability, is cumbersome to operate, and is prone to loss. Summary of the Invention

[0004] The purpose of this invention is to provide a high-power integrated automated transformer, which can rotate around the axis of a rotating cylinder by pushing the first mounting plate and the second mounting plate to rotate through the cooperation of the components. The rotation of the first mounting plate and the second mounting plate can be adapted to the installation of bearing platforms of different shapes.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a high-power integrated automated transformer, comprising: a transformer, a support frame fixedly installed at the bottom of the transformer, an installation mechanism at the bottom of the support frame, a bearing platform at the bottom of the installation mechanism, and the installation mechanism including an adaptive installation component and a positioning component; The adaptive mounting assembly includes a first mounting plate, a second mounting plate, and a rotating cylinder. The rotating cylinder is provided on the bearing platform. The first mounting plate and the second mounting plate are symmetrically arranged at the axis of the rotating cylinder. The side of the first mounting plate and the second mounting plate away from the rotating cylinder is fixed to the bearing platform by a locking member. The first mounting plate and the second mounting plate can rotate in opposite directions around the outer surface of the rotating cylinder, thereby enabling the first mounting plate and the second mounting plate to adapt to bearing platforms of different shapes. The positioning assembly includes a mounting base, a sliding ball, a first positioning plate, and a second positioning plate. Two mounting bases are symmetrically installed at the center of the bottom of the support frame. Each mounting base has several sliding balls installed at equal intervals through an arc-shaped groove at its bottom. The surfaces of the first and second mounting plates are each provided with a first positioning plate. The upper surface of each first positioning plate is symmetrically connected to two second positioning plates through a sliding member. When the two first and second positioning plates move towards each other, they can push the mounting base to make the sliding ball slide on the first mounting plate and the second positioning plate. When the sliding ball slides, it can position the support frame and the transformer.

[0006] Preferably, the adaptive mounting assembly further includes arc-shaped grooves, arc-shaped sliding plates, and first lead screws. Two arc-shaped grooves are formed on the outer surfaces of the rotating cylinder near the first mounting plate and the second mounting plate, and arc-shaped sliding plates are slidably connected inside the four arc-shaped grooves. A first lead screw is rotatably connected through the center of the outer surface of each arc-shaped sliding plate. Every two first lead screws form a group, and the two groups of first lead screws are rotatably connected to the first mounting plate and the second mounting plate, respectively.

[0007] Preferably, the positioning assembly further includes an internal threaded slider and a slide groove. The first mounting plate and the second mounting plate are both provided with slide grooves near the upper part of the first lead screw. Both ends of the first positioning plate are fixedly installed with internal threaded sliders that cooperate with the slide grooves. The interior of the internal threaded slider is connected to the outer surface of the first lead screw by threads.

[0008] Preferably, the positioning assembly further includes a second lead screw, a worm gear, a worm, and a positioning element. Each second positioning plate is equipped with a positioning element, and a second lead screw is threaded between two positioning elements. The two ends of the two second lead screws are respectively mounted on the upper surfaces of the first mounting plate and the second mounting plate through bearing seats. A worm gear is fixedly installed on the outer surface of the second lead screw, and a worm that cooperates with the worm gear is fixedly installed on the outer surface of the first lead screw near the slide groove.

[0009] Preferably, the positioning assembly further includes a rotating rod and a first reduction gear set. The rotating rod is axially rotatably connected to the inner cavity of the rotating cylinder, and the surface of the rotating rod is connected to the first lead screw through the first reduction gear set.

[0010] Preferably, the positioning assembly further includes a rotating shaft, a second reduction gear set, and a hand valve. The rotating shaft is rotatably mounted through the surface of the rotating cylinder. The rotating shaft is connected to the rotating rod through the second reduction gear set. The hand valve is movably mounted on the top of the rotating shaft through a hexagonal groove.

[0011] Preferably, the positioning component includes an internally threaded sleeve, a first positioning groove, a connecting groove, and a plug rod. The internally threaded sleeve is rotatably installed inside the second positioning plate through a through hole. The internally threaded sleeve is threadedly connected to the surface of the second lead screw. The outer surface of the internally threaded sleeve is provided with a first positioning groove. The upper part of the second positioning plate is provided with a connecting groove that communicates with the first positioning groove. The plug rod that mates with the first positioning groove is movably installed inside the connecting groove. An elastic element connects the plug rod to the second positioning plate.

[0012] Preferably, the mounting mechanism further includes a fixing component, which includes a fixing post and an internal hexagon bolt. The mounting base has fixing posts at both ends. The surface of each fixing post has a fan-shaped fixing groove that slides through a second positioning plate. Slider blocks are movably mounted at both ends of the mounting base via T-slots. One end of each fixing post is rotatably connected to a slider. A strip-shaped fixing groove is provided on the side of the second positioning plate. A locking groove is provided through the other end of each fixing post. An internal hexagon bolt that mates with the strip-shaped fixing groove is threaded into the locking groove.

[0013] Preferably, the fixing assembly further includes a telescopic rod and a fixing plate. The support frame and the first mounting plate and the second mounting plate are all fixedly installed with fixing plates by locking members. The two fixing plates are rotatably connected by a connecting shaft.

[0014] Preferably, the installation mechanism includes an anti-theft component, which includes a slot, an armature, and a second positioning groove. The end of the rotating cylinder and the end of the fixed column are both provided with slots. An armature is movably installed inside the slot through an elastic element. The surfaces of the rotating shaft and the internal hexagonal bolt are both provided with a second positioning groove that cooperates with the armature.

[0015] Compared with the prior art, the beneficial effects of the present invention are: a high-power integrated automated transformer.

[0016] 1. When the first mounting plate and the second mounting plate are pushed to rotate, they can rotate around the axis of the rotating cylinder through the cooperation of the parts. When the first mounting plate and the second mounting plate rotate to the specified angle, the first mounting plate and the second mounting plate are placed on the bearing platform, and the first mounting plate and the second mounting plate are installed on the bearing platform by the locking parts, so that the first mounting plate and the second mounting plate can be adapted to the bearing platform of different shapes for installation. 2. Rotating the hand valve 5 can drive the two first positioning plates and the second positioning plate to move towards each other through the cooperation of the parts. When the first positioning plate and the second positioning plate come into contact with the mounting base, they will push the mounting base to move. When the mounting base moves, it can drive the sliding ball to roll on the first mounting plate and the second mounting plate. When both the first positioning plate and the second positioning plate are in contact with the surface of the mounting base, the support frame and the transformer can be positioned, which facilitates quick positioning after the support frame is placed and improves construction efficiency. 3. The fixing column can be rotated according to the inclination angle of the second positioning plate. When the fixing column rotates, it will drive the fan-shaped fixing groove to rotate. When the upper part of the inner side of the fan-shaped fixing groove is flush with the upper surface of the second positioning plate, the fixing column can be pulled down to move. When the fixing column moves, it can drive the fan-shaped fixing groove to slide to the side of the second positioning plate. Then the internal hex bolt is rotated. When the internal hex bolt rotates, it will slide with the locking groove. When the internal hex bolt slides with the thread, its end will be inserted into the strip fixing groove for fastening. After the internal hex bolt is inserted into the strip fixing groove, the support frame can be fixed on the first mounting plate and the second mounting plate, which facilitates quick fixing after the support frame is positioned. 4. The telescopic rod is equipped with a fixing plate at the end of the telescopic rod that is fixed to the first mounting plate and the second mounting plate by locking parts. Then the length of the telescopic rod can be adjusted. After the length of the telescopic rod is adjusted, the fixing plate at the top can be fixed to the surface of the support frame by locking parts. After the telescopic rod is installed, it can support the support frame and the transformer, making the transformer more stable during long-term use. 5. When the transformer and support frame are placed on the first mounting plate and the second mounting plate, magnets can be placed at the ends of the slots on the fixed column and the rotating cylinder, respectively. After the magnets are placed, they can magnetically attract the armature. After being magnetically attracted, the armature will slide into the inside of the slot, and its end will be magnetically attracted to the magnet. When the hexagonal bolt and the rotating shaft 3 are rotated to the designated position, they will drive the second positioning groove to align with the slot. At this time, the magnet can be disassembled, and the armature can be reset by the spring force. When the armature is reset, its end will be inserted into the inside of the second positioning groove to position the hexagonal bolt and the rotating shaft 3. This greatly reduces the possibility of malicious disassembly and theft of the transformer during use. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the three-dimensional structure of the herringbone-shaped support platform of the present invention; Figure 2 This is a schematic diagram of the three-dimensional structure of the linear support platform of the present invention; Figure 3 This is a front view schematic diagram of the support frame structure of the present invention; Figure 4 This is a schematic diagram of the three-dimensional cross-sectional structure of the present invention; Figure 5 This is the present invention. Figure 4 A partially enlarged structural diagram; Figure 6 This is the present invention. Figure 4 Enlarged structural diagram of section A; Figure 7 This is the present invention. Figure 4 Enlarged structural diagram of section B; Figure 8 This is a schematic diagram of the three-dimensional cross-sectional structure of the second positioning plate of the present invention; Figure 9 This is the present invention. Figure 8 Enlarged structural diagram of section C; Figure 10 This is a side view cross-sectional structural diagram of the fixed column of the present invention.

[0018] In the diagram: 100, Transformer; 200. Support frame; 300. Installation mechanism; 310. Adaptive mounting assembly; 311. First mounting plate; 312. Second mounting plate; 313. Rotating cylinder; 314. Arc-shaped slide; 315. Arc-shaped sliding plate; 316. First lead screw; 320. Positioning assembly; 321. Mounting base; 322. Sliding ball; 323. First positioning plate; 324. Second positioning plate; 325. Internal threaded slider; 326. Slide groove; 327. Second lead screw; 328. Worm gear; 329. Worm; 3210, Positioning component; 32101, Internal threaded sleeve; 32102, First positioning groove; 32103, Connecting groove; 32104, Insert rod; 3211, Rotating rod; 3212, First reduction gear set; 3213, Rotating shaft; 3214, Second reduction gear set; 3215, Hand valve; 330. Fixing component; 331. Fixing post; 332. Sector-shaped fixing groove; 333. Slider; 334. Strip-shaped fixing groove; 335. Locking groove; 336. Socket head bolt; 337. Telescopic rod; 338. Fixing plate; 340. Anti-theft component; 341. Slot; 342. Armature; 343. Second positioning slot; 400. Supporting platform. Detailed Implementation

[0019] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.

[0020] Furthermore, the terms "installation," "setup," "equipped with," "connection," "linking," and "socketing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0021] Please see Figures 1-5 The present invention provides an embodiment of a high-power integrated automated transformer, comprising: a transformer 100, a support frame 200 fixedly mounted on the bottom of the transformer 100, an installation mechanism 300 provided at the bottom of the support frame 200, and a bearing platform 400 provided at the bottom of the installation mechanism 300. The bearing platform 400 can be herringbone or straight. The installation mechanism 300 includes an adaptive installation component 310 and a positioning component 320. It should be noted that the adaptive mounting component 310 can be fixed by rotating to adapt to the shape of the bearing platform 400. After the adaptive mounting component 310 is fixed, the transformer 100 and the support frame 200 can be placed on the adaptive mounting component 310 by hoisting equipment. After the transformer 100 and the support frame 200 are placed, the support frame 200 can be pushed by operating the positioning component 320 so that the transformer 100 and the support frame 200 can be placed stably.

[0022] like Figure 1 , Figure 2 , Figures 4-7As shown, the adaptive mounting assembly 310 includes a first mounting plate 311, a second mounting plate 312, and a rotating cylinder 313. The rotating cylinder 313 is provided on the support platform 400. The first mounting plate 311 and the second mounting plate 312 are symmetrically arranged at the axis of the rotating cylinder 313. The side of the first mounting plate 311 and the second mounting plate 312 away from the rotating cylinder 313 is fixed to the support platform 400 by locking components. The locking components can be composed of bolts, nuts, U-shaped grooves, and other components. The bolts are pre-embedded in the support platform 400. The first mounting plate 311 and the second mounting plate 312 can rotate in opposite directions around the outer surface of the rotating cylinder 313, thereby enabling the first mounting plate 311 and the second mounting plate 312 to adapt to support platforms 400 of different shapes. It is conceivable that the first mounting plate 311 and the second mounting plate 312 are initially in contact with each other at adjacent points. When the bearing platform 400 is in a herringbone shape, the first mounting plate 311 and the second mounting plate 312 can be rotated so that the first mounting plate 311 and the second mounting plate 312 can rotate around the axis of the rotating cylinder 313. When the first mounting plate 311 and the second mounting plate 312 are rotated to a specified angle, the first mounting plate 311 and the second mounting plate 312 are placed on the herringbone bearing platform 400, and the U-shaped groove is slid to the side of the bolt. When the U-shaped groove moves to a specified position, the nut and the bolt can be rotated to slide threadedly. When the nut thread slides to the surface of the first mounting plate 311 and the second mounting plate 312, it is locked. When the support platform 400 is in a straight line shape, the first mounting plate 311 and the second mounting plate 312 can be fully unfolded into a straight line shape, and the unfolded first mounting plate 311 and the second mounting plate 312 can be placed on the support platform 400 and then fixed by locking components.

[0023] like Figure 2 , Figures 4-7 As shown, the adaptive mounting assembly 310 also includes an arc-shaped groove 314, an arc-shaped slide plate 315, and a first lead screw 316. The rotating cylinder 313 has two arc-shaped grooves 314 on each of the outer surfaces of the first mounting plate 311 and the second mounting plate 312. The arc-shaped slide plates 315 are slidably connected inside the four arc-shaped grooves 314. The first lead screw 316 is rotatably connected through the center of the outer surface of each arc-shaped slide plate 315. Every two first lead screws 316 form a group, and the two groups of first lead screws 316 are rotatably connected to the first mounting plate 311 and the second mounting plate 312, respectively. It is worth noting that when the first mounting plate 311 and the second mounting plate 312 rotate, they can drive the first lead screw 316 to rotate. When the first lead screw 316 rotates, it will drive the arc-shaped slide plate 315 to rotate. When the arc-shaped slide plate 315 rotates, it can slide inside the arc-shaped slide groove 314. The arc-shaped slide groove 314 can limit the arc-shaped slide plate 315.

[0024] like Figures 1-8 As shown, the positioning component 320 includes a mounting base 321, a sliding ball 322, a first positioning plate 323, and a second positioning plate 324. Two mounting bases 321 are symmetrically installed at the center of the bottom of the support frame 200. Each mounting base 321 has several sliding balls 322 installed at equal intervals through an arc-shaped groove at its bottom. The surfaces of the first mounting plate 311 and the second mounting plate 312 are provided with first positioning plates 323. The upper surface of each first positioning plate 323 is symmetrically connected to two second positioning plates 324 through a sliding member. The sliding member is generally composed of two T-shaped sliding grooves and an I-shaped slider. When the two first positioning plates 323 and the second positioning plates 324 move towards each other, they can push the mounting base 321 to make the sliding ball 322 slide on the first mounting plate 311 and the second positioning plate 324. When the sliding ball 322 slides, it can position the support frame 200 and the transformer 100. It is understood that when the support frame 200 is placed, the support frame 200 will drive the sliding ball 322 to fall on the surfaces of the first mounting plate 311 and the second mounting plate 312 via the mounting base 321. After the support frame 200 is placed, its position will be slightly off. At this time, turning the hand valve 3215 can drive the two first positioning plates 323 and the second positioning plate 324 to move towards each other through the cooperation of the components. When the second positioning plate 324 moves, the T-shaped groove on its lower surface will push the I-shaped block to slide in the T-shaped groove on the upper surface of the first positioning plate 323. When the first positioning plate 323 moves, the T-shaped groove on its upper surface will push the I-shaped block to slide in the second positioning plate 323. The plate 324 slides in the T-shaped groove on the lower surface. When the two first positioning plates 323 and the second positioning plate 324 move towards each other, one of the first positioning plates 323 and the second positioning plate 324 will contact the mounting base 321 first. At this time, the first positioning plate 323 and the second positioning plate 324 continue to move and push the mounting base 321 to move. When the mounting base 321 moves, it can drive the sliding ball 322 to roll on the first mounting plate 311 and the second mounting plate 312. When both the first positioning plates 323 and the second positioning plate 324 are in contact with the surface of the mounting base 321, the support frame 200 and the transformer 100 can be positioned.

[0025] like Figure 2 , Figures 4-7 As shown, the positioning assembly 320 also includes an internal thread slider 325 and a groove 326. The upper part of the first mounting plate 311 and the second mounting plate 312 near the first lead screw 316 are both provided with grooves 326. Both ends of the first positioning plate 323 are fixedly installed with internal thread sliders 325 that cooperate with the grooves 326. The interior of the internal thread slider 325 is connected to the outer surface of the first lead screw 316 by threads. It should be understood that when the first lead screw 316 rotates, it can rotate inside the first mounting plate 311 and the second mounting plate 312. When the first lead screw 316 rotates, it can drive the internal thread slider 325 to slide in the thread. When the internal thread slider 325 slides in the thread, it can slide in the slide groove 326. When the internal thread slider 325 slides, it can drive the first positioning plate 323 to move against the first mounting plate 311 and the second mounting plate 312.

[0026] like Figure 2 , Figures 4-8 As shown, the positioning assembly 320 also includes a second lead screw 327, a worm gear 328, a worm 329, and a positioning element 3210. Each second positioning plate 324 is equipped with a positioning element 3210. A second lead screw 327 is threadedly connected between two positioning elements 3210. The two ends of the two second lead screws 327 are respectively mounted on the upper surfaces of the first mounting plate 311 and the second mounting plate 312 through bearing seats. A worm gear 328 is fixedly installed on the outer surface of the second lead screw 327. A worm 329 that cooperates with the worm gear 328 is fixedly installed on the outer surface of the first lead screw 316 near the slide groove 326. It should be noted that when the first lead screw 316 rotates, it can drive the worm 329 to rotate. When the worm 329 rotates, it will drive the worm wheel 328 to rotate. When the worm wheel 328 rotates, it will drive the second lead screw 327 to rotate. When the second lead screw 327 rotates, it can drive the two second positioning plates 324 to slide in opposite directions through the positioning member 3210.

[0027] like Figures 1-6 , Figure 8 As shown, the positioning assembly 320 also includes a rotating rod 3211 and a first reduction gear set 3212. The rotating rod 3211 is axially rotatably connected to the inner cavity of the rotating cylinder 313. The surface of the rotating rod 3211 is connected to the first lead screw 316 through the first reduction gear set 3212. The positioning assembly 320 also includes a rotating shaft 3213, a second reduction gear set 3214, and a hand valve 3215. The rotating shaft 3213 is rotatably mounted through the surface of the rotating cylinder 313. The rotating shaft 3213 is connected to the rotating rod 3211 through the second reduction gear set 3214. The top end of the rotating shaft 3213 is movably mounted with the hand valve 3215 through a hexagonal groove. It is conceivable that when the hand valve 3215 rotates, it will drive the rotating shaft 3213 to rotate. When the rotating shaft 3213 rotates, it will drive the second reduction gear set 3214 to work. When the second reduction gear set 3214 works, it will drive the rotating rod 3211 to rotate inside the rotating cylinder 313. When the rotating rod 3211 rotates, it will drive the first reduction gear set 3212 to rotate. When the first reduction gear set 3212 rotates, it will drive the first lead screw 316 to rotate. Furthermore, the rotation speed of the rotating rod 3211 and the first lead screw 316 can be reduced through the cooperation of the second reduction gear set 3214 and the first reduction gear set 3212, thereby making it easier to rotate the hand valve 3215. The first positioning plate 323 and the second positioning plate 324 are more stable when pushing the support frame 200.

[0028] like Figure 1 , Figure 2 , Figures 4-9 As shown, the positioning component 3210 includes an internally threaded sleeve 32101, a first positioning groove 32102, a connecting groove 32103, and a plug rod 32104. The internally threaded sleeve 32101 is rotatably installed inside the second positioning plate 324 through a through hole. The internally threaded sleeve 32101 is threadedly connected to the surface of the second lead screw 327. The outer surface of the internally threaded sleeve 32101 is provided with the first positioning groove 32102. The upper part of the second positioning plate 324 is provided with a connecting groove 32103 that communicates with the first positioning groove 32102. The plug rod 32104 that cooperates with the first positioning groove 32102 is movably installed inside the connecting groove 32103. An elastic element, which can be a spring, is connected between the plug rod 32104 and the second positioning plate 324. It is understood that when the second lead screw 327 rotates, it drives the internal threaded sleeve 32101 to slide threadedly. When the internal threaded sleeve 32101 slides threadedly, it can move the second positioning plate 324 through the cooperation of the insertion rod 32104. Since the distance between the first positioning plate 323, the second positioning plate 324, and the mounting base 321 is the same when the first mounting plate 311 and the second mounting plate 312 are assembled with the straight-line support platform 400, the first mounting plate 311 and the second mounting plate 312 will rotate when assembled with the herringbone support platform 400. This will increase the distance the first positioning plate 323 moves towards the mounting base 321. Therefore, when the first positioning plate 323 and the second positioning plate 324 move towards the mounting base 321 simultaneously, the second positioning plate 324 will move towards the mounting base 321 first. Positioning is then performed. At this point, the insertion rod 32104 can be pulled. When the insertion rod 32104 moves, it slides within the first positioning groove 32102 and the connecting groove 32103. The sliding of the insertion rod 32104 stretches the spring. When the end of the insertion rod 32104 slides out of the first positioning groove 32102, the insertion rod 32104 is twisted to rotate the surface extension block into the annular groove on the inner wall of the connecting groove 32103. The spring itself then fixes the insertion rod 32104. After the insertion rod 32104 is fixed, the second lead screw 327 rotates, which drives the internal thread sleeve 32101 to rotate within the through hole of the second positioning plate 324. The second positioning plate 324 remains stationary, allowing the first positioning plate 323 to continue moving after the second positioning plate 324 positions the mounting base 321.

[0029] like Figures 1-5 , Figure 7 , Figure 8 and Figure 10 As shown, the mounting mechanism 300 also includes a fixing component 330, which includes a fixing post 331 and an internal hexagon bolt 336. The mounting base 321 has fixing posts 331 at both ends. The surface of the fixing post 331 is provided with a fan-shaped fixing groove 332 that is slidably connected to the second positioning plate 324. The two ends of the mounting base 321 are movably mounted with sliders 333 through T-slots. One end of the fixing post 331 is rotatably connected to the slider 333. The side of the second positioning plate 324 is provided with a strip-shaped fixing groove 334. The other end of the fixing post 331 is provided with a locking groove 335. The locking groove 335 is threaded with an internal hexagon bolt 336 that mates with the strip-shaped fixing groove 334. It should be understood that after the second positioning plate 324 positions the mounting base 321, the fixing column 331 can be rotated according to the tilt angle of the second positioning plate 324. When the fixing column 331 rotates, it will drive the fan-shaped fixing groove 332 to rotate. When the upper part of the inner side of the fan-shaped fixing groove 332 is flush with the upper surface of the second positioning plate 324, the fixing column 331 can be pulled down to move. When the fixing column 331 moves, it can drive the slider 333 to slide down in the T-slot. When the fixing column 331 moves, it can drive the fan-shaped fixing groove 332 to slide to the side of the second positioning plate 324. Then the hexagon socket bolt 336 is rotated. When the hexagon socket bolt 336 rotates, it will slide with the locking groove 335. When the hexagon socket bolt 336 slides with the thread, its end will be inserted into the strip fixing groove 334 for fastening. After the hexagon socket bolt 336 is inserted into the strip fixing groove 334, the support frame 200 can be fixed on the first mounting plate 311 and the second mounting plate 312.

[0030] like Figures 1-7 As shown, the fixing assembly 330 also includes a telescopic rod 337 and a fixing plate 338. The support frame 200 and the first mounting plate 311 and the second mounting plate 312 are all fixedly installed with fixing plates 338 by locking members. The telescopic rod 337 is rotatably connected between the two fixing plates 338 by a connecting shaft. It should be noted that the fixing plate 338 at the end of the telescopic rod 337 is fixed to the first mounting plate 311 and the second mounting plate 312 by locking components. Then the length of the telescopic rod 337 is adjusted. After the length of the telescopic rod 337 is adjusted, the fixing plate 338 at the top can be fixedly installed on the surface of the support frame 200 by locking components. After the telescopic rod 337 is installed, it can support the support frame 200 and the transformer 100, and the transformer 100 can be more stable during long-term use.

[0031] like Figures 1-8 , Figure 10 As shown, the installation mechanism 300 includes an anti-theft component 340, which includes a slot 341, an armature 342, and a second positioning groove 343. The end of the rotating cylinder 313 and the end of the fixed column 331 are both provided with slots 341. The armature 342 is movably installed inside the slot 341 through an elastic element, which can be a spring. The surfaces of the rotating shaft 3213 and the internal hex bolt 336 are both provided with second positioning grooves 343 that cooperate with the armature 342. It is conceivable that when the transformer 100 and the support frame 200 are placed on the first mounting plate 311 and the second mounting plate 312, magnets can be placed at the ends of the slots 341 located on the fixed post 331 and the rotating cylinder 313, respectively. After the magnets are placed, they can magnetically attract the armature 342. After being magnetically attracted, the armature 342 will slide into the interior of the slot 341, and its end will be magnetically attracted to the magnet. When the armature 342 slides in the slot 341, it will compress the spring. After the armature 342 is magnetically attracted, it can perform... During the installation process, when the support frame 200 is fixed, the hexagon socket bolt 336 will be installed in the locking groove 335, and the fixing post 331 will be fixed to the first positioning plate 323. When the hexagon socket bolt 336 is installed, it can drive the second positioning groove 343 on the surface to align with the slot 341. At this time, the magnet can be disassembled, and the armature 342 can be reset by the spring force. When the armature 342 is reset, its end will be inserted into the interior of the second positioning groove 343 to position the hexagon socket bolt 336. After the support frame 200 is placed, the rotating shaft 3213 can be rotated by turning the hand valve 3215. When the rotating shaft 3213 rotates, it can drive the first positioning plate 323 and the second positioning plate 324 to position the support frame 200 through the cooperation of the components. At the same time, the rotating shaft 3213 will drive the second positioning groove 343 on the surface to dock with the slot 341. After the second positioning groove 343 docks with the slot 341, the magnet can be disassembled. The armature 342 can be reset by the spring force. The reset of the armature 342 can position the rotating shaft 3213. This structure can greatly reduce the possibility of the transformer 100 being maliciously disassembled or stolen.

[0032] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A high-power integrated automated transformer, comprising: A transformer, wherein a support frame is fixedly installed at the bottom of the transformer, an installation mechanism is provided at the bottom of the support frame, and a bearing platform is provided at the bottom of the installation mechanism, characterized in that the installation mechanism includes an adaptive installation component and a positioning component; The adaptive mounting assembly includes a first mounting plate, a second mounting plate, and a rotating cylinder. The rotating cylinder is provided on the bearing platform. The first mounting plate and the second mounting plate are symmetrically arranged at the axis of the rotating cylinder. The side of the first mounting plate and the second mounting plate away from the rotating cylinder is fixed to the bearing platform by a locking member. The first mounting plate and the second mounting plate can rotate in opposite directions around the outer surface of the rotating cylinder, thereby enabling the first mounting plate and the second mounting plate to adapt to bearing platforms of different shapes. The positioning assembly includes a mounting base, a sliding ball, a first positioning plate, and a second positioning plate. Two mounting bases are symmetrically installed at the center of the bottom of the support frame. Each mounting base has several sliding balls installed at equal intervals through an arc-shaped groove at its bottom. The surfaces of the first and second mounting plates are each provided with a first positioning plate. The upper surface of each first positioning plate is symmetrically connected to two second positioning plates through a sliding member. When the two first and second positioning plates move towards each other, they can push the mounting base to make the sliding ball slide on the first mounting plate and the second positioning plate. When the sliding ball slides, it can position the support frame and the transformer.

2. The high-power integrated automated transformer according to claim 1, characterized in that: The adaptive mounting assembly further includes arc-shaped grooves, arc-shaped sliding plates, and first lead screws. Two arc-shaped grooves are formed on the outer surfaces of the rotating cylinder near the first mounting plate and the second mounting plate. Arc-shaped sliding plates are slidably connected inside the four arc-shaped grooves. A first lead screw is rotatably connected through the center of the outer surface of each arc-shaped sliding plate. Every two first lead screws form a group, and the two groups of first lead screws are rotatably connected to the first mounting plate and the second mounting plate, respectively.

3. The high-power integrated automated transformer according to claim 1, characterized in that: The positioning assembly also includes an internal threaded slider and a slide groove. The upper part of the first mounting plate and the second mounting plate near the first lead screw are both provided with slide grooves. Both ends of the first positioning plate are fixedly installed with internal threaded sliders that cooperate with the slide grooves. The interior of the internal threaded slider is connected to the outer surface of the first lead screw by threads.

4. A high-power integrated automated transformer according to claim 3, characterized in that: The positioning assembly further includes a second lead screw, a worm gear, a worm, and a positioning component. Each second positioning plate is equipped with a positioning component, and a second lead screw is threaded between two positioning components. The two ends of the two second lead screws are respectively mounted on the upper surfaces of the first mounting plate and the second mounting plate via bearing seats. A worm gear is fixedly mounted on the outer surface of the second lead screw, and a worm that cooperates with the worm gear is fixedly mounted on the outer surface of the first lead screw near the slide groove.

5. A high-power integrated automated transformer according to claim 4, characterized in that: The positioning assembly also includes a rotating rod and a first reduction gear set. The rotating rod is axially rotatably connected to the inner cavity of the rotating cylinder, and the surface of the rotating rod is connected to the first lead screw through the first reduction gear set.

6. A high-power integrated automated transformer according to claim 1, characterized in that: The positioning assembly also includes a rotating shaft, a second reduction gear set, and a hand valve. The rotating shaft is rotatably mounted through the surface of the rotating cylinder. The rotating shaft is connected to the rotating rod through the second reduction gear set. The hand valve is movably mounted on the top of the rotating shaft through a hexagonal groove.

7. A high-power integrated automated transformer according to claim 4, characterized in that: The positioning component includes an internally threaded sleeve, a first positioning groove, a connecting groove, and a plug rod. The internally threaded sleeve is rotatably installed inside the second positioning plate through a through hole. The internally threaded sleeve is threadedly connected to the surface of the second lead screw. The outer surface of the internally threaded sleeve has a first positioning groove. The upper part of the second positioning plate has a connecting groove that communicates with the first positioning groove. The plug rod that mates with the first positioning groove is movably installed inside the connecting groove. An elastic element connects the plug rod to the second positioning plate.

8. A high-power integrated automated transformer according to claim 6, characterized in that: The installation mechanism further includes a fixing component, which includes a fixing post and an internal hexagon bolt. The mounting base has fixing posts at both ends. The surface of the fixing post has a fan-shaped fixing groove that slides with the second positioning plate. The two ends of the mounting base are movably mounted with sliders through T-slots. One end of the fixing post is rotatably connected to the slider. The side of the second positioning plate has a strip-shaped fixing groove. The other end of the fixing post has a locking groove. The locking groove is threaded with an internal hexagon bolt that mates with the strip-shaped fixing groove.

9. A high-power integrated automated transformer according to claim 8, characterized in that: The fixing assembly also includes a telescopic rod and a fixing plate. The support frame and the first mounting plate and the second mounting plate are all fixedly installed with fixing plates by locking components. The two fixing plates are rotatably connected by a connecting shaft.

10. A high-power integrated automated transformer according to claim 9, characterized in that: The installation mechanism includes an anti-theft component, which includes a slot, an armature, and a second positioning groove. The end of the rotating cylinder and the end of the fixed column are both provided with slots. An armature is movably installed inside the slot through an elastic element. The surfaces of the rotating shaft and the internal hexagonal bolt are both provided with a second positioning groove that mates with the armature.