Device facilitating installation of photovoltaic box transformer substation

By designing a device that facilitates photovoltaic box change installation, using vertical cross leveling mechanisms and angle adjustment mechanisms, the problems of low leveling efficiency and difficult to ensure accuracy in photovoltaic box change installation are solved, and fast, accurate leveling and efficient installation process are achieved.

CN120049302AActive Publication Date: 2025-05-27SICHUAN HUADIAN JINCHUAN HYDROPOWER DEV CO LTD

Patent Information

Application Number
CN202510437778.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-09
Publication Date
2025-05-27
Estimated Expiration
2045-04-09

AI Technical Summary

Technical Problem

During the installation process of existing photovoltaic box substations, the installation base needs to be leveled, resulting in low installation efficiency and difficult to ensure leveling accuracy.

Method used

A device including two vertically crossed leveling mechanisms is designed, and the screw drives the slide table and slider to move through the adjustment shaft, and combines the angle adjustment mechanism and the switch structure to achieve rapid and accurate leveling.

Benefits of technology

The leveling steps are greatly reduced, the leveling difficulty is reduced, the installation efficiency of the substation box is improved, and the leveling accuracy is improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120049302A_ABST
    Figure CN120049302A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of transformer substation installation, in particular to a device convenient for photovoltaic box transformer substation installation, which comprises a transformer substation and two leveling mechanisms arranged on the lower side of the transformer substation and vertically crossed on a horizontal plane, the leveling mechanism comprises a lower plate and an upper plate, a rotating shaft is fixed to the lower side of the upper plate and rotationally connected to the upper side of the lower plate through two vertical plates, a sliding table and a screw driving the sliding table to move are slidably connected to the upper side of the lower plate, and an angle adjusting mechanism is arranged between the sliding table and the upper plate. One end of the sliding table is connected with an adjusting shaft through a clutch mechanism; and the clutch mechanism comprises a sleeve for connecting or separating the screw rod and the adjusting shaft and a driving mechanism for driving the sleeve to move. Through the two leveling mechanisms vertically arranged on the horizontal plane, the levelness of the upper plate is rapidly and accurately adjusted, the leveling steps are greatly reduced, the leveling difficulty is lowered, the leveling precision is higher, and the installation efficiency of the power transformation box is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of substation installation, and particularly relates to a device facilitating the installation of a photovoltaic box substation. Background Art

[0002] For a photovoltaic box substation, mainly the direct current generated by a photovoltaic panel is converted into alternating current through an inverter, and then the voltage is increased by a transformer and connected to the power grid. When large-scale photovoltaic power stations are constructed, multiple box substations need to be installed in a supporting manner. Therefore, higher requirements are put forward for the installation accuracy and installation efficiency of the box substation.

[0003] After retrieval, a Chinese patent with the publication number: CN217848770U discloses an assembled photovoltaic substation capable of rapid installation, including a housing and a plurality of installation bases. A plurality of legs are fixedly connected to the bottom of the housing. A plurality of positioning blocks are fixedly connected to the top of the installation base. A support sleeve is fixedly connected to the bottom of the housing. A threaded rod is threadedly connected inside the support sleeve. A clamping plate is fixedly connected to the bottom end of the threaded rod. A positioning sleeve is sleeved outside the threaded rod. A positioning spring is fixedly connected between the positioning sleeve and the clamping plate. The positioning spring is sleeved outside the threaded rod. A first fixed sleeve is fixedly connected inside the positioning block. A clamping rod is slidably connected inside the first fixed sleeve. A support spring is fixedly connected between the clamping rod and the first fixed sleeve.

[0004] Based on the above retrieval and combined with practical applications, it is found that: this installation structure can achieve the effect of rapidly installing a substation. However, before installation, the levelness of the installation base needs to be adjusted. Due to the diverse terrains of the locations where photovoltaic power stations are located, when adjusting the levelness of the base, it is necessary to adjust the heights of both ends of the base by adding and reducing gaskets, and at the same time measure the horizontal angle of the base with a level to achieve the leveling operation of the base. These operations require a large amount of time, not only greatly reducing the installation efficiency of the substation, but also making it difficult to guarantee the adjustment accuracy. Summary of the Invention

[0005] The purpose of the present invention is to provide a device facilitating the installation of a photovoltaic box substation to solve the problems raised in the above background art.

[0006] The technical solution of the present invention is: a device facilitating the installation of a photovoltaic box transformer, including a transformer box, and further including: two leveling mechanisms vertically intersecting at the lower side of the transformer box; the leveling mechanism includes a lower plate and an upper plate, a rotating shaft is fixed to the lower side of the upper plate, the rotating shaft is rotatably connected to the upper side of the lower plate through two vertical plates, a sliding table and a screw rod for driving the sliding table to move are slidably connected to the upper side of the lower plate, an angle adjustment mechanism is arranged between the sliding table and the upper plate, and one end of the sliding table is connected to an adjustment shaft through a clutch mechanism; the clutch mechanism includes a sleeve for connecting or separating the screw rod and the adjustment shaft and a driving mechanism for driving the sleeve to move; a switch structure for conducting the circuit of the driving mechanism when the upper plate is at a horizontal angle is arranged on one of the vertical plates and one end of the rotating shaft; the switch structure includes an inner cylinder fixed to one end of the rotating shaft and an outer cylinder rotatably connected to one side of the vertical plate, two electrode plates are symmetrically arranged inside the outer cylinder, and two conductive sliding plates are symmetrically and movably arranged on both sides of the inner cylinder.

[0007] Preferably, the driving mechanism includes two fork levers symmetrically and rotatably connected to the upper side of the lower plate through a rotating cylinder, a sliding sleeve slidably arranged on the upper side of the lower plate, and an electromagnet for attracting the sliding sleeve to move. Annular grooves are formed on the outer sides of the sliding sleeve and the sleeve, two fork pins are rotatably connected to both ends of each of the two fork levers, and the four fork pins are respectively in rolling fit with the inner sides of the two annular grooves. The two conductive sliding plates are connected in series in the circuit of the electromagnet in the driving mechanism.

[0008] Preferably, two fixing plates are fixed to the upper side of the lower plate. One end of one of the fixing plates is elastically connected to one end of the sliding sleeve through a return spring, and a guide rod is fixed to one end of the other fixing plate. The guide rod is slidably inserted into the interior of the sliding sleeve.

[0009] Preferably, the sleeve is a spline sleeve, and spline sleeve shafts one and two are respectively fixed to the outer sides of one ends of the screw rod and the adjustment shaft. The sleeve is slidably adapted to the outer sides of the spline sleeve shaft one and the spline sleeve shaft two.

[0010] Preferably, a small gear is rotatably connected to the upper side of the lower plate, a large gear meshing with the small gear is fixed to one end of the adjustment shaft, and a rotating handle is fixed to one end of the small gear.

[0011] Preferably, an insulating partition is fixed to the inner side of the inner cylinder, and both sides of the insulating partition are elastically connected to one ends of the two conductive sliding plates through two elastic pieces respectively.

[0012] Preferably, a suspension rod is fixed to the outer side of the outer cylinder, and a plumb bob is fixed to the end of the suspension rod.

[0013] Preferably, the lower end of the power transformation box is installed with an upper plate located on the upper side through a disassembly and assembly mechanism. The disassembly and assembly mechanism includes a mounting plate arranged on the upper side of the upper plate and four insertion rods fixed to the lower end of the power transformation box. A guide groove cylinder is rotatably connected to the upper side of the mounting plate at a position corresponding to each insertion rod. Each insertion rod is movably adapted to the inside of each guide groove cylinder. A guide groove is formed in the side wall of each guide groove cylinder, and a locking pin adapted to the guide groove is fixed to the outside of each insertion rod. A rotation linkage mechanism is further arranged between the four guide groove cylinders. The guide groove includes a vertical groove, a spiral groove, and a horizontal groove formed in the side wall of the guide groove cylinder. The two ends of the spiral groove are smoothly connected to one end of the vertical groove and the horizontal groove respectively.

[0014] Preferably, the rotation linkage mechanism includes a first fixing rod fixed to the outside of each guide groove cylinder and a central rod fixed to the center position on the upper side of the mounting plate. A second fixing rod is rotatably connected to the outside of the central rod. The lower end of the second fixing rod is elastically connected to the mounting plate through a torsion spring, and four bearings are fixed to the outside of the second fixing rod. The four bearings are respectively rotatably connected to the four first fixing rods through connecting rods.

[0015] Preferably, the angle adjustment mechanism includes a chute plate fixed to one end of the lower side of the upper plate and a slider rotatably connected to one end of the upper side of the slide table. An inclined groove is formed inside the chute plate, and the slider is slidably connected to the inside of the inclined groove.

[0016] The present invention provides a device for facilitating the installation of a photovoltaic power transformation box through improvement. Compared with the prior art, it has the following improvements and advantages:

[0017] Firstly: Through the leveling mechanism of the present invention, when the leveling mechanism is installed on the ground and tilts, the adjusting shaft can drive the screw rod to rotate. The screw rod drives the slide table and the slider on it to move. The angle of the upper plate can be adjusted through the cooperation between the slider and the inclined groove. At the same time, through the switch structure, only when the two conductive sliding pieces in the switch structure are at a horizontal angle, the two electrode pieces will be conducted, so that the electromagnetic iron circuit in the driving mechanism can be conducted, and thus the sliding sleeve in the clutch mechanism can be driven to move instantly, disconnecting the adjusting shaft and the screw rod, so that the screw rod stops rotating, and then the upper plate stops at a horizontal angle, realizing rapid and precise adjustment of the levelness of the upper plate. This not only greatly reduces the leveling steps and the leveling difficulty, but also has higher leveling accuracy, improving the installation efficiency of the power transformation box.

[0018] Secondly: Through the disassembly and assembly mechanism of the present invention, when the two leveling mechanisms adjust the mounting plate of the disassembly and assembly mechanism to be horizontal, the power transformation box can be quickly installed on the upper side of the mounting plate, eliminating the cumbersome steps such as installing bolts, realizing modular rapid installation, and further improving the installation efficiency of the power transformation box. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0020] Figure 1 It is a schematic structural diagram of the installation state of the substation in the present invention;

[0021] Figure 2 It is a schematic structural diagram of the leveling mechanism in the present invention;

[0022] Figure 3 For the present invention Figure 2 The enlarged structural diagram at position A;

[0023] Figure 4 For the present invention Figure 2 The enlarged structural diagram at position B;

[0024] Figure 5 It is a front view structural diagram of the leveling mechanism in the present invention;

[0025] Figure 6 For the present invention Figure 5 The enlarged structural diagram at position C;

[0026] Figure 7 It is a schematic structural diagram of the leveling mechanism when it is installed obliquely in the present invention;

[0027] Figure 8 For the present invention Figure 7 The enlarged structural diagram at position D;

[0028] Figure 9 It is a schematic structural diagram of the upper plate of the leveling mechanism in the present invention adjusted to the horizontal state;

[0029] Figure 10 For the present invention Figure 9 The enlarged structural diagram at position E;

[0030] Figure 11 It is a schematic arrangement structural diagram of two leveling mechanisms in the present invention;

[0031] Figure 12 For the present invention Figure 11 The enlarged structural diagram at position F;

[0032] Figure 13 For the present invention Figure 1 The enlarged structural diagram at position G.

[0033] Reference numerals:

[0034] 1. Power distribution box; 2. Lower plate; 3. Upper plate; 4. Rotating shaft; 5. Vertical plate; 6. Chute plate; 7. Inclined chute; 8. Slide table; 9. Screw rod; 10. Slide block; 11. Adjusting shaft; 101. Sleeve; 102. Spline sleeve shaft one; 103. Spline sleeve shaft two; 104. Fixed plate; 105. Guide rod; 106. Slide sleeve; 107. Annular groove; 108. Rotary cylinder; 109. Fork; 110. Fork slide pin; 111. Return spring; 112. Electromagnet; 113. Large gear; 114. Small gear; 115. Rotating handle; 201. Outer cylinder; 202. Inner cylinder; 203. Conductive sliding piece; 204. Electrode piece; 205. Insulating partition; 206. Elastic piece; 207. Suspension rod; 208. Plumb bob; 301. Mounting plate; 302. Plug rod; 303. Guide groove cylinder; 304. Vertical groove; 305. Spiral groove; 306. Horizontal groove; 307. Locking pin; 308. First fixing rod; 309. Connecting rod; 310. Central rod; 311. Second fixing rod; 312. Torsion spring; 313. Bearing. Detailed implementation manners

[0035] The present invention will be described in detail below. The technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0036] The present invention provides a device for facilitating the installation of a photovoltaic box transformer through improvement. The technical solution of the present invention is as follows:

[0037] As Figures 1 to 13As shown in the figure, an embodiment of the present invention provides a device for facilitating the installation of a photovoltaic box transformer, including a transformer box 1, and further including: two leveling mechanisms that are vertically crossed and arranged on the lower side of the transformer box 1; the leveling mechanism includes a lower plate 2 and an upper plate 3. A rotating shaft 4 is fixed to the lower side of the upper plate 3. The rotating shaft 4 is rotatably connected to the upper side of the lower plate 2 through two vertical plates 5. A sliding table 8 and a screw rod 9 for driving the sliding table 8 to move are slidably connected to the upper side of the lower plate 2. An angle adjustment mechanism is arranged between the sliding table 8 and the upper plate 3. One end of the sliding table 8 is connected to an adjustment shaft 11 through a clutch mechanism; the clutch mechanism includes a sleeve 101 for connecting or separating the screw rod 9 and the adjustment shaft 11 and a driving mechanism for driving the sleeve 101 to move; a switch structure for conducting the circuit of the driving mechanism when the upper plate 3 is at a horizontal angle is arranged on one of the vertical plates 5 and one end of the rotating shaft 4; the switch structure includes an inner cylinder 202 fixed to one end of the rotating shaft 4 and an outer cylinder 201 rotatably connected to one side of the vertical plate 5. Two electrode plates 204 are symmetrically arranged on the inner side of the outer cylinder 201. Two conductive sliding plates 203 are symmetrically and movably arranged on both sides of the inner cylinder 202. A suspension rod 207 is fixed to the outer side of the outer cylinder 201, and a weight 208 is fixed to the end of the suspension rod 207.

[0038] Further, the driving mechanism includes two fork levers 109 symmetrically rotatably connected to the upper side of the lower plate 2 through a rotating cylinder 108, a sliding sleeve 106 slidably arranged on the upper side of the lower plate 2, and an electromagnet 112 for attracting the sliding sleeve 106 to move. Annular grooves 107 are opened on the outer sides of the sliding sleeve 106 and the sleeve 101. Two fork slide pins 110 are rotatably connected to both ends of the two fork levers 109. The four fork slide pins 110 are respectively in rolling fit with the inner sides of the two annular grooves 107. The two conductive sliding plates 203 are connected in series in the circuit of the electromagnet 112 in the driving mechanism. Two fixing plates 104 are fixed to the upper side of the lower plate 2. One end of one of the fixing plates 104 is elastically connected to one end of the sliding sleeve 106 through a return spring 111. One end of the other fixing plate 104 is fixed with a guide rod 105, and the guide rod 105 is slidably inserted into the interior of the sliding sleeve 106;

[0039] Through the driving mechanism, when the two conductive sliding plates 203 in the switch structure are adjusted to a horizontal angle, the two conductive sliding plates 203 are conducted through the two electrode plates 204, thereby conducting the circuit of the electromagnet 112 in the driving mechanism, and further driving the sleeve 101 in the clutch mechanism to move, playing a role in combining and separating the adjustment shaft 11 and the screw rod 9.

[0040] Further, the sleeve 101 is a spline sleeve. One ends of the outer sides of the screw rod 9 and the adjustment shaft 11 are respectively fixed with a spline sleeve shaft one 102 and a spline sleeve shaft two 103. The sleeve 101 is slidably adapted to the outer sides of the spline sleeve shaft one 102 and the spline sleeve shaft two 103;

[0041] When the sleeve 101 is sleeved outside the spline sleeve shaft one 102 and the spline sleeve shaft two 103 at the same time, the screw 9 and the adjusting shaft 11 can be combined. When the sleeve 101 is separated from the spline sleeve shaft two 103, the screw 9 and the adjusting shaft 11 can be separated.

[0042] Further, a small gear 114 is rotatably connected to the upper side of the lower plate 2. One end of the adjusting shaft 11 is fixed with a large gear 113 meshing with the small gear 114. One end of the small gear 114 is fixed with a rotating handle 115.

[0043] During leveling, by rotating the small gear 114 to drive the large gear 113 to rotate, the rotation speed of the large gear 113 can be reduced, thereby reducing the rotation speed of the screw 9. Therefore, when the upper plate 3 adjusts the angle, it can rotate more smoothly, which helps to improve the horizontal adjustment accuracy of the upper plate 3.

[0044] Further, an insulating partition 205 is fixed to the inner side of the inner cylinder 202. Both sides of the insulating partition 205 are elastically connected to one end of two conductive sliding pieces 203 through two elastic pieces 206 respectively.

[0045] The elastic piece 206 applies a certain thrust to the conductive sliding piece 203, so that one end of the conductive sliding piece 203 fits against the inner side of the outer cylinder 201. When the two conductive sliding pieces 203 are adjusted and rotated to the horizontal angle, they can quickly contact the two electrode pieces 204, so that the electromagnetic iron 112 circuit in the driving mechanism can be instantly connected.

[0046] Further, the lower end of the power distribution box 1 and one upper plate 3 located on the upper side are installed through a disassembly and assembly mechanism. The disassembly and assembly mechanism includes a mounting plate 301 arranged on the upper side of the upper plate 3 and four insertion rods 302 (as Figure 13 shown) fixed to the lower end of the power distribution box 1. A guide groove cylinder 303 is rotatably connected to the upper side of the mounting plate 301 corresponding to the position of each insertion rod 302. Each insertion rod 302 is respectively movably adapted to the inner side of each guide groove cylinder 303. A guide groove is formed on the side wall of each guide groove cylinder 303. A locking pin 307 adapted to the guide groove is fixed to the outer side of each insertion rod 302. A rotary linkage mechanism is further included between the four guide groove cylinders 303. The guide groove includes a vertical groove 304, a spiral groove 305, and a horizontal groove 306 formed on the side wall of the guide groove cylinder 303. The two ends of the spiral groove 305 are respectively and smoothly connected to one end of the vertical groove 304 and the horizontal groove 306. The rotary linkage mechanism includes a first fixing rod 308 fixed to the outer side of each guide groove cylinder 303 and a central rod 310 fixed to the upper side of the mounting plate 301 at the central position. A second fixing rod 311 is rotatably connected to the outer side of the central rod 310. The lower end of the second fixing rod 311 is elastically connected to the mounting plate 301 through a torsion spring 312. Four bearings 313 are fixed to the outer side of the second fixing rod 311. The four bearings 313 are respectively rotatably connected to the four first fixing rods 308 through connecting rods 309.

[0047] Through the disassembly and assembly mechanism, when the two leveling mechanisms adjust the mounting plate 301 of the disassembly and assembly mechanism to be horizontal, the power distribution box 1 can be quickly installed on the upper side of the mounting plate 301, eliminating cumbersome steps such as installing bolts, achieving modular and rapid installation, and further improving the installation efficiency of the power distribution box 1.

[0048] Furthermore, the angle adjustment mechanism includes a chute plate 6 fixed to one end of the lower side of the upper plate 3 and a slider 10 rotatably connected to one end of the upper side of the sliding table 8 (as Figure 5 shown), an inclined chute 7 is provided inside the chute plate 6, and the slider 10 is slidably connected to the inner side of the inclined chute 7;

[0049] When the screw rod 9 drives the sliding table 8 to move, the sliding table 8 drives the slider 10 on its upper side to slide inside the inclined chute 7, thereby driving the upper plate 3 and the rotating shaft 4 to rotate, playing a role in adjusting the horizontal angle of the upper plate 3.

[0050] Working principle: When installing the power distribution box 1, it is necessary to adjust the levelness of the power distribution box 1. First, fix the leveling mechanism on the installation ground. The two leveling mechanisms that are vertically crossed in the horizontal plane can respectively adjust the levelness in two directions. When there is a certain inclination in any one direction, it will cause the lower plate 2 and the upper plate 3 of the leveling mechanism to tilt at a certain angle simultaneously, as Figure 7 shown in the state. At this time, under the action of the gravity of the plumb bob 208 in the switch structure, the outer cylinder 201 is driven to rotate in the reverse direction by a certain angle through the suspension rod 207. The rotation angle of the outer cylinder 201 is equal to the inclination angle of the lower plate 2 and the upper plate 3 in the leveling mechanism. At this time, the outer cylinder 201 drives the two electrode plates 204 to rotate by an equal angle, so that the two electrode plates 204 are separated from the two conductive sliding plates 203. The connection line between the two electrode plates 204 is always in the horizontal angle. Since the two conductive sliding plates 203 are connected in series in the circuit of the electromagnet 112 in the driving mechanism, the two conductive sliding plates 203 are not conductive at this time, so that the circuit of the electromagnet 112 is not conductive. At this time, the electromagnet 112 in the driving mechanism does not generate electromagnetic suction on the sliding sleeve 106. Under the elastic force of the return spring 111, the sliding sleeve 106 is pushed to move towards one end close to the guide rod 105. At the same time, through the cooperation between the fork sliding pin 110 and the annular groove 107, the sliding sleeve 106 drives one of the forks 109 close to it to rotate. This fork 109 drives the other fork 109 to rotate in the reverse direction through the rotating cylinder 108, and the other fork 109 drives the sleeve 101 to move in the opposite direction to the sliding sleeve 106, so that the sleeve 101 simultaneously sleevs on the outer sides of the spline sleeve shaft one 102 and the spline sleeve shaft two 103. At this time, the adjusting shaft 11 and the screw rod 9 can be rigidly connected through the sleeve 101. At this time, when the adjusting shaft 11 rotates, it can drive the screw rod 9 to rotate. At this time, the horizontal angle of the upper plate 3 can be adjusted by driving the screw rod 9 to rotate;

[0051] By rotating the handle 115, the small gear 114 is driven to rotate. The small gear 114 drives the large gear 113 to rotate through tooth engagement. The large gear 113 drives the adjusting shaft 11 to rotate. The adjusting shaft 11 drives the spline sleeve shaft two 103 to rotate. The spline sleeve shaft two 103 drives the spline sleeve shaft one 102 to rotate through the sleeve 101, thereby driving the screw rod 9 to rotate. The screw rod 9 drives the slide table 8 to linearly move on the upper side of the lower plate 2 through the thread. The slide table 8 drives the slider 10 on its upper side to slide inside the inclined groove 7, thereby driving the upper plate 3 and the rotating shaft 4 to rotate. When the rotating shaft 4 rotates, it drives the inner cylinder 202 of the switch structure to rotate. The inner cylinder 202 drives the two conductive sliding pieces 203 to rotate, so that the two conductive sliding pieces 203 rotate towards the positions of the two electrode pieces 204 respectively. Since the connection line between the two electrode pieces 204 is always at a horizontal angle, when the two conductive sliding pieces 203 rotate from an inclined angle to a horizontal angle, the two conductive sliding pieces 203 can just contact the two electrode pieces 204 respectively. Since the two electrode pieces 204 are conducted through a wire, when the two conductive sliding pieces 203 contact the two electrode pieces 204 respectively, the two conductive sliding pieces 203 can be instantaneously conducted through the two electrode pieces 204. Therefore, the circuit of the electromagnet 112 in the driving mechanism can be conducted, making the electromagnet 112 energized to generate electromagnetic attraction on the sliding sleeve 106, driving the sliding sleeve 106 to move towards one end of the electromagnet 112. Through the above principle, the sliding sleeve 106 drives the sleeve 101 to move in the reverse direction through the two fork levers 109, separating the sleeve 101 from the outside of the spline sleeve shaft two 103, thereby separating the spline sleeve shaft two 103 from the spline sleeve shaft one 102, and thus separating the adjusting shaft 11 from the screw rod 9. At this time, the screw rod 9 instantly stops rotating, and the adjusting shaft 11 no longer drives the screw rod 9 to rotate when rotating. At this time, the upper plate 3 has rotated to the horizontal angle and no longer continues to rotate, as Figure 9 shown in the state, so that the levelness of the upper plate 3 can be adjusted quickly and accurately. It not only greatly reduces the leveling steps, reduces the leveling difficulty, but also has higher leveling accuracy, improving the installation efficiency of the power distribution box 1;

[0052] Through the above steps, the two mutually perpendicular leveling mechanisms are adjusted respectively, so that the entire surface of the mounting plate 301 of the disassembly and assembly mechanism is completely horizontal. Then, the power distribution box 1 is hoisted above the mounting plate 301, and the four insertion rods 302 at the lower end of the power distribution box 1 are respectively inserted into the inner sides of the four guide groove cylinders 303. The locking pins 307 on the outer sides of each insertion rod 302 respectively slide into the inner sides of the vertical grooves 304 at the corresponding positions, and then slide into the inner sides of the spiral grooves 305. The locking pin 307 applies pressure to one side of the spiral groove 305, thereby driving the guide groove cylinder 303 to rotate a certain angle. When each guide groove cylinder 303 rotates, it drives the second fixed rod 311 to rotate through the corresponding first fixed rod 308, connecting rod 309, and bearing 313. The rotation of the second fixed rod 311 drives the torsion spring 312 to twist by the same angle. When multiple locking pins 307 slide from the inner side of the spiral groove 305 into the inner side of the transverse groove 306, at this time, the torsion spring 312 releases elastic force, driving the second fixed rod 311 to rotate in the reverse direction, and driving the four guide groove cylinders 303 to rotate in the reverse direction through the bearing 313, connecting rod 309, and first fixed rod 308, so that multiple locking pins 307 respectively move to one end of each transverse groove 306, thereby locking each locking pin 307 inside each transverse groove 306, as Figure 13 shown. Therefore, when installing and fixing the power distribution box 1, cumbersome steps such as installing bolts are omitted, modular rapid installation is realized, and the installation efficiency of the power distribution box 1 is further improved.

[0053] The above description enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A device for facilitating the installation of a photovoltaic box transformer, comprising a transformer box, characterized in that: Also includes: Two vertically intersecting leveling mechanisms are arranged on the lower side of the transformer box; The leveling mechanism includes a lower plate and an upper plate. A rotating shaft is fixed to the lower side of the upper plate. The rotating shaft is rotatably connected to the upper side of the lower plate through two vertical plates. A slide table and a screw rod for driving the slide table are slidably connected to the upper side of the lower plate. An angle adjustment mechanism is arranged between the slide table and the upper plate. One end of the slide table is connected to an adjustment shaft through a clutch mechanism. The clutch mechanism includes a sleeve for connecting or separating the screw rod and the adjusting shaft and a driving mechanism for driving the sleeve to move; One of the vertical plates and one end of the rotating shaft is provided with a switch structure for conducting the circuit of the driving mechanism when the upper plate is at a horizontal angle; The switch structure comprises an inner cylinder fixed at one end of the rotating shaft and an outer cylinder rotatably connected to one side of the vertical plate. Two electrode sheets are symmetrically arranged on the inner side of the outer cylinder, and two conductive sliding sheets are symmetrically and movably arranged on both sides of the inner cylinder.

2. The device for facilitating installation of a photovoltaic box transformer according to claim 1 is characterized in that: The driving mechanism includes two shift forks symmetrically connected to the upper side of the lower plate through a rotating drum, a sliding sleeve slidably arranged on the upper side of the lower plate, and an electromagnet that attracts the sliding sleeve to move. Annular grooves are provided on the outer sides of the sliding sleeve and the sleeve. Two shift fork sliding pins are rotatably connected to both ends of the two shift forks. The four shift fork sliding pins are respectively rollingly matched with the inner sides of the two annular grooves. Two conductive slides are connected in series in the circuit of the electromagnet 112 in the driving mechanism.

3. The device for facilitating installation of a photovoltaic box transformer according to claim 2 is characterized in that: Two fixing plates are fixed on the upper side of the lower plate, one end of one fixing plate is elastically connected to one end of the sliding sleeve through a return spring, and one end of the other fixing plate is fixed with a guide rod, which is slidably inserted into the interior of the sliding sleeve.

4. The device for facilitating installation of a photovoltaic box transformer according to claim 1 is characterized in that: The sleeve is a spline sleeve, and the outer ends of the screw rod and the adjusting shaft are respectively fixed with a spline sleeve shaft 1 and a spline sleeve shaft 2, and the sleeve is slidably matched with the outer sides of the spline sleeve shaft 1 and the spline sleeve shaft 2.

5. The device for facilitating installation of a photovoltaic box transformer according to claim 1 is characterized in that: The upper side of the lower plate is rotatably connected with a small gear, one end of the adjusting shaft is fixed with a large gear meshing with the small gear, and one end of the small gear is fixed with a rotating handle.

6. The device for facilitating installation of a photovoltaic box transformer according to claim 1 is characterized in that: An insulating partition is fixed on the inner side of the inner cylinder, and two sides of the insulating partition are elastically connected to one end of two conductive sliding sheets respectively through two spring sheets.

7. The device for facilitating installation of a photovoltaic box transformer according to claim 1 is characterized in that: A suspension rod is fixed on the outside of the outer cylinder, and a heavy hammer is fixed on the end of the suspension rod.

8. The device for facilitating installation of a photovoltaic box transformer according to claim 1 is characterized in that: The lower end of the transformer box is installed between an upper plate located on the upper side through a disassembly and assembly mechanism, the disassembly and assembly mechanism includes a mounting plate arranged on the upper side of the upper plate, four plug rods fixed to the lower end of the transformer box, a guide groove cylinder is rotatably connected at the position of each plug rod on the upper side of the mounting plate, each plug rod is movably adapted to the inner side of each guide groove cylinder, a guide groove is provided on the side wall of each guide groove cylinder, a locking pin adapted to the guide groove is fixed on the outer side of each plug rod, and a rotating linkage mechanism is also included between the four guide groove cylinders, the guide groove includes a vertical groove, a spiral groove, and a transverse groove provided on the side wall of the guide groove cylinder, and the two ends of the spiral groove are smoothly connected to one end of the vertical groove and the transverse groove respectively.

9. The device for facilitating installation of a photovoltaic box transformer according to claim 8, characterized in that: The rotary linkage mechanism includes a first fixed rod fixed on the outside of each guide groove cylinder and a center rod fixed on the upper side of the mounting plate at the center position. The outer side of the center rod is rotatably connected to a second fixed rod. The lower end of the second fixed rod is elastically connected to the mounting plate through a torsion spring, and four bearings are fixed on the outer side of the second fixed rod. The four bearings are rotatably connected to the four first fixed rods through connecting rods.

10. The device for facilitating installation of a photovoltaic box transformer according to claim 1, characterized in that: The angle adjustment mechanism comprises a slide plate fixed at one end of the lower side of the upper plate and a slider rotatably connected to one end of the upper side of the slide platform. An inclined groove is provided inside the slide plate, and the slider is slidably connected to the inner side of the inclined groove.

Citation Information

Patent Citations

  • Assembled photovoltaic transformer substation capable of being rapidly installed

    CN217848770U

  • A mobile leveling device for power distribution cabinet and power distribution cabinet

    CN221009598U

  • Leveling device for power distribution cabinet

    CN221669369U

  • Charging station with a leveling housing

    DE102019116158A1

Cited By

  • Modularized metering box capable of being quickly assembled

    CN121035805A

  • Intelligent leveling foundation structure for box-type substation

    CN122292138A

  • Intelligent leveling foundation structure for box-type substation

    CN122292138B