Auxiliary positioning device for installing pre-buried components in photovoltaic power generation project foundation

By designing an auxiliary positioning device for the installation of embedded components in the foundation of photovoltaic power generation projects, the embedded parts are accurately positioned and fixed using motor drive and sensors, which solves the problem of position adjustment error of embedded parts, improves installation accuracy and reduces construction costs.

CN119711768BActive Publication Date: 2025-10-03THE FIRST CONSTR ENG COMPANY LTD OF CHINA CONSTR SECOND ENG BUREAU

Patent Information

Application Number
CN202411869482.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2025-10-03
Estimated Expiration
2044-12-18

AI Technical Summary

Technical Problem

In photovoltaic power generation projects, errors in the adjustment of the pile foundation positions of embedded parts make column installation difficult and increase construction costs.

Method used

An auxiliary positioning device for the installation of embedded components in the foundation of photovoltaic power generation projects was designed. It includes an auxiliary positioning mechanism and a fixing mechanism. The precise positioning and fixing of embedded parts can be achieved through the cooperation of motor drive and sensor.

Benefits of technology

The precision and accuracy of embedded parts installation are improved, the protrusion problem during column installation is avoided, and construction errors and costs are reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to an auxiliary positioning device for installing pre-embedded components of a photovoltaic power generation project foundation, which belongs to the field of photovoltaic power generation project construction and includes a fixing seat, wherein the middle portion of the upper surface of the fixing seat is provided with an auxiliary positioning mechanism for assisting the positioning of the embedded parts, the lower surface of the fixing seat is provided with a through groove, and the inner cavity of the fixing seat is provided with a fixing mechanism for fixing to the pile foundation; the auxiliary positioning mechanism includes a rotating rod rotatably connected to the middle portion of the upper surface of the fixing seat via a bearing, and a No. 1 spur gear is fixed to the outer surface of the rotating rod. This auxiliary positioning device for installing pre-embedded components of a photovoltaic power generation project foundation can quickly measure the installation point of the next embedded part through the auxiliary positioning mechanism when pouring a concrete pile foundation, which not only improves the accuracy of the measurement, but also can adjust the angle of the auxiliary positioning according to different terrains, thereby reducing the generation of errors and improving the accuracy of the embedded part installation.
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Description

Technical Field

[0001] The present invention relates to the technical field of photovoltaic power generation project construction, in particular to an auxiliary positioning device for installing pre-buried components of a photovoltaic power generation project foundation. Background Art

[0002] A photovoltaic power station is a system that uses solar energy and adopts special materials such as crystalline silicon panels and other electronic components to connect to and transmit electricity to the power grid. During the construction of a photovoltaic power station, it is necessary to cast multiple groups of coaxial concrete pile foundations on the ground and set embedded parts on the pile foundations. If several concrete pile foundation embedded parts are not in the same direction during the embedding process, the center plane projections of several concrete pile foundation embedded parts in a group will not be on a straight line, resulting in the subsequent columns protruding before and after installation, making it impossible to install the purlins on the columns, increasing construction costs.

[0003] At present, when pouring concrete pile foundations, workers use a ruler to measure and adjust the embedded parts of the pile foundation in the same direction during the process of burying the embedded parts in the concrete to keep them in the same straight line. During the pouring of the pile foundation, after the embedded parts are set in the pile foundation, there will be certain errors in the manual measurement during the process of adjusting the position of the embedded parts, which will affect the subsequent construction, and it is not convenient to adjust the installation angle of the embedded parts according to the angles of multiple pile foundations in a straight line. Based on this, an auxiliary positioning device for the installation of embedded components of photovoltaic power generation project foundation is proposed to solve the above problems. Summary of the Invention

[0004] In response to the shortcomings of the existing technology, the present invention provides an auxiliary positioning device for the installation of embedded components in the foundation of a photovoltaic power generation project, which has the advantages of being able to assist in the positioning of embedded parts. It solves the problem in the existing technology that in the process of pouring pile foundations, after the embedded parts are set in the pile foundation, there will be certain errors in manual measurement during the process of adjusting the position of the embedded parts, which will affect subsequent construction, and it is inconvenient to adjust the installation angle of the embedded parts according to the angles of multiple pile foundations in a straight line.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: an auxiliary positioning device for installing pre-embedded components in a photovoltaic power generation project foundation, comprising a fixing seat, an auxiliary positioning mechanism for assisting in positioning the embedded components is provided in the middle of the upper surface of the fixing seat, a through groove is provided in the lower surface of the fixing seat, and a fixing mechanism for fixing to a pile foundation is provided in the inner cavity of the fixing seat;

[0006] The auxiliary positioning mechanism includes a rotating rod rotatably connected to the middle part of the upper surface of the fixed seat through a bearing, the outer surface of the rotating rod is fixed with a No. 1 spur gear, and a load-bearing plate is fixed to the top of the left side of the fixed seat, and the load-bearing plate and the upper surface of the fixed seat are rotatably connected to the same shaft rod through a bearing, and the outer surface of the shaft rod is fixed with a No. 2 spur gear, and the No. 1 spur gear and the No. 2 spur gear are meshed and connected, and a mounting frame is fixed on the upper surface of the load-bearing plate, and a driving motor is fixed to the middle part of the upper surface of the mounting frame, and the tops of the front and rear sides of the rotating rod are rotatably connected to the rotating rod through bearings, and the opposite sides of the rotating rods on the front and rear sides are fixed with a linkage frame, and a rotating motor is fixed on the front of the linkage frame, and an electric telescopic rod is fixed on the right side of the linkage frame, and a distance sensor is fixed on the right side of the electric telescopic rod;

[0007] The output shaft of the driving motor passes through the inner top wall of the mounting frame and extends to the inner cavity of the mounting frame and is fixed to the shaft rod. The outer surface of the driving motor is provided with a protective box;

[0008] The fixing mechanism includes a cavity opened in the inner cavity of the fixing seat, a mounting groove is opened in the middle of the inner top wall of the cavity, a motor is fixed in the inner cavity of the mounting groove, a screw is fixed to the output shaft of the motor, a movable plate is threadedly connected to the outer surface of the screw, connecting rods are fixed to the left and right ends of the lower surface of the movable plate, and a propulsion block is fixed to the bottom of the two connecting rods on opposite sides, a clamping plate is provided at the left and right ends of the inner cavity of the mounting groove, and a pressure rod with one end penetrating and extending into the inner cavity of the cavity is fixed to the top between the two clamping plates on opposite sides;

[0009] The lower surface of the screw rod is rotatably connected to the middle portion of the bottom wall of the cavity via a bearing, and the cross-section of the propulsion block is triangular.

[0010] Furthermore, the inner diameter of the through groove is adapted to the outer diameter of the pile foundation, and the cross-sectional shape of the mounting frame is an inverted U shape.

[0011] Furthermore, the cross-section of the linkage frame is an inverted U-shape, and the output shaft of the rotary motor passes through and extends into the inner cavity of the linkage frame and is fixed to the front rotating rod.

[0012] Furthermore, a sliding block is fixed to the bottom of the two clamping plates on the opposite side, and a telescopic sleeve is fixed between the sliding block and the side opposite to the cavity.

[0013] Furthermore, a return spring is movably sleeved on the outer surface of the telescopic sleeve rod, and both ends of the return spring are fixedly connected to the side of the sliding block opposite to the inner wall of the cavity.

[0014] Furthermore, limiting grooves are provided on the tops of the opposite sides of the left and right side walls of the cavity, and limiting blocks are fixed on the left and right sides of the movable plate. The limiting blocks move linearly up and down in the inner cavity of the limiting grooves.

[0015] Furthermore, an anti-skid plate is fixed on the opposite sides of the two clamping plates, and the anti-skid plate is a rubber plate.

[0016] Furthermore, through holes are provided at the bottom of the left and right side walls of the cavity on the opposite sides, and the inner diameter of the through holes is adapted to the outer diameter of the sliding block.

[0017] Compared with the existing technology, the technical solution of this application has the following beneficial effects:

[0018] 1. The auxiliary positioning device for the installation of embedded components in the photovoltaic power generation project foundation can quickly measure the installation point of the next embedded component through the auxiliary positioning mechanism when pouring concrete pile foundations. This not only improves the accuracy of measurement, but also can adjust the angle of auxiliary positioning according to different terrains, reducing the generation of errors and improving the accuracy of embedded component installation.

[0019] 2. The auxiliary positioning device for the installation of pre-embedded components of the photovoltaic power generation project foundation can facilitate the fixation of the fixing seat and the pile foundation through the provided fixing mechanism, so that the center planes of a group of several concrete pile foundation embedded parts can be projected on a straight line, avoiding the situation where the subsequent columns protrude before and after installation, thereby improving the effect of auxiliary positioning. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the structure of the present invention;

[0021] Figure 2 This is a schematic structural diagram of the auxiliary positioning mechanism of the present invention;

[0022] Figure 3 This is a structural diagram of the rotating rod and linkage frame of the present invention;

[0023] Figure 4 It is a structural schematic diagram of the fixing mechanism of the present invention.

[0024] In the figure: 1 fixed seat, 2 auxiliary positioning mechanism, 201 rotating rod, 202 No. 1 spur gear, 203 bearing plate, 204 shaft, 205 No. 2 spur gear, 206 mounting frame, 207 driving motor, 208 rotating rod, 209 linkage frame, 210 rotating motor, 211 electric telescopic rod, 212 distance sensor, 3 through slot, 4 fixing mechanism, 401 cavity, 402 mounting slot, 403 motor, 404 screw rod, 405 movable plate, 406 connecting rod, 407 propulsion block, 408 clamping plate, 409 pressure rod, 410 sliding block, 411 telescopic sleeve rod, 412 return spring. DETAILED DESCRIPTION

[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0026] See also Figure 1 In this embodiment, an auxiliary positioning device for installing embedded components of a photovoltaic power generation project foundation includes a fixing seat 1, an auxiliary positioning mechanism 2 for assisting the positioning of embedded parts is provided in the middle of the upper surface of the fixing seat 1, a through groove 3 is provided on the lower surface of the fixing seat 1, and a fixing mechanism 4 for fixing to the pile foundation is provided in the inner cavity of the fixing seat 1.

[0027] It should be noted that a rechargeable battery is fixed to the right end of the upper surface of the fixing base 1, which can be used to power electrical equipment.

[0028] See also Figures 2 to 3 In order to position the installation of the embedded parts, the auxiliary positioning mechanism 2 in this embodiment includes a rotating rod 201 rotatably connected to the middle part of the upper surface of the fixed seat 1 through a bearing, and a No. 1 spur gear 202 is fixed to the outer surface of the rotating rod 201. A load-bearing plate 203 is fixed to the top of the left side of the fixed seat 1. The load-bearing plate 203 and the upper surface of the fixed seat 1 are rotatably connected to the same shaft rod 204 through a bearing, and a No. 2 spur gear 205 is fixed to the outer surface of the shaft rod 204. The No. 1 spur gear 202 and the No. 2 spur gear 205 are meshed and connected. By starting the drive motor 207, the output shaft of the drive motor 207 rotates to drive the shaft rod 204 to rotate. The rotation of the shaft rod 204 causes the No. 2 spur gear 205 fixed on its surface to rotate, and the rotation of the No. 2 spur gear 205 causes the No. 1 spur gear 202 meshed with it to rotate.

[0029] The rotation of the No. 1 spur gear 202 drives the rotating rod 201 to rotate, so that the horizontal angle of the electric telescopic rod 211 can be adjusted by using the rotating rod 208 and the linkage frame 209, so that the auxiliary positioning angle of the electric telescopic rod 211 can be adjusted according to the angles of multiple straight pile foundations. The upper surface of the bearing plate 203 is fixed with a mounting frame 206, and the middle part of the upper surface of the mounting frame 206 is fixed with a driving motor 207. The tops of the front and rear sides of the rotating rod 201 are rotatably connected to the rotating rod 208 through bearings, and the opposite sides of the rotating rods 208 on the front and rear sides are A linkage frame 209 is fixed, a rotating motor 210 is fixed to the front of the linkage frame 209, an electric telescopic rod 211 is fixed to the right side of the linkage frame 209, and a distance sensor 212 is fixed to the right side of the electric telescopic rod 211. The distance sensor 212 is used to sense the distance between it and the rotating rod 201 to complete a preset function. By starting the extension of the electric telescopic rod 211 and turning on the distance sensor 212, the distance sensor 212 can be moved in the direction of installation of the next embedded part until the distance sensor 212 reaches the set distance, and then the electric telescopic rod 211 can be stopped.

[0030] In this embodiment, the inner diameter of the through groove 3 is adapted to the outer diameter of the pile foundation, the cross-sectional shape of the mounting frame 206 is an inverted U shape, the output shaft of the drive motor 207 passes through the inner top wall of the mounting frame 206 and extends to the inner cavity of the mounting frame 206 and is fixed to the shaft 204, and a protective box is provided on the outer surface of the drive motor 207.

[0031] Among them, the cross-sectional shape of the linkage frame 209 is an inverted U-shape, the output shaft of the rotating motor 210 passes through and extends to the inner cavity of the linkage frame 209 and is fixed to the front rotating rod 208. By starting the rotating motor 210, the output shaft of the rotating motor 210 rotates to drive the rotation of the front rotating rod 208. The rotation of the rotating rod 208 causes the linkage frame 209 to rotate, and then the vertical angle of the electric telescopic rod 211 can be adjusted, so that it can be used on uphill or slopes.

[0032] It should be noted that the auxiliary positioning mechanism 2 can quickly measure the installation point of the next embedded part, which not only improves the accuracy of the measurement, but also can adjust the angle of the auxiliary positioning according to different terrains, reducing the occurrence of errors and improving the accuracy of the embedded part installation.

[0033] See also Figure 4In order to ensure that a group of embedded parts are in a straight line, the fixing mechanism 4 in this embodiment includes a cavity 401 opened in the inner cavity of the fixing seat 1, and a mounting groove 402 is opened in the middle of the inner top wall of the cavity 401. A motor 403 is fixed in the inner cavity of the mounting groove 402. The output shaft of the motor 403 is fixed with a screw rod 404. The outer surface of the screw rod 404 is threadedly connected with a movable plate 405. When the motor 403 is started, the output shaft of the motor 403 rotates to drive the rotation of the screw rod 404. The rotation of the screw rod 404 causes the movable plate 405 threadedly connected to its surface to move downward. Connecting rods 406 are fixed to the left and right ends of the lower surface of the movable plate 405. The two connecting rods 406 A propulsion block 407 is fixed to the bottom of each opposite side, and a clamping plate 408 is provided at both ends of the inner cavity of the installation groove 402. A pressure rod 409 with one end passing through and extending into the inner cavity of the cavity 401 is fixed to the top between the opposite sides of the two clamping plates 408. The movement of the movable plate 405 causes the two connecting rods 406 to drive the two propulsion blocks 407 to move downward. At this time, the pressure rod 409 is completely located in the inner cavity of the cavity 401 under the action of the telescopic sleeve 411 and the return spring 412. As the propulsion block 407 moves downward, one side of the propulsion block 407 will squeeze the pressure rod 409, thereby causing the two pressure rods 409 to move relative to each other.

[0034] Among them, the bottom of the two clamping plates 408 on the opposite side are fixed with sliding blocks 410, and a telescopic sleeve 411 is fixed between the sliding block 410 and the side opposite to the cavity 401. The outer surface of the telescopic sleeve 411 is movably sleeved with a return spring 412, and the two ends of the return spring 412 are respectively fixedly connected to the side opposite to the inner wall of the sliding block 410 and the cavity 401. The relative movement of the two pressure rods 409 causes the two clamping plates 408 to move relative to each other. The relative movement of 08 can synchronously drive the two sliding blocks 410 to move relative to each other, thereby lengthening the telescopic sleeve 411 and the return spring 412. The relative movement of the two clamping plates 408 can clamp the two sides of the pile foundation, thereby fixing the fixed seat 1 on the pile foundation; when the pushing block 407 does not squeeze the compressed rod 409, the telescopic sleeve 411 and the return spring 412 can move the compressed rod 409 to fit with the inner wall of the through groove 3, thereby facilitating the extraction of the fixed seat 1 from the pile foundation.

[0035] In this embodiment, the lower surface of the screw rod 404 is rotatably connected to the middle part of the bottom wall of the cavity 401 through a bearing. The cross-sectional shape of the push block 407 is triangular. Limiting grooves are provided on the tops of the opposite sides of the left and right side walls of the inner cavity of the cavity 401. Limiting blocks are fixed on the left and right sides of the movable plate 405. The limiting blocks make linear movements up and down in the inner cavity of the limiting grooves. The limiting blocks at both ends of the movable plate 405 make linear movements up and down in the inner cavity of the limiting grooves, so that the movement of the movable plate 405 is restricted so that it can only make linear movements.

[0036] In addition, anti-slip plates are fixed on the opposite sides of the two clamping plates 408. The anti-slip plates are rubber plates. Through holes are opened at the bottom of the opposite sides of the left and right side walls of the cavity 401. The inner diameter of the through hole is adapted to the outer diameter of the sliding block 410.

[0037] It should be noted that the telescopic sleeve rod 411 consists of a sleeve and a moving rod. One end of the moving rod passes through and extends to the interior of the sleeve. The outer side of the moving rod is fixedly connected to a limiting block located inside the sleeve. A through hole that is compatible with the moving rod is provided on one side of the sleeve. The limiting block prevents the moving rod from detaching from the sleeve during movement.

[0038] It can be understood that the fixing mechanism 4 provided can facilitate the fixing of the fixing seat 1 to the pile foundation, so that the center planes of a group of several concrete pile foundation embedded parts can be projected on a straight line, avoiding the situation where the subsequent columns bulge out before and after installation, thereby improving the effect of auxiliary positioning.

[0039] The electrical components appearing in the text are all electrically connected to the main controller and the power supply, and the electrical components appearing in the text are all conventionally known devices. This application will not go into too much detail. The main controller can be a conventionally known device that controls a computer, etc. The control circuit of the main controller can be implemented by simple programming by technicians in this field. The provision of power is also common knowledge in this field, and this application is mainly used to protect mechanical devices, so this application will no longer explain the control method and circuit connection in detail.

[0040] The working principle of the above embodiment is:

[0041] (1) When in use, first put the fixing seat 1 on the pile foundation, then start the motor 403. The output shaft of the motor 403 rotates to drive the screw rod 404 to rotate. The rotation of the screw rod 404 causes the movable plate 405 threadedly connected to its surface to move downward. At this time, the limit blocks at both ends of the movable plate 405 make linear movements up and down in the inner cavity of the limit groove, which can limit the movement of the movable plate 405 to only move linearly. The movement of the movable plate 405 causes the two connecting rods 406 to drive the two propulsion blocks 407 to move downward. At this time, the pressure rod 409 is between the telescopic sleeve rod 411 and the complex rod 411. Under the action of the positioning spring 412, it is completely located in the inner cavity of the cavity 401. As the propulsion block 407 moves downward, one side of the propulsion block 407 will squeeze the compression rod 409, so that the two compression rods 409 move relative to each other, and the two clamping plates 408 move relative to each other. The relative movement of the two clamping plates 408 can synchronously drive the two sliding blocks 410 to move relative to each other, and then stretch the telescopic sleeve 411 and the return spring 412. The relative movement of the two clamping plates 408 can clamp the two sides of the pile foundation, and then fix the fixing seat 1 on the pile foundation.

[0042] (2) Then, the drive motor 207 can be started, and the output shaft of the drive motor 207 rotates to drive the shaft 204 to rotate. The rotation of the shaft 204 causes the second spur gear 205 fixed on its surface to rotate. The rotation of the second spur gear 205 causes the first spur gear 202 meshing with it to rotate. The rotation of the first spur gear 202 drives the rotating rod 201 to rotate, so that the horizontal angle of the electric telescopic rod 211 can be adjusted by using the rotating rod 208 and the linkage frame 209, so that the auxiliary angle of the electric telescopic rod 211 can be adjusted according to the angles of multiple straight pile foundations. The positioning angle can be adjusted. After the adjustment, the rotating motor 210 can be started, and the output shaft of the rotating motor 210 rotates to drive the front rotating rod 208 to rotate. The rotation of the rotating rod 208 causes the linkage frame 209 to rotate, and then the vertical angle of the electric telescopic rod 211 can be adjusted, so that it can be used on uphill or slopes. By starting the extension of the electric telescopic rod 211 and turning on the distance sensor 212, the distance sensor 212 can be moved in the direction of installation of the next embedded part until the distance sensor 212 reaches the set distance, and then the electric telescopic rod 211 can be stopped.

[0043] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply the existence of any such actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article, or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article, or device comprising the element.

[0044] While the embodiments of the present invention have been shown and described, it will be apparent to those skilled in the art that various changes, modifications, substitutions, and alterations can be made to the embodiments without departing from the principles and spirit of the invention.

Claims

1. An auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project foundation, comprising a fixing seat (1), characterized in that: An auxiliary positioning mechanism (2) for assisting the positioning of the embedded part is provided in the middle of the upper surface of the fixing seat (1), a through groove (3) is provided on the lower surface of the fixing seat (1), and a fixing mechanism (4) for fixing to the pile foundation is provided in the inner cavity of the fixing seat (1); The auxiliary positioning mechanism (2) comprises a rotating rod (201) rotatably connected to the middle of the upper surface of the fixed seat (1) via a bearing, a first spur gear (202) being fixed to the outer surface of the rotating rod (201), a load-bearing plate (203) being fixed to the top of the left side of the fixed seat (1), the load-bearing plate (203) and the upper surface of the fixed seat (1) being rotatably connected to the same shaft (204) via a bearing, a second spur gear (205) being fixed to the outer surface of the shaft (204), the first spur gear (202) and the second spur gear (205) being meshed and connected, and the load-bearing plate ( A mounting frame (206) is fixed on the upper surface of the mounting frame (206), a driving motor (207) is fixed in the middle of the upper surface of the mounting frame (206), the tops of the front and rear sides of the rotating rod (201) are rotatably connected to the rotating rod (208) through bearings, and a linkage frame (209) is fixed on the opposite sides of the rotating rod (208) on the front and rear sides, a rotating motor (210) is fixed on the front of the linkage frame (209), an electric telescopic rod (211) is fixed on the right side of the linkage frame (209), and a distance sensor (212) is fixed on the right side of the electric telescopic rod (211); The output shaft of the driving motor (207) passes through the inner top wall of the mounting frame (206) and extends to the inner cavity of the mounting frame (206) and is fixed to the shaft (204). The outer surface of the driving motor (207) is provided with a protective box; The fixing mechanism (4) includes a cavity (401) provided in the inner cavity of the fixing seat (1), a mounting groove (402) is provided in the middle of the inner top wall of the cavity (401), a motor (403) is fixed in the inner cavity of the mounting groove (402), a screw (404) is fixed to the output shaft of the motor (403), a movable plate (405) is threadedly connected to the outer surface of the screw (404), connecting rods (406) are fixed to the left and right ends of the lower surface of the movable plate (405), and a propulsion block (407) is fixed to the bottom of the two opposite sides of the connecting rods (406), a clamping plate (408) is provided at the left and right ends of the inner cavity of the mounting groove (402), and a pressure rod (409) with one end penetrating and extending into the inner cavity of the cavity (401) is fixed to the top between the two opposite sides of the clamping plates (408); The lower surface of the screw rod (404) is rotatably connected to the middle portion of the inner bottom wall of the cavity (401) via a bearing, and the cross-sectional shape of the propulsion block (407) is triangular.

2. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 1, characterized in that: The inner diameter of the through groove (3) is adapted to the outer diameter of the pile foundation, and the cross-sectional shape of the mounting frame (206) is an inverted U-shape.

3. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 1, characterized in that: The cross-section of the linkage frame (209) is in an inverted U-shape, and the output shaft of the rotary motor (210) passes through and extends into the inner cavity of the linkage frame (209) and is fixed to the front rotating rod (208).

4. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 1, characterized in that: A sliding block (410) is fixed to the bottom of the two clamping plates (408) on opposite sides, and a telescopic sleeve rod (411) is fixed between the sliding block (410) and the side opposite to the cavity (401).

5. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 4, characterized in that: A return spring (412) is movably sleeved on the outer surface of the telescopic sleeve rod (411), and both ends of the return spring (412) are fixedly connected to the side of the sliding block (410) opposite to the inner wall of the cavity (401).

6. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 1, characterized in that: Limiting grooves are provided on the tops of the opposite sides of the left and right side walls of the cavity (401), and limiting blocks are fixed on the left and right sides of the movable plate (405), and the limiting blocks perform linear movement up and down in the inner cavity of the limiting grooves.

7. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 1, characterized in that: An anti-slide plate is fixed on opposite sides of the two clamping plates (408), and the anti-slide plate is a rubber plate.

8. The auxiliary positioning device for installing pre-buried components in a photovoltaic power generation project according to claim 4, characterized in that: Through holes are provided at the bottom of the opposite sides of the left and right side walls of the cavity (401), and the inner diameter of the through holes is adapted to the outer diameter of the sliding block (410).

Citation Information

Patent Citations

  • Photovoltaic power station concrete pile foundation embedded part positioning assembly

    CN215562767U

  • Photovoltaic installation foundation embedded part positioning tool

    CN217027187U

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