Piling equipment for photovoltaic construction
By designing a pile driving equipment for photovoltaic construction, the existing equipment has solved the problems of complex operation, low efficiency and high safety risks, and achieved rapid, accurate and safe pile driving operations, and met green construction requirements.
Patent Information
- Application Number
- CN202422105051.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-08-29
AI Technical Summary
The existing pile driving equipment has problems such as complex manual operation, low pile construction efficiency, high safety risks, poor positioning equipment, unenvironmental and energy-saving materials.
A pile driving equipment for photovoltaic construction is designed, including walking components, support bases, power chambers, transmission components, pile driving components and control chassis. The equipment uses electric drive, precision gears and transmission belts, equipped with high-strength controller panels and operating rods to ensure fast, accurate and safe pile driving operations.
It significantly improves the efficiency and accuracy of pile driving construction, reduces safety risks during the construction process, is suitable for photovoltaic construction projects under various complex terrain conditions, and uses environmentally friendly materials and energy-saving technologies to meet the requirements of green construction.
Smart Images

Figure CN222976750U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of photovoltaic construction, in particular to a pile driving device for photovoltaic construction. Background Technique
[0002] A pile driver consists of a pile hammer, a pile frame and auxiliary equipment, etc. The pile hammer is attached between two parallel vertical guide rods at the front of the pile frame and is hoisted by a lifting hook. The pile frame is a steel structure tower. A winch is provided at the rear to hoist the pile and the pile hammer. There is a guide frame composed of two guide rods in front of the pile frame to control the pile driving direction and make the pile accurately penetrate the formation according to the designed orientation. The basic technical parameters of the pile driver are the weight of the impact part, the impact kinetic energy and the impact frequency. The pile hammer can be divided into a drop hammer, a steam hammer and a diesel hammer according to the power source of the movement. In a photovoltaic power generation system, it is necessary to fix the photovoltaic panel support on the ground, which usually requires the use of a pile driving device to fix the support in the foundation. However, the existing pile driving devices still have many defects, such as: 1. The existing pile driving devices have problems such as complex manual operation, low pile driving construction efficiency, and high safety risks during operation; 2. The existing pile driving devices have poor positioning devices, low pile driving accuracy, and the materials used in the devices are not environmentally friendly enough and not energy-saving enough. Therefore, it is necessary to design a new pile driving device for photovoltaic construction to solve these problems. Content of the Utility Model
[0003] The purpose of the utility model is to provide a pile driving device for photovoltaic construction to solve the problems raised in the above background technique.
[0004] To achieve the above object, the utility model provides the following technical solutions: A pile driving device for photovoltaic construction, including a walking assembly, a support base, a power chamber, a transmission assembly, a pile driving assembly and a control chassis; A rotating base is installed on the top of the walking assembly, a support base is installed at the upper end of the rotating base, a seat is installed on one side of the upper surface of the support base. The walking assembly is not only the support and power source of the whole device, but also allows the device to rotate 360 degrees on the horizontal plane, so as to adapt to various complex construction environments. The rotating base not only provides the device with the ability to freely rotate on the ground, but also ensures its flexible movement in any direction. The support base provides a solid support point for the whole device, ensuring the stability and reliability of the device. The seat provides a safe and comfortable working space for the operator. Such a design not only takes into account the safety of the operator, but also ensures their comfort and efficiency during long-term operation. A power chamber is installed in the middle of the upper surface of the support base, a control chassis is installed on the top of the power chamber, a transmission assembly is installed on the other side of the upper surface of the support base. The power chamber is equipped with a high-performance motor and a driving device inside, injecting power into the whole system. The transmission assembly adopts precision gears and transmission belts to ensure smooth and efficient power transmission. This device is especially suitable for pile driving operations in photovoltaic construction, and can quickly and accurately complete pile foundation construction, significantly improving construction efficiency. A connecting rod is installed on the transmission assembly, and the connecting rod is fixedly connected with the pile driving assembly. A fixing plate is installed on the outside of the transmission assembly, and the fixing plate is movably connected with the pile driving assembly through a bearing seat. The bottom of the fixing plate is connected to one end of a support rod, and the other end of the support rod is fixed on the upper surface of the support base. The connecting rod and the pile driving assembly are fixedly connected by bolts or welding, etc., ensuring the stability and reliability during pile driving operations. The fixing plate is movably connected with the pile driving assembly through a bearing seat, enabling the pile driving assembly to flexibly adjust the angle and position during operation, adapting to different terrain and pile depth requirements. The fixing plate and the support rod are connected by bolts or welding, providing necessary support and stability for the whole pile driving device, improving the speed and accuracy of pile driving operations, and at the same time reducing the safety risks during the construction process, and is applicable to photovoltaic construction projects under various complex terrain conditions.
[0005] Preferably, a controller panel is installed on one side wall of the control chassis, and an operating rod is installed on the top of the control chassis. The control chassis is made of high-strength and wear-resistant materials, ensuring its long-term stable operation. The controller panel on one side of the control chassis is carefully designed with a compact and intuitive layout, facilitating technicians to quickly and accurately set or adjust construction parameters. The top of the control chassis is equipped with an operating rod with adjustable height and angle to adapt to the changing working environment and the needs of operators. This device is designed specifically for photovoltaic construction piling, capable of efficiently and precisely controlling the piling operation, significantly improving the construction quality and efficiency. The combination of the construction parameters preset through the controller panel and the precise operation of the operating rod ensures the accuracy and safety of the piling process.
[0006] Preferably, a transmission box is installed on the transmission assembly. A first motor is installed inside the transmission box. When the first motor starts, it drives the screw to rotate, thereby driving the movement of the entire device. A screw is installed at the output end of the first motor, and a sliding block is installed on the screw. One end of the connecting rod is installed with a sliding block. A slide rail is installed on the inner side wall of the transmission box, and the other end of the slide rail is slidably connected to the sliding block. One end of the connecting rod is connected to the sliding block, and the other end is provided with another sliding block. This design ensures the stability of the connection, enabling the entire assembly to effectively transmit power and load. Moreover, the inner side wall of the transmission box is provided with a slide rail, forming a sliding fit with the sliding block to ensure that the sliding block can move smoothly along the axis, thereby precisely controlling the piling depth.
[0007] Preferably, a second motor housing is installed on the pile driving assembly. The second motor housing is used to protect the second motor and is made of Luth environmental protection material that is corrosion-resistant and high-temperature resistant. A second motor is installed inside the second motor housing. Fixed pieces are installed on both side walls of the second motor, and the fixed pieces are fixedly installed on the inner side walls of both sides of the second motor housing. The installation of the fixed pieces ensures the stable installation of the second motor on the pile driving assembly and can also effectively drive the pile driving rod to perform precise pile driving operations. A coupling seat is installed at the output end of the second motor. A pile driving rod is installed at the bottom of the coupling seat, and a pile driving bit is installed at the bottom of the pile driving rod. The second motor starts the switch through the controller panel, drives the coupling seat to rotate, and then drives the pile driving rod to rotate, so that the pile driving bit can precisely drill holes in the ground to meet different pile driving requirements. An electric telescopic rod is installed on the pile driving rod. A fixed bottom plate is installed at the bottom of the pile driving bit. Fixed drilling nails are installed at both ends of the bottom of the fixed bottom plate. The design of the electric telescopic rod allows the extension length of the pile driving bit to be flexibly adjusted according to the specific construction situation, ensuring that the pile driving operation can adapt to different depth requirements. The installation of the fixed bottom plate provides stable support for the pile driving bit, ensuring stability during the drilling process and reducing the possibility of movement and tilting. The use of the fixed drilling nails further enhances the connection force between the fixed bottom plate and the ground, ensuring the firmness of the pile driving and improving the stability and safety of the photovoltaic panel installation.
[0008] Preferably, a transmission box is installed on the transmission assembly. A first motor is installed inside the transmission box. The first motor starts to drive the screw rod to rotate, and then drives the movement of the entire device. A screw rod is installed at the output end of the first motor. A sliding block is installed on the screw rod. One end of the connecting rod is installed with a sliding block. A slide rail is installed on the inner side wall of the transmission box, and the slide rail is slidably connected to the other end of the sliding block. One end of the connecting rod is connected to the sliding block, and the other end is provided with another sliding block. This design ensures the firmness of the connection, enables the entire assembly to effectively transmit power and load, and the inner side wall of the transmission box is provided with a slide rail, forming a sliding fit with the sliding block to ensure that the sliding block can move smoothly along the axis, thereby precisely controlling the depth of pile driving.
[0009] Preferably, one side wall of the second motor housing is fixedly connected to the sliding block on the transmission assembly through a connecting rod, so as to ensure that the transmission assembly and the pile driving assembly form a sliding fit, and then complete the pile driving operation for photovoltaic construction.
[0010] Compared with the prior art, the beneficial effects of the present utility model are:
[0011] 1. The utility model can drill holes quickly and accurately by using electric drive, improving the construction efficiency. Moreover, through the device on the controller panel, it has an intuitive operation interface and control device, which is convenient for operators to use. And the controller panel has overload protection and emergency stop functions, which can effectively prevent the occurrence of safety accidents.
[0012] 2. The utility model is equipped with a device for fixing the bottom plate and fixing the drilling nails, which can ensure the accuracy of the installation position of the photovoltaic panel support. The drill bit adopts a rotary drill bit to facilitate quick and accurate drilling. And the equipment adopts environmentally friendly materials and energy-saving technologies, meeting the requirements of green construction. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 is a schematic diagram of the overall structure of the utility model;
[0014] Figure 2 is a schematic diagram of the transmission component of the utility model;
[0015] Figure 3 is a schematic diagram of the pile driving component of the utility model.
[0016] In the figure: 1. Traveling component; 2. Support base; 3. Seat; 4. Operating rod; 5. Controller panel; 6. Power chamber; 7. Transmission component; 71. First motor; 72. Screw; 73. Sliding block; 74. Connecting rod; 75. Slide rail; 76. Transmission box; 8. Pile driving component; 81. Second motor housing; 82. Second motor; 83. Fixed plate; 84. Coupling seat; 85. Pile driving rod; 86. Electric telescopic rod; 87. Pile driving drill bit; 88. Fixed bottom plate; 89. Fixed drilling nail; 9. Fixed plate; 10. Support rod; 11. Control chassis; 12. Rotating base. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] The following further describes the technical solutions of the utility model with reference to the accompanying drawings and specific embodiments.
[0018] Embodiment 1
[0019] As Figure 1 、 Figure 2 and Figure 3As shown in the figure, a pile driving device for photovoltaic construction proposed by the utility model includes a walking assembly 1, a support base 2, a power chamber 6, a transmission assembly 7, a pile driving assembly 8 and a control chassis 11; a rotating base 12 is installed on the top of the walking assembly 1, a support base 2 is installed at the upper end of the rotating base 12, a seat 3 is installed on one side of the upper surface of the support base 2. The walking assembly 1 is not only the support and power source of the whole device, but also allows the device to rotate 360 degrees on the horizontal plane, so as to adapt to various complex construction environments. The rotating base 12 not only provides the device with the ability to rotate freely on the ground, but also ensures its flexible movement in any direction. The support base 2 provides a solid support point for the whole device, ensuring the stability and reliability of the device. The seat 3 provides a safe and comfortable working space for the operator. Such a design not only takes into account the safety of the operator, but also ensures their comfort and efficiency during long-term operation. A power chamber 6 is installed in the middle of the upper surface of the support base 2, a control chassis 11 is installed on the top of the power chamber 6, a transmission assembly 7 is installed on the other side of the upper surface of the support base 2. The power chamber 6 is equipped with high-performance motors and driving devices, injecting power into the whole system. The transmission assembly 7 adopts precision gears and transmission belts to ensure smooth and efficient power transmission. This device is especially suitable for pile driving operations in photovoltaic construction, and can quickly and accurately complete pile foundation construction, significantly improving construction efficiency. A connecting rod 74 is installed on the transmission assembly 7, and the connecting rod 74 is fixedly connected to the pile driving assembly 8. A fixing plate 9 is installed on the outside of the transmission assembly 7, and the fixing plate 9 is movably connected to the pile driving assembly 8 through a bearing seat. The bottom of the fixing plate 9 is connected to one end of a support rod 10, and the other end of the support rod 10 is fixed to the upper surface of the support base 2. The connecting rod 74 and the pile driving assembly 8 are fixedly connected by bolts or welding, etc., ensuring the stability and reliability during pile driving operations. The fixing plate 9 is movably connected to the pile driving assembly 8 through a bearing seat, so that the pile driving assembly 8 can flexibly adjust the angle and position during operation, adapting to different terrain and pile depth requirements. The fixing plate 9 and the support rod 10 are connected by bolts or welding, providing necessary support and stability for the whole pile driving device, improving the speed and accuracy of pile driving operations, and at the same time reducing the safety risks during the construction process, and is suitable for photovoltaic construction projects under various complex terrain conditions.
[0020] The working principle of a pile driving device for photovoltaic construction based on Embodiment 1 is as follows: First, the operator sits on the seat 3, starts the controller panel 5 on the control chassis 11, operates the device through the operating lever 4, and drives the device to the corresponding area where pile driving is required. At the same time, the operator starts the switch on the controller panel 5 to make the electric telescopic rod 86 slide downward to work, lower the fixed base plate 88 on the pile driving assembly 8, and make the fixed drilling nail 89 fully contact the ground and be fixed to the ground. In this way, the area where pile driving is required can be fixed within a controllable range to prevent pile driving deviation. Finally, the first motor 71 and the second motor 82 are started again through the operation of the controller panel 5. The first motor 71 drives the screw rod 72 to rotate, causing the sliding block 73 to slide up and down. Thus, the second motor housing 81 connected through the connecting rod 74 slides downward at a uniform speed. Through the operation of the second motor 82, the pile driving rod 85 and the electric telescopic rod 86 cooperate to work, enabling the pile driving bit 87 to complete the corresponding pile driving depth, and then completing the pile driving work.
[0021] Embodiment Two
[0022] As Figure 1 As shown in the figure, a pile driving device for photovoltaic construction proposed by the present utility model, compared with Embodiment 1, this embodiment further includes: A controller panel 5 is installed on one side wall of the control chassis 11, and an operating lever 4 is installed on the top of the control chassis 11. The control chassis 11 is made of high-strength and wear-resistant materials, ensuring its long-term stable operation. The controller panel 5 is carefully designed on one side of the control chassis 11, with a compact and intuitive panel layout, facilitating technicians to quickly and accurately set or adjust construction parameters. The top of the control chassis 11 is equipped with an operating lever 4 with adjustable height and angle to adapt to the changing working environment and the needs of operators. This device is designed specifically for pile driving in photovoltaic construction, capable of efficiently and precisely controlling pile driving operations, significantly improving construction quality and efficiency. By combining the construction parameters preset by the controller panel 5 with the precise operation of the operating lever 4, the accuracy and safety of the pile driving process are ensured.
[0023] In this embodiment, as Figure 2As shown, a transmission box 76 is installed on the transmission assembly 7. A first motor 71 is installed inside the transmission box 76. When the first motor 71 starts, it drives the screw rod 72 to rotate, thereby driving the movement of the entire device. The output end of the first motor 71 is equipped with a screw rod 72, and a sliding block 73 is installed on the screw rod 72. One end of the connecting rod 74 is installed with the sliding block 73. A slide rail 75 is installed on the inner side wall of the transmission box 76, and the other end of the slide rail 75 is slidably connected to the sliding block 73. One end of the connecting rod 74 is connected to the sliding block 73, and the other end is provided with another sliding block 73. This design ensures the stability of the connection, enabling the entire assembly to effectively transmit power and load. Moreover, the inner side wall of the transmission box 76 is provided with a slide rail 75, forming a sliding fit with the sliding block 73 to ensure that the sliding block 73 can move smoothly along the axis, thereby precisely controlling the driving depth of the pile.
[0024] In this embodiment, as Figure 3 shown, a second motor housing 81 is installed on the pile driving assembly 8. The second motor housing 81 is used to protect the second motor 82 and is made of the corrosion-resistant and high-temperature-resistant Luther environmental protection material. A second motor 82 is installed inside the second motor housing 81. Fixed pieces 83 are installed on both side walls of the second motor 82, and the fixed pieces 83 are fixedly installed on the inner side walls on both sides of the second motor housing 81. The installation of the fixed pieces 83 ensures the stable installation of the second motor 82 on the pile driving assembly 8 and can also effectively drive the pile driving rod 85 to perform precise pile driving operations. The output end of the second motor 82 is equipped with a coupling seat 84, and a pile driving rod 85 is installed at the bottom of the coupling seat 84. A pile driving bit 87 is installed at the bottom of the pile driving rod 85. The second motor 82 starts the switch through the controller panel 5, drives the coupling seat 84 to rotate, and then drives the pile driving rod 85 to rotate, enabling the pile driving bit 87 to precisely drill the ground to meet different pile driving requirements. An electric telescopic rod 86 is installed on the pile driving rod 85. A fixed bottom plate 88 is installed at the bottom of the pile driving bit 87. Fixed drilling nails 89 are installed at both ends of the bottom of the fixed bottom plate 88. The design of the electric telescopic rod 86 allows the extension length of the pile driving bit 87 to be flexibly adjusted according to the specific construction conditions, ensuring that the pile driving operation can adapt to different depth requirements. The installation of the fixed bottom plate 88 provides stable support for the pile driving bit 87, ensuring stability during the drilling process and reducing the possibility of movement and tilting. The use of the fixed drilling nails 89 further enhances the connection force between the fixed bottom plate 88 and the ground, ensuring the firmness of the pile driving and improving the stability and safety of the photovoltaic panel installation.
[0025] In this embodiment, as Figure 2 and Figure 3As shown, one side wall of the second motor housing 81 is fixedly connected to the slider 73 on the transmission assembly 7 through the connecting rod 74, so as to ensure that the transmission assembly 7 forms a sliding fit with the pile driving assembly 8, and further complete the pile driving operation of the photovoltaic construction.
[0026] The above specific embodiments are only several preferred embodiments of the present invention. Based on the technical solution of the present invention and the relevant revelations of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.
Claims
1. A piling device for photovoltaic construction, comprising a walking assembly (1), a supporting base (2), a power chamber (6), a transmission assembly (7), a piling assembly (8), a second motor housing (81) and a control box (11); characterized in that: A rotating base (12) is installed on the top of the walking assembly (1), a supporting base (2) is installed on the upper end of the rotating base (12), a seat (3) is installed on one side of the upper surface of the supporting base (2), a power chamber (6) is installed in the middle of the upper surface of the supporting base (2), a control box (11) is installed on the top of the power chamber (6), a transmission assembly (7) is installed on the other side of the upper surface of the supporting base (2), a connecting rod (74) is installed on the transmission assembly (7), and the connecting rod (74) is fixedly connected to the pile driving assembly (8), a fixing plate (9) is installed on the outer side of the transmission assembly (7), and the fixing plate (9) is movably connected to the pile driving assembly (8) through a bearing seat, the bottom of the fixing plate (9) is connected to a first end of the supporting rod (10), and the other end of the supporting rod (10) is fixed to the upper surface of the supporting base (2).
2. A piling device for photovoltaic construction according to claim 1, characterized in that: A controller panel (5) is installed on a side wall of the control box (11), and an operating rod (4) is installed on the top of the control box (11).
3. A piling device for photovoltaic construction according to claim 1, characterized in that: The transmission assembly (7) is provided with a transmission box (76), a first motor (71) is provided in the transmission box (76), a screw rod (72) is provided at the output end of the first motor (71), a sliding block (73) is provided on the screw rod (72), one end of the connecting rod (74) is provided with the sliding block (73), a slide rail (75) is provided on the inner side wall of the transmission box (76), and the slide rail (75) is slidably connected to the other end of the sliding block (73).
4. A piling device for photovoltaic construction according to claim 1, characterized in that: The piling assembly (8) is provided with a second motor housing (81), a second motor (82) is provided in the second motor housing (81), fixing plates (83) are provided on the side walls on both sides of the second motor (82), and the fixing plates (83) are fixedly provided on the inner side walls on both sides of the second motor housing (81), a coupling seat (84) is provided on the output end of the second motor (82), a piling rod (85) is provided on the bottom of the coupling seat (84), a piling drill bit (87) is provided on the bottom of the piling rod (85), an electric telescopic rod (86) is provided on the piling rod (85), a fixed bottom plate (88) is provided on the bottom of the piling drill bit (87), and fixed drilling nails (89) are provided on both ends of the bottom of the fixed bottom plate (88).
5. A piling device for photovoltaic construction according to claim 1, characterized in that: A side wall of one side of the second motor housing (81) is fixedly connected to a sliding block (73) on the transmission assembly (7) via a connecting rod (74).