Hydrophobic ponding prevention equipment foundation
Through the water-repellent water-absorbing equipment foundation combined with water conduit pipes and water transfer pipes, the problems of water accumulation and rust in the traditional equipment foundation are solved, and efficient drainage and construction convenience are achieved.
Patent Information
- Application Number
- CN202510701835.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2025-07-08
AI Technical Summary
Traditional equipment foundations are prone to water accumulation and rust during long-term use. The existing drainage design is inefficient and cannot effectively avoid water retention and rust of components around the equipment.
The combination of top-down embedded water conduit pipes and water conduit pipes is used to combine water pumping components and dredging components to lead the water to the inlet holes of the water conduit pipes and water conduit pipes, and efficient drainage and dredging are used to avoid blockage of water inlet holes.
Efficient drainage is achieved, water accumulation on the concrete platform, prevents rust around the equipment, and improves the working performance and construction convenience of the drainage components.
Smart Images

Figure CN120273385A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of equipment platforms, and in particular to a hydrophobic anti-water accumulation equipment foundation. Background Art
[0002] During the use of the equipment, the equipment foundation is required to support the equipment. During the long-term use of the equipment foundation, it will inevitably come into contact with water, such as rainwater in the environment, coolant or cleaning fluid generated during the operation of the equipment, etc. After these water accumulates on the equipment foundation, it is easy to penetrate around the equipment along the edges and gaps of the foundation.
[0003] Therefore, most traditional equipment foundations are designed with simple drainage ditches to drain the water on the foundation. However, this drainage method mostly relies on natural gravity diversion. During long-term use, structural defects not only easily lead to water retention and residual water stains, but also cause rust problems on parts around the equipment.
[0004] To this end, we proposed a hydrophobic anti-waterlogging equipment foundation. Summary of the invention
[0005] The purpose of the present invention is to solve the above-mentioned shortcomings and provide a hydrophobic anti-water accumulation equipment foundation.
[0006] In order to solve the above technical problems, the present invention adopts the following technical solutions:
[0007] The present invention is implemented by the following technical scheme: a hydrophobic anti-water accumulation equipment foundation, including a formwork and a concrete platform cast in the formwork by concrete, a drainage component for discharging water on the concrete platform, including a water pipe and a water delivery pipe pre-buried in the concrete platform from top to bottom, the water delivery pipe and the water pipe abut each other, a plurality of water inlet holes are provided between the water pipe and the water pipe, one end of the water delivery pipe is closed, the other end of the water delivery pipe passes through the outside of the formwork and is connected to a shell, a pumping component for extracting water from the water pipe is provided in the shell; a dredging component is provided in the water pipe for dredging the water inlet hole blocked by impurities in the water, the equipment can be carried by the concrete platform, when water falls on the concrete platform, the water falling on the concrete platform will enter the water pipe, the water in the water pipe is transported to the water pipe through the water inlet hole, and the water can be transported to the outside through the water delivery pipe.
[0008] As a further improvement of the above scheme, the pumping assembly includes an upper valve and a lower valve sliding inside the shell, a piston sliding in the shell is provided between the upper valve and the lower valve, both ends of the bottom side of the upper valve and the lower valve are provided with limit blocks fixed in the shell, a plurality of guide rods are fixed in the shell, the upper valve and the lower valve are provided with guide holes slidingly matched with the guide rods, and through the operation of the pumping assembly, the water inside the water pipe can be pumped into the shell.
[0009] As a further improvement of the above solution, the shell is fixed on the outside of the formwork, and the water conduit is an arc-shaped structure, through which the water conduit can receive the water on the concrete platform.
[0010] As a further improvement of the above scheme, a drain pipe for discharging water inside the shell is installed on the top side of the shell, the piston is located between the water pipe and the drain pipe, the drain pipe is located above the water pipe, and the water inside the shell can be discharged to the corresponding water tank through the drain pipe.
[0011] As a further improvement of the above scheme, the dredging component includes a linkage block sliding in the water pipe, the linkage block is provided with an installation groove corresponding to the water inlet hole, the interior of the installation groove is slidably connected with a slider, the interior of the slider is slidably penetrated with a dredging column inserted in the water inlet hole, and the slider is provided with an adjusting component for adjusting the position of the dredging column; the adjusting component includes a sliding groove provided on the slider and a clamping block slidably inserted in the sliding groove, the outer side of the dredging column is provided with a plurality of clamping grooves corresponding to the clamping block, the clamping block is slidably inserted in adjacent clamping grooves, a screw is threadedly penetrated by the clamping block, one end of the screw is rotatably connected with a fixing block fixed to the top side of the slider, and the other end of the screw is fixed with a handle for turning the screw for rotation, through the operation of the dredging component, the water inlet hole can be dredged to improve the water delivery efficiency of the water inlet hole, and the corresponding position of the dredging column can be adjusted according to the corresponding position of the water inlet hole.
[0012] As a further improvement of the above solution, one end of the housing is provided with a transmission frame with ratchets fixed on the inner walls on both sides. A plurality of push rods are fixed on the transmission frame, with the other ends fixed on the piston, for pushing the piston to perform reciprocating displacement. A driving rod is inserted into the interior of the transmission frame. An outer wall of the driving rod is fixedly sleeved with a semi-gear meshing with the ratchets. A connection groove is formed on the top side of the concrete platform. A reinforcement block fixed on a linkage block is fixed inside the connection groove. A threaded column for driving the reinforcement block to perform vertical displacement is threadedly penetrated through the middle of the reinforcement block. An outer wall of the driving rod is fixedly sleeved with a first gear. An outer wall of the bottom of the threaded column is fixedly sleeved with a second gear meshing with the first gear. By rotating the driving rod, the semi-gear can be driven to rotate. Through the cooperation of the semi-gear and the transmission frame, the transmission frame can be driven to perform reciprocating displacement, driving the push rod and the piston to perform reciprocating displacement. When the driving rod rotates, the first gear will be driven to rotate, driving the second gear to rotate, driving the threaded column to rotate. Through the threaded cooperation between the threaded column and the reinforcement block, the reinforcement block and the linkage block are driven to perform vertical displacement.
[0013] As a further improvement of the above solution, the housing is provided with a through hole slidably matched with the push rod. An inner wall of the through hole is provided with a rubber ring for improving the sealing performance of the through hole. Through the through hole, the push rod can perform displacement. Through the rubber ring, the sealing performance of the through hole can be improved.
[0014] As a further improvement of the above solution, a loading groove for the first gear and the second gear to rotate is formed on the bottom side of the concrete platform. One end of the driving rod is in transmission connection with a motor fixed on the inner wall of the loading groove. The other end of the driving rod is rotatably connected to a stabilizing block fixed outside the formwork. The bottom end of the threaded column penetrates into the interior of the loading groove and is rotatably connected to a mounting plate fixed on the inner wall of the loading groove. By operating the motor, the driving rod can be driven to rotate. Through the stabilizing block, the stability performance of the driving rod can be improved. Through the mounting plate, the stability performance of the threaded column can be improved.
[0015] As a further improvement of the above solution, the formwork and the concrete platform are provided with a first rotating hole. The driving rod is rotatably matched with the first rotating hole. The concrete platform is provided with a second rotating hole. The threaded column is rotatably matched with the second rotating hole. Through the first rotating hole, the driving rod can rotate flexibly. Through the second rotating hole, the threaded column can rotate flexibly.
[0016] As a further improvement of the above solution, steel bars are pre-embedded in the concrete platform. The water delivery pipe is a rigid galvanized water pipe. Through the concrete platform with pre-embedded steel bars, the stability performance of the concrete platform can be improved.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0018] 1. The present invention can transport the water liquid falling on the concrete platform to the reservoir, avoiding the accumulation of water liquid on the concrete platform, which may cause corrosion of the components around the equipment. It can extract the water liquid flowing naturally in the drainage component, improve the drainage efficiency of the drainage component, and has high working performance. During the process of extracting the water liquid, it can dredge the water inlet holes on the concrete platform, preventing some of the water inlet holes from being blocked by impurities after a long time of water transportation work, thus unable to carry out the drainage work.
[0019] 2. The present invention can flexibly adjust the corresponding positions of the dredging columns according to the installation requirements of the water inlet holes and the dredging components, facilitating the installation of the dredging components on the concrete platform by construction workers. It can regulate the corresponding heights of the dredging columns according to the diameter of the water delivery pipe, which is convenient for use, and also facilitates the disassembly of the damaged dredging columns by construction workers. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The schematic diagrams in the specification forming a part of this application are used to provide a further understanding of the present invention. The schematic embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation to the present invention. In the drawings:
[0021] Figure 1 It is a schematic diagram of the foundation of a hydrophobic water accumulation prevention device;
[0022] Figure 2 It is a cross-sectional view of the foundation of a hydrophobic water accumulation prevention device;
[0023] Figure 3 It is a top view of the foundation of a hydrophobic water accumulation prevention device;
[0024] Figure 4 It is a schematic diagram of the water delivery pipe in the foundation of a hydrophobic water accumulation prevention device;
[0025] Figure 5 It is a cross-sectional view of the housing in the foundation of a hydrophobic water accumulation prevention device;
[0026] Figure 6 It is Figure 2 an enlarged schematic diagram of the structure at A in
[0027] Figure 7 It is a cross-sectional view of the linkage block in the foundation of a hydrophobic water accumulation prevention device;
[0028] Figure 8 It is Figure 4 an enlarged schematic diagram of the structure at B in
[0029] Figure 9 It is a cross-sectional view of the loading groove in the foundation of a hydrophobic water accumulation prevention device.
[0030] In the figure: 1. formwork; 2. concrete platform; 3. water pipe; 4. water guide pipe; 5. shell; 6. upper valve; 7. lower valve; 8. limit block; 9. piston; 10. guide rod; 11. drain pipe; 12. drive rod; 13. transmission frame; 14. push rod; 15. half gear; 16. linkage block; 17. mounting groove; 18. slider; 19. dredging column; 20. block; 21. slot; 22. screw; 23. fixing block; 24. connecting groove; 25. reinforcement block; 26. threaded column; 27. gear one; 28. gear two; 29. motor; 30. loading slot; 31. water inlet hole; 32. stabilizing block. DETAILED DESCRIPTION
[0031] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments. In the absence of conflict, the embodiments in this application and the features in the embodiments can be combined with each other. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work belong to the scope of protection of the present invention.
[0032] Embodiment 1:
[0033] Combination Figure 1 , Figure 2 and Figure 6 A hydrophobic anti-water accumulation equipment foundation of the present embodiment includes a formwork 1 and a concrete platform 2 cast in the formwork 1 by concrete, the top side of the concrete platform 2 is provided with an inclination angle toward the water guide pipe 4, and a drainage component is used to discharge the water on the concrete platform 2, including a water guide pipe 4 and a water delivery pipe 3 pre-buried in the concrete platform 2 from top to bottom, the water delivery pipe 3 and the water guide pipe 4 are abutted, and a plurality of water inlet holes 31 are opened between the water delivery pipe 3 and the water guide pipe 4, one end of the water delivery pipe 3 is closed, and the other end of the water delivery pipe 3 passes through the outside of the formwork 1 and is connected to a shell 5, and a pumping component for extracting water from the water delivery pipe 3 is provided in the shell 5; a dredging component is provided in the water guide pipe 4, for dredging the water inlet hole 31 blocked by impurities in the water.
[0034] The implementation principle of a hydrophobic anti-water accumulation equipment foundation in the embodiment of the present application is: the equipment can be supported by the concrete platform 2, and the equipment is located in the inner circle of the water pipe 4. When water falls on the concrete platform 2, the water falling on the concrete platform 2 will enter the water pipe 4, and the water in the water pipe 4 will be transported to the water pipe 3 through the water inlet hole 31. At this time, the water can be transported to the outside through the water pipe 3 to avoid water accumulation on the concrete platform 2, which will cause rust on the surrounding parts of the equipment.
[0035] Embodiment 2:
[0036] Combined with Figure 3 and Figure 4 and Figure 5 , on the basis of Embodiment 1, the further improvement of this embodiment lies in that: the pumping assembly includes an upper valve 6 and a lower valve 7 that slide inside the housing 5. A piston 9 that slides inside the housing 5 is provided between the upper valve 6 and the lower valve 7. At both ends of the bottom sides of the upper valve 6 and the lower valve 7, there are limit blocks 8 fixed inside the housing 5. A plurality of guide rods 10 are fixed inside the housing 5. The upper valve 6 and the lower valve 7 are provided with guide holes that slidably cooperate with the guide rods 10. A drain pipe 11 for discharging the liquid inside the housing 5 is installed on the top side of the housing 5. The piston 9 is located between the water delivery pipe 3 and the drain pipe 11, and the drain pipe 11 is located above the water delivery pipe 3. Through the leftward displacement of the piston 9, the pressure inside the cavity decreases, pressing down the upper valve 6 and lifting the lower valve 7. The liquid inside the water delivery pipe 3 is sucked into the housing 5. Through the rightward displacement of the piston 9, the pressure inside the cavity increases, lifting the upper valve 6 and pressing down the lower valve 7. The liquid inside the housing 5 will be discharged through the drain pipe 11 and sent to the corresponding reservoir.
[0037] The housing 5 is fixed outside the formwork 1, and the water guide pipe 4 is of an arc-shaped structure. Through the arc-shaped water guide pipe 4, the liquid on the concrete platform 2 can be received.
[0038] Embodiment 3:
[0039] Combined with Figure 7 , on the basis of Embodiment 2, the further improvement of this embodiment lies in that: the dredging assembly includes a linkage block 16 that slides inside the water guide pipe 4. The linkage block 16 is provided with an installation groove 17 corresponding to the water inlet hole 31. A slider 18 is slidably connected inside the installation groove 17. A dredging column 19 inserted into the water inlet hole 31 is slidably penetrated inside the slider 18. The diameter of the water inlet hole 31 is larger than the diameter of the dredging column 19. The slider 18 is provided with an adjustment assembly for adjusting the position of the dredging column 19;
[0040] The adjusting component includes a sliding groove provided on the slider 18 and a block 20 slidably inserted in the sliding groove. A plurality of slots 21 corresponding to the block 20 are provided on the outer side of the dredging column 19. The block 20 is slidably inserted in the adjacent slots 21. A screw 22 is threadedly passed through the block 20. One end of the screw 22 is rotatably connected to a fixing block 23 fixed to the top side of the slider 18. The other end of the screw 22 is fixed with a handle for turning the screw 22 to rotate. When the water inlet 31 is partially blocked by impurities after a long period of water delivery, the water inlet 31 can be adjusted by sliding. The vertical displacement of the block 18 drives the slider 18 to move vertically, and drives the dredging column 19 to move vertically. At this time, the water inlet hole 31 can be dredged by the vertically displaced dredging column 19, thereby improving the water delivery efficiency of the water inlet hole 31. When the user installs the linkage block 16 inside the water pipe 4, the corresponding position of the dredging column 19 can be adjusted according to the corresponding position of the water inlet hole 31, and the dredging column 19 can be pulled. The sliding cooperation between the slider 18 and the installation groove 17 can drive the dredging column 19 to move, thereby facilitating the construction personnel to insert the dredging column 19 into the water inlet hole 31. 1, and in the process of installing the linkage block 16, the height of the dredging column 19 can be adjusted according to the use requirements, and the screw rod 22 can be rotated to drive the block 20 to move through the threaded cooperation of the screw rod 22 and the block 20. When the block 20 is out of the corresponding card slot 21, the dredging column 19 can be pulled, and the dredging column 19 can be driven to move vertically through the sliding cooperation of the dredging column 19 and the slider 18. At this time, the height of the dredging column 19 can be adjusted. After the height of the dredging column 19 is adjusted, the screw rod 22 can be rotated to drive the block 20 to move vertically through the threaded cooperation of the screw rod 22 and the block 20. Cooperate to drive the block 20 to move. When the block 20 enters the corresponding slot 21, the dredging column 19 is fixed on the slider 18. When the damaged dredging column 19 needs to be removed, the screw rod 22 can be rotated. Through the thread cooperation of the screw rod 22 and the block 20, the block 20 is driven to move. When the block 20 is out of the corresponding slot 21, the dredging column 19 can be pulled. Through the sliding cooperation of the dredging column 19 and the slider 18, the dredging column 19 is driven to move vertically. When the dredging column 19 is separated from the slider 18, the dredging column 19 is removed.
[0041] Embodiment 4:
[0042] Combination Figure 8 and Figure 9, on the basis of Embodiment 3, the further improvement in this embodiment lies in: at one end of the housing 5, there is a transmission frame 13 with ratchets fixed on the inner walls on both sides. A plurality of push rods 14 are fixed on the transmission frame 13, and the other ends of the push rods 14 are fixed on the piston 9 for pushing the piston 9 to perform reciprocating displacement. A drive rod 12 is inserted into the interior of the transmission frame 13. An external wall of the drive rod 12 is fixedly sleeved with a semi-gear 15 that meshes with the ratchet teeth. A connection groove 24 is formed on the top side of the concrete platform 2. A reinforcement block 25 fixed on the linkage block 16 is fixed inside the connection groove 24. A threaded column 26 for driving the reinforcement block 25 to perform vertical displacement is threadedly inserted through the middle of the reinforcement block 25. An external wall of the drive rod 12 is fixedly sleeved with a first gear 27. An external wall at the bottom of the threaded column 26 is fixedly sleeved with a second gear 28 that meshes with the first gear 27. By rotating the drive rod 12, the semi-gear 15 can be driven to rotate. Through the cooperation of the semi-gear 15 and the transmission frame 13, the transmission frame 13 can be driven to perform reciprocating displacement, driving the push rods 14 and the piston 9 to perform reciprocating displacement. When the drive rod 12 rotates, the first gear 27 will be driven to rotate, driving the second gear 28 to rotate, driving the threaded column 26 to rotate. Through the threaded cooperation between the threaded column 26 and the reinforcement block 25, the reinforcement block 25 and the linkage block 16 are driven to perform vertical displacement.
[0043] The housing 5 is provided with a through hole that slidably cooperates with the push rod 14. An inner wall of the through hole is provided with a rubber ring for improving the sealing performance of the through hole. Through the through hole, the push rod 14 can perform displacement, and through the rubber ring, the sealing performance of the through hole can be improved.
[0044] A loading groove 30 for the first gear 27 and the second gear 28 to rotate is formed on the bottom side of the concrete platform 2. One end of the drive rod 12 is drivingly connected to a motor 29 fixed on the inner wall of the loading groove 30. The motor 29 is a forward and reverse stepping motor. The other end of the drive rod 12 is rotatably connected to a stabilizing block 32 fixed outside the formwork 1. The bottom end of the threaded column 26 penetrates into the interior of the loading groove 30 and is rotatably connected to a mounting plate fixed on the inner wall of the loading groove 30. By operating the motor 29, the drive rod 12 can be driven to rotate. Through the stabilizing block 32, the stability performance of the drive rod 12 can be improved. Through the mounting plate, the stability performance of the threaded column 26 can be improved.
[0045] The formwork 1 and the concrete platform 2 are provided with a first rotation hole. The drive rod 12 is rotatably mated with the first rotation hole. The concrete platform 2 is provided with a second rotation hole. The threaded column 26 is rotatably mated with the second rotation hole. Through the first rotation hole, the drive rod 12 can rotate flexibly. Through the second rotation hole, the threaded column 26 can rotate flexibly.
[0046] Reinforcing bars are embedded in the concrete platform 2. The water delivery pipe 3 is a rigid galvanized water pipe. Through the concrete platform 2 with embedded reinforcing bars, the stability performance of the concrete platform 2 can be improved.
[0047] It is obvious to those skilled in the art that the present invention is not limited to the details of the above-described exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention.
Claims
1. A hydrophobic anti-water accumulation equipment foundation, comprising a formwork (1) and a concrete platform (2) poured in the formwork (1), characterized in that: A drainage assembly is used to discharge water on a concrete platform (2), comprising a water pipe (4) and a water delivery pipe (3) which are pre-buried in the concrete platform (2) from top to bottom, the water delivery pipe (3) and the water delivery pipe (4) being in contact with each other, and a plurality of water inlet holes (31) are provided between the water delivery pipe (3) and the water delivery pipe (4). One end of the water delivery pipe (3) is closed, and the other end of the water delivery pipe (3) passes through the outside of the formwork (1) and is connected to a shell (5), wherein a pumping assembly for extracting water from the water delivery pipe (3) is provided inside the shell (5); The water conduit (4) is provided with a dredging component for dredging the water inlet hole (31) blocked by impurities in the water.
2. The hydrophobic water accumulation prevention equipment foundation according to claim 1, characterized in that, The pumping assembly comprises an upper valve (6) and a lower valve (7) which slide inside a shell (5); a piston (9) which slides inside the shell (5) is arranged between the upper valve (6) and the lower valve (7); limit blocks (8) which are fixed inside the shell (5) are arranged at both ends of the bottom sides of the upper valve (6) and the lower valve (7); a plurality of guide rods (10) are fixed inside the shell (5); and guide holes which slide in cooperation with the guide rods (10) are provided in the upper valve (6) and the lower valve (7).
3. The hydrophobic water accumulation prevention device foundation according to claim 2, characterized in that, The shell (5) is fixed on the outside of the mold shell (1), and the water conduit (4) is an arc-shaped structure.
4. The hydrophobic water accumulation prevention equipment foundation according to claim 2, characterized in that, A drain pipe (11) for draining water from the shell (5) is installed on the top side of the shell (5); the piston (9) is located between the water pipe (3) and the drain pipe (11); and the drain pipe (11) is located above the water pipe (3).
5. The hydrophobic water accumulation prevention equipment foundation according to claim 2, characterized in that, The dredging component comprises a linkage block (16) sliding in the water conduit (4), the linkage block (16) being provided with a mounting groove (17) corresponding to the water inlet hole (31), the interior of the mounting groove (17) being slidably connected with a slider (18), the interior of the slider (18) being slidably penetrated with a dredging column (19) inserted in the water inlet hole (31), and the slider (18) being provided with an adjustment component for adjusting the position of the dredging column (19); The adjusting component comprises a sliding groove provided on a slider (18) and a block (20) slidably inserted in the sliding groove, a plurality of slots (21) corresponding to the block (20) are provided on the outer side of the dredging column (19), the block (20) is slidably inserted in the adjacent slots (21), a screw rod (22) is threadedly passed through the block (20), one end of the screw rod (22) is rotatably connected to a fixing block (23) fixed to the top side of the slider (18), and a handle for turning the screw rod (22) for rotation is fixed to the other end of the screw rod (22).
6. The hydrophobic water-accumulation prevention equipment foundation according to claim 5, characterized in that, One end of the housing (5) is provided with a transmission frame (13) with ratchets fixed on the inner walls on both sides. A plurality of push rods (14) are fixed on the transmission frame (13), with the other ends fixed on the piston (9) and used to push the piston (9) to perform reciprocating displacement. A drive rod (12) is inserted into the interior of the transmission frame (13). A semi-gear (15) meshing with the ratchets is fixedly sleeved on the outer wall of the drive rod (12). A connection groove (24) is formed on the top side of the concrete platform (2). A reinforcement block (25) fixed on the linkage block (16) is fixed inside the connection groove (24). A threaded column (26) for driving the reinforcement block (25) to perform vertical displacement is threadedly penetrated through the middle of the reinforcement block (25). A gear one (27) is fixedly sleeved on the outer wall of the drive rod (12). A gear two (28) meshing with the gear one (27) is fixedly sleeved on the outer wall at the bottom of the threaded column (26).
7. The hydrophobic water accumulation prevention equipment foundation according to claim 6, characterized in that, The housing (5) is provided with a through hole slidably matched with the push rod (14), and a rubber ring for improving the sealing performance of the through hole is arranged on the inner wall of the through hole.
8. The hydrophobic water accumulation prevention device foundation according to claim 6, characterized in that, A loading groove (30) for the gear one (27) and the gear two (28) to rotate is formed on the bottom side of the concrete platform (2). One end of the drive rod (12) is drivingly connected to a motor (29) fixed on the inner wall of the loading groove (30). The other end of the drive rod (12) is rotatably connected to a stabilizing block (32) fixed on the outside of the formwork (1). The bottom end of the threaded column (26) penetrates into the interior of the loading groove (30) and is rotatably connected to a mounting plate fixed on the inner wall of the loading groove (30).
9. The hydrophobic water accumulation prevention device foundation according to claim 6, characterized in that The formwork (1) and the concrete platform (2) are provided with a first rotating hole, and the drive rod (12) is rotatably matched with the first rotating hole. The concrete platform (2) is provided with a second rotating hole, and the threaded column (26) is rotatably matched with the second rotating hole.
10. A hydrophobic water accumulation prevention device foundation according to claim 1, characterized in that, Reinforcing bars are pre-buried in the concrete platform (2), and the water delivery pipe (3) is a rigid galvanized water pipe.