A ready-made road accessory construction system

CN115637764BActive Publication Date: 2026-08-07恒鑫工程咨询(厦门)有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
恒鑫工程咨询(厦门)有限公司
Filing Date
2022-08-25
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0002]目前道路只是作为车辆进行行驶的用途,当装载有化学物品的车辆因侧翻出现侧漏,化学物品会泄漏到道路的路面上,路面上的化学物品会留到农田,进而对农田造成污染,基于这一情形我们提出了一种常备的道路附属设施建设系统

Benefits of technology

[0014]与现有的技术相比,本发明可以将受污染的水进行阻隔在对应的集水区域内,有效防止对蓄水池内的水进行污染,也防止其留到农田,同时将阻隔有受污染的水所在位置进行发送到监控终端上,另外在蓄水池内的水处于满状态时可以将水进行收集到其他的蓄水池内。

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses a kind of ready road accessory facilities construction systems, including the road being arranged on the top of foundation, the left side and the right side of the road are provided with a hard channel being arranged on the top of foundation and being concave downward, the lower of road is equipped with multiple water reservoirs being sequentially arranged in foundation from front to back, multiple partitions are sequentially fixed in the hard channel from front to back, the hard channel is divided into multiple catchment areas by multiple partitions, and catchment areas and water reservoirs are one-to-one correspondingly arranged.The application can block contaminated water in the corresponding catchment area, effectively prevent the water in the water reservoir from being contaminated, also prevent it from remaining in farmland, at the same time, the position of the blocked contaminated water is sent to the monitoring terminal, in addition, when the water in the water reservoir is in full state, the water can be collected into other water reservoirs.
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Description

Technical Field

[0001] This invention relates to the field of road ancillary facilities technology, and more particularly to a standard road ancillary facilities construction system. Background Technology

[0002] Currently, roads are only used for vehicle traffic. When a vehicle carrying chemicals overturns and leaks, the chemicals will spill onto the road surface and then onto farmland, causing pollution. Based on this situation, we propose a stand-alone road infrastructure construction system. Summary of the Invention

[0003] Based on the technical problems existing in the background technology, the present invention proposes a standard road ancillary facility construction system.

[0004] The present invention proposes a standard road ancillary facility construction system, including a road set on top of a foundation, a rigid ditch set on the left and right sides of the road and recessed downwards from the top of the foundation, and multiple water storage tanks set in the foundation from front to back below the road. Multiple partitions are fixed in the rigid ditch from front to back, and the rigid ditch is divided into multiple water collection areas by the multiple partitions. The water collection areas and water storage tanks are set in a one-to-one correspondence.

[0005] Below each water collection area is a water storage container installed in the foundation. The top of the water storage container is connected to and fixed with an inlet pipe that is connected to the corresponding water collection area. The bottom of the water storage container is fixed to and connected to a water pump installed in the foundation. The outlet of the water pump is connected to and fixed with a first conveying pipe installed in the foundation. The end of the first conveying pipe near the water storage tank is connected to and fixed with a second conveying pipe installed in the foundation. The top of the second conveying pipe is connected to and fixed with a third conveying pipe installed in the foundation. The top of the third conveying pipe is connected to and fixed with a first electromagnetic water valve that is connected to the inside of the water storage tank. The first electromagnetic water valve is in the open state.

[0006] A water quality detector for detecting water quality is fixedly installed on the bottom inner wall of the water collection area, and an alarm light electrically connected to the water quality detector is fixedly embedded on the top of the inner wall on the side of the water collection area away from the water storage tank.

[0007] Each water catchment area has a solar panel mounting bracket installed on the top of the foundation on the side away from the road. Multiple solar panels are installed sequentially from front to back on the top of the solar panel mounting bracket at an angle. The multiple solar panels on the same solar panel mounting bracket are electrically connected to the same controller installed on the solar panel mounting bracket.

[0008] Preferably, a horizontal baffle plate is fixedly installed inside the water inlet pipe. Multiple second electromagnetic water valves in the open state are embedded and fixed at equal intervals from front to back on the top of the horizontal baffle plate. The multiple second electromagnetic water valves and water pumps located on the same horizontal baffle plate are all controlled by the corresponding water quality detectors through the controller.

[0009] Preferably, two adjacent second conveying pipes are fixedly connected to the same third electromagnetic water valve which is in a closed state, and two second conveying pipes spaced apart from each other are fixedly connected to the same fourth conveying pipe with a fourth electromagnetic water valve which is in a closed state.

[0010] Preferably, the alarm light has a built-in locator, which is wirelessly connected to the monitoring terminal via a controller.

[0011] Preferably, a connecting well is provided at the top of the water storage tank, and a well cover is detachably installed in the connecting well. A first water level sensor for measuring the water level inside the water storage tank is fixedly installed on the inner wall of the top of the water storage tank, and the fourth electromagnetic water valve and the first electromagnetic water valve are controlled by the corresponding first water level sensor.

[0012] Preferably, a second water level sensor for measuring the water level inside the water storage container is fixed on the top inner wall, and the water pump is controlled by the second water level sensor.

[0013] Preferably, the controller is electrically connected to a battery mounted on a solar panel mounting bracket. The battery powers the water pump, the first electromagnetic water valve, the alarm light, the water quality detector, the controller, the second electromagnetic water valve, the third electromagnetic water valve, the fourth electromagnetic water valve, the first water level sensor, and the second water level sensor.

[0014] Compared with existing technologies, this invention can block contaminated water within a corresponding water collection area, effectively preventing pollution of the water in the reservoir and preventing it from flowing into farmland. At the same time, the location of the blocked contaminated water is sent to a monitoring terminal. In addition, when the reservoir is full, the water can be collected into other reservoirs. Attached Figure Description

[0015] Figure 1 This is a structural cross-sectional schematic diagram of a standard road ancillary facility construction system proposed in this invention;

[0016] Figure 2 for Figure 1 A magnified structural diagram of section AA in the middle;

[0017] Figure 3This is a left-side view of the structure of a standard road ancillary facility construction system proposed in this invention, showing the installation of three adjacent second conveying pipes, a third electromagnetic water valve, a fourth conveying pipe, and a fourth electromagnetic water valve.

[0018] In the diagram: 1. Foundation; 2. Road; 3. Hard ditch; 4. Reservoir; 401. Connecting well; 402. Manhole cover; 5. Partition; 6. Water storage container; 7. Inlet pipe; 701. Horizontal baffle; 702. Second electromagnetic water valve; 8. Water pump; 9. First conveying pipe; 10. Second conveying pipe; 11. Third conveying pipe; 12. First electromagnetic water valve; 13. Second water level sensor; 14. Water quality detector; 15. First water level sensor; 16. Alarm light; 17. Solar panel mounting bracket; 18. Solar panel; 19. Battery; 20. Controller; 21. Third electromagnetic water valve; 22. Fourth conveying pipe; 23. Fourth electromagnetic water valve. Detailed Implementation

[0019] The present invention will be further explained below with reference to specific embodiments.

[0020] Example

[0021] Reference Figure 1-3 This embodiment proposes a standard road ancillary facility construction system, including a road 2 set on top of a foundation 1. A rigid ditch 3 set on the top of the foundation 1 and recessed downwards is set on both the left and right sides of the road 2. Multiple water storage tanks 4 are set in the foundation 1 from front to back below the road 2. Multiple partitions 5 are fixed in the rigid ditch 3 from front to back. The rigid ditch 3 is divided into multiple water collection areas by the multiple partitions 5. The water collection areas and water storage tanks 4 are set in a one-to-one correspondence.

[0022] Below each water collection area is a water storage container 6 installed within the foundation 1. The top of the water storage container 6 is connected to and fixed with a water inlet pipe 7 that communicates with the corresponding water collection area. The bottom of the water storage container 6 is fixed to and connected to a water pump 8 installed within the foundation 1. A second water level sensor 13 for measuring the water level inside the water storage container 6 is fixed to the inner wall of the top of the container. The water pump 8 is controlled by the second water level sensor 13. The outlet of the water pump 8 is connected to and fixed to a first delivery pipe 9 installed within the foundation 1. The end of the first delivery pipe 9 closest to the water storage tank 4 is connected to and fixed to a water pump installed within the foundation 1. The second conveying pipe 10 inside is fixed and connected to the same third electromagnetic water valve 21 which is in the closed state between two adjacent second conveying pipes 10. The second conveying pipes 10 that are spaced apart from each other are fixed and connected to the same fourth conveying pipe 22 with a fourth electromagnetic water valve 23 which is in the closed state. The top of the second conveying pipe 10 is connected to and fixed to a third conveying pipe 11 which is installed in the foundation 1. The top of the third conveying pipe 11 is connected to and fixed to a first electromagnetic water valve 12 which is connected to the inside of the water storage tank 4. The first electromagnetic water valve 12 is in the open state.

[0023] A water quality detector 14 for detecting water quality is fixedly installed on the bottom inner wall of the water collection area, and an alarm light 16 electrically connected to the water quality detector 14 is fixedly embedded on the top of the inner wall of the side of the water collection area away from the water storage tank 4.

[0024] Each water collection area has a solar panel mounting bracket 17 installed on the top of the foundation 1 on the side away from the road 2. Multiple solar panels 18 are installed at an angle on the top of the solar panel mounting bracket 17, arranged sequentially from front to back. Multiple solar panels 18 on the same solar panel mounting bracket 17 are electrically connected to the same controller 20 installed on the same solar panel mounting bracket 17. A horizontal water baffle 701 is fixedly installed inside the water inlet pipe 7. Multiple second electromagnetic water valves 702 in the open state are embedded and fixed at equal intervals from front to back on the top of the horizontal water baffle 701. Multiple second electromagnetic water valves 702 on the same horizontal water baffle 701 and the water pump 8 are all controlled by the corresponding water quality detector 14 through the controller 20. This invention can block the polluted water in the corresponding water collection area, effectively preventing the water in the reservoir 4 from being polluted and preventing it from flowing into the farmland. At the same time, the location of the blocked polluted water is sent to the monitoring terminal. In addition, when the water in the reservoir 4 is full, the water can be collected into other reservoirs 4.

[0025] Furthermore, the alarm light 16 has a built-in locator, which is wirelessly connected to the monitoring terminal via the controller 20, making it easy to locate the water collection area where the contaminated water is located.

[0026] Furthermore, a connecting well 401 is provided on the top of the water storage tank 4, and a well cover 402 is detachably installed inside the connecting well 401. A first water level sensor 15 for measuring the water level inside the water storage tank 4 is fixedly installed on the inner wall of the top of the water storage tank 4, and the fourth electromagnetic water valve 23 and the first electromagnetic water valve 12 are controlled by the corresponding first water level sensor 15.

[0027] Furthermore, the controller 20 is electrically connected to a battery 19 mounted on a solar mounting bracket 17. The battery 19 is used to power the water pump 8, the first electromagnetic water valve 12, the alarm light 16, the water quality detector 14, the controller 20, the second electromagnetic water valve 702, the third electromagnetic water valve 21, the fourth electromagnetic water valve 23, the first water level sensor 15, and the second water level sensor 13.

[0028] In this embodiment, during normal use, both the first electromagnetic water valve 12 and the second electromagnetic water valve 702 are open, while the third electromagnetic water valve 21 and the fourth electromagnetic water valve 23 are closed. Rainwater flows into the corresponding water collection area. The rainwater in the water collection area flows into the water storage container 6 through the second electromagnetic water valve 702 on the horizontal baffle plate 701. As the water level in the water storage container 6 continuously rises, when the second water level sensor 13 in the water storage container 6 is triggered, the second water level sensor 13 controls the corresponding water pump 8 to start. The water pump 8 extracts the rainwater from the water storage container 6 and sequentially passes it through the corresponding first conveying pipe 9, second conveying pipe 10, third conveying pipe 11, and fourth electromagnetic water valve 23. An electromagnetic water valve 12 is used to supply water into the corresponding water storage tank 4. The water level in the water storage tank 4 will gradually increase. When the first water level sensor 15 is triggered, the first water level sensor 15 controls the corresponding first electromagnetic water valve 12 to close and at the same time controls the corresponding fourth electromagnetic water valve 23 to open. At this time, the second conveying pipe 10 is transported to the second second conveying pipe 10 through the fourth conveying pipe 22. Then, the second second second conveying pipe 10 is supplied to the corresponding water storage tank 4 through the corresponding third conveying pipe 11 and the first electromagnetic water valve 12. As can be seen from the above, when the water in a certain water storage tank 4 is full, the road ancillary facility construction system can collect water into other water storage tanks 4.

[0029] When a water quality detector 14 detects pollution in the water within a certain catchment area, it controls the corresponding second electromagnetic water valve 702 and water pump 8 to close, and simultaneously controls the corresponding alarm light 16 to turn on. The alarm light 16 sends the location of the catchment area to the monitoring terminal through its internal locator, making it easy to find the catchment area where the polluted water is located.

[0030] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A standard road ancillary facility construction system, comprising a road (2) set on top of a foundation (1), characterized in that, On the left and right sides of the road (2), there is a hard ditch (3) set on the top of the foundation (1) and recessed downwards. Below the road (2), there are multiple water storage tanks (4) arranged in the foundation (1) from front to back. Multiple partitions (5) are fixed in the hard ditch (3) from front to back. The hard ditch (3) is divided into multiple water collection areas by multiple partitions (5). The water collection areas and the water storage tanks (4) are set one-to-one. Below each water collection area is a water storage container (6) installed in the foundation (1). The top of the water storage container (6) is connected to and fixed with an inlet pipe (7) connected to the corresponding water collection area. The bottom of the water storage container (6) is fixed to and connected to a water pump (8) installed in the foundation (1). The outlet of the water pump (8) is connected to and fixed with a first conveying pipe (9) installed in the foundation (1). The end of the first conveying pipe (9) near the water storage tank (4) is connected to and fixed with a second conveying pipe (10) installed in the foundation (1). The top of the second conveying pipe (10) is connected to and fixed with a third conveying pipe (11) installed in the foundation (1). The top of the third conveying pipe (11) is connected to and fixed with a first electromagnetic water valve (12) connected to the inside of the water storage tank (4). The first electromagnetic water valve (12) is in the open state. A water quality detector (14) for detecting water quality is fixedly installed on the bottom inner wall of the water collection area. An alarm light (16) electrically connected to the water quality detector (14) is fixedly embedded on the top of the inner wall of the side of the water collection area away from the water storage tank (4). Each water collection area has a solar panel mounting bracket (17) installed on the top of the foundation (1) on the side away from the road (2). Multiple solar panels (18) are installed at an angle on the top of the solar panel mounting bracket (17) in sequence from front to back. Multiple solar panels (18) on the same solar panel mounting bracket (17) are electrically connected to the same controller (20) installed on the solar panel mounting bracket (17). A horizontal baffle plate (701) is fixedly installed inside the water inlet pipe (7). Multiple solar panels (18) are installed at equal intervals on the top of the horizontal baffle plate (701) from front to back. A second electromagnetic water valve (702) is in the open state. Multiple second electromagnetic water valves (702) and water pumps (8) located on the same horizontal baffle plate (701) are controlled by the corresponding water quality detector (14) through the controller (20). The same third electromagnetic water valve (21) in the closed state is fixed and connected between two adjacent second conveying pipes (10). The same fourth conveying pipe (22) with a fourth electromagnetic water valve (23) is fixed and connected between two second conveying pipes (10) that are spaced apart. The fourth electromagnetic water valve (23) is in the closed state.

2. The standard road ancillary facility construction system according to claim 1, characterized in that, The alarm light (16) has a built-in locator, which is wirelessly connected to the monitoring terminal via the controller (20).

3. A standard road ancillary facility construction system according to claim 2, characterized in that, A connecting well (401) is provided at the top of the water storage tank (4). A well cover (402) is detachably installed in the connecting well (401). A first water level sensor (15) for measuring the water level inside the water storage tank (4) is fixedly installed on the inner wall of the top of the water storage tank (4). The fourth electromagnetic water valve (23) and the first electromagnetic water valve (12) are controlled by the corresponding first water level sensor (15).

4. A standard road ancillary facility construction system according to claim 3, characterized in that, A second water level sensor (13) for measuring the water level inside the water storage container (6) is fixed on the top inner wall of the container, and the water pump (8) is controlled by the second water level sensor (13).

5. A standard road ancillary facility construction system according to claim 4, characterized in that, The controller (20) is electrically connected to a battery (19) mounted on a solar mounting bracket (17). The battery (19) is used to power the water pump (8), the first electromagnetic water valve (12), the alarm light (16), the water quality detector (14), the controller (20), the second electromagnetic water valve (702), the third electromagnetic water valve (21), the fourth electromagnetic water valve (23), the first water level sensor (15), and the second water level sensor (13).

Citation Information

Patent Citations

  • Urban road rainwater recycling method and system

    CN107386418A

  • Municipal drainage system

    CN110670696A