Waterlogging monitoring water level gauge
The solar-powered water level monitoring system uses a crankshaft and a dredging roller to automatically clear the water inlet, solving the problem of inaccurate measurement caused by silt accumulation in the water level gauge and achieving accurate and reliable water level detection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-14
- Publication Date
- 2026-03-10
AI Technical Summary
After prolonged exposure to rain and water, silt and impurities accumulate on the surface of the water level gauge, leading to inaccurate readings.
A water level gauge for monitoring waterlogging was designed. It is powered by a solar charging panel and automatically clears the water inlet hole through the crankshaft and clearing rod in the clearing component. Combined with the limit frame and control components, it ensures that the water inlet hole is unobstructed.
It achieves accuracy and reliability in water level detection, ensures that the water level gauge works normally in harsh environments, and avoids the impact of silt accumulation on measurement.
Smart Images

Figure CN223985760U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water level detection, and in particular to a water level gauge for monitoring urban flooding. Background Technology
[0002] A water level gauge is an instrument used to record and measure the water level of a body of water.
[0003] Water level gauges are usually installed outdoors. After prolonged exposure to rain, a large amount of silt and impurities will accumulate on the surface of the water level gauge. This will affect the measurement of the water level on site and make it impossible to accurately measure the height and changes of the water level. Utility Model Content
[0004] The main purpose of this utility model is to provide a water level gauge for monitoring waterlogging, which can automatically clear the water inlet of the water level gauge and ensure the accuracy of water level monitoring.
[0005] To achieve the above objectives, this utility model provides a water level gauge for monitoring urban flooding, including a base plate, a housing, and a monitor. The housing is disposed on the base plate, and the monitor is disposed inside the housing. The bottom of the housing has multiple openings circumferentially arranged, and the two sides of the housing have multiple water inlets. The housing also has a dredging component corresponding to the multiple water inlets for dredging the water inlets.
[0006] The top of the housing is provided with a solar charging panel, which is electrically connected to the monitor and the unblocking component, and is used to drive the monitor to monitor the water level and drive the unblocking component to unblock the water inlet.
[0007] The unclogging assembly includes a crankshaft and multiple unclogging rollers. The crankshaft is connected to the top of the housing and is rotatably disposed inside the housing. The crankshaft is provided with multiple cranks corresponding to the water inlet holes. The unclogging rollers are rotatably sleeved on the cranks via sleeves, and one end of the unclogging rollers can extend out of the water inlet holes.
[0008] Furthermore, the solar charging panel has an energy storage block at its bottom, the monitor has a drive motor at its top, the output end of the drive motor is connected to a transmission shaft, a first drive gear is slidably mounted on the transmission shaft, and a second driven gear is fixedly connected to the top of the crankshaft. The drive motor drives the drive gear to rotate, and the drive gear drives the second driven gear to rotate, which is used to drive the unclogging rod to extend and retract on the water inlet.
[0009] Furthermore, the outer wall of the monitor is provided with a limiting frame, which is sleeved on the crankshaft and has multiple first through holes corresponding to the unclogging rod, with the end of the unclogging rod extending out of the first through hole.
[0010] Furthermore, according to the water level gauge for monitoring urban flooding as claimed in the claim, the limiting frame is provided with a retainer, one end of the retainer is connected to the inner wall of the limiting frame, and the other end is connected to the monitor, and the retainer is provided with a second through hole for accommodating the crankshaft through which it passes.
[0011] Furthermore, the bottom of the monitor is a cone shape that gradually decreases in size upwards.
[0012] Furthermore, the bottom of the monitor is provided with a second drive gear, and the bottom of the second drive gear is fixedly connected with a stirring rod that is parallel to the side of the conical bottom of the monitor;
[0013] The monitor has a rotating rod on one side, and a second driven gear is provided at both ends of the rotating rod. The second driven gear located at the bottom of the rotating rod meshes with the second driving gear.
[0014] The transmission shaft is also provided with a control component for controlling the first driving gear to slide on the transmission shaft and mesh with the first driven gear or with the second driven gear; the control component includes a first magnetic sheet and a second magnetic sheet disposed on the transmission shaft, the first magnetic sheet being used to attract the first driving gear to mesh with the first driven gear, and the second magnetic sheet being used to attract the first driving gear to mesh with the second driven gear.
[0015] The beneficial effects of this utility model are reflected in:
[0016] This utility model of water level monitoring for urban flooding uses a solar charging panel for charging. When the monitor is working normally, it measures the water level. By setting a dredging component inside the outer shell, the crankshaft rotates inside the shell, which in turn drives the dredging rod to extend and retract on the water inlet hole to dredge the water inlet hole, effectively ensuring the accuracy of water level detection. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of a water level gauge for monitoring urban flooding according to an embodiment of this utility model.
[0018] Figure 2 This is a schematic cross-sectional view of a water level gauge for monitoring urban flooding according to an embodiment of this utility model.
[0019] Figure 3 This is a schematic diagram of the internal structure of a water level gauge for monitoring waterlogging according to an embodiment of this utility model.
[0020] Figure 4 This is an embodiment of a water level gauge for monitoring urban flooding. Figure 3 A magnified view of part A.
[0021] Figure 5This is an embodiment of a water level gauge for monitoring urban flooding. Figure 3 A magnified view of part B.
[0022] Figure 6 This is a schematic diagram of the limiting frame structure of a water level gauge for monitoring waterlogging according to an embodiment of this utility model.
[0023] Figure 7 This is a schematic diagram of the control component of a water level gauge for monitoring waterlogging, according to an embodiment of this utility model.
[0024] Explanation of reference numerals in the attached drawings: 1. Base plate; 2. Outer shell; 21. Water inlet; 22. Unclogging assembly; 23. Crankshaft; 24. Unclogging roller; 25. Crank handle; 27. First driven gear; 3. Monitor; 31. Energy storage block; 32. Drive shaft; 33. Drive motor; 34. First driving gear; 35. Second driving gear; 36. Stirring rod; 37. Rotating rod; 38. Second driven gear; 4. Solar charging panel; 5. Limiting frame; 51. First through hole; 52. Retainer; 53. Second through hole; 54. First magnetic plate; 55. Second magnetic plate. Detailed Implementation Plan
[0025] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other.
[0026] See Figures 1-7 .
[0027] This utility model includes a base plate 1, a housing 2, and a monitor 3. The housing 2 is disposed on the base plate 1, and the monitor 3 is disposed inside the housing 2. The bottom of the housing 2 has multiple openings circumferentially arranged, and the two sides of the housing 2 have multiple water inlet holes 21. The housing 2 is also provided with a dredging component 22 corresponding to the multiple water inlet holes 21 for dredging the water inlet holes 21.
[0028] The top of the outer casing 2 is provided with a solar charging panel 4, which is electrically connected to the monitor 3 and the unblocking component 22, and is used to drive the monitor 3 to monitor the water level and drive the unblocking component 22 to unblock the water inlet 21.
[0029] The unclogging assembly 22 includes a crankshaft 23 and a plurality of unclogging rollers 24. The crankshaft 23 is connected to the top of the housing 2 and is rotatably disposed inside the housing 2. The crankshaft 23 is provided with a plurality of cranks 25 corresponding to the water inlet holes 21. The unclogging rollers 24 are rotatably sleeved on the cranks 25 through a sleeve. One end of the unclogging rollers 24 can extend out of the water inlet holes 21.
[0030] With this design, the solar charging panel 4 charges, the monitor 3 works normally to measure the water level, and the unblocking component 22 is set in the outer shell 2. The crankshaft 23 rotates in the outer shell 2, which in turn drives the unblocking rod 24 to extend and retract on the water inlet 21 to unblock the water inlet 21, effectively ensuring the accuracy of water level detection.
[0031] In one embodiment, the solar charging panel 4 has an energy storage block 31 at its bottom, the monitor 3 has a drive motor 33 at its top, the output end of the drive motor 33 is connected to a transmission shaft 32, a first drive gear 34 is slidably arranged on the transmission shaft 32, and a first driven gear 27 is fixedly connected to the top of the crankshaft 23. The drive motor 33 drives the first drive gear 34 to rotate, and the first drive gear 34 drives the first driven gear 27 to rotate, which is used to drive the drain cleaner 24 to extend and retract on the water inlet 21.
[0032] In practice, the solar charging panel 4 is charged and the electricity is stored in the energy storage block 31 to ensure that the water level gauge can operate normally even on cloudy days. The energy storage block 31 is electrically connected to the drive motor 33. The drive motor 33 drives the first active gear 34 to rotate. The first active gear 34 meshes with the first driven gear 27, which drives the crankshaft 23 to rotate. The rotation of the crankshaft 23 drives the cleaning rod 24 to extend and retract on the water inlet hole 21, removing the silt and other impurities accumulated on the water inlet hole 21, ensuring that the water inlet hole 21 can receive water normally.
[0033] In one embodiment, the outer wall of the monitor 3 is provided with a limiting frame 5, the limiting frame 5 is sleeved on the crankshaft 23 and has a plurality of first through holes 51 corresponding to the unclogging rod 24, and the end of the unclogging rod 24 extends out of the first through holes 51.
[0034] With this design, by setting the limit bracket 5, the unclogging rod 24 is inserted into the first through hole 51, ensuring that the extension and retraction range of the unclogging rod 24 is within the water inlet hole 21 when the crankshaft 23 rotates, thus avoiding the unclogging rod 24 from bumping into other components inside the water level gauge when it extends or retracts.
[0035] In one embodiment, the limiting frame 5 is provided with a retainer 52, one end of which is connected to the inner wall of the limiting frame 5 and the other end is connected to the monitor 3. The retainer 52 is provided with a second through hole 53 for accommodating the crankshaft 23.
[0036] This design ensures that the crankshaft 23 rotates vertically by passing it through the second through hole 53, thus preventing tilting.
[0037] In one embodiment, the bottom of the monitor 3 is a cone shape that gradually decreases in size upwards.
[0038] With this design, since the bottom of the outer casing 2 has multiple openings, sewage can easily accumulate inside the water level gauge when it enters. By setting the bottom of the monitor 3 to a cone shape that gradually decreases upwards, the sewage can be effectively guided and discharged outwards.
[0039] In one embodiment, the bottom of the monitor 3 is provided with a second drive gear 35, and the bottom of the second drive gear 35 is fixedly connected with a stirring rod 36 that is parallel to the side of the conical bottom of the monitor 3.
[0040] The monitor 3 has a rotating rod 37 on one side, and a second driven gear 38 is provided at both ends of the rotating rod 37. The second driven gear 38 located at the bottom of the rotating rod 37 meshes with the second driving gear 35.
[0041] The transmission shaft 32 is also provided with a control component for controlling the first driving gear 34 to slide on the transmission shaft 32 and mesh with the first driven gear 27 or with the second driven gear 38; the control component includes a first magnetic sheet 54 and a second magnetic sheet 55 disposed on the transmission shaft 32, the first magnetic sheet 54 is used to attract the first driving gear 34 to mesh with the first driven gear 27, and the second magnetic sheet 55 is used to attract the first driving gear 34 to mesh with the second driven gear 38.
[0042] This design allows the first magnetic plate 54 and the second magnetic plate 55 to be attracted to the first driving gear 34 by the control components. When the first magnetic plate 54 is attracted to the first driving gear 34, the first driving gear 34 meshes with the first driven gear 27, driving the crankshaft 23 to rotate and clear the water inlet 21. When the second magnetic plate 55 is attracted to the first driving gear 34, the first driving gear 34 meshes with the second driven gear 38, driving the stirring rod 36 to rotate, breaking up the sludge accumulated at the bottom of the water level gauge and effectively discharging the sludge.
[0043] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A water level gauge for monitoring water logging comprising a base plate (1), an outer casing (2) provided on the base plate (1) and a monitor (3) provided within the outer casing (2), characterised in that, The bottom of the shell (2) is provided with a plurality of openings in the circumference, and the two sides of the shell (2) are provided with a plurality of water inlet holes (21), and the shell (2) is further provided with a dredging assembly (22) corresponding to the plurality of water inlet holes (21) for dredging the water inlet holes (21); The top of the shell (2) is provided with a solar charging panel (4), and the solar charging panel (4) is electrically connected with the monitor (3) and the dredging assembly (22) for driving the monitor (3) to monitor the water level and driving the dredging assembly (22) to dredge the water inlet holes (21); The dredging assembly (22) comprises a crankshaft (23) and a plurality of dredging rods (24), the crankshaft (23) is connected with the top of the shell (2) and is rotatably arranged in the shell (2), a plurality of cranks (25) corresponding to the water inlet holes (21) are arranged on the crankshaft (23), the dredging rods (24) are rotatably sleeved on the cranks (25) through sleeves, and one end of each dredging rod (24) can extend out of the water inlet hole (21).
2. The waterlogging monitoring water level gauge according to claim 1, characterized in that, The bottom of the solar charging panel (4) is provided with an energy storage block (31), the top of the monitor (3) is provided with a driving motor (33), the output end of the driving motor (33) is connected with a transmission shaft (32), the first driving gear (34) is slidably arranged on the transmission shaft (32), the top of the crankshaft (23) is fixedly connected with a first driven gear (27), the driving motor (33) drives the first driving gear (34) to rotate, the first driving gear (34) drives the first driven gear (27) to rotate for driving the dredging rods (24) to extend and retract on the water inlet holes (21).
3. The waterlogging monitoring water level gauge according to claim 2, characterized in that, The outer wall of the monitor (3) is provided with a limiting frame (5), the limiting frame (5) is sleeved on the crankshaft (23) and is provided with a plurality of first through holes (51) corresponding to the dredging rods (24), and the end of each dredging rod (24) extends out of the first through hole (51).
4. The waterlogging monitoring water level gauge according to claim 3, characterized in that, The limiting frame (5) is provided with a retaining frame (52), one end of the retaining frame (52) is connected with the inner wall of the limiting frame (5), the other end is connected with the monitor (3), and the second through hole (53) for accommodating the crankshaft (23) is formed in the retaining frame (52).
5. The waterlogging monitoring water level gauge according to claim 4, characterized in that, The bottom of the monitor (3) is conical and gradually decreases upwards.
6. The waterlogging monitoring water level gauge according to claim 5, wherein The bottom of the monitor (3) is provided with a second driving gear (35), and the bottom of the second driving gear (35) is fixedly connected with a stirring rod (36) parallel to the side surface of the conical bottom of the monitor (3); One side of the monitor (3) is provided with a rotating rod (37), and the second driven gears (38) are arranged at both ends of the rotating rod (37), and the second driven gear (38) located at the bottom of the rotating rod (37) is meshed with the second driving gear (35); The transmission shaft (32) is further provided with a control component for controlling the first driving gear (34) to engage with the first driven gear (27) or the second driven gear (38) when the transmission shaft (32) slides. The control component comprises a first magnetic sheet (54) and a second magnetic sheet (55) arranged on the transmission shaft (32). The first magnetic sheet (54) is used to attract the first driving gear (34) to engage with the first driven gear (27), and the second magnetic sheet (55) is used to attract the first driving gear (34) to engage with the second driven gear (38).