Automatic rainwater collecting device for construction site
By introducing weather sensors and monitoring components into the automatic rainwater collection device of the construction site, the opening and closing of the shading components are controlled, and combined with the filtration function of the water quality monitoring component, the complex structure of the device and the ingress of dirt is solved, the automatic collection and filtration of rainwater is realized, and the convenience of the equipment and the efficiency of rainwater use are improved.
Patent Information
- Application Number
- CN202422517208.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-17
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-10-17
AI Technical Summary
The existing automatic rainwater collection device on construction sites has a complex structure and cannot effectively collect rainwater. In addition, external dirt can easily enter the device during sunny days.
A device including water storage components, water collection components, water quality monitoring components, shading components, weather sensors and monitoring components is designed to monitor weather changes through weather sensors, control the opening and closing of shading components, and combine the water quality monitoring components to filter and detect rainwater to realize automatic collection and filtration of rainwater.
Automatic collection and filtration of rainwater is realized to prevent external dirt from entering during sunny days, improving the convenience of equipment and the subsequent use efficiency of rainwater.
Smart Images

Figure CN223226735U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of rainwater collection equipment, in particular to an automatic rainwater collection device for construction sites. Background Art
[0002] Green building refers to the maximum conservation of resources throughout the entire life cycle of the building, including energy conservation, land conservation, water conservation, material conservation, etc., protecting the environment and reducing pollution, providing people with healthy, comfortable and efficient use space, and buildings that coexist harmoniously with nature. Green building technology focuses on low consumption, high efficiency, economy, environmental protection, integration and optimization. It is a sharing of interests between man and nature, present and future, and a means of construction for sustainable development. Rainwater collection and reuse is a type of green building construction that can achieve energy conservation and emission reduction, green environmental protection, reduce rainwater discharge, and provide water in the event of drought or emergency. It can also be used for domestic water, saving tap water and reducing water treatment costs. Saving water resources at the construction site is not only a responsibility, but also an important measure to ensure the sustainable development of the construction process.
[0003] However, the existing automatic rainwater collection device at the construction site has a complex structure and cannot effectively collect rainwater. In addition, external dirt can easily enter the rainwater collection device on sunny days. Therefore, we propose an automatic rainwater collection device for construction sites to solve the above problems. Utility Model Content
[0004] In response to the deficiencies of the existing technology, the utility model provides an automatic rainwater collection device for construction sites, which solves the problems of complex structure, inability to effectively collect rainwater, and easy entry of external dirt into the rainwater collection device on sunny days.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: an automatic rainwater collection device for construction sites, comprising:
[0006] a water storage assembly, the water storage assembly being used to store collected rainwater;
[0007] A water collection component is provided above the water storage component and is used to collect rainwater;
[0008] A water quality monitoring component, which is arranged at the output end of the water collection component and is conductively connected to the input end of the water storage component, and is used to filter rainwater and detect water quality;
[0009] A shielding component is provided above the water collecting component and is used to shield the open end of the water collecting component;
[0010] A weather sensor, disposed at the top of a side wall of the water collection assembly, for monitoring the construction site environment; and
[0011] A monitoring component is provided on the surface of the water storage component, and is used for receiving information sent by the water quality monitoring component and the weather sensor and controlling the opening of the shielding component.
[0012] Preferably, the water storage assembly includes a water tank, a water inlet pipe is embedded in one side of the top of the water tank, a water outlet pipe is embedded in the bottom of one side wall of the water tank, a valve is connected in series in the middle of the water outlet pipe, and brake casters are provided at the four corners of the bottom surface of the water tank.
[0013] Preferably, the water collection component includes a collecting bucket arranged above the water storage tank, the output end of the collecting bucket is installed with a water pipe, and the output end of the water pipe is conductively connected to the output end of the water quality monitoring component, and brackets are provided at the four corners of the bottom surface of the collecting bucket, and the bottom surface of the bracket is connected to the top surface of the water storage tank.
[0014] Preferably, the water collection assembly further comprises a grid plate, and the grid plate is arranged in the middle of the inner cavity of the collection bucket.
[0015] Preferably, the water quality monitoring component includes a delivery pipe, the two ends of which are respectively connected to the water pipe and the water inlet pipe, a rainwater filter is connected in series on the delivery pipe and close to the water pipe, and a conductivity sensor, a pH sensor and an ammonia nitrogen sensor are provided on the delivery pipe and on the side of the rainwater filter.
[0016] Preferably, the shielding assembly includes a positioning frame arranged at the top end of the outer wall of the collecting hopper, the positioning frame and the bottom surface of the positioning frame are both provided with electric linear slides on both sides, and the two side walls of the positioning frame and the direction parallel to the electric linear slide are both provided with slide rails;
[0017] A plurality of stabilizing frames are provided on the outside of the positioning frame, and a slider for slidingly mounting on the slide rail is provided on both side walls of the inner cavity of each stabilizing frame and near the bottom end. The outer sides of the plurality of stabilizing frames are connected by an accordion cover, and the two ends of one stabilizing frame at one end are connected to the output ends of the two electric linear slides, and the one stabilizing frame at the other end is fixedly connected to the positioning frame.
[0018] Preferably, the monitoring component includes a waterproof box, a touch screen integrated device is provided on the inner surface of the waterproof box near the top, and a battery is provided at the bottom of the inner cavity of the waterproof box.
[0019] Beneficial effects
[0020] The utility model provides an automatic rainwater collection device for construction sites. Compared with the existing technology, it has the following advantages:
[0021] The automatic rainwater collection device for construction sites can be installed on the top of one side wall of the water collection component through a weather sensor, and can monitor the weather on the construction site. When the weather sensor detects rain, the weather sensor will send a signal to the monitoring component, and then the monitoring component can control the shielding component to open, so that the open end of the water collection component can be exposed, which makes it convenient for the water collection component to collect rainwater. Then, through the water quality monitoring component, the rainwater collected by the water collection component can be preliminarily filtered to prevent the rainwater from being polluted, and the parameters of the rainwater can be monitored and sent to the monitoring component. At the same time, the filtered rainwater can be transported to the water storage component so that the rainwater can be collected, which is convenient for the subsequent use of rainwater on the construction site. The staff can also flexibly push the water storage component to move, thereby improving the convenience of equipment use. When the rain stops, the monitoring component can control the shielding component to close, so that foreign objects from the outside can enter the water collection component on sunny days. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 This is a schematic diagram of the overall structure of the utility model;
[0023] Figure 2 This is a side structural diagram of the utility model;
[0024] Figure 3 This is a schematic diagram of the structure of the water storage component of the utility model;
[0025] Figure 4 This is a schematic diagram of the cross-sectional structure of the water collection component of the utility model;
[0026] Figure 5 This is a schematic diagram of the structure of the water quality monitoring component of the utility model;
[0027] Figure 6 This is a schematic diagram of the explosion structure of the shielding component of the utility model;
[0028] Figure 7 This is a schematic diagram of the internal structure of the monitoring component of the utility model.
[0029] In the figure: 1. Water storage component; 11. Water storage tank; 12. Water inlet pipe; 13. Water outlet pipe; 14. Valve; 15. Brake castor; 2. Water collection component; 21. Collection bucket; 22. Water guide pipe; 23. Bracket; 24. Grille plate; 3. Water quality monitoring component; 31. Delivery pipe; 32. Rainwater filter; 33. Conductivity sensor; 34. pH sensor; 35. Ammonia nitrogen sensor; 4. Shielding component; 41. Positioning frame; 42. Electric linear slide; 43. Slide rail; 44. Stabilizing frame; 45. Slider; 46. Organ cover; 5. Weather sensor; 6. Monitoring component; 61. Waterproof box; 62. Touch all-in-one machine; 63. Battery. DETAILED DESCRIPTION
[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] See also Figure 1-2 The utility model provides a technical solution: an automatic rainwater collection device for a construction site, comprising: a water storage component 1, the water storage component 1 is used to store collected rainwater; a water collection component 2, the water collection component 2 is arranged above the water storage component 1, and the water collection component 2 is used to collect rainwater; a water quality monitoring component 3, the water quality monitoring component 3 is arranged at the output end of the water collection component 2, and the output end of the water quality monitoring component 3 is conductively connected to the input end of the water storage component 1, and the water quality monitoring component 3 is used to filter rainwater and detect water quality; a shielding component 4, the shielding component 4 is arranged above the water collection component 2, and the shielding component 4 is used to shield the open end of the water collection component 2; a weather sensor 5, the weather sensor 5 is arranged at the top of one side wall of the water collection component 2, and the weather sensor 5 is used to monitor the construction site environment; and a monitoring component 6, the monitoring component 6 is arranged on the surface of the water storage component 1, and the monitoring component 6 is used to receive information sent by the water quality monitoring component 3 and the weather sensor 5 and control the opening of the shielding component 4;
[0032] Through the weather sensor 5, it can be installed on the top of one side wall of the water collection component 2, and the weather on the construction site can be monitored. When the weather sensor 5 detects rain, the weather sensor 5 will send a signal to the monitoring component 6, and then the monitoring component 6 can control the shielding component 4 to open, so that the open end of the water collection component 2 can be exposed, which can facilitate the water collection component 2 to collect rainwater. Then, through the water quality monitoring component 3, the rainwater collected by the water collection component 2 can be preliminarily filtered to prevent the rainwater from being polluted, and the parameters of the rainwater can be monitored and sent to the monitoring component 6. At the same time, the filtered rainwater can be transported to the water storage component 1 so that the rainwater can be collected, which is convenient for the subsequent use of rainwater on the construction site. The staff can also flexibly push the water storage component 1 to move, thereby improving the convenience of equipment use. When the rain stops, the monitoring component 6 can control the shielding component 4 to close, so that foreign objects from the outside can enter the water collection component 2 on sunny days.
[0033] See Figure 1 、 Figure 3 The water storage assembly 1 includes a water tank 11, a water inlet pipe 12 is embedded on one side of the top of the water tank 11, a water outlet pipe 13 is embedded on the bottom of one side wall of the water tank 11, a valve 14 is connected in series in the middle of the water outlet pipe 13, and brake casters 15 are provided at the four corners of the bottom surface of the water tank 11;
[0034] Through the water tank 11 in the water storage component 1, it can be connected to the water quality monitoring component 3 through the water inlet pipe 12, so that the filtered water can be collected, and the rainwater can be released from the outlet pipe 13 by opening the valve 14, which is convenient for use on the construction site. The four brake casters 15 can facilitate the staff to flexibly move the equipment, thereby improving the convenience of using the equipment.
[0035] See Figure 1 、 Figure 4 The water collection component 2 includes a collecting hopper 21 arranged above the water storage tank 11. The output end of the collecting hopper 21 is equipped with a water pipe 22, and the output end of the water pipe 22 is conductively connected to the output end of the water quality monitoring component 3. Brackets 23 are provided at the four corners of the bottom surface of the collecting hopper 21. The bottom surface of the bracket 23 is connected to the top surface of the water storage tank 11. The water collection component 2 also includes a grille plate 24, which is arranged in the middle of the inner cavity of the collecting hopper 21.
[0036] Through the collecting bucket 21 in the water collecting component 2, the area for collecting rainwater can be expanded, and it can be installed on the water storage tank 11 through four brackets 23, and can be connected to the output end of the water quality monitoring component 3 through the water pipe 22, so that the collected rainwater can be transported to the water quality monitoring component 3, and then the rainwater can be subsequently processed. Since the grid plate 24 is arranged in the middle of the inner cavity of the collecting bucket 21, the grid plate 24 can intercept large-sized foreign matter falling into the collecting bucket 21, thereby preventing large-sized foreign matter from clogging the water pipe 22.
[0037] See Figure 3-Figure 5 The water quality monitoring component 3 includes a delivery pipe 31, the two ends of which are respectively connected to the water pipe 22 and the water inlet pipe 12. A rainwater filter 32 is connected in series on the delivery pipe 31 and close to the water pipe 22. A conductivity sensor 33, a pH sensor 34 and an ammonia nitrogen sensor 35 are provided on the delivery pipe 31 and located on one side of the rainwater filter 32.
[0038] Through the delivery pipe 31 in the water quality monitoring component 3, the water pipe 22 and the water inlet pipe 12 can be connected, and the rainwater filter 32, the conductivity sensor 33, the pH sensor 34 and the ammonia nitrogen sensor 35 can be installed. Then, the rainwater can be filtered through the rainwater filter 32, and the conductivity, pH value and ammonia nitrogen value in the rainwater can be monitored through the conductivity sensor 33, the pH sensor 34 and the ammonia nitrogen sensor 35, and the monitoring data can be sent to the monitoring component 6, so that the rainwater quality can be conveniently recorded.
[0039] See Figure 4 、 Figure 6 , the shielding component 4 includes a positioning frame 41 arranged at the top end of the outer wall of the collecting bucket 21, the positioning frame 41, and electric linear slides 42 are provided on both sides of the bottom surface of the positioning frame 41, and slide rails 43 are provided on both side walls of the positioning frame 41 and in a direction parallel to the electric linear slide 42; a plurality of stable frames 44 are provided on the outside of the positioning frame 41, and sliders 45 for slidingly mounted on the slide rails 43 are provided on both side walls of the inner cavity of each stable frame 44 and near the bottom end, and the outer sides of the plurality of stable frames 44 are connected by an accordion cover 46, wherein the two ends of a stable frame 44 at one end are connected to the output ends of the two electric linear slides 42, and the stable frame 44 at the other end is fixedly connected to the positioning frame 41;
[0040] The positioning frame 41 in the shielding assembly 4 can be fixed to the top of the outer wall of the collecting bucket 21, and can also install the two electric linear slides 42 and the two slide rails 43. Since a plurality of stabilizing frames 44 are provided on the outside of the positioning frame 41, each stabilizing frame 44 has a slider 45 on both sides of the inner cavity and near the bottom end, so that the stabilizing frame 44 can slide smoothly on the slide rail 43 through the slider 45. Since the outer sides of the plurality of stabilizing frames 44 are connected by the accordion cover 46, and the two ends of one stabilizing frame 44 at one end are connected to the output ends of the two electric linear slides 42, and the other end of the stabilizing frame 44 is fixedly connected to the positioning frame 41, the operation of the electric linear slide 42 can drive the accordion cover 46 to cover or unfold through the stabilizing frame 44, so that the open end of the collecting bucket 21 can be covered or exposed, so that the collecting bucket 21 can be used flexibly according to needs.
[0041] See Figure 1 、 Figure 7 The monitoring component 6 includes a waterproof box 61, a touch screen integrated machine 62 is provided on the inner surface of the waterproof box 61 and near the top, and a battery 63 is provided at the bottom of the inner cavity of the waterproof box 61;
[0042] Through the waterproof box 61 in the monitoring component 6, it can be installed on the surface of the water tank 11, and the touch all-in-one machine 62 and the battery 63 can be installed. Then, through the touch all-in-one machine 62, it can receive the information sent by the weather sensor 5, the conductivity sensor 33, the pH sensor 34 and the ammonia nitrogen sensor 35, and can control the operation of the two electric linear slides 42 according to needs, and then can cover or unfold the accordion cover 46. Through the battery 63, the device can be powered, thereby ensuring the device's endurance.
[0043] During operation, the weather sensor 5 can be installed on the top of one side wall of the water collection component 2, and can monitor the weather on the construction site. When the weather sensor 5 detects rain, the weather sensor 5 will send a signal to the monitoring component 6, and then the monitoring component 6 can control the shielding component 4 to open, so that the open end of the water collection component 2 can be exposed, which can facilitate the water collection component 2 to collect rainwater. Then, through the water quality monitoring component 3, the rainwater collected by the water collection component 2 can be preliminarily filtered to prevent the rainwater from being polluted, and the parameters of the rainwater can be monitored and sent to the monitoring component 6. At the same time, the filtered rainwater can be transported to the water storage component 1 so that the rainwater can be collected, which is convenient for the subsequent use of rainwater on the construction site. The staff can also flexibly push the water storage component 1 to move, thereby improving the convenience of equipment use. When the rain stops, the monitoring component 6 can control the shielding component 4 to close, so that foreign objects from the outside can enter the water collection component 2 on sunny days.
[0044] Through the water storage tank 11 in the water storage component 1, it can be connected to the water quality monitoring component 3 through the water inlet pipe 12, so that the filtered water can be collected, and the rainwater can be released from the outlet pipe 13 by opening the valve 14, which is convenient for use on the construction site. The four brake casters 15 can facilitate the staff to flexibly move the equipment, thereby improving the convenience of equipment use. Through the collection bucket 21 in the water collection component 2, it can not only expand the area for collecting rainwater, but also be installed on the water storage tank 11 through four brackets 23, and can be connected to the output end of the water quality monitoring component 3 through the water pipe 22, so that the collected rainwater can be transported to the water quality monitoring component 3, and then the rainwater can be subsequently processed. Since the grille plate 24 is arranged in the middle of the inner cavity of the collection bucket 21, the grille plate 24 can intercept large-sized foreign matter falling into the collection bucket 21, thereby preventing large-sized foreign matter from clogging the water pipe 22.
[0045] Through the delivery pipe 31 in the water quality monitoring component 3, the water pipe 22 and the water inlet pipe 12 can be connected, and the rainwater filter 32, the conductivity sensor 33, the pH sensor 34 and the ammonia nitrogen sensor 35 can be installed. Then, the rainwater can be filtered through the rainwater filter 32, and the conductivity, pH value and ammonia nitrogen value in the rainwater can be monitored through the conductivity sensor 33, the pH sensor 34 and the ammonia nitrogen sensor 35, and the monitoring data can be sent to the monitoring component 6, so that the rainwater quality can be conveniently recorded.
[0046] The positioning frame 41 in the shielding assembly 4 can be fixed to the top of the outer wall of the collecting bucket 21, and can also install the two electric linear slides 42 and the two slide rails 43. Since a plurality of stabilizing frames 44 are provided on the outside of the positioning frame 41, each stabilizing frame 44 has a slider 45 on both sides of the inner cavity and near the bottom end, so that the stabilizing frame 44 can slide smoothly on the slide rail 43 through the slider 45. Since the outer sides of the plurality of stabilizing frames 44 are connected by the accordion cover 46, and the two ends of one stabilizing frame 44 at one end are connected to the output ends of the two electric linear slides 42, and the other end of the stabilizing frame 44 is fixedly connected to the positioning frame 41, the operation of the electric linear slide 42 can drive the accordion cover 46 to cover or unfold through the stabilizing frame 44, so that the open end of the collecting bucket 21 can be covered or exposed, so that the collecting bucket 21 can be used flexibly according to needs.
[0047] Through the waterproof box 61 in the monitoring component 6, it can be installed on the surface of the water tank 11, and the touch all-in-one machine 62 and the battery 63 can be installed. Then, through the touch all-in-one machine 62, it can receive the information sent by the weather sensor 5, the conductivity sensor 33, the pH sensor 34 and the ammonia nitrogen sensor 35, and can control the operation of the two electric linear slides 42 according to needs, and then can cover or unfold the accordion cover 46. Through the battery 63, the device can be powered, thereby ensuring the device's endurance.
[0048] In summary, the device can not only automatically collect rainwater, but also filter and monitor the water quality of the collected rainwater, thereby improving the convenience of using the equipment. At the same time, it can automatically shut down on sunny days to prevent external dirt from clogging the rainwater collection device.
[0049] At the same time, the contents not described in detail in this specification belong to the existing technology well known to those skilled in the art.
Claims
1. An automatic rainwater collection device for a construction site, characterized by: include: A water storage assembly (1), the water storage assembly (1) being used to store collected rainwater; A water collection component (2), the water collection component (2) being arranged above the water storage component (1), and the water collection component (2) being used to collect rainwater; A water quality monitoring component (3), the water quality monitoring component (3) being arranged at the output end of the water collection component (2), and the output end of the water quality monitoring component (3) being conductively connected to the input end of the water storage component (1), the water quality monitoring component (3) being used for filtering rainwater and detecting water quality; a shielding component (4), the shielding component (4) being arranged above the water collection component (2), the shielding component (4) being used to shield the open end of the water collection component (2); A weather sensor (5), the weather sensor (5) being arranged at the top of a side wall of the water collection component (2), the weather sensor (5) being used to monitor the construction site environment; as well as A monitoring component (6) is provided on the surface of the water storage component (1), and is used to receive information sent by the water quality monitoring component (3) and the weather sensor (5) and to control the opening of the shielding component (4).
2. The automatic rainwater collection device for a construction site according to claim 1, characterized in that: The water storage assembly (1) comprises a water tank (11), a water inlet pipe (12) is embedded in one side of the top of the water tank (11), a water outlet pipe (13) is embedded in the bottom of one side wall of the water tank (11), a valve (14) is connected in series in the middle of the water outlet pipe (13), and brake casters (15) are provided at the four corners of the bottom surface of the water tank (11).
3. The automatic rainwater collection device for construction sites according to claim 2, characterized in that: The water collection component (2) comprises a collecting hopper (21) arranged above the water storage tank (11); a water guide pipe (22) is installed at the output end of the collecting hopper (21); and the output end of the water guide pipe (22) is conductively connected to the output end of the water quality monitoring component (3); brackets (23) are provided at the four corners of the bottom surface of the collecting hopper (21); and the bottom surface of the bracket (23) is connected to the top surface of the water storage tank (11).
4. The automatic rainwater collection device for a construction site according to claim 3, characterized in that: The water collection assembly (2) further comprises a grid plate (24), and the grid plate (24) is arranged in the middle of the inner cavity of the collection hopper (21).
5. The automatic rainwater collection device for construction sites according to claim 3, characterized in that: The water quality monitoring assembly (3) comprises a delivery pipe (31), the two ends of which are respectively connected to the water conduit (22) and the water inlet pipe (12), a rainwater filter (32) is connected in series on the delivery pipe (31) and on one side close to the water conduit (22), and a conductivity sensor (33), a pH sensor (34) and an ammonia nitrogen sensor (35) are provided on the delivery pipe (31) and on one side of the rainwater filter (32).
6. The automatic rainwater collection device for construction sites according to claim 3, characterized in that: The shielding assembly (4) includes a positioning frame (41) arranged at the top end of the outer wall of the collecting hopper (21), the positioning frame (41), and electric linear slides (42) are arranged on both sides of the bottom surface of the positioning frame (41), and slide rails (43) are arranged on both side walls of the positioning frame (41) and in a direction parallel to the electric linear slide (42); A plurality of stabilizing frames (44) are provided on the outside of the positioning frame (41), and a slider (45) for slidingly mounting on the slide rail (43) is provided on both side walls of the inner cavity of each stabilizing frame (44) and near the bottom end. The outer sides of the plurality of stabilizing frames (44) are connected through an accordion cover (46), wherein the two ends of one stabilizing frame (44) at one end are connected to the output ends of the two electric linear slides (42), and the one stabilizing frame (44) at the other end is fixedly connected to the positioning frame (41).
7. The automatic rainwater collection device for a construction site according to claim 1, characterized in that: The monitoring assembly (6) comprises a waterproof box (61), a touch integrated device (62) is provided on the inner surface of the waterproof box (61) and near the top, and a battery (63) is provided at the bottom of the inner cavity of the waterproof box (61).