Water quality monitoring cabinet based on solar power supply
The solar-powered water quality monitoring cabinet solves the problems of complex power supply and poor adaptability to harsh environments in remote areas for traditional water quality analysis instruments, and enables stable operation and efficient monitoring of the equipment in areas without power grid coverage.
Patent Information
- Application Number
- CN202423053653.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-11
AI Technical Summary
Traditional water quality analysis instruments rely on laboratory testing, which is time-consuming and labor-intensive, has poor real-time performance, and online equipment has complex power supply and wiring in remote areas, high costs, and poor adaptability to harsh environments, which limits its widespread application.
The water quality monitoring cabinet is powered by solar energy, and combines an inverter and a battery to store electrical energy. It is equipped with leveling and heat dissipation components to adapt to areas without grid coverage and adjust the heat dissipation to adapt to different climatic conditions.
It enables long-term operation in areas without power grid coverage, ensures rapid installation and stable temperature of the equipment on uneven ground, and improves the accuracy of water quality monitoring and the adaptability of the equipment.
Smart Images

Figure CN223742449U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water quality detection technical field, concretely, relate to water quality monitoring cabinet based on solar power supply. BACKGROUND
[0002] Water quality analysis has an important position in the field of environmental protection, industrial production and people's livelihood safety, and is a key means to protect water health, early warning pollution, optimize process and maintain public water safety. However, the current traditional water quality analysis instrument still faces many technical and use restrictions, and it is difficult to fully meet the needs of modern water quality monitoring.
[0003] Most of the traditional water quality analysis methods rely on laboratory detection, which needs manual sampling and transportation back to the laboratory for analysis. This way not only consumes time and effort, but also has poor real-time data, making it difficult to respond to dynamic changes in water quality environment. At the same time, although some online water quality analysis equipment can realize real-time monitoring, it usually relies on fixed power grid power supply to run. This is not a problem in areas with good power grid coverage, but for remote areas such as river sources, lake centers, field water sources and tap water pipe network, the power supply wiring of the equipment becomes extremely complex, not only the installation difficulty is large, but also the investment and maintenance cost is high.
[0004] In addition, in harsh environments, the adaptability of traditional equipment is poor. For example, in high temperature or high humidity scenarios, the equipment may run unstable due to insufficient heat dissipation performance, and even cause hardware damage, and in low temperature environment, the components inside the cabinet are easy to affect the monitoring accuracy due to low temperature. These problems seriously limit the universality of traditional water quality monitoring equipment in practical application, especially in areas with complex climate conditions or limited resources.
[0005] In view of the problems in the related art, no effective complete solution has been proposed so far. CONTENT OF THE UTILITY MODEL
[0006] In view of the problems in the related art, the utility model proposes a water quality monitoring cabinet based on solar power supply to overcome the above technical problems existing in the prior art.
[0007] Therefore, the utility model adopts the specific technical scheme as follows:
[0008] The water quality monitoring cabinet powered by solar energy comprises a cabinet body, a base provided at the bottom of the cabinet body, leveling assemblies provided at the bottom corners of the base, a solar panel provided at the top of the cabinet body, heat dissipation assemblies provided at the two sides of the cabinet body, a cabinet door provided on the surface of the cabinet body, an installation plate provided at the inner bottom of the cabinet body, an inverter provided at one side of the top of the installation plate, a storage battery provided at the top of the inverter, a processor provided above the storage battery, a steady flow defoaming tank provided at one side of the storage battery, a plurality of water quality sensors provided at the top of the steady flow defoaming tank, and a water inlet provided at the bottom of the steady flow defoaming tank.
[0009] Further, in order to facilitate equipment transportation and hoisting, lifting lugs are provided at the two sides of the top of the cabinet body, and the top of the cabinet body and the solar panel are connected through a mounting seat. The cabinet door and the cabinet body are connected through a cabinet lock, and a display screen is provided at the top of the surface of the cabinet body. The other side of the top of the installation plate is provided with a fixing seat, and a plurality of liquid storage tanks are provided in the fixing seat.
[0010] Further, in order to realize rapid leveling on uneven ground, the leveling assembly comprises a fixing block mounted at the bottom of the base, an adjusting rod provided at the bottom of the fixing block, and a support block provided at the bottom of the adjusting rod.
[0011] Further, in order to flexibly control the heat dissipation amount, the heat dissipation assembly comprises a shell clamped on the side wall of the cabinet body, a plurality of heat dissipation grooves provided through the surface of the shell, and a plurality of sealing strips provided in the shell and matched with the heat dissipation grooves. The two ends of the sealing strip are provided with sliding blocks, the sliding blocks on the same side are provided with a screw rod interposed therebetween, the bottom end of the screw rod is movably connected with the inner bottom of the shell, the top end of the screw rod is provided with a bevel gear set, a rotating shaft is interposed between the bevel gear sets, and one end of the rotating shaft is connected with a motor provided at the inner top side wall of the shell. The inside of the cabinet body is provided with a temperature sensor, the two side walls of the inside of the cabinet body are provided with a plurality of electric heating plates, and the electric heating plates, the temperature sensor, the water quality sensor, the inverter, the storage battery, the display screen and the motor are electrically connected with the processor.
[0012] The utility model discloses the beneficial effect is: the utility model discloses can provide the electric energy for equipment through solar energy electric board, and realizes the stable storage and conversion of electric energy through inverter and battery, makes equipment can long -term operation in the area of no power grid coverage, solved the dependence of traditional equipment to fixed power supply, adapts to no conventional power supply area, in addition, the utility model discloses still can be through the leveling assembly to realize the quick leveling on the uneven ground, better satisfy the installation demand of analysis appearance, can also be through the heat dissipation component to adjust the heat dissipation amount flexibly, and then open greater heat dissipation groove to improve the heat dissipation efficiency under high temperature environment, and can shield part heat dissipation groove to reduce the overcooling or pollution to enter under low temperature or bad weather, optimize the heat dissipation performance under high temperature or bad weather, in addition, can cooperate electric heating plate and heat preservation under low temperature environment, thereby make the temperature of the inside of cabinet always can keep in a suitable temperature range, provide effective guarantee for the accuracy of water quality monitoring. BRIEF DESCRIPTION OF DRAWINGS
[0013] In order to more clearly illustrate the technical scheme in the embodiment of the utility model or prior art, the following will be briefly introduced the drawing needed to be used in the embodiment, obviously, the drawing in the following description only some embodiments of the utility model, for ordinary skilled person in the art, under the premise of not paying creative labor, still can obtain other drawings according to these drawings.
[0014] Figure 1 It is the structure schematic diagram of water quality monitoring cabinet based on solar power supply according to the utility model embodiment;
[0015] Figure 2 It is the sectional view of water quality monitoring cabinet based on solar power supply according to the utility model embodiment;
[0016] Figure 3 It is the structure schematic diagram of leveling assembly in water quality monitoring cabinet based on solar power supply according to the utility model embodiment;
[0017] Figure 4 It is the structure schematic diagram of heat dissipation component in water quality monitoring cabinet based on solar power supply according to the utility model embodiment.
[0018] In the drawing:
[0019] 1. Cabinet body; 2. Base; 3. Leveling assembly; 301. Fixing block; 302. Adjusting rod; 303. Support block; 4. Solar panel; 5. Lifting lug; 6. Mounting base; 7. Heat dissipation assembly; 701. Housing; 702. Heat dissipation groove; 703. Sealing strip; 704. Slider; 705. Screw; 706. Bevel gear set; 707. Rotating shaft; 708. Motor; 8. Cabinet door; 9. Cabinet lock; 10. Display screen; 11. Mounting plate; 12. Inverter; 13. Battery; 14. Processor; 15. Current stabilization and defoaming tank; 16. Water quality sensor; 17. Water inlet; 18. Fixing base; 19. Liquid storage tank; 20. Temperature sensor; 21. Electric heating plate. Detailed Implementation
[0020] To further illustrate the various embodiments, the present invention provides accompanying drawings, which are part of the disclosure of the present invention. These drawings are mainly used to illustrate the embodiments and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these contents, those skilled in the art should be able to understand other possible implementation methods and the advantages of the present invention. The components in the figures are not drawn to scale, and similar component symbols are usually used to represent similar components.
[0021] According to an embodiment of the present invention, a water quality monitoring cabinet powered by solar energy is provided.
[0022] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments, such as... Figures 1-4 As shown, the solar-powered water quality monitoring cabinet according to an embodiment of this utility model includes a cabinet body 1, a base 2 at the bottom of the cabinet body 1, leveling components 3 at the bottom corners of the base 2, a solar panel 4 at the top of the cabinet body 1, heat dissipation components 7 on both sides of the cabinet body 1, and a cabinet door 8 on the surface of the cabinet body 1. A mounting plate 11 is located at the bottom inner part of the cabinet body 1, an inverter 12 is located on one side of the top of the mounting plate 11, and a battery 13 is located on the top of the inverter 12. In specific applications, when solar energy cannot meet the power supply requirements due to environmental factors, the battery 13 configured in this embodiment can also be used independently. The independent power supply maintains the water quality monitoring equipment's normal power supply for about 15 days. A processor 14 is installed above the battery 13. A flow stabilization and defoaming tank 15 is installed on one side of the battery 13. Several water quality sensors 16 are installed on the top of the flow stabilization and defoaming tank 15. In specific applications, the water quality sensors in this embodiment include pH sensors, conductivity sensors, residual chlorine sensors, and turbidity sensors. Moreover, the water quality sensors 16 in this embodiment can be replaced with corresponding water quality sensors according to the needs of on-site water quality collection, which has a certain degree of convenience. A water inlet 17 is installed at the bottom of the flow stabilization and defoaming tank 15 for connecting to the water pipe of the water source to be analyzed.
[0023] By means of the above technical scheme, the utility model discloses can provide the equipment with electric energy through solar panel 4, and realizes the stable storage and conversion of electric energy through inverter 12 and battery 13, so that the equipment can be operated in the area without power grid coverage for a long time, the dependence of traditional equipment on fixed power supply is solved, and the area without conventional power grid power supply is adapted, in addition, the utility model discloses can also be realized through leveling assembly 3 on the uneven ground Quick leveling, better satisfy the installation demand of the analyzer, and also can be adjusted through heat dissipation assembly 7 Flexibly adjust the heat dissipation amount, and then open the larger heat dissipation groove to improve the heat dissipation efficiency under the high temperature environment, and under the low temperature or bad weather (such as heavy rain, dust), a part of heat dissipation groove can be appropriately shielded to reduce the excessive cooling or pollution, in addition, heating can be carried out under the low temperature environment, so that the temperature inside the cabinet body 1 can always be kept in a suitable temperature range, and effective guarantee is provided for the accuracy of water quality monitoring.
[0024] In one embodiment, the top of the cabinet body 1 is provided with a lifting lug 5 on both sides, and the top of the cabinet body 1 is connected with the solar panel 4 through the mounting seat 6. The cabinet door 8 is connected with the cabinet body 1 through the cabinet lock 9. In specific application, the cabinet lock 9 in the embodiment is an intelligent lock, which can be unlocked by password or remotely unlocked through a platform (a communication module is arranged in the processor to respond). The surface of the cabinet body 1 is provided with a display screen 10. The other side of the top of the mounting plate 11 is provided with a fixing seat 18, and the fixing seat 18 is provided with a plurality of liquid storage tanks 19.
[0025] In one embodiment, the leveling assembly 3 includes a fixed block 301 mounted on the bottom of the base 2, and the bottom of the fixed block 301 is provided with an adjusting rod 302, and the adjusting rod 302 is connected with the fixed block 301 through a threaded connection, and the bottom of the adjusting rod 302 is provided with a supporting block 303. By arranging the leveling assembly 3, the height of the supporting block 303 can be adjusted by the adjusting rod 302 under the action of the screw, so that the quick leveling on the uneven ground can be realized, and the installation demand of the analyzer is better satisfied.
[0026] In specific application, when the cabinet body 1 is installed on the uneven ground, the worker can rotate the supporting block 303 at this time, so as to drive the adjusting rod 302 to move up and down under the action of the screw, and the height of the supporting block 303 can be adjusted.
[0027] In one embodiment, the heat dissipation assembly 7 comprises a shell 701 clamped on the side wall of the cabinet body 1, and the shell 701 is detachably mounted on the cabinet body 1 by bolts in specific applications, and one side of the shell 701 is designed to be openable, so as to facilitate replacement or maintenance of the parts inside the heat dissipation assembly 7, a plurality of heat dissipation grooves 702 are provided on the surface of the shell 701, and a plurality of sealing strips 703 matched with the heat dissipation grooves 702 are arranged in the shell 701; both ends of the sealing strip 703 are provided with sliding blocks 704, and the sliding blocks 704 and the sealing strip 703 are detachably connected in specific applications, for example, a placing groove for placing the sliding block 704 can be provided on both sides of the sealing strip 703, or other detachable connection modes can be used, the screw rods 705 are arranged between the sliding blocks 704 on the same side, the bottom end of the screw rod 705 is movably connected with the inner bottom of the shell 701, the top end of the screw rod 705 is provided with a bevel gear set 706, the rotating shafts 707 are arranged between the bevel gear sets 706, and one end of the rotating shaft 707 is connected with the motor 708 located on the inner top side wall of the shell 701. The temperature sensor 20 is arranged in the cabinet body 1, and a plurality of electric heating plates 21 are arranged on the inner side walls of the cabinet body 1, and the electric heating plate 21 in the embodiment is preferably an electric heating wire heating plate, which is powered by the storage battery 13, and the electric heating plate 21, the temperature sensor 20, the water quality sensor 16, the inverter 12, the storage battery 13, the display screen 10 and the motor 708 are electrically connected with the processor 14.
[0028] By arranging the heat dissipation assembly 7, the motor 708 can drive the sealing strip 703 to move up and down, so that the sealing degree of the sealing strip 703 to the heat dissipation grooves 702 can be flexibly adjusted according to actual needs to control the heat dissipation amount, so that larger heat dissipation grooves 702 can be opened in high temperature environment to improve the heat dissipation efficiency, and part of the heat dissipation grooves 702 can be appropriately shielded in low temperature or bad weather (such as heavy rain and sandstorm) to reduce excessive cooling or pollution, so as to optimize the heat dissipation performance in high temperature or bad weather; At the same time, the electric heating plate 21 can also be used for heating in low temperature environment, so that the temperature inside the cabinet body 1 can always be maintained within a suitable temperature range, which provides effective guarantee for the accuracy of water quality monitoring.
[0029] In a specific application, when the temperature sensor 20 detects that the temperature inside the cabinet 1 exceeds the preset maximum temperature threshold, the processor 14 controls the motor 708 to work, so that the motor 708 drives the rotating shaft 707 to rotate, thereby driving the two groups of screw rods 705 to rotate through the bevel gear set 706, so that the sliding block 704 drives the sealing strip 703 to move downward, thereby reducing the shielding of the sealing strip 703 to the heat dissipation groove 702 to increase the heat dissipation effect, on the contrary, when the temperature sensor 20 detects that the temperature inside the cabinet 1 is lower than the preset minimum temperature threshold, the processor 14 controls the motor 708 to rotate reversely, thereby increasing the shielding of the sealing strip 703 to the heat dissipation groove 702 to reduce the heat dissipation effect, which can reduce excessive cooling or pollution entering, and when the temperature sensor 20 detects that the temperature inside the cabinet 1 is lower than the preset minimum temperature threshold, the processor 14 also controls the electric heating plate 21 to heat and keep warm, so that the temperature inside the cabinet 1 can always be kept within an appropriate temperature range.
[0030] In summary, by means of the technical scheme of the utility model, the utility model can provide power for the equipment through the solar panel 4, and realize stable storage and conversion of the power through the inverter 12 and the storage battery 13, so that the equipment can operate in the area without power grid coverage for a long time, solve the dependence of the traditional equipment on the fixed power supply, adapt to the area without conventional power grid power supply, in addition, the utility model can also realize rapid leveling on the uneven ground through the leveling assembly 3, better meet the installation demand of the analyzer, and can also flexibly adjust the heat dissipation amount through the heat dissipation assembly 7, so that a larger heat dissipation groove 702 can be opened in a high-temperature environment to improve the heat dissipation efficiency, and part of the heat dissipation groove 702 can be appropriately shielded in a low-temperature or bad weather (such as heavy rain and sand) to reduce excessive cooling or pollution entering, and optimize the heat dissipation performance in a high-temperature or bad weather; meanwhile, the electric heating plate 21 can be used for heating and keeping warm in a low-temperature environment, so that the temperature inside the cabinet 1 can always be kept within an appropriate temperature range, which provides effective guarantee for the accuracy of water quality monitoring.
[0031] In the utility model, unless otherwise specified and limited, the terms "mounting", "setting", "connecting", "fixing", "screw connection" and the like should be understood in a broad sense, for example, can be fixed connection, or can be detachable connection, or can be integrated; can be mechanical connection, or can be electrical connection; can be directly connected, or can be indirectly connected through an intermediate medium; can be the communication inside two elements or the interaction relationship between two elements, unless otherwise specified, the above-mentioned terms in the utility model can be understood according to the specific meaning of the above-mentioned terms in the utility model according to the specific situation.
[0032] The above merely describes preferred embodiments of the present application and is not intended to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A water quality monitoring cabinet powered by solar energy, comprising a cabinet body (1), characterized in that, The bottom of the cabinet body (1) is provided with a base (2), the bottom corners of the base (2) are provided with leveling assemblies (3), the top of the cabinet body (1) is provided with a solar panel (4), both sides of the cabinet body (1) are provided with heat dissipation assemblies (7), and the surface of the cabinet body (1) is provided with cabinet doors (8). The inner bottom of the cabinet body (1) is provided with a mounting plate (11), one side of the top of the mounting plate (11) is provided with an inverter (12), the top of the inverter (12) is provided with a storage battery (13), and the top of the storage battery (13) is provided with a processor (14). One side of the storage battery (13) is provided with a steady flow defoaming tank (15), the top of the steady flow defoaming tank (15) is provided with a plurality of water quality sensors (16), and the bottom of the steady flow defoaming tank (15) is provided with a water inlet (17).
2. The solar powered water quality monitoring cabinet of claim 1, wherein, Both sides of the top of the cabinet body (1) are provided with lifting lugs (5), and the top of the cabinet body (1) and the solar panel (4) are connected through a mounting seat (6).
3. The solar powered water quality monitoring cabinet of claim 1, wherein, The cabinet doors (8) and the cabinet body (1) are connected through cabinet locks (9), and the top of the surface of the cabinet body (1) is provided with a display screen (10).
4. The solar powered water quality monitoring cabinet of claim 1, wherein, The other side of the top of the mounting plate (11) is provided with a fixing seat (18), and the inside of the fixing seat (18) is provided with a plurality of liquid storage tanks (19).
5. The solar powered water quality monitoring cabinet of claim 1, wherein, The leveling assembly (3) comprises a fixing block (301) mounted on the bottom of the base (2), the bottom of the fixing block (301) is provided with an adjusting rod (302), and the adjusting rod (302) and the fixing block (301) are connected through threads, and the bottom of the adjusting rod (302) is provided with a supporting block (303).
6. The solar powered water quality monitoring cabinet of claim 3, wherein, The heat dissipation assembly (7) comprises a shell (701) clamped on the side wall of the cabinet body (1), a plurality of heat dissipation grooves (702) are formed in the surface of the shell (701), and a plurality of sealing strips (703) matched with the heat dissipation grooves (702) are arranged in the shell (701). Both ends of the sealing strip (703) are provided with sliding blocks (704), screw rods (705) are arranged between the sliding blocks (704) on the same side, the bottom end of the screw rod (705) is movably connected with the inner bottom of the shell (701), the top end of the screw rod (705) is provided with a bevel gear set (706), a rotating shaft (707) is arranged between the bevel gear set (706), and one end of the rotating shaft (707) is connected with a motor (708) located on the inner top side wall of the shell (701).
7. The solar powered water quality monitoring cabinet of claim 6, wherein, The inside of the cabinet body (1) is provided with a temperature sensor (20), both side walls in the inside of the cabinet body (1) are provided with a plurality of electric heating plates (21), and the electric heating plates (21), the temperature sensor (20), the water quality sensors (16), the inverter (12), the storage battery (13), the display screen (10) and the motor (708) are electrically connected with the processor (14).