Water body temperature detection device and water body management system
By integrating disinfection and temperature detection functions into a water temperature detection device, the problem of limited functionality in existing technologies has been solved. This enables the management and remote monitoring of multiple indicators of pool water quality, improving the device's usability and stability.
Patent Information
- Application Number
- CN202520078750.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-01-13
AI Technical Summary
Existing floating thermometers have limited functionality, only capable of detecting water temperature, making it difficult to meet the multiple requirements of swimming pool water quality management. Furthermore, existing disinfection equipment and thermometers require on-site testing by users, hindering efficient management.
A water temperature detection device was designed, integrating disinfection components, temperature detection components, and wireless communication functions. It floats in the water with a float head to simultaneously monitor temperature and perform disinfection, and can remotely output data. The device includes an ionizer that generates copper and silver ions for disinfection, a screen to prevent impurities from affecting the device, solar power, and a display screen to provide operating status information.
It enables the management of multiple indicators of pool water quality, improves the availability and stability of water temperature detection devices, provides remote monitoring and on-site status information, and reduces the user's operational burden.
Smart Images

Figure CN223741758U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of swimming pool water quality management technology, specifically to water temperature detection devices and water management systems. Background Technology
[0002] With the increasing popularity of health concepts, many people prefer to swim in pools for exercise. To avoid causing discomfort, the water in pools needs to meet certain water quality standards, which may include indicators such as temperature and microbial content. However, determining whether a pool is at a suitable temperature requires a water thermometer and / or a weather station. Therefore, floating thermometers are commonly available on the market for detecting pool water temperature, allowing users to manage their pools accordingly.
[0003] However, to determine whether the pool water quality is suitable for swimming, it is also necessary to ensure that other indicators of the water body meet the water quality standards. Currently, common floating thermometers have only one function, which can only detect water temperature and cannot be used well for pool water quality management. Utility Model Content
[0004] This application mainly provides a water temperature detection device and a water management system, which can improve the usability of the water temperature detection device.
[0005] To solve the above-mentioned technical problems, one technical solution adopted in this application is: providing a water temperature detection device, including a float head, a disinfection component, and a temperature detection component. The float head includes a wireless communication component, a controller, and a power supply component. The power supply component is electrically connected to the wireless communication component and the controller, and the controller is signal-connected to the wireless communication component. The disinfection component is detachably connected to the float head, and the disinfection component is signal-connected to the controller and electrically connected to the power supply component. The temperature detection component is signal-connected to the controller and electrically connected to the power supply component. The disinfection component and the temperature detection component are disposed on a first side of the float head.
[0006] In one specific embodiment, the disinfection component includes an ionizer, the floating head includes a first connecting structure, the first connecting structure is disposed on the first side, and the ionizer is detachably connected to the first connecting structure.
[0007] In one embodiment, the ionizer includes a first electrical contact, the first connection structure includes a second electrical contact, and the first electrical contact abuts against the second electrical contact; and / or, the ionizer includes a second connection structure, the first connection structure includes one of a plug and a slot, the second connection structure includes the other of the plug and the slot, and the plug is inserted into the slot.
[0008] In one specific embodiment, the water temperature detection device further includes a cover net, the float includes a third connecting structure, the third connecting structure is disposed on the first side and located around the first connecting structure, the cover net is sleeved on the outer periphery of the ionizer, and the cover net is detachably connected to the third connecting structure.
[0009] In one specific embodiment, the cover mesh includes a first magnetic element, the third connecting structure includes a second magnetic element, the first magnetic element and the second magnetic element have opposite polarities; and / or, the cover mesh is provided with a first thread, the third connecting structure is provided with a second thread, and the first thread engages with the second thread.
[0010] In one specific embodiment, the temperature sensing element is disposed inside the cover mesh and located at the end of the cover mesh away from the ionizer.
[0011] In one specific embodiment, the temperature sensing element is connected to the floating head, and the ionizer and the temperature sensing element are spaced apart on the first side.
[0012] In one embodiment, the power supply assembly includes a solar panel, and the floating head has a second side disposed opposite to the first side, with the solar panel at least partially exposed on the second side of the floating head.
[0013] In one specific embodiment, the floating head further includes a display screen, the floating head having a second side disposed opposite to the first side, the display screen being at least partially exposed on the second side of the floating head; the display screen is electrically connected to the power supply component, and the display screen is signal-connected to the controller; and / or, the floating head further includes an indicator light, the floating head having a second side disposed opposite to the first side, the indicator light being electrically connected to the sterilization component and the power supply component respectively, the indicator light including a light-emitting part, the light-emitting part being at least partially disposed on the second side.
[0014] To solve the above-mentioned technical problems, another technical solution adopted in this application is: to provide a water body management system, including a receiving device and at least one water body temperature detection device as described in any of the above specific embodiments, wherein the receiving device is signal-connected to the wireless communication component of the water body temperature detection device.
[0015] The beneficial effects of this application are as follows: Unlike existing technologies, in this embodiment, a disinfection component is incorporated into the water temperature detection device. The device floats in the water via a float head, allowing for simultaneous water temperature monitoring and disinfection, thus enabling further management of the pool water quality. Furthermore, a wireless communication component is included, enabling the output of data measured by the temperature detection device for remote viewing by a user via a receiving device. The water temperature detection device provided in this application integrates temperature detection, water disinfection, and wireless communication functions, significantly improving its usability. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of the assembly structure of an embodiment of the water temperature detection device provided in this application;
[0018] Figure 2 This is a cross-sectional structural schematic diagram of an embodiment of the water temperature detection device provided in this application;
[0019] Figure 3 This is a cross-sectional structural schematic diagram of another embodiment of the water temperature detection device provided in this application;
[0020] Figure 4 This is a cross-sectional structural schematic diagram of another embodiment of the water temperature detection device provided in this application;
[0021] Figure 5 This is a disassembled structural diagram of an embodiment of the water temperature detection device provided in this application;
[0022] Figure 6 This is a schematic diagram of the assembly structure of another embodiment of the water temperature detection device provided in this application.
[0023] Attached image labels:
[0024] 1. Water temperature detection device; 2. Float head; 21. First side; 22. First connecting structure; 23. Third connecting structure; 231. Second magnetic component; 24. Second side; 25. Anti-collision strip; 261. Upper shell; 261a. First fixing hole; 261b. Fourth fixing hole; 262. Lower shell; 262a. Second fixing hole; 263. Sealing strip; 263a. Third fixing hole; 3. Wireless communication component; 3b. Fifth fixing hole; 4. Controller; 5. Power supply component; 51. Solar panel; 52. Battery; 6. Disinfection component; 61. Ionizer; 611. Copper electrode; 612. Silver electrode; 62. Cover; 621. First magnetic component; 7. Temperature detection component; 8. Display screen; 9. Indicator light; 91. Light-emitting part. Detailed Implementation
[0025] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be noted that the following embodiments are for illustrative purposes only and do not limit the scope of the application. Similarly, the following embodiments are only some, not all, embodiments of the present application, and all other embodiments obtained by those skilled in the art without inventive effort are within the scope of protection of this application.
[0026] The terms "first," "second," and "third" in this application are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationships and movements between components in a specific orientation (as shown in the figures). If the specific orientation changes, the directional indications also change accordingly. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. A process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.
[0027] In this document, the term "implementation" means that a specific feature, structure, or characteristic described in connection with an implementation may be included in at least one implementation of this application. The appearance of this phrase in various places in the specification does not necessarily refer to the same implementation, nor is it a separate or alternative implementation mutually exclusive with other implementations. It will be explicitly and implicitly understood by those skilled in the art that the implementations described herein can be combined with other implementations.
[0028] With the increasing popularity of health concepts, many people prefer to swim in pools for exercise. To avoid causing discomfort, the water in pools needs to meet certain water quality standards, which may include indicators such as temperature and microbial content. However, determining whether a pool is at a suitable temperature requires a water thermometer and / or a weather station. Therefore, floating thermometers are commonly available on the market for detecting pool water temperature, allowing users to manage their pools accordingly.
[0029] However, to determine whether the pool water quality is suitable for swimming, it is also necessary to ensure that other indicators of the water body meet the water quality standards. Currently, common floating thermometers have only one function, which can only detect water temperature and cannot be used well for pool water quality management.
[0030] Microbial content and algae content are also important parameters for water quality management. Maintaining microbial content requires the use of disinfection equipment or the regular addition of disinfection tablets. However, currently common disinfection equipment and / or thermometers can only perform single disinfection or temperature measurement tasks. Users need to go to the site in person to test or check the thermometer reading to know the water quality of the pool, which makes it difficult to achieve efficient pool water quality management.
[0031] In order to improve or solve the above technical problems, the inventors of this application, after long-term research, have proposed at least the following embodiments.
[0032] See Figures 1-6 , Figure 1 This is a schematic diagram of the assembly structure of an embodiment of the water temperature detection device provided in this application. Figure 2 This is a cross-sectional structural schematic diagram of an embodiment of the water temperature detection device provided in this application. Figure 3 This is a cross-sectional structural schematic diagram of another embodiment of the water temperature detection device provided in this application. Figure 4 This is a cross-sectional structural schematic diagram of another embodiment of the water temperature detection device provided in this application. Figure 5 This is a disassembled structural diagram of an embodiment of the water temperature detection device provided in this application. Figure 6 This is a schematic diagram of the assembly structure of another embodiment of the water temperature detection device provided in this application.
[0033] To address the aforementioned technical problems, this application provides a water temperature detection device 1, comprising a float head 2, a disinfection component 6, and a temperature detection component 7. The float head 2 includes a wireless communication component 3, a controller 4, and a power supply component 5. The power supply component 5 is electrically connected to the wireless communication component 3 and the controller 4, and the controller 4 is signal-connected to the wireless communication component 3. The disinfection component 6 is detachably connected to the float head 2, and is signal-connected to the controller 4 and electrically connected to the power supply component 5. The temperature detection component 7 is signal-connected to the controller 4 and electrically connected to the power supply component 5. The disinfection component 6 and the temperature detection component 7 are disposed on the first side 21 of the float head 2.
[0034] In the structure provided in this specific embodiment, a disinfection component 6 is provided in the water temperature detection device 1. The water temperature detection device 1 floats in the water via a float head 2, enabling simultaneous monitoring of the water temperature using the temperature detection component 7 and disinfection of the water using the disinfection component 6, thus achieving further management of the pool water quality. A wireless communication component 3 is also provided, allowing the data measured by the temperature detection component 7 to be output for remote viewing by a user using a receiving device. The water temperature detection device 1 provided in this application integrates temperature detection, water disinfection, and wireless communication functions, greatly improving the usability of the water temperature detection device 1.
[0035] In one specific implementation, such as Figure 5 , Figure 6 As shown, the disinfection component 6 may specifically include an ionizer 61, and the floating head 2 includes a first connecting structure 22, which is disposed on the first side 21. The ionizer 61 is detachably connected to the first connecting structure 22.
[0036] The ionizer 61 can be composed of two metal electrodes, specifically a copper electrode 611 and a silver electrode 612. When current passes through, the copper electrode 611 and the silver electrode 612 generate copper ions and silver ions respectively, which diffuse into the water. The bactericidal function of the copper and silver ions is achieved by the positively charged copper and silver ions combining with the negatively charged bacterial cells. The copper and silver ions penetrate the cell wall and combine with DNA and RNA in specific locations within the cell, destroying the proteases and respiratory enzymes of the bacterial cells, thereby causing the bacterial cells to dissolve and die, achieving a bactericidal effect.
[0037] Currently, chlorine is commonly used for disinfection of swimming pool water. As a consumable, it is highly dependent on the stability of raw material supply; in 2021, the United States experienced a shortage and price increase of chlorine tablets. Furthermore, chlorine tablet disinfection requires regular testing of residual chlorine content and pH levels in the pool. Improper use can easily damage human skin and conjunctiva, and it also has a pungent odor. In contrast, the copper electrode 611 and silver electrode 612 of the ionizer 61 generate copper and silver ions for sterilization, which is less likely to harm human skin and health, greatly improving the safety of swimming pool water quality management.
[0038] The two metal electrodes of ionizer 61 release metal ions during use, causing wear and tear on the electrodes themselves. Furthermore, the combination of positively charged copper and silver ions with negatively charged bacterial cells to achieve sterilization triggers a bacterial cell flocculation process. Flocculation refers to the enlargement of suspended bacterial cell clusters in the water, sometimes forming flocs. Since ionizer 61 is the source of copper and silver ions, the concentration of these ions in its vicinity is relatively high. Bacterial cell clusters and flocs easily adhere to ionizer 61, leading to scaling on its surface. Besides bacteria, impurities such as algae in the water also inevitably contaminate ionizer 61. Whether it's bacterial cell clusters, flocs, or algae, all these impurities negatively impact the process of ionizer 61 releasing copper and silver ions into the water.
[0039] In the structure provided in this specific embodiment, the ionizer 61 is detachably connected to the float 2 using the first connection structure 22, which allows the user to remove the ionizer 61 contaminated with flocculent matter and / or algae and other impurities from the water temperature detection device 1 for cleaning, or to remove and replace or maintain the worn ionizer 61, thereby improving the stability and service life of the water temperature detection device 1.
[0040] In one specific embodiment, the ionizer 61 may include a first electrical contact, and the first connection structure 22 may include a second electrical contact. The first electrical contact and the second electrical contact abut against each other, thereby realizing the electrical connection between the ionizer 61 and the first connection structure 22, and then electrically connecting and / or signal connecting the ionizer 61 to the power supply component 5, controller 4 and other structures in the float head 2.
[0041] Optionally, the ionizer 61 includes a second connection structure. The first connection structure 22 may include one of a plug and a slot, and the second connection structure may include the other of a plug and a slot. The plug is inserted into the slot to realize the electrical connection between the ionizer 61 and the first connection structure 22, thereby electrically connecting and / or signal-connecting the ionizer 61 to the power supply component 5, controller 4 and other structures in the floating head 2.
[0042] In one specific embodiment, the water temperature detection device 1 may further include a cover 62, and the float 2 includes a third connecting structure 23. The third connecting structure 23 is disposed on the first side 21 and is located around the first connecting structure 22. The cover 62 is sleeved on the outer periphery of the ionizer 61, and the cover 62 is detachably connected to the third connecting structure 23.
[0043] In the structure provided in this specific embodiment, the cover 62 is detachably fitted onto the outer periphery of the ionizer 61 using the third connecting structure 23. Water can freely pass through the cover 62 and come into contact with the ionizer 61 inside the cover 62, thereby carrying the metal ions released by the ionizer 61 to diffuse into the water outside the cover 62. Meanwhile, impurities such as algae, fallen leaves, and flocculated bacterial cells in the water outside the cover 62 are isolated by the cover 62, thereby reducing the probability of impurities contacting the ionizer 61 and hindering its normal operation, and effectively improving the stability of the water temperature detection device 1.
[0044] In one specific embodiment, the cover 62 may include a first magnetic element 621, and the third connecting structure 23 may include a second magnetic element 231. The first magnetic element 621 and the second magnetic element 231 have opposite polarities. The first magnetic element 621 and the second magnetic element 231 attract each other under magnetic action, thereby realizing a detachable connection between the cover 62 and the third connecting structure 23.
[0045] Optionally, the cover 62 is provided with a first thread, and the third connecting structure 23 is provided with a second thread. The first thread and the second thread engage, thereby realizing a detachable connection between the cover 62 and the third connecting structure 23.
[0046] In one specific embodiment, the temperature sensing element 7 can be disposed inside the cover 62 and located at the end of the cover 62 away from the ionizer 61. The ionizer 61 may generate heat when it is working. When the cover 62 is used to limit the temperature sensing element 7, the interference of the ionizer 61 on the temperature sensing element 7 can be minimized, thereby improving the accuracy of the temperature sensing element 7 in detecting the water temperature.
[0047] In one specific embodiment, the temperature detection element 7 can also be connected to the float head 2, and the ionizer 61 and the temperature detection element 7 are spaced apart on the first side 21. In the structure provided in this specific embodiment, the temperature detection element 7 and the ionizer 61 are spaced apart on the first side 21 to minimize the interference of the ionizer 61 on the temperature detection element 7, thereby improving the accuracy of the temperature detection element 7 in detecting water temperature.
[0048] In one specific embodiment, the power supply component 5 may include a solar cell 52 panel 51, and the float 2 has a second side 24 disposed opposite to the first side 21. The solar cell 52 panel 51 is at least partially exposed on the second side 24 of the float 2. In the structure provided in this specific embodiment, the solar cell 52 panel 51 is disposed on the side of the float 2 away from the temperature detection element 7 and the ionizer 61. When the float 2 floats in the water, the ionizer 61 and the temperature detection element 7 are submerged in the water to detect the water quality, while the solar cell 52 panel 51 is exposed to absorb light energy, thereby achieving the effect of using the solar cell 52 panel 51 to supply power to at least one of the electrical devices such as the ionizer 61, the controller 4, the wireless communication element 3, and the temperature detection element 7.
[0049] Specifically, the power supply component 5 may include a battery 52, which can store electrical energy and is electrically connected to at least one of the electrical devices such as the ionizer 61, the controller 4, the wireless communication device 3, and the temperature detection device 7, thereby supplying power to enable it to work normally.
[0050] Furthermore, the battery 52 and the solar cell panel 51 can be installed simultaneously in the water temperature detection device 1. The solar cell panel 51 can be electrically connected to the battery 52, so that solar energy can be used to charge the battery 52 and store solar energy, enabling the water temperature detection device 1 to adapt to different light environments and improve the stability of the water temperature detection device 1.
[0051] In one embodiment, the floating head 2 may further include a display screen 8, the floating head 2 having a second side 24 disposed opposite to the first side 21, the display screen 8 being at least partially exposed on the second side 24 of the floating head 2. The display screen 8 is electrically connected to the power supply assembly 5 and signal-connected to the controller 4. Optionally, the display screen 8 may be an LCD (Liquid Crystal Display) display screen 8.
[0052] Optionally, the floating head 2 further includes an indicator light 9. The floating head 2 has a second side 24 disposed opposite to the first side 21. The indicator light 9 is electrically connected to the sterilization component 6 and the power supply component 5, respectively. The indicator light 9 may include a light-emitting part 91, which is at least partially disposed on the second side 24. The indicator light 9 may include an LED (light-emitting diode) indicator light 9.
[0053] In the structure provided in this specific embodiment, the display screen 8 and / or indicator light 9 are disposed on the second side 24 of the float 2. When the water temperature detection device 1 floats in the water, the user can obtain the working status information of the water temperature detection device 1 from the exposed display screen 8 and / or indicator light 9. This working status information may include whether the disinfection component 6 is performing disinfection work, the working time of the disinfection component 6, the water temperature measured by the temperature detection component 7, the remaining power of the power supply component 5, and other information. This allows users on-site to quickly obtain the working status information of the water temperature detection device 1, greatly improving the usability of the water temperature detection device 1.
[0054] Based on the working status information such as whether the disinfection device 6 is carrying out disinfection work and the working time of the disinfection device 6, users can effectively judge the current disinfection status of the water body, and then judge the timing and dosage of auxiliary means to disinfect the water body. Auxiliary means may include adding disinfectant substances such as chlorine tablets to the water body.
[0055] Optionally, before the water temperature detection device 1 is first put into a body of water for use, the user can use the receiving device or directly on the water temperature detection device 1 to perform numerical initialization settings, such as setting parameters such as the total volume of the water body and the size of the water surface, so as to subsequently judge the disinfection status of the water body and select corresponding measures according to the disinfection status.
[0056] like Figures 2-4 As shown, the float head 2 has a side connecting the first side 21 and the second side 24. The float head 2 may also include a crash bar 25. The crash bar 25 can be disposed on the side of the float head 2, and the crash bar 25 protrudes from the side. When the float head 2 collides with the external environment, such as the pool wall, the crash bar 25 can play a buffering role, thereby reducing the impact of the external environment on the components such as the controller 4, disinfection component 6, power supply component 5, and temperature detection component 7 in the float head 2, reducing the probability of these components being damaged by impact, and improving the stability of the water temperature detection device 1.
[0057] Optionally, the floating head 2 may specifically include an upper shell 261 and a lower shell 262. The upper shell 261 and the lower shell 262 are closed to form a cavity isolated from the outside. The controller 4, power supply component 5, and wireless communication component 3 may be disposed in the cavity. The display screen 8, solar cell 52 panel 51, and indicator light 9 may be at least partially disposed in the upper shell 261. The temperature detection component 7 and the disinfection component 6 may be at least partially disposed in the lower shell 262. The side of the upper shell 261 facing away from the cavity corresponds to the second side 24, and the side of the lower shell 262 facing away from the cavity corresponds to the first side 21.
[0058] The upper shell 261 can be detachably connected to the lower shell 262 for component installation. The upper shell 261 may have a first fixing hole 261a, and the lower shell 262 may have a second fixing hole 262a. The second fixing hole 262a is threaded, and the water temperature detection device 1 may also include a threaded component that can sequentially pass through the first fixing hole 261a and the second fixing hole 262a and be screwed into the second fixing hole 262a, thereby fixing the upper shell 261 and the lower shell 262 relative to each other.
[0059] Optionally, the water temperature detection device 1 may further include a sealing strip 263, which abuts against the space between the upper shell 261 and the lower shell 262 to improve the waterproof performance of the cavity. The sealing strip 263 may have a third fixing hole 263a corresponding to the first fixing hole 261a and the second fixing hole 262a. A threaded component can sequentially pass through the first fixing hole 261a, the third fixing hole 263a, and the second fixing hole 262a, and be screwed into the second fixing hole 262a, thereby fixing the upper shell 261 and the lower shell 262 relative to each other.
[0060] Optionally, the wireless communication component 3 can be fixed relative to the upper shell 261 to reduce the shaking of the wireless communication component 3 and improve the stability of the water temperature detection device 1. The upper shell 261 may be provided with a fourth fixing hole 261b, and the wireless communication component 3 may be provided with a fifth fixing hole 3b. The fourth fixing hole 261b may be provided with threads, and the threaded component can pass through the fifth fixing hole 3b and the fourth fixing hole 261b in sequence and be screwed into the fourth fixing hole 261b, thereby fixing the upper shell 261 and the wireless communication component 3 relative to each other.
[0061] To solve the above-mentioned technical problems, the specific embodiments of this application may also provide a water body management system, which includes a receiving device and at least one water temperature detection device 1 as described in any of the above specific embodiments, wherein the receiving device is signal-connected to the wireless communication device 3 of the water temperature detection device 1.
[0062] The receiving device may include a client device corresponding to the water temperature detection device 1, such as a monitor or mobile phone. Users can receive the working status information of the water temperature detection device 1 sent by the wireless communication device 3 through the client device.
[0063] In the structure provided in this specific embodiment, a disinfection component 6 is provided in the water temperature detection device 1. The water temperature detection device 1 floats in the water via a float head 2, enabling simultaneous monitoring of the water temperature using the temperature detection component 7 and disinfection of the water using the disinfection component 6, thus achieving further management of the pool water quality. A wireless communication component 3 is also provided, allowing the data measured by the temperature detection component 7 to be output for remote viewing by a user using a receiving device. The water temperature detection device 1 provided in this application integrates temperature detection, water disinfection, and wireless communication functions, greatly improving the usability of the water temperature detection device 1.
[0064] The above description is only a partial embodiment of this application and does not limit the scope of protection of this application. Any equivalent device or equivalent process transformation made based on the content of this application specification and drawings, or directly or indirectly applied to other related technical fields, are similarly included within the scope of patent protection of this application.
Claims
1. A water body temperature detecting device, characterized by, The water body temperature detection device (1) comprises: a floating head (2), comprising a wireless communication component (3), a controller (4), and a power supply assembly (5) electrically connected to the wireless communication component (3) and the controller (4), and the controller (4) being signal connected to the wireless communication component (3); a sterilization component (6) detachably connected to the floating head (2) and signal connected to the controller (4) and electrically connected to the power supply assembly (5); a temperature detection component (7) signal connected to the controller (4) and electrically connected to the power supply assembly (5); wherein the sterilization component (6) and the temperature detection component (7) are arranged on a first side (21) of the floating head (2).
2. The water body temperature detection device according to claim 1, wherein the sterilization component (6) comprises an ionizer (61), the floating head (2) comprises a first connecting structure (22) arranged on the first side (21), and the ionizer (61) is detachably connected to the first connecting structure (22).
3. The water body temperature detection device according to claim 2, wherein the ionizer (61) comprises a first electrical contact, the first connecting structure (22) comprises a second electrical contact, and the first electrical contact abuts against the second electrical contact; and / or the ionizer (61) comprises a second connecting structure, the first connecting structure (22) comprises one of a plug and a socket, and the second connecting structure comprises the other of the plug and the socket, and the plug is inserted into the socket.
4. The water body temperature detection device according to claim 2, wherein the water body temperature detection device (1) further comprises a cover net (62), the floating head (2) comprises a third connecting structure (23) arranged on the first side (21) and located on a side of the first connecting structure (22), and the cover net (62) is sleeved on an outer periphery of the ionizer (61) and detachably connected to the third connecting structure (23).
5. The water body temperature detection device according to claim 4, wherein the cover net (62) comprises a first magnetic component (621), the third connecting structure (23) comprises a second magnetic component (231), and the first magnetic component (621) and the second magnetic component (231) have opposite polarities; and / or the cover net (62) is provided with a first thread, the third connecting structure (23) is provided with a second thread, and the first thread is engaged with the second thread.
6. The water body temperature detection device according to claim 4, wherein the temperature detection component (7) is arranged in the cover net (62) and located at an end of the cover net (62) away from the ionizer (61).
7. The water body temperature detection device according to claim 2, wherein the temperature detection component (7) is connected to the floating head (2), and the ionizer (61) and the temperature detection component (7) are arranged on the first side (21) in a spaced manner.
8. The water body temperature detection device according to claim 1, characterized in that, the power supply assembly (5) comprises a solar panel (51), and the floating head (2) has a second side (24) opposite to the first side (21), and the solar panel (51) is at least partially exposed to the second side (24) of the floating head (2).
9. The water body temperature detection device according to claim 1, characterized in that, the floating head (2) further comprises a display screen (8), the floating head (2) has a second side (24) opposite to the first side (21), and the display screen (8) is at least partially exposed to the second side (24) of the floating head (2); the display screen (8) is electrically connected to the power supply assembly (5), and the display screen (8) is signal connected to the controller (4); and / or, the floating head (2) further comprises an indicator light (9), the floating head (2) has a second side (24) opposite to the first side (21), and the indicator light (9) is respectively electrically connected to the sterilization element (6) and the power supply assembly (5), and the indicator light (9) comprises a light emitting part (91), and the light emitting part (91) is at least partially arranged on the second side (24).
10. A water body management system characterized by, The application further provides: at least one water body temperature detection device (1) according to any one of claims 1-9; a receiving device, signal connected to the wireless communication element (3) of the water body temperature detection device (1).