Multi-parameter sensor integrated device convenient to move and position
By employing a stainless steel housing, nano-anti-corrosion coating, standard card slot design, self-locking pulleys, dual power supply, and a high-efficiency heat dissipation system in the multi-parameter sensor integrated device, the problems of corrosion resistance, assembly compatibility, mobile positioning, and power supply of existing devices have been solved, achieving stable operation and efficient monitoring of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-26
- Publication Date
- 2026-04-10
AI Technical Summary
Existing multi-parameter sensor integrated devices have shortcomings in corrosion resistance, assembly compatibility, mobile positioning capability, heat dissipation protection and power supply, resulting in easy corrosion, decreased detection accuracy, cumbersome operation, difficulty in adapting to different scenarios and limited battery life.
Featuring a stainless steel casing with a nano-anti-corrosion coating, a standard card slot design, self-locking pulleys and grounding pins, dual power supply options (solar and lithium batteries), and a high-efficiency heat dissipation system, combined with multiple processing centers and sensor interface slots, the equipment achieves corrosion resistance, easy mobility, flexible positioning, and energy-saving power supply.
It improves the equipment's corrosion resistance and assembly efficiency, ensures stable operation in complex aquatic environments, reduces operation and maintenance costs, enhances the equipment's mobility and monitoring efficiency, and extends the equipment's service life.
Smart Images

Figure CN121829624A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of water environment monitoring technology, specifically to a multi-parameter sensor integrated device that is easy to move and locate, used to collect water quality indicators in real time and ensure long-term stable operation of the equipment. Background Technology
[0002] Water environment monitoring is a core component of water resource protection, pollution prevention and control, and ecological environment governance. Its core requirement is to achieve real-time, accurate, and multi-dimensional collection of water quality indicators, while ensuring that monitoring equipment has stable operation capabilities and flexible deployment characteristics in complex water environments (such as lakes, rivers, and nearshore sea areas).
[0003] With increasingly stringent environmental regulations and a growing demand for more refined ecological governance, the market has significantly increased its requirements for the integration, mobility, and long-term effectiveness of water environment monitoring equipment.
[0004] However, existing multi-parameter sensor integration devices still have certain technical shortcomings in practical applications: First, the overall corrosion resistance of the equipment is insufficient. The outer shell is mostly made of ordinary metal or has a single coating design, which is prone to rusting and aging when immersed in water for a long time, leading to short circuits in the internal circuits or a decrease in detection accuracy. Second, the sensor assembly compatibility is poor, the interface design lacks standardization, and the replacement and integration of different types of sensors is cumbersome, which greatly reduces monitoring efficiency. Third, the mobile positioning and fixed functions are disconnected. Most devices only have single mobile or fixed capabilities, making it difficult to adapt to the needs of rapid deployment and long-term operation in different monitoring scenarios. Fourth, the heat dissipation and protection mechanism is imperfect. The heat generated by the internal components during the operation of the equipment cannot be dissipated efficiently, and external impurities can easily enter the interior, affecting the service life of the components. Fifth, the power supply is singular, relying on external power supplies or disposable lithium batteries, with limited endurance. In scenarios without power supply, such as remote waters, it is difficult to achieve long-term continuous monitoring, resulting in high operation and maintenance costs.
[0005] In view of this, we propose a multi-parameter sensor integration device that facilitates mobile positioning. Summary of the Invention
[0006] The purpose of this invention is to provide a multi-parameter sensor integration device that facilitates mobile positioning, so as to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, the present invention provides the following technical solution: A multi-parameter sensor integrated device for easy mobile positioning includes a housing, a top cover snapped onto the top of the housing, a sealing gasket disposed between the housing and the top cover, and a detection component disposed on the housing, the detection component comprising: A suction pump is fixedly installed on the upper surface of the bottom end of the housing. A feed pipe is fixedly installed at the input end of the suction pump. A feed cylinder is fixedly installed on the feed pipe. A rectangular opening is provided at the input end of the feed cylinder. A filter screen is snapped into the inside of the feed pipe. An integrated mounting plate is fixedly installed inside the housing. An upper pipe is fixedly installed between the integrated mounting plate and the suction pump. A sensor interface slot is provided on the integrated mounting plate. A processing center is fixedly installed on the upper surface of the bottom end of the housing. A bent pipe is fixedly installed at the input end of the processing center. The bent pipe is fixedly installed on a multi-head pipe. A lower pipe is fixedly installed between the input end of the multi-head pipe and the integrated mounting plate. A discharge pipe is fixedly installed at the output end of the processing center. Both the inlet pipe and the outlet pipe penetrate the housing. Solenoid valves are provided on both the bent pipe and the outlet pipe. A lithium battery is fixedly installed inside the housing. A control panel is also fixedly installed inside the housing. A display screen and indicator lights are fixedly installed on the top of the housing.
[0008] In a further embodiment, the outer shell is made of one-piece molded stainless steel, the filter screen is made of stainless steel, the outer shell is coated with a nano-anti-corrosion coating, and the sealing gasket is made of fluororubber.
[0009] In a further embodiment, multiple sets of sensor interface slots, processing centers, bends, and discharge pipes are provided, and the processing structures and methods inside the multiple sets of processing centers are different.
[0010] In a further embodiment, each of the sensor interface slots is equipped with a U-shaped silicone sealing ring, and the sensor interface slots are designed as standard card slots to improve assembly and monitoring efficiency.
[0011] In a further embodiment, the housing is also provided with a protective component, which includes a self-locking pulley fixedly installed at the bottom of the housing, and a grounding pin is also provided on the bottom side wall of the housing.
[0012] In a further embodiment, a heat exhaust pipe is threaded into the inner sidewall of the top of the outer casing, and a filter plate is snapped into the heat exhaust pipe.
[0013] In a further embodiment, a heat dissipation plate and a retaining plate are snapped onto the inner wall of the outer casing. A cylinder is fixedly installed inside the retaining plate. An internal fan is fixedly installed inside the outer casing, facing the cylinder. A baffle is rotatably installed inside the cylinder via a coil spring. A baffle is fixedly installed inside the cylinder. Multiple sets of cylinders, baffles, and baffles are provided to better protect the device.
[0014] In a further embodiment, an energy-saving component is provided at the top of the outer casing. The energy-saving component includes an asynchronous motor, which is fixedly installed at the bottom of the top cover. A rotating drum is fixedly installed at the top of the output end of the asynchronous motor, and a mounting frame is fixedly installed on the rotating drum. A foldable solar panel is provided inside the mounting frame.
[0015] In a further embodiment, an external fan is fixedly mounted on the mounting frame, and multiple sets of external fans are provided.
[0016] In a further embodiment, the curved sidewall of the rotating cylinder has a through hole, and the foldable solar panel is connected to the lithium battery via a wire with a waterproof sleeve. The wire and the through hole are equipped with waterproof glands, which makes it more energy-efficient.
[0017] Compared with the prior art, the present invention provides a multi-parameter sensor integrated device that facilitates mobile positioning, and has the following beneficial effects: 1. This mobile, multi-parameter sensor integrated device, designed for easy positioning, improves assembly and monitoring efficiency by incorporating detection components, a housing, top cover, and sealing gaskets to enhance sealing, and a stainless steel and nano-anti-corrosion coating for significantly improved corrosion resistance. The suction pump draws material from the target location into the feed cylinder through a rectangular inlet, preventing the intake of debris such as twigs and stones. The material undergoes solid-liquid separation via a filter screen and is then transported to the integrated mounting plate through the feed pipe and upper pipe. Sensor interface slots facilitate the installation of various types of sensors (pH, dissolved oxygen, total phosphorus, total nitrogen, etc.). After passing through the sensors and being detected, the control panel analyzes the data and opens the solenoid valve on the corresponding bend, allowing the material to be transported through the lower pipe and multi-head pipe to the corresponding processing center for purification. Finally, the material is discharged through the discharge pipe, yielding compliant substances. Multiple processing centers allow for waste processing from more angles and directions, improving waste utilization. A display screen monitors data and processing parameters, while indicator lights display the device's status, such as running, stopped, or faulty. Overall, this design enhances assembly and monitoring efficiency.
[0018] 2. This multi-parameter sensor integrated device, which is easy to move and position, is designed with protective components and self-locking pulleys for easy movement. It can be used to facilitate machine relocation or for long-term installation in a specific location. Grounding pins provide good fixation. When the internal fan is activated, external airflow is drawn into the housing through the heat exhaust pipe. A filter plate prevents external impurities from entering the housing. The airflow pushes a baffle plate to rotate on the baffle frame, and after passing through the cylinder, it exits the housing through the heat dissipation plate, thus releasing the heat released during material processing and preventing internal explosions. When the device is not in operation, a coil spring causes the baffle plate to reverse and return to a vertical position on the baffle frame, preventing external impurities from entering the housing through the cylinder, thus better protecting the device.
[0019] 3. This multi-parameter sensor integrated device, which facilitates mobile positioning, incorporates energy-saving components to enhance energy efficiency. When the asynchronous motor is activated, the rotating drum drives the mounting frame to rotate, causing the foldable solar panel to rotate horizontally and receive direct sunlight for better power generation. It utilizes solar energy for charging, serving as a sustainable power source for extended machine use or providing temporary power when charging is inconvenient. The dual power supply (solar and charging) reduces the frequency of lithium battery replacements and lowers maintenance workload. An external fan further enhances heat dissipation from the foldable solar panel. Through-holes allow for better wire insertion into the rotating drum and ultimately into the outer casing, resulting in improved sealing. Overall, this device is more energy-efficient. Attached Figure Description
[0020] Figure 1 This is a first-view schematic diagram of the overall structure of the present invention; Figure 2 This is a second-view schematic diagram of the overall structure of the present invention; Figure 3 This is a third-view schematic diagram of the overall structure of the present invention; Figure 4 For the present invention Figure 3 Enlarged structural diagram of region A in the middle; Figure 5 This is a cross-sectional view of part of the structure of the present invention; Figure 6 For the present invention Figure 5 Enlarged structural diagram of region B in the middle; Figure 7 Exploded cross-section view of part of the structure of this invention Figure 1 ; Figure 8 For the present invention Figure 7 Enlarged structural diagram of region C in the middle; Figure 9 Exploded cross-section view of part of the structure of this invention Figure 2 ; Figure 10 This is a schematic cross-sectional view of the outer casing of the present invention; Figure 11 This is a cross-sectional view of the cylinder of the present invention.
[0021] Explanation of icon numbers: 1. Outer shell; 2. Top cover; 3. Sealing gasket; 4. Detection Components; 41. Suction Pump; 42. Feed Pipe; 43. Feed Cylinder; 44. Rectangular Inlet; 45. Filter Screen; 46. Integrated Mounting Plate; 47. Upper Pipe; 48. Sensor Interface Slot; 49. Processing Center; 410. Bend; 411. Multi-ended Pipe; 412. Lower Pipe; 413. Discharge Pipe; 414. Lithium Battery; 415. Control Panel; 416. Display Screen; 417. Indicator Lights; 5. Protective components; 51. Self-locking pulley; 52. Pin; 53. Heat dissipation pipe; 54. Filter plate; 55. Heat dissipation plate; 56. Clamping plate; 57. Cylinder; 58. Internal fan; 59. Baffle; 510. Baffle bracket; 6. Energy-saving components; 61. Asynchronous motor; 62. Rotary drum; 63. Mounting bracket; 64. Foldable solar panel; 65. External fan; 66. Through hole. Detailed Implementation
[0022] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0023] In this application, the term "above" indicates the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. It is primarily used to better describe this application and its embodiments, and is not intended to limit the indicated device, element, or component to having a specific orientation, or to construct and operate in a specific orientation. Furthermore, the term "above" may also be used in certain circumstances to indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application according to the specific circumstances.
[0024] Please see Figures 1-11 The present invention provides a technical solution: A multi-parameter sensor integrated device for easy mobile positioning includes a housing 1, a top cover 2 snapped onto the top of the housing 1, and a sealing gasket 3 between the housing 1 and the top cover 2. In addition, the housing 1 is made of one-piece molded stainless steel, and the exterior of the housing 1 is coated with a nano anti-corrosion coating with a thickness of 0.1-0.2mm. The sealing gasket 3 is made of fluororubber.
[0025] In one embodiment of the present invention, a detection component 4 is provided on the outer shell 1. The detection component 4 includes a suction pump 41, which is fixedly installed on the upper surface of the bottom end of the outer shell 1. An inlet pipe 42 is fixedly installed at the input end of the suction pump 41, and an inlet cylinder 43 is fixedly installed on the inlet pipe 42. A rectangular opening 44 is provided at the input end of the inlet cylinder 43. A filter screen 45 made of stainless steel is snapped into the inside of the inlet pipe 42. An integrated mounting plate 46 is fixedly installed inside the outer shell 1. An upper pipe 47 is fixedly installed between the integrated mounting plate 46 and the suction pump 41. A sensor interface slot 48 is provided on the integrated mounting plate 46. In addition, each sensor interface slot 48 is provided with a U-shaped silicone sealing ring. The sensor interface slot 48 is a standard slot design, which can replace heavy metal and chlorophyll extended sensors as needed to adapt to different freshwater lake monitoring needs and improve efficiency. For assembly and monitoring efficiency, a processing center 49 is fixedly installed on the upper surface of the bottom end of the outer casing 1. A bent pipe 410 is fixedly installed at the input end of the processing center 49. The bent pipe 410 is fixedly installed on the multi-head pipe 411. A lower pipe 412 is fixedly installed between the input end of the multi-head pipe 411 and the integrated mounting plate 46. A discharge pipe 413 is fixedly installed at the output end of the processing center 49. In addition, there are six sets of sensor interface slots 48, processing centers 49, bent pipes 410 and discharge pipes 413. The processing structures and methods inside the six sets of processing centers 49 are different. The inlet pipe 42 and the discharge pipe 413 both penetrate the outer casing 1. Solenoid valves are installed on both the bent pipe 410 and the discharge pipe 413. The lithium battery 414 is fixedly installed inside the outer casing 1. A control panel 415 is also fixedly installed inside the outer casing 1. A display screen 416 and an indicator light 417 are fixedly installed on the top of the outer casing 1.
[0026] In this embodiment, when the suction pump 41 is started, the water quality material at the target location enters the feed cylinder 43 through the rectangular opening 44. The rectangular opening 44 blocks large particles such as dead branches and stones from entering. When the material flows through the feed pipe 42, the filter screen 45 performs solid-liquid separation to remove solid impurities. The purified material is then conveyed to the integrated mounting plate 46 through the upper pipe 47. The sensor interface slot 48, through a standard slot design, is adapted to a U-shaped silicone sealing ring to install various types of sensors such as pH, dissolved oxygen, total phosphorus, and total nitrogen, completing the detection of multiple water quality parameters. The detection data is transmitted to the control panel 415. After analysis, the control panel 415 controls the solenoid valve on the corresponding bend 410 to open. The material enters the multi-head pipe 411 through the lower pipe 412 and is then diverted to the corresponding processing center 49. Multiple processing centers 49 use their different processing structures and methods to carry out targeted purification treatment on the material. The treated and qualified material is discharged through the discharge pipe 413. The solenoid valve on the discharge pipe 413 controls the timing of discharge. The display screen 416 displays the monitoring data and processing parameters in real time. The indicator light 417 provides feedback on the status of equipment operation, stoppage, faults, etc. The lithium battery 414 supplies power to all electrical components.
[0027] In one embodiment of the present invention, a protective component 5 is also provided on the outer shell 1. The protective component 5 includes a self-locking pulley 51, which is fixedly installed at the bottom of the outer shell 1. A grounding pin 52 is also provided on the bottom side wall of the outer shell 1. In addition, a heat dissipation pipe 53 is threadedly fitted inside the top side wall of the outer shell 1. A filter plate 54 is snapped into the heat dissipation pipe 53. In addition, a heat dissipation plate 55 and a retaining plate 56 are snapped into the inner wall of the outer shell 1. A cylinder 57 is fixedly installed inside the retaining plate 56. An internal fan 58 is fixedly installed inside the outer shell 1, facing the cylinder 57. A baffle 59 is rotatably installed inside the cylinder 57 via a coil spring. A baffle 510 is fixedly installed inside the cylinder 57. Three sets of cylinder 57, baffle 59 and baffle 510 are provided to better protect the device.
[0028] In this embodiment, the self-locking pulley 51 enables the overall movement of the device. After reaching the target monitoring position, the grounding pin 52 is inserted into the ground to complete the fixed positioning of the device. When the device is running, the internal fan 58 is started, and the external airflow enters the interior of the outer shell 1 through the heat exhaust pipe 53. The filter plate 54 blocks the entry of external impurities. The airflow pushes the baffle 59 to rotate on the baffle frame 510 against the force of the coil spring. After passing through the cylinder 57, the heat generated during the operation of the device is discharged through the heat dissipation plate 55 to avoid internal overheating. After the device stops working, the coil spring drives the baffle 59 to return to the vertical position in the opposite direction. Together with the baffle frame 510, the cylinder 57 is closed to prevent external impurities from entering the interior of the outer shell 1 through the cylinder 57. At the same time, the one-piece molded stainless steel material, nano anti-corrosion coating and fluororubber sealing gasket 3 of the outer shell 1 improve the corrosion resistance and sealing performance of the device, further protecting the internal components.
[0029] In one embodiment of the present invention, an energy-saving component 6 is provided at the top of the outer casing 1. The energy-saving component 6 includes an asynchronous motor 61, which is fixedly installed at the bottom of the top cover 2. A rotating drum 62 is fixedly installed at the top of the output end of the asynchronous motor 61. A mounting frame 63 is fixedly installed on the rotating drum 62. A foldable solar panel 64 is provided inside the mounting frame 63. In addition, an external fan 65 is fixedly installed on the mounting frame 63. Two sets of external fans 65 are provided. Furthermore, a through hole 66 is opened in the arc-shaped side wall of the rotating drum 62. The foldable solar panel 64 is connected to the lithium battery 414 through a wire with a waterproof sleeve. Waterproof glands are provided at the wire and the through hole 66, which is more energy-efficient.
[0030] In this embodiment, the asynchronous motor 61 is started, which drives the rotating drum 62 to rotate. The rotating drum 62 drives the mounting frame 63 to rotate synchronously, causing the foldable solar panel 64 inside the mounting frame 63 to rotate horizontally, always maintaining the angle of direct sunlight, thus improving power generation efficiency. The foldable solar panel 64 converts solar energy into electrical energy, which is transmitted to the lithium battery 414 for storage through a wire with a waterproof sleeve. The wire passes through the through hole 66 of the rotating drum 62 and enters the interior of the outer casing 1. The waterproof gland at the through hole 66 ensures sealing performance. During the operation of the device, the external fan 65 is started to dissipate heat from the foldable solar panel 64 to prevent it from overheating and affecting power generation efficiency. The foldable solar panel 64 and the lithium battery 414 form a dual power supply system, reducing the frequency of lithium battery 414 replacement and reducing maintenance workload.
[0031] All electrical components mentioned in this application are electrically connected to the control panel 415 and the lithium battery 414. The controller is a conventional and known device that controls the suction pump 41, integrated mounting plate 46, sensor interface slot 48, processing center 49, display screen 416, indicator light 417, internal fan 58, asynchronous motor 61, foldable solar panel 64, and external fan 65. The signal interaction of each component adopts the PLC control protocol commonly used in industrial equipment, which is common knowledge to those skilled in the art and can be implemented without further detailed description. The control logic and signal interaction method are existing technologies and will not be described in detail here. The standard parts used in this application can all be purchased from the market. The specific connection methods of each part are all conventional methods such as riveting and welding that are mature in the prior art. The standard parts all adopt conventional models in the prior art. The circuit connection adopts conventional connection methods in the prior art and will not be described in detail here.
[0032] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the scope of protection of the present invention.
Claims
1. A multi-parameter sensor integrated device for easy mobile positioning, comprising a housing (1), a top cover (2) snapped onto the top of the housing (1), and a sealing gasket (3) disposed between the housing (1) and the top cover (2), characterized in that: A detection component (4) is provided on the outer casing (1), and the detection component (4) includes: A suction pump (41) is fixedly installed on the upper surface of the bottom end of the housing (1). A feed pipe (42) is fixedly installed at the input end of the suction pump (41). A feed cylinder (43) is fixedly installed on the feed pipe (42). A rectangular opening (44) is provided at the input end of the feed cylinder (43). A filter screen (45) is snapped inside the feed pipe (42). An integrated mounting plate (46) is fixedly installed inside the outer shell (1). An upper pipe (47) is fixedly installed between the integrated mounting plate (46) and the suction pump (41). A sensor interface slot (48) is provided on the integrated mounting plate (46). A processing center (49) is fixedly installed on the upper surface of the bottom end of the outer shell (1). A bent pipe (410) is fixedly installed at the input end of the processing center (49). The bent pipe (410) is fixedly installed on the multi-head pipe (411). A lower pipe (412) is fixedly installed between the input end of the multi-head pipe (411) and the integrated mounting plate (46). A discharge pipe (413) is fixedly installed at the output end of the processing center (49). The feed pipe (42) and the discharge pipe (413) both penetrate the outer shell (1). Solenoid valves are provided on both the bent pipe (410) and the discharge pipe (413). A lithium battery (414) is fixedly installed inside the housing (1). A control panel (415) is also fixedly installed inside the housing (1). A display screen (416) and an indicator light (417) are fixedly installed on the top of the housing (1).
2. The multi-parameter sensor integrated device for easy mobile positioning according to claim 1, characterized in that: The outer shell (1) is made of one-piece molded stainless steel, the filter screen (45) is made of stainless steel, the outer shell (1) is coated with a nano anti-corrosion coating, and the sealing gasket (3) is made of fluororubber.
3. The multi-parameter sensor integrated device for easy mobile positioning according to claim 1, characterized in that: The sensor interface slot (48), processing center (49), bend (410) and discharge pipe (413) are provided in multiple sets, and the processing structure and method inside the multiple sets of processing centers (49) are different.
4. The multi-parameter sensor integrated device for easy mobile positioning according to claim 3, characterized in that: Each of the sensor interface slots (48) is provided with a U-shaped silicone sealing ring, and the sensor interface slots (48) are designed as standard card slots.
5. The multi-parameter sensor integrated device for easy mobile positioning according to claim 1, characterized in that: The outer casing (1) is also provided with a protective component (5), which includes a self-locking pulley (51). The self-locking pulley (51) is fixedly installed at the bottom of the outer casing (1), and a grounding pin (52) is also provided on the bottom side wall of the outer casing (1).
6. The multi-parameter sensor integrated device for easy mobile positioning according to claim 5, characterized in that: The top side wall of the outer shell (1) is threaded with a heat exhaust pipe (53), and a filter plate (54) is snapped into the heat exhaust pipe (53).
7. The multi-parameter sensor integrated device for easy mobile positioning according to claim 5, characterized in that: The inner wall of the outer shell (1) is fitted with a heat dissipation plate (55) and a clamping plate (56). A cylinder (57) is fixedly installed inside the clamping plate (56). An internal fan (58) is fixedly installed inside the outer shell (1). The internal fan (58) faces the cylinder (57). A baffle (59) is rotatably installed inside the cylinder (57) via a coil spring. A baffle (510) is fixedly installed inside the cylinder (57). Multiple sets of cylinder (57), baffle (59) and baffle (510) are provided.
8. The multi-parameter sensor integrated device for easy mobile positioning according to claim 1, characterized in that: An energy-saving component (6) is provided at the top of the outer shell (1). The energy-saving component (6) includes an asynchronous motor (61). The asynchronous motor (61) is fixedly installed at the bottom of the top cover (2). A rotating drum (62) is fixedly installed at the top of the output end of the asynchronous motor (61). A mounting frame (63) is fixedly installed on the rotating drum (62). A foldable solar panel (64) is provided inside the mounting frame (63).
9. The multi-parameter sensor integrated device for easy mobile positioning according to claim 8, characterized in that: An external fan (65) is fixedly installed on the mounting bracket (63), and multiple sets of the external fan (65) are provided.
10. The multi-parameter sensor integrated device for easy mobile positioning according to claim 8, characterized in that: The rotating cylinder (62) has a through hole (66) on its arc-shaped sidewall. The foldable solar panel (64) is connected to the lithium battery (414) by a wire with a waterproof sleeve. Waterproof glands are provided at the wire and the through hole (66).