Intelligent monitoring platform for middle-deep layer interference-free geothermal heat supply system
By using a wirelessly connected host and slave system, combined with infrared temperature sensors, crawling components, and environmental protection measures, the problems of monitoring accuracy and lifespan of medium-deep geothermal heating systems have been solved, achieving high-precision real-time monitoring and equipment protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2026-04-10
AI Technical Summary
Existing monitoring methods for medium-deep geothermal heating systems suffer from poor measurement data accuracy, inconvenient operation, and easy damage to electronic components, especially in high-temperature and high-humidity environments where their service life is limited.
The system uses a wireless connection between the main unit and the sub-unit. The sub-unit has a built-in infrared temperature sensor and a crawling component. The turntable and crawling component are driven by a motor to move inside the pipe. Combined with wireless data transmission and real-time monitoring, it is equipped with a fan and heating lamp for cooling and protection. The counterweight can adjust the speed to achieve accurate measurement and protection.
It achieves high-precision real-time monitoring, reduces data transmission latency, and improves the service life and measurement accuracy of the equipment in high-temperature and high-humidity environments.
Smart Images

Figure CN224108288U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the field of geothermal monitoring, specifically relates to a middle -deep layer non -interference geothermal heating system wisdom monitoring platform. BACKGROUND
[0002] Geothermal energy is the renewable energy that is derived from the molten magma and the decay of radioactive substances and exists in the form of heat, and at present, the middle -deep layer non -interference geothermal utilization mainly is indirect heating of heat exchange unit.
[0003] Since the factors influencing geothermal energy are more, such as seasonal change and geological change, the heating efficiency of geothermal energy is influenced, therefore, the temperature change in the heat exchange pipeline needs to be monitored, the existing monitoring mode usually adopts the method that the sensor is placed into the pipeline by pulling rope, the placing speed is unstable, the measurement data precision is poor, and the data can be read only after measurement, the operation is more troublesome, and the downhole environment is more complex, especially the high temperature and high humidity environment causes damage to electronic components, thereby influencing the service life.
[0004] Therefore, we propose a middle -deep layer non -interference geothermal heating system wisdom monitoring platform. CONTENT OF THE UTILITY MODEL
[0005] The utility model provides a middle -deep layer non -interference geothermal heating system wisdom monitoring platform to solve the technical problem in the above background art.
[0006] In order to solve the above technical problem, the utility model provides a middle -deep layer non -interference geothermal heating system wisdom monitoring platform, which comprises a host computer, a slave computer, a detection system and an alarm system, the host computer and the slave computer are wirelessly connected, the host computer and the slave computer are provided with storage batteries, the detection system comprises a base, the base is fixedly installed on the top of the slave computer, the base is internally provided with a motor, the motor is electrically connected with the storage battery, a turntable is fixedly installed at the output end of the motor, an infrared temperature sensor is fixedly installed on the side wall of the turntable, the infrared temperature sensor is electrically connected with the storage battery, two infrared temperature sensors are symmetrically arranged, the slave computer is placed in a heating well, and crawling components are fixedly installed on the two sides of the slave computer.
[0007] Preferably, the slave computer comprises a shell, a heat dissipation opening is formed in the top, a fan is fixedly installed in the heat dissipation hole, the fan is electrically connected with an external power supply, and a dust filter screen is fixedly installed at the bottom of the fan.
[0008] Preferably, a humidity sensor is fixedly installed in the shell, the humidity sensor is electrically connected with the storage battery, two temperature sensors are symmetrically arranged, a heating lamp is fixedly installed on the inner wall of the shell, and the heating lamp is electrically connected with the storage battery.
[0009] Preferably, the shell side wall is fixedly provided with a hanging ring, the hanging ring is C-shaped, and two hanging rings are symmetrically arranged along the center line of the shell.
[0010] Preferably, the crawling assembly comprises telescopic rods, the telescopic rods are fixedly arranged outside the shell, two telescopic rods are symmetrically arranged, the output ends of the two telescopic rods are fixedly provided with convex rings, the top of each convex ring is rotatably provided with a roller, and a plurality of rollers are equidistantly arranged.
[0011] Preferably, the telescopic rod comprises an outer tube, an inner tube, a buffer spring and a limiting block, the outer tube is fixedly arranged outside the shell, the limiting block is slidably arranged in the outer tube, the top of the limiting block is fixedly provided with the inner tube, and the inner tube and the outer tube are slidably connected.
[0012] Preferably, the inner part of the outer tube is provided with the buffer spring, the buffer spring is sleeved on the inner tube, one end of the buffer spring is fixedly connected with the limiting block, and the other end of the buffer spring is fixedly connected with the inner wall of the outer tube.
[0013] Preferably, the bottom of the shell is fixedly provided with a counterweight seat, the counterweight seat is provided with a clamping groove, a plurality of clamping grooves are equidistantly arranged, the clamping groove is provided with a counterweight block, and the counterweight block is clamped in the clamping groove.
[0014] Preferably, the alarm system comprises a warning light and a loudspeaker, the warning light and the loudspeaker are respectively fixedly arranged outside the host computer, and the warning light and the loudspeaker are electrically connected with the storage battery.
[0015] Compared with the prior art, the utility model has the following advantages:
[0016] 1. The intelligent monitoring platform of the middle-deep non-interference geothermal heat supply system, in the detection process, by starting the motor circuit, the motor drives the rotating disc to rotate, the rotating disc side wall is provided with symmetrical infrared temperature sensor, the infrared sensor can fully monitor the inner wall of the pipeline, the result is more accurate, and the slave machine and the host computer are connected wirelessly, the measurement data can be transmitted in real time, and the heat exchange condition can be grasped in time.
[0017] 2. The intelligent monitoring platform of the middle-deep non-interference geothermal heat supply system, by setting the crawling assembly, when in use, the inner tube is pressed, the inner tube pushes the limiting block to slide in the outer tube, thereby stretching the buffer spring, the slave machine is placed in the heat exchange pipeline, the top of the convex ring is provided with a plurality of equidistantly arranged rollers, the slave machine can be driven to slide along the inner wall of the pipeline, the bottom of the slave machine is provided with a counterweight seat, the speed of the slave machine descending can be adjusted by adjusting the counterweight block in the counterweight seat, and therefore the infrared temperature sensor measurement is more accurate.
[0018] 3. The utility model discloses a kind of wisdom monitoring platform of middle-deep layer non-interference geothermal heat supply system, multiple fans are equipped in the top of submachine, fan can accelerate the air flow speed in shell, can be cooled to shell, because humidity sensor is equipped in shell, when the humidity sensor in shell monitors that its internal humidity is too high, heating lamp in shell starts, to quickly reduce the moderation in shell, avoid internal electronic component to cause corrosion, improve overall service life. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is system structure diagram of the utility model one kind of wisdom monitoring platform of middle-deep layer non-interference geothermal heat supply system;
[0020] Figure 2 It is the structure diagram of main machine in the utility model one kind of wisdom monitoring platform of middle-deep layer non-interference geothermal heat supply system;
[0021] Figure 3 It is the structure diagram of submachine in the utility model one kind of wisdom monitoring platform of middle-deep layer non-interference geothermal heat supply system;
[0022] Figure 4 It is the structure diagram of telescopic link in the utility model one kind of wisdom monitoring platform of middle-deep layer non-interference geothermal heat supply system;
[0023] Figure 5 It is the sectional structure diagram of submachine in the utility model one kind of wisdom monitoring platform of middle-deep layer non-interference geothermal heat supply system;
[0024] Marked number in drawing: 1, main machine;2, submachine;3, detection system;4, alarm system;5, loudspeaker;6, alarm light;7, shell;8, fan;9, base;10, motor;11, carousel;12, infrared temperature sensor;13, telescopic link;14, roller;15, convex ring;16, hanging ring;17, counterweight;18, counterweight seat;19, inner tube;20, outer tube;21, limit block;22, buffer spring;23, dust filter screen;24, heating lamp;25, humidity sensor. DETAILED DESCRIPTION
[0025] The utility model is further described below in combination with specific implementation. Among them, the drawing is only for example description, show only is schematic diagram, and cannot be understood as the limitation of this patent;In order to better illustrate the embodiment of the utility model, some components of drawing can be omitted, enlarged or reduced, and do not represent the size of actual product;For those skilled in the art, it can be understood that some well-known structures in the drawing and their description can be omitted.
[0026] The same or similar reference signs in the drawings of the embodiments of the present application correspond to the same or similar components; in the description of the present application, it should be understood that, if the orientations or positional relationships indicated by the terms "upper", "lower", "left", "right" and the like are based on the orientations or positional relationships shown in the drawings, they are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed in a particular orientation and be operated, therefore, the terms describing the positional relationships in the drawings are only used for exemplary illustration, and cannot be understood as a limitation on the present patent, and for those skilled in the art, the specific meanings of the above terms can be understood according to the specific circumstances.
[0027] Please refer to Figures 1-5 The utility model provides a technical scheme: a kind of middle deep layer interference-free geothermal heat supply system wisdom monitoring platform, including host computer 1, submachine 2, detection system 3 and alarm system 4, host computer 1 and submachine 2 are wirelessly connected, host computer 1 and submachine 2 are equipped with battery, detection system 3 includes base 9, submachine 2 top fixed mounting base 9, base 9 is built-in motor 10, motor 10 is electrically connected battery, motor 10 output end fixed mounting carousel 11, carousel 11 side wall fixed mounting infrared temperature sensor 12, infrared temperature sensor 12 is electrically connected battery, infrared temperature sensor 12 is equipped with two symmetrically, submachine 2 is placed in heat supply well, submachine 2 both sides fixed mounting crawling component.
[0028] Further, the submachine 2 includes a housing 7, a top opening is provided with a heat dissipation port, a fan 8 is fixedly installed in the heat dissipation hole, the fan 8 is electrically connected to the external power supply, and the fan 8 is fixedly installed with a dust filter screen 23 at the bottom.
[0029] In the present embodiment, the top of the submachine 2 is provided with a plurality of fans 8, which can accelerate the air flow speed in the housing 7, and can cool the housing 7. The fan 8 and the inner wall of the housing 7 are provided with a dust filter screen 23, which can prevent external particulate matter from entering the housing 7.
[0030] Further, a humidity sensor 25 is fixedly installed in the housing 7, the humidity sensor 25 is electrically connected to the battery, and the temperature sensor is symmetrically provided with two, the heating lamp 24 is fixedly installed on the inner wall of the housing 7, and the heating lamp 24 is electrically connected to the battery.
[0031] In the present embodiment, since the humidity sensor 25 is arranged in the housing 7, when the humidity sensor 25 in the housing 7 monitors that the humidity inside is too high, the heating lamp 24 in the housing 7 is started, so as to quickly reduce the humidity in the housing 7, avoid corrosion of internal electronic components, and improve the overall service life.
[0032] Further, a hanging ring 16 is fixedly installed on the side wall of the housing 7, the hanging ring 16 is C-shaped, the hanging ring 16 is provided with two, and the two hanging rings 16 are symmetrically arranged along the center line of the housing 7.
[0033] In the embodiment, by setting the hanging ring 16, the sub-machine 2 is convenient to be taken back after the monitoring is finished.
[0034] Further, the crawling assembly comprises telescopic rods 13, the telescopic rods 13 are fixedly installed outside the shell 7, the telescopic rods 13 are symmetrically provided with two, the output ends of the two telescopic rods 13 are fixedly installed with convex rings 15, the convex rings 15 are rotatably installed with roller wheels 14 at the top, the roller wheels 14 are provided with a plurality of, and the plurality of roller wheels 14 are equidistantly arranged.
[0035] Further, the telescopic rod 13 comprises an outer tube 20, an inner tube 19, a buffer spring 22 and a limiting block 21, the outer tube 20 is fixedly installed outside the shell 7, the limiting block 21 is slidably installed in the outer tube 20, the inner tube 19 is fixedly installed at the top of the limiting block 21, the inner tube 19 and the outer tube 20 are slidably connected, the buffer spring 22 is arranged in the inner tube 19, that is, one end of the buffer spring 22 is fixedly connected with the limiting block 21, and the other end of the buffer spring 22 is fixedly connected with the inner wall of the outer tube 20.
[0036] In the embodiment, in use, the inner tube 19 is pressed, the inner tube 19 pushes the limiting block 21 to slide in the outer tube 20, so that the buffer spring 22 is stretched, the sub-machine 2 is placed in the heat exchange pipeline, the convex ring 15 is provided with a plurality of equidistantly arranged roller wheels 14 at the top, and the roller wheels 14 can drive the sub-machine 2 to slide along the inner wall of the pipeline.
[0037] Further, the shell 7 is fixedly installed with a counterweight seat 18 at the bottom, a clamping groove is arranged in the counterweight seat 18, a plurality of clamping grooves are equidistantly arranged, a counterweight block 17 is arranged in the clamping groove, and the counterweight block 17 is clamped with the clamping groove.
[0038] In the embodiment, the sub-machine 2 is provided with the counterweight seat 18 at the bottom, the speed of the sub-machine 2 descending can be adjusted by adjusting the counterweight block 17 in the counterweight seat 18, so that the infrared temperature sensor 12 can measure more accurately.
[0039] Further, the alarm system 4 comprises a warning light 6 and a loudspeaker 5, the warning light 6 and the loudspeaker 5 are fixedly installed outside the main machine 1 respectively, and the warning light 6 and the loudspeaker 5 are electrically connected with the storage battery.
[0040] In the embodiment, when the temperature in the heat exchange pipeline is abnormal, the sub-machine 2 transmits a signal to the main machine 1, the main machine 1 starts the warning light 6 and the loudspeaker 5 to sound and light alarm, so that the monitoring personnel can timely make a maneuvering treatment.
[0041] Working principle:
[0042] The pull rope is hung on the hanging ring 16, in use, the inner tube 19 is pressed, the inner tube 19 pushes the limiting block 21 to slide in the outer tube 20, the buffer spring 22 is stretched, the sub-machine 2 is placed in the heat exchange pipeline, the convex ring 15 top is equipped with a plurality of equidistantly arranged roller wheels 14, the roller wheels 14 can drive the sub-machine 2 to slide along the inner wall of the pipeline, in the detection process, the motor 10 circuit is started, the motor 10 drives the rotating disc 11 to rotate, the rotating disc 11 side wall is equipped with symmetrical infrared temperature sensor 12, the infrared sensor can fully monitor the inner wall of the pipeline, so that the result is more accurate, and the wireless connection between the sub-machine 2 and the main machine 1 can be used Real-time transmission of measurement data facilitates timely control of heat exchange, by setting the crawling assembly, in use, the inner tube 19 is pressed, the inner tube 19 pushes the limiting block 21 to slide in the outer tube 20, so that the buffer spring 22 is stretched, the sub-machine 2 is placed in the heat exchange pipeline, the convex ring 15 top is equipped with a plurality of equidistantly arranged roller wheels 14, the roller wheels 14 can drive the sub-machine 2 to slide along the inner wall of the pipeline, the sub-machine 2 bottom is equipped with a counterweight seat 18, by adjusting the counterweight block 17 in the counterweight seat 18, the speed of the sub-machine 2 descending can be adjusted, so that the infrared temperature sensor 12 measurement is more accurate, the sub-machine 2 top is equipped with a plurality of fans 8, the fans 8 can speed up the air flow speed in the shell 7, and the shell 7 can be cooled, since the shell 7 is equipped with a humidity sensor 25, when the humidity sensor 25 in the shell 7 monitors that the internal humidity is too high, the heating lamp 24 in the shell 7 is started, so that the humidity in the shell 7 is quickly reduced, avoiding the corrosion of internal electronic elements, improving the overall service life.
[0043] Obviously, the above embodiments of the utility model are only examples for clearly illustrating the utility model, and are not the limitation of the embodiments of the utility model. For ordinary skilled in the art, on the basis of the above description, other different forms of changes or changes can be made. Here, it is not necessary and cannot be exhausted. Any modification, equivalent replacement and improvement, etc. within the spirit and principles of the utility model should be included in the protection scope of the utility model claims.
Claims
1. A medium-deep non-interference geothermal heat supply system intelligent monitoring platform, comprising a host computer (1), a sub-computer (2), a detection system (3) and an alarm system (4), characterized in that: The host (1) and the submachine (2) are wirelessly connected, the host (1) and the submachine (2) are provided with batteries, the detection system (3) comprises a base (9), the submachine (2) is fixedly installed with the base (9) on the top, the base (9) is internally provided with a motor (10), the motor (10) is electrically connected with the battery, the output end of the motor (10) is fixedly installed with a rotating disc (11), the side wall of the rotating disc (11) is fixedly installed with an infrared temperature sensor (12), the infrared temperature sensor (12) is electrically connected with the battery, the infrared temperature sensor (12) is symmetrically provided with two, the submachine (2) is placed in a heat supply well, and crawling assemblies are fixedly installed on the two sides of the submachine (2).
2. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 1, characterized in that, The submachine (2) comprises a shell (7), a heat dissipation opening is formed in the top of the shell (7), a fan (8) is fixedly installed in the heat dissipation opening, the fan (8) is electrically connected with an external power supply, and the fan (8) is fixedly installed with a dust filter screen (23) on the bottom.
3. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 2, characterized in that, A humidity sensor (25) is fixedly installed inside the shell (7), the humidity sensor (25) is electrically connected with the battery, the temperature sensor is symmetrically provided with two, a heating lamp (24) is fixedly installed on the inner wall of the shell (7), and the heating lamp (24) is electrically connected with the battery.
4. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 2, characterized in that, A hanging ring (16) is fixedly installed on the side wall of the shell (7), the hanging ring (16) is in a C-shaped type, the hanging ring (16) is provided with two, and the two hanging rings (16) are symmetrically arranged along the center line of the shell (7).
5. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 2, characterized in that, The crawling assembly comprises telescopic rods (13), the telescopic rods (13) are fixedly installed outside the shell (7), the telescopic rods (13) are symmetrically provided with two, the output ends of the two telescopic rods (13) are fixedly installed with convex rings (15), the convex rings (15) are rotatably installed with roller wheels (14) on the top, the roller wheels (14) are provided with a plurality of, and the plurality of roller wheels (14) are equidistantly arranged.
6. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 5, characterized in that, The telescopic rod (13) comprises an outer tube (20), an inner tube (19), a buffer spring (22) and a limiting block (21), the outer tube (20) is fixedly installed outside the shell (7), the limiting block (21) is slidably installed in the outer tube (20), the inner tube (19) is fixedly installed on the top of the limiting block (21), and the inner tube (19) and the outer tube (20) are slidably connected.
7. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 6, characterized in that, The inner part of the outer tube (20) is provided with a buffer spring (22), the buffer spring (22) is sleeved on the inner tube (19), that is, one end of the buffer spring (22) is fixedly connected with the limiting block (21), and the other end of the buffer spring (22) is fixedly connected with the inner wall of the outer tube (20).
8. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 2, characterized in that, A counterweight base (18) is fixedly installed on the bottom of the shell (7), a clamping groove is formed in the counterweight base (18), the clamping groove is provided with a plurality of, the plurality of clamping grooves are equidistantly arranged, a counterweight block (17) is arranged in the clamping groove, and the counterweight block (17) is clamped with the clamping groove.
9. The intelligent monitoring platform for a deep non-interference geothermal heat supply system according to claim 1, characterized in that, The alarm system (4) comprises a warning light (6) and a loudspeaker (5), the warning light (6) and the loudspeaker (5) are fixedly installed outside the host (1) respectively, and the warning light (6) and the loudspeaker (5) are electrically connected with the battery.