Intelligent adjusting system based on online monitoring sensor

By introducing multi-stage temperature detection and timing self-locking control into the intelligent temperature regulation system, the problem that existing systems cannot make judgments in advance and cool down in time is solved, and more efficient temperature regulation and equipment protection are achieved.

CN223022594UActive Publication Date: 2025-06-24SHENZHEN SHENGSHIJINGXING INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202422141095.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-06-24
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

The existing intelligent temperature regulation system cannot determine in advance whether there will be overtemperature conditions, resulting in the inability to cool down in time when the temperature rise rate is too fast.

Method used

An intelligent adjustment system based on online monitoring sensors is designed, and multi-stage temperature detection is performed through the over-temperature judgment module, the first temperature detection module and the second temperature detection module, and timing and self-locking control are realized through the power control module, the timing control module and the signal processing module to ensure that the heat dissipation work can be started before the temperature reaches the preset threshold.

Benefits of technology

Improve the heat dissipation effect, ensuring that the temperature can be cooled down in time when the temperature rises, and avoid equipment damage or other problems caused by overtemperature.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an intelligent adjusting system based on an on-line monitoring sensor, which relates to the technical field of temperature adjustment, and comprises a power supply module used for supplying power; the over-temperature judgment module is used for temperature detection and over-temperature judgment and controlling the heat dissipation module to dissipate heat when the temperature is over-high; the first temperature detection module is used for performing primary temperature detection; the second temperature detection module is used for secondary temperature detection; the power supply control module is used for transmitting electric energy when the temperature is in a set primary temperature state; the timing control module is used for setting timing time and outputting signals regularly; and the signal processing module is used for controlling the heat dissipation module to dissipate heat when receiving the timing control module and the second temperature detection module at the same time. According to the intelligent adjusting system based on the on-line monitoring sensor, heat dissipation work can be carried out in advance when the temperature change rate is higher than a set rate range, and the heat dissipation effect is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of temperature regulation, and specifically relates to an intelligent regulation system based on an on-line monitoring sensor. Background Art

[0002] An on-line monitoring sensor is a device used for real-time detection and measurement of specific physical quantities. Common on-line monitoring sensors include temperature sensors, etc. In an intelligent temperature regulation system, a temperature sensor is generally used for temperature detection work, converting temperature information into an electrical signal, and by judging the magnitude relationship between the electrical signal and a set over-temperature threshold, it is determined whether the detected object is over-temperature. When over-temperature occurs, the heat dissipation device is controlled to perform heat dissipation work to regulate the temperature of the measured object. However, in the existing intelligent temperature regulation systems, generally only when the detected temperature exceeds the set over-temperature threshold can heat dissipation work be carried out, and it is impossible to judge in advance whether over-temperature will occur, resulting in the inability to perform cooling treatment in time when the heating rate is too fast. Therefore, it needs to be improved. Content of the Utility Model

[0003] The embodiment of the utility model provides an intelligent regulation system based on an on-line monitoring sensor to solve the problems proposed in the above background art.

[0004] To achieve the above object, the utility model provides the following technical solutions:

[0005] An intelligent regulation system based on an on-line monitoring sensor, comprising: a power supply module, an over-temperature judgment module, a first temperature detection module, a second temperature detection module, a power supply control module, a timing control module, a signal processing module, and a heat dissipation module;

[0006] The power supply module is used to provide DC electric energy;

[0007] The over-temperature judgment module is connected to the power supply module, used for temperature detection and outputting a temperature signal, setting an over-temperature threshold, and outputting a first control signal when the temperature signal is greater than the over-temperature threshold;

[0008] The first temperature detection module is connected to the over-temperature judgment module, used for voltage drop processing of the over-temperature threshold and outputting a first temperature threshold, and outputting a second control signal when the temperature signal is greater than the first temperature threshold;

[0009] The second temperature detection module is connected to the first temperature detection module, used for voltage drop processing of the first temperature threshold and outputting a second temperature threshold, and outputting a third control signal when the temperature signal is greater than the second temperature threshold;

[0010] The power supply control module is connected to the power supply module and the first temperature detection module, used for receiving the third control signal and transmitting DC electric energy to the timing control module;

[0011] A timing control module, connected to the power control module, is configured to set a timing time and output a first level signal at a fixed time when receiving the electric energy transmitted by the power control module, and stop outputting the first level signal after the timing ends;

[0012] A signal processing module, connected to the timing control module and the second temperature detection module, is configured to self-lock and output a fourth control signal when receiving the first level signal and the second control signal simultaneously, and stop the signal self-locking operation when the second control signal is no longer received;

[0013] A heat dissipation module, connected to the power module, the signal processing module and the over-temperature judgment module, is configured to receive the first control signal and the fourth control signal and perform heat dissipation work.

[0014] As a further solution of the present invention: The power module includes a battery pack and a first capacitor; the over-temperature judgment module includes a first thermistor, a first resistor, a third resistor, a second resistor, a first comparator and a fourth resistor;

[0015] Preferably, the first end of the battery pack is connected to the first end of the first thermistor and the first end of the third resistor and is connected to the second end of the battery pack and the ground terminal through the first capacitor. The second end of the first thermistor is connected to the non-inverting terminal of the first comparator and is grounded through the first resistor. The second end of the third resistor is connected to the inverting terminal of the first comparator and is grounded through the second resistor. The output terminal of the first comparator is connected to the first end of the fourth resistor, and the second end of the fourth resistor is connected to the heat dissipation module.

[0016] As a further solution of the present invention: The first temperature detection module includes a first diode, a third comparator and a sixth resistor;

[0017] Preferably, the anode of the first diode is connected to the second end of the third resistor, the cathode of the first diode is connected to the non-inverting terminal of the third comparator, the inverting terminal of the third comparator is connected to the second end of the first thermistor, the output terminal of the third comparator is connected to the first end of the sixth resistor, and the second end of the sixth resistor is connected to the signal processing module.

[0018] As a further solution of the present invention: The second temperature detection module includes a second diode, a second comparator and a fifth resistor;

[0019] Preferably, the anode of the second diode is connected to the cathode of the first diode, the cathode of the second diode is connected to the non-inverting terminal of the second comparator, the inverting terminal of the second comparator is connected to the second end of the first thermistor, the output terminal of the second comparator is connected to the first end of the fifth resistor, and the second end of the fifth resistor is connected to the power control module.

[0020] As a further solution of the utility model: The power control module includes a seventh resistor, a first power transistor and a second switching transistor;

[0021] Preferably, the source of the first power transistor is connected to the first end of the battery pack and is connected to the gate of the first power transistor and the collector of the second switching transistor through the seventh resistor. The emitter of the second switching transistor is grounded. The base of the second switching transistor is connected to the second end of the fifth resistor. The drain of the first power transistor is connected to the timing control module.

[0022] As a further solution of the utility model: The timing control module includes a fifth diode, a ninth resistor, a second capacitor, a first timer and a third capacitor;

[0023] Preferably, the cathode of the fifth diode is connected to one end of the ninth resistor, the drain of the first power transistor, the fourth terminal and the eighth terminal of the first timer. The anode of the fifth diode is connected to the other end of the ninth resistor, the second terminal and the sixth terminal of the first timer and is grounded through the second capacitor. The first terminal of the first timer is grounded. The fifth terminal of the first timer is grounded through the third capacitor. The third terminal of the first timer is connected to the signal processing module.

[0024] As a further solution of the utility model: The signal processing module includes a third diode, an eighth resistor, a fourth diode and a first logic chip;

[0025] Preferably, the anode of the third diode is connected to the third terminal of the first timer. The cathode of the third diode is connected to the cathode of the fourth diode and the A terminal of the first logic chip. The B terminal of the first logic chip is connected to the second end of the sixth resistor. The F terminal of the first logic chip is connected to the anode of the fourth diode and the first end of the eighth resistor. The second end of the eighth resistor is connected to the heat dissipation module.

[0026] As a further solution of the utility model: The heat dissipation module includes a first switching transistor and a radiator;

[0027] Preferably, the base of the first switching transistor is connected to the second end of the fourth resistor and the second end of the eighth resistor. The emitter of the first switching transistor is grounded. The collector of the first switching transistor is connected to one end of the radiator. The other end of the radiator is connected to the first end of the battery pack.

[0028] Compared with the prior art, the beneficial effects of the present utility model are as follows: The intelligent adjustment system based on the online monitoring sensor of the present utility model performs over-temperature judgment by the over-temperature judgment module, and performs secondary temperature detection and primary temperature detection by the second temperature detection module and the first temperature detection module respectively. When the temperature is in the set primary temperature state, the control power supply module provides electric energy for the timing control module, so that the timing control module starts timing work. And within the timing time, if the temperature does not reach the set secondary temperature state, it will normally control the heat dissipation module to dissipate heat when over-temperature occurs. If the temperature reaches the set secondary temperature state within the timing time, the signal processing module will perform signal self-locking and control the heat dissipation module to perform heat dissipation work in advance, improving the heat dissipation effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for the description of the embodiments of the present utility model. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0030] Figure 1 It is a schematic block diagram of the principle of an intelligent adjustment system based on an online monitoring sensor provided by an example of the present utility model.

[0031] Figure 2 It is a circuit diagram of an intelligent adjustment system based on an online monitoring sensor provided by an example of the present utility model.

[0032] Figure 3 It is a connection circuit diagram of the timing control module provided by an example of the present utility model. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0034] In one embodiment, please refer to Figure 1 , an intelligent adjustment system based on an online monitoring sensor, including: a power supply module 1, an over-temperature judgment module 2, a first temperature detection module 3, a second temperature detection module 4, a power control module 5, a timing control module 6, a signal processing module 7, and a heat dissipation module 8;

[0035] Specifically, the power supply module 1 is used to provide DC electric energy;

[0036] An over-temperature judgment module 2, connected to the power supply module 1, is used for temperature detection and outputting a temperature signal, for setting an over-temperature threshold and outputting a first control signal when the temperature signal is greater than the over-temperature threshold;

[0037] A first temperature detection module 3, connected to the over-temperature judgment module 2, is used for performing voltage drop processing on the over-temperature threshold and outputting a first temperature threshold, and for outputting a second control signal when the temperature signal is greater than the first temperature threshold;

[0038] A second temperature detection module 4, connected to the first temperature detection module 3, is used for performing voltage drop processing on the first temperature threshold and outputting a second temperature threshold, and for outputting a third control signal when the temperature signal is greater than the second temperature threshold;

[0039] A power supply control module 5, connected to the power supply module 1 and the first temperature detection module 3, is used for receiving the third control signal and transmitting DC electric energy to the timing control module 6;

[0040] A timing control module 6, connected to the power supply control module 5, is used for setting a timing time and outputting a first level signal at regular intervals when receiving the electric energy transmitted by the power supply control module 5, and stopping outputting the first level signal after the timing ends;

[0041] A signal processing module 7, connected to the timing control module 6 and the second temperature detection module 4, is used for self-locking and outputting a fourth control signal when receiving the first level signal and the second control signal simultaneously, and stopping the signal self-locking operation when the second control signal is no longer received;

[0042] A heat dissipation module 8, connected to the power supply module 1, the signal processing module 7 and the over-temperature judgment module 2, is used for receiving the first control signal and the fourth control signal and performing heat dissipation work.

[0043] In a specific embodiment, the above-mentioned power supply module 1 can adopt a power supply circuit composed of a battery pack and a capacitor to provide DC electrical energy; the above-mentioned over-temperature judgment module 2 can adopt an over-temperature judgment circuit composed of a thermistor, a resistor and a comparator, which can perform temperature detection, set a temperature threshold and compare the voltage magnitude of the temperature threshold and the detected temperature signal; the above-mentioned first temperature detection module 3 can adopt a first temperature detection circuit composed of a diode and a comparator, which can perform a voltage drop process on the temperature threshold set by the over-temperature judgment module 2 to set a first temperature threshold and compare the voltage magnitude of the first temperature threshold and the detected temperature signal; the above-mentioned second temperature detection module 4 can adopt a second temperature detection circuit composed of a diode and a comparator, which can perform a voltage drop process on the first temperature threshold to set a second temperature threshold and compare the voltage magnitude of the second temperature threshold and the detected temperature signal; the above-mentioned power supply control module 5 can adopt a power supply control circuit composed of a power tube, a triode, etc. to control the transmission state of electrical energy; the above-mentioned timing control module 6 can adopt a timing control circuit composed of a resistor, a diode, a timer, etc., which can set a timing time and output a first level signal with a high level state when powered on; the above-mentioned signal processing module 7 can adopt a signal processing circuit composed of a logic chip, a diode and a resistor, which can perform a self-locking process on the signals with a high level state output by the timing control module 6 and the second temperature detection module 4 at the same time; the above-mentioned heat dissipation module 8 can adopt a heat dissipation circuit composed of a radiator M1 and a triode to perform heat dissipation work.

[0044] In another embodiment, please refer to Figure 1 , Figure 2 and Figure 3 , the power supply module 1 includes a battery pack and a first capacitor C1; the over-temperature judgment module 2 includes a first thermistor NTC, a first resistor R1, a third resistor R3, a second resistor R2, a first comparator A1 and a fourth resistor R4;

[0045] Specifically, the first end of the battery pack is connected to the first end of the first thermistor NTC and the first end of the third resistor R3 and is connected to the second end of the battery pack and the ground end through the first capacitor C1. The second end of the first thermistor NTC is connected to the non-inverting input terminal of the first comparator A1 and is grounded through the first resistor R1. The second end of the third resistor R3 is connected to the inverting input terminal of the first comparator A1 and is grounded through the second resistor R2. The output terminal of the first comparator A1 is connected to the first end of the fourth resistor R4, and the second end of the fourth resistor R4 is connected to the heat dissipation module 8.

[0046] In a specific embodiment, the above-mentioned first thermistor NTC can be a negative temperature coefficient thermistor; the above-mentioned third resistor R3 and the second resistor R2 set the over-temperature threshold; the above-mentioned first comparator A1 can be an LM358 comparator.

[0047] Further, the first temperature detection module 3 includes a first diode D1, a third comparator A3, and a sixth resistor R6;

[0048] Specifically, the anode of the first diode D1 is connected to the second end of the third resistor R3, the cathode of the first diode D1 is connected to the inverting terminal of the third comparator A3, the non-inverting terminal of the third comparator A3 is connected to the second end of the first thermistor NTC, the output terminal of the third comparator A3 is connected to the first end of the sixth resistor R6, and the second end of the sixth resistor R6 is connected to the signal processing module 7.

[0049] In a specific embodiment, the above-mentioned first diode D1 performs a voltage drop processing; the above-mentioned third comparator A3 can be an LM358 comparator.

[0050] Further, the second temperature detection module 4 includes a second diode D2, a second comparator A2, and a fifth resistor R5;

[0051] Specifically, the anode of the second diode D2 is connected to the cathode of the first diode D1, the cathode of the second diode D2 is connected to the inverting terminal of the second comparator A2, the non-inverting terminal of the second comparator A2 is connected to the second end of the first thermistor NTC, the output terminal of the second comparator A2 is connected to the first end of the fifth resistor R5, and the second end of the fifth resistor R5 is connected to the power supply control module 5.

[0052] In a specific embodiment, the above-mentioned second diode D2 performs a voltage drop processing; the above-mentioned second comparator A2 can be an LM358 comparator.

[0053] Further, the power supply control module 5 includes a seventh resistor R7, a first power transistor Q1, and a second switching transistor VT2;

[0054] Specifically, the source of the first power transistor Q1 is connected to the first end of the battery pack and is connected to the gate of the first power transistor Q1 and the collector of the second switching transistor VT2 through the seventh resistor R7, the emitter of the second switching transistor VT2 is grounded, the base of the second switching transistor VT2 is connected to the second end of the fifth resistor R5, and the drain of the first power transistor Q1 is connected to the timing control module 6.

[0055] In a specific embodiment, the above-mentioned first power transistor Q1 can be a P-channel field effect transistor; the above-mentioned second switching transistor VT2 can be an NPN type triode.

[0056] Further, the timing control module 6 includes a fifth diode D5, a ninth resistor R9, a second capacitor C2, a first timer IC1, and a third capacitor C3;

[0057] Specifically, the cathode of the fifth diode D5 is connected to one end of the ninth resistor R9, the drain of the first power transistor Q1, the fourth terminal and the eighth terminal of the first timer IC1. The anode of the fifth diode D5 is connected to the other end of the ninth resistor R9, the second terminal and the sixth terminal of the first timer IC1 and grounded through the second capacitor C2. The first terminal of the first timer IC1 is grounded. The fifth terminal of the first timer IC1 is grounded through the third capacitor C3. The third terminal of the first timer IC1 is connected to the signal processing module 7.

[0058] In a specific embodiment, the above-mentioned first timer IC1 can be selected as the NE555 integrated chip, which cooperates with the fifth diode D5, the ninth resistor R9, the second capacitor C2 and the third capacitor C3 for timing work. Specifically, when powered on, it starts to time and output the first level signal in the high level state. After the timing ends, it stops outputting the first level signal.

[0059] Furthermore, the signal processing module 7 includes a third diode D3, an eighth resistor R8, a fourth diode D4 and a first logic chip U1;

[0060] Specifically, the anode of the third diode D3 is connected to the third terminal of the first timer IC1. The cathode of the third diode D3 is connected to the cathode of the fourth diode D4 and the A terminal of the first logic chip U1. The B terminal of the first logic chip U1 is connected to the second terminal of the sixth resistor R6. The F terminal of the first logic chip U1 is connected to the anode of the fourth diode D4 and the first terminal of the eighth resistor R8. The second terminal of the eighth resistor R8 is connected to the heat dissipation module 8.

[0061] In a specific embodiment, the above-mentioned first logic chip U1 can be selected as an AND gate chip. Cooperating with the third diode D3 and the fourth diode D4, it can perform signal self-locking when both the B terminal and the A terminal of the first logic chip U1 are in the high level state, and stop the self-locking work when the B terminal of the first logic chip U1 becomes low.

[0062] Furthermore, the heat dissipation module 8 includes a first switching transistor VT1 and a radiator M1;

[0063] Specifically, the base of the first switching transistor VT1 is connected to the second terminal of the fourth resistor R4 and the second terminal of the eighth resistor R8. The emitter of the first switching transistor VT1 is grounded. The collector of the first switching transistor VT1 is connected to one end of the radiator M1. The other end of the radiator M1 is connected to the first terminal of the battery pack.

[0064] In a specific embodiment, the above-mentioned first switching transistor VT1 can be selected as an NPN type triode; the above-mentioned radiator M1 can be selected as an electric fan.

[0065] In an intelligent regulation system based on an on-line monitoring sensor according to this embodiment, a storage battery pack provides DC electric energy. The first thermistor NTC performs temperature detection and outputs a temperature signal in cooperation with the first resistor R1. The over-temperature threshold is set by the third resistor R3 and the second resistor R2. The first diode D1 performs a voltage drop process on the over-temperature threshold and outputs a first temperature signal. The second diode D2 performs a voltage drop process on the first temperature threshold and outputs a second temperature threshold. It can be seen that the voltage of the over-temperature threshold is greater than the voltage of the first temperature threshold, and the voltage of the first temperature threshold is greater than the voltage of the second temperature threshold. At this time, when the temperature signal is greater than the second temperature threshold, the second comparator A2 outputs a high level and controls the second switching tube VT2 to conduct, controls the first power tube Q1 to conduct, and the first timer IC1 is powered on and starts to output a signal in a high-level state regularly in cooperation with the fifth diode D5, the ninth resistor R9, the second capacitor C2, and the third capacitor C3. During the period when the first timer IC1 outputs a signal in a high-level state regularly, if the temperature signal is greater than the first temperature threshold, the third comparator A3 will output a high level. At this time, it indicates that the temperature change rate is relatively fast. At this time, the first logic chip U1 will self-lock and output a signal in a high-level state and control the first switching tube VT1 to conduct, control the radiator M1 to work until the temperature signal is less than the first temperature threshold, and the first logic chip U1 stops outputting a high-level signal. If the temperature signal is not greater than the first temperature threshold during the timing period, when the temperature signal is greater than the over-temperature threshold, the first comparator A1 controls the first switching tube VT1 to conduct, controls the radiator M1 to perform heat dissipation work.

[0066] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, in any aspect, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, it is intended to embrace all changes falling within the meaning and scope of the equivalent elements of the claims in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed invention.

[0067] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. An intelligent adjustment system based on online monitoring sensors, characterized in that: The intelligent regulation system based on online monitoring sensor includes: a power supply module, an over-temperature judgment module, a first temperature detection module, a second temperature detection module, a power supply control module, a timing control module, a signal processing module and a heat dissipation module; The power module is used to provide direct current power; The over-temperature judgment module is connected to the power module, and is used to perform temperature detection and output a temperature signal, and is used to set an over-temperature threshold and output a first control signal when the temperature signal is greater than the over-temperature threshold; The first temperature detection module is connected to the over-temperature judgment module, and is used to perform voltage drop processing on the over-temperature threshold and output a first temperature threshold, and is used to output a second control signal when the temperature signal is greater than the first temperature threshold; The second temperature detection module is connected to the first temperature detection module, and is used to perform voltage drop processing on the first temperature threshold and output a second temperature threshold, and is used to output a third control signal when the temperature signal is greater than the second temperature threshold; The power control module is connected to the power module and the first temperature detection module, and is used to receive a third control signal and transmit direct current power to the timing control module; The timing control module is connected to the power control module, and is used to set the timing time and output the first level signal at a fixed time when receiving the electric energy transmitted by the power control module, and stop outputting the first level signal after the timing ends; The signal processing module is connected to the timing control module and the second temperature detection module, and is used to self-lock and output the fourth control signal when the first level signal and the second control signal are received at the same time, and stop the signal self-locking work when the second control signal stops being received; The heat dissipation module is connected to the power supply module, the signal processing module and the over-temperature judgment module, and is used to receive the first control signal and the fourth control signal and perform heat dissipation.

2. The intelligent adjustment system based on online monitoring sensor according to claim 1 is characterized in that: The power module includes a battery pack and a first capacitor; the over-temperature judgment module includes a first thermistor, a first resistor, a third resistor, a second resistor, a first comparator and a fourth resistor; The first end of the battery pack is connected to the first end of the first thermistor and the first end of the third resistor and is connected to the second end of the battery pack and the ground through the first capacitor, the second end of the first thermistor is connected to the in-phase end of the first comparator and is grounded through the first resistor, the second end of the third resistor is connected to the inverting end of the first comparator and is grounded through the second resistor, the output end of the first comparator is connected to the first end of the fourth resistor, and the second end of the fourth resistor is connected to the heat dissipation module.

3. The intelligent adjustment system based on online monitoring sensor according to claim 2 is characterized in that: The first temperature detection module includes a first diode, a third comparator and a sixth resistor; The anode of the first diode is connected to the second end of the third resistor, the cathode of the first diode is connected to the inverting end of the third comparator, the non-inverting end of the third comparator is connected to the second end of the first thermistor, the output end of the third comparator is connected to the first end of the sixth resistor, and the second end of the sixth resistor is connected to the signal processing module.

4. The intelligent adjustment system based on online monitoring sensor according to claim 3 is characterized in that: The second temperature detection module includes a second diode, a second comparator and a fifth resistor; The anode of the second diode is connected to the cathode of the first diode, the cathode of the second diode is connected to the inverting end of the second comparator, the non-inverting end of the second comparator is connected to the second end of the first thermistor, the output end of the second comparator is connected to the first end of the fifth resistor, and the second end of the fifth resistor is connected to the power control module.

5. The intelligent adjustment system based on online monitoring sensor according to claim 4 is characterized in that: The power control module includes a seventh resistor, a first power tube and a second switch tube; The source of the first power tube is connected to the first end of the battery pack and is connected to the gate of the first power tube and the collector of the second switch tube through the seventh resistor. The emitter of the second switch tube is grounded. The base of the second switch tube is connected to the second end of the fifth resistor. The drain of the first power tube is connected to the timing control module.

6. The intelligent adjustment system based on online monitoring sensor according to claim 5 is characterized in that: The timing control module includes a fifth diode, a ninth resistor, a second capacitor, a first timer and a third capacitor; The cathode of the fifth diode is connected to one end of the ninth resistor, the drain of the first power tube, the fourth end and the eighth end of the first timer, the anode of the fifth diode is connected to the other end of the ninth resistor, the second end and the sixth end of the first timer and is grounded through the second capacitor, the first end of the first timer is grounded, the fifth end of the first timer is grounded through the third capacitor, and the third end of the first timer is connected to the signal processing module.

7. The intelligent adjustment system based on online monitoring sensor according to claim 6 is characterized in that: The signal processing module includes a third diode, an eighth resistor, a fourth diode and a first logic chip; The anode of the third diode is connected to the third end of the first timer, the cathode of the third diode is connected to the cathode of the fourth diode and the A end of the first logic chip, the B end of the first logic chip is connected to the second end of the sixth resistor, the F end of the first logic chip is connected to the anode of the fourth diode and the first end of the eighth resistor, and the second end of the eighth resistor is connected to the heat dissipation module.

8. The intelligent adjustment system based on online monitoring sensor according to claim 7 is characterized in that: The heat dissipation module includes a first switch tube and a heat sink; The base of the first switch tube is connected to the second end of the fourth resistor and the second end of the eighth resistor, the emitter of the first switch tube is grounded, the collector of the first switch tube is connected to one end of the radiator, and the other end of the radiator is connected to the first end of the battery pack.