A battery with a high-temperature alarm function
By using technical means such as timing modules and guide transmissions in the battery, the operating status of the temperature sensor and the remote alarm of the battery at high temperature are realized, and the problem that existing batteries cannot alarm in time when high temperature is abnormal is solved, ensuring the safety and reliability of the battery.
Patent Information
- Application Number
- CN202410827105.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2044-06-25
AI Technical Summary
Existing batteries cannot achieve timely high temperature alarms when high temperature abnormality is not achieved because the temperature sensor cannot perform operating status detection, resulting in the inability to detect the battery temperature in real time in the event of a fault.
A battery with high temperature alarm function is designed, and a timing module is used to set a special time for interval detection and judgment. Through the meshing conduction of the guide transmission and the guide rack and the heat conduction of the electric heating plate, the operating state detection of the temperature sensor and the remote high temperature alarm are realized.
Real-time detection of the temperature of the battery body and remote high-temperature alarm are realized to ensure that the monitoring center staff can timely understand the high-temperature situation of the battery and repair it based on the positioning data, avoiding the risk of high-temperature explosion of the battery.
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Figure CN118919896B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of batteries, and particularly to a battery with a high-temperature alarm function. Background Art
[0002] A battery refers to a device that contains an electrolyte solution and metal electrodes and can convert chemical energy into electrical energy. The main reason for battery heating is internal chemical reactions. When the internal reaction rate of the battery increases, the battery will become abnormally hot. And if the battery has a high-temperature abnormality, if corresponding maintenance measures can be taken before its heating temperature exceeds the threshold, the occurrence of battery high-temperature explosion can be avoided. Therefore, in order to avoid the occurrence of battery high-temperature explosion, generally, a temperature sensor is used to detect the temperature of the battery in real time, so that when a high-temperature abnormality occurs, timely high-temperature alarm can be realized. However, currently, it is impossible to simultaneously detect and determine the operating state of the temperature sensor used for temperature detection. If the temperature sensor used for temperature detection fails, the real-time temperature detection of the battery cannot be achieved, resulting in the inability to realize timely high-temperature alarm when a high-temperature abnormality occurs, which has defects and deficiencies. Summary of the Invention
[0003] The present invention relates to a battery with a high-temperature alarm function. Based on the special time setting of a timing module, an intermittent detection and determination of the operating state of the high-temperature monitoring and alarm function of the battery body are realized, so that the staff in the monitoring center can know whether the high-temperature monitoring and alarm function of the battery body is in a normal operating state.
[0004] The present invention provides a battery with a high-temperature alarm function, which specifically includes: a battery body, the battery body is a storage battery, and a monitoring block is provided directly below the battery body; through buckle grooves penetrating the top surface are provided on the left end surface and the right end surface of the monitoring block, and a buckle member is fixedly installed on each of the left side and the right side of the bottom end surface of the battery body, and the two buckle members are respectively clamped and connected with the two buckle grooves; a monitoring opening penetrating the top surface is provided on the bottom end surface of the monitoring block, and the monitoring opening is in a rectangular opening structure; a first copper heat-conducting sheet is fixedly connected to the bottom end surface of the battery body, and the first copper heat-conducting sheet is inserted into the right edge part inside the monitoring opening; a second copper heat-conducting sheet is fixedly connected inside the monitoring opening, and the second copper heat-conducting sheet is located on the left side. A plugging opening penetrating the right end surface is provided at the center of the left end surface of the second copper heat-conducting sheet, and the plugging opening is in a square opening structure; a plugging block body in a square strip structure is inserted into the plugging opening, and a group of temperature sensors are fixedly installed at the center of the right end surface of the plugging block body, the temperature measuring end of the temperature sensor faces the right side, and a third copper heat-conducting sheet in a square plate structure is fixedly connected to the temperature measuring end of the temperature sensor, and the side length dimension of the third copper heat-conducting sheet is larger than the side length dimension of the plugging opening.
[0005] Further, a guiding block body in the shape of a square bar is fixedly connected to the left end face of the plugging block body through a spring connecting piece; a reset matching groove in the shape of a rectangular groove is formed at the rear side of the inner end of the monitoring opening, and a limiting column is fixedly connected between the left inner end face and the right inner end face of the reset matching groove; a reset connecting spring is sleeved outside the limiting column, and the left end of the reset connecting spring is fixedly connected to the left inner end face of the reset matching groove; a limiting plugging block body is fixedly installed on the rear end face of the guiding block body, and the limiting plugging block body is slidably plugged inside the reset matching groove, and the left end face of the limiting plugging block body is fixedly connected to the right end of the reset connecting spring.
[0006] Further, a limiting jack penetrating through the right end face is formed on the left end face of the limiting plugging block body, and four sliding auxiliary parts are rotatably embedded and installed in an annular array at the positions adjacent to the left opening end and the right opening end of the inner peripheral surface of the limiting jack, and the sliding auxiliary parts are spheres; the limiting jack is slidably plugged and matched with the limiting column, and the outer peripheral surface of the limiting column is in sliding contact with the sliding auxiliary parts.
[0007] Further, an electric heating sheet is fixedly installed on the left end face of the second copper heat conducting sheet; when the reset connecting spring and the spring connecting piece are both in an extended state, the right end face of the third copper heat conducting sheet is in fit contact with the left end face of the first copper heat conducting sheet.
[0008] Further, a guiding rack is fixedly installed on the front end face of the guiding block body; a rotating matching groove is formed on the front side face of the inner end of the monitoring opening, and a guiding transmission part is arranged inside the rotating matching groove, and the guiding transmission part is an incomplete gear; an embedded groove is formed on the bottom end face of the monitoring block body corresponding to the rotating matching groove, and a group of motors are fixedly installed on the top end face of the inner end of the embedded groove; the rotating shaft end of the motor penetrates through the rotating matching groove and is fixedly installed and connected to the central part of the guiding transmission part; the guiding transmission part is meshed with the guiding rack.
[0009] Further, the monitoring block is externally powered, a microcontroller is arranged inside the monitoring block, the electric heating sheet, the temperature sensor and the motor are all electrically connected to the microcontroller; a timing module, a timing module, a positioning module and a 5G module are also arranged inside the monitoring block, the timing module, the timing module, the positioning module and the 5G module are all electrically connected to the microcontroller, the initial timing value of the timing module is not limited, and its timing value can be set according to requirements; the initial timing value of the timing module is ten seconds; the 5G module is wirelessly transmission-connected to the monitoring center.
[0010] Further, when the timing value of the timing module is reached, the timing module feeds back a signal to the microcontroller, and the microcontroller controls the motor shaft end to rotate clockwise for one circle, and at the same time controls the electric heating sheet to start heating and the timing module to start timing; when the timing value of the timing module is reached, the timing module feeds back a signal to the microcontroller, and the microcontroller controls the electric heating sheet to turn off; when the temperature detected by the temperature sensor exceeds the threshold, the temperature sensor feeds back a signal to the microcontroller, and the microcontroller controls the 5G module to wirelessly transmit a message to the monitoring center, and at the same time attaches the positioning data of the positioning module.
[0011] Further, when the guiding transmission member meshes and drives the guiding rack clockwise, the guiding block moves leftward along the monitoring opening, and synchronously drives the plugging block to move leftward along the plugging opening. At this time, the reset connecting spring is gradually compressed, and when the left end face of the third copper heat-conducting sheet is in contact with the right end face of the second copper heat-conducting sheet, the guiding transmission member does not disengage from the guiding rack, and at this time, the spring connecting member is gradually stretched.
[0012] The present invention provides a battery with a high-temperature alarm function, having the following beneficial effects:
[0013] Based on the heat conduction between the third copper heat-conducting sheet and the first copper heat-conducting sheet, the present invention cooperates to realize the real-time detection of the temperature of the battery body by the temperature sensor. When the temperature of the battery body detected by the temperature sensor exceeds the specified threshold, remote high-temperature alarm is realized, which is convenient for the staff in the monitoring center to know in time that the current battery body has a high-temperature abnormality, and according to the positioning data of the positioning module, go to repair in time.
[0014] Based on the special time setting of the timing module, the present invention realizes the intermittent detection and determination of the operation state of the high-temperature monitoring and alarm function of the battery body. Based on the meshing conduction between the guiding transmission member and the guiding rack, it cooperates to change the position of the third copper heat-conducting sheet, so as to realize the temporary contact between the second copper heat-conducting sheet heated by the electric heating sheet and the third copper heat-conducting sheet. Based on the heat conduction exceeding the specified threshold, remote high-temperature alarm can be realized. Cooperating with the special time period of this timing module, it is convenient for the staff in the monitoring center to know that the high-temperature monitoring and alarm function of the battery body is in normal operation state without message feedback. On the contrary, it can be known that the high-temperature monitoring and alarm function of the battery body fails and needs to be repaired and maintained in time. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.
[0016] The drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.
[0017] In the drawings:
[0018] Figure 1 Shows the schematic top axonometric structure of the present application;
[0019] Figure 2 Shows the schematic bottom axonometric structure of the present application;
[0020] Figure 3 Shows the schematic bottom axonometric structure of the monitoring block and the battery body in the disassembled state of the present application;
[0021] Figure 4 Shows the schematic bottom-up structure of the present application;
[0022] Figure 5 Shows the Figure 4 schematic structure of the monitoring block in the sectional state of the present application;
[0023] Figure 6 Shows the Figure 5 schematic enlarged partial structure at A in the present application;
[0024] Figure 7 Shows the Figure 4 schematic structure in the state where the guiding block is removed in the present application;
[0025] Figure 8 Shows the schematic axonometric structure of the guiding block and the monitoring block in the disassembled state of the present application;
[0026] Figure 9 Shows the Figure 8 schematic enlarged partial structure at B in the present application;
[0027] Figure 10 Shows the system block diagram of the present application;
[0028] List of reference numerals
[0029] 1. Battery body; 101. Buckle; 102. First copper heat-conducting sheet;
[0030] 2. Monitoring block; 201. Monitoring opening; 202. Embedded groove; 203. Buckle groove; 204. Second copper heat-conducting sheet; 205. Rotating mating groove; 206. Reset mating groove; 207. Limit post; 208. Reset connecting spring; 209. Insertion opening; 2010. Electric heating sheet; 2011. Positioning module; 2012. Timing module; 2013. Timing module; 2014. 5G module; 2015. Monitoring center; 2016. Microcontroller;
[0031] 3. Guide block; 301. Limit plug-in block; 302. Plug-in block; 303. Spring connecting piece; 304. Temperature sensor; 305. Third copper heat-conducting sheet; 306. Guide rack; 307. Limit jack; 308. Sliding auxiliary piece;
[0032] 4. Motor; 401. Guide transmission part. Detailed implementation manner
[0033] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. Based on the described embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection of the present invention.
[0034] Embodiment: Please refer to Figures 1 to 10 :
[0035] The present invention provides a battery with a high-temperature alarm function, including: a battery main body 1, the battery main body 1 is a storage battery, and a monitoring block 2 is provided directly below the battery main body 1; a snap groove 203 penetrating the top surface is provided on both the left end surface and the right end surface of the monitoring block 2, and a snap member 101 is fixedly installed on both the left side and the right side of the bottom end surface of the battery main body 1, and the two snap members 101 are respectively connected in a snap-fit manner with the two snap grooves 203; a monitoring opening 201 penetrating the top surface is provided on the bottom end surface of the monitoring block 2, and the monitoring opening 201 is a rectangular opening structure; a first copper heat-conducting sheet 102 is fixedly connected to the bottom end surface of the battery main body 1, and the first copper heat-conducting sheet 102 is inserted into the right edge part inside the monitoring opening 201; a second copper heat-conducting sheet 204 is fixedly connected inside the monitoring opening 201, and the second copper heat-conducting sheet 204 is located on the left side. A plugging opening 209 penetrating the right end surface is provided at the center of the left end surface of the second copper heat-conducting sheet 204, and the plugging opening 209 is a square opening structure; a plug-in block 302 in the shape of a square bar is inserted into the plugging opening 209, and a group of temperature sensors 304 are fixedly installed at the center of the right end surface of the plug-in block 302. The temperature measuring end of the temperature sensor 304 faces the right side, and the temperature measuring end of the temperature sensor 304 is fixedly connected with a third copper heat-conducting sheet 305 in the shape of a square plate, and the side length dimension of the third copper heat-conducting sheet 305 is larger than the side length dimension of the plugging opening 209.
[0036] In the embodiment of the present invention, a guiding block 3 in the shape of a square bar is fixedly connected to the left end face of the plugging block 302 through a spring connecting piece 303; a reset mating groove 206 in the shape of a rectangular groove is formed at the rear side of the inner end of the monitoring opening 201, and a limiting column 207 is fixedly connected between the left inner end face and the right inner end face of the reset mating groove 206; a reset connecting spring 208 is sleeved around the limiting column 207, and the left end of the reset connecting spring 208 is fixedly connected to the left inner end face of the reset mating groove 206; a limiting plugging block 301 is fixedly installed on the rear end face of the guiding block 3, and the limiting plugging block 301 is slidably plugged inside the reset mating groove 206, and the left end face of the limiting plugging block 301 is fixedly connected to the right end of the reset connecting spring 208; a limiting insertion hole 307 penetrating through its right end face is formed on the left end face of the limiting plugging block 301, and four sliding auxiliary parts 308 are rotatably installed in an annular array on the inner circumferential surface of the limiting insertion hole 307 adjacent to the left opening end and the right opening end, and the sliding auxiliary parts 308 are spheres; the limiting insertion hole 307 is slidably plugged and matched with the limiting column 207, and the outer circumferential surface of the limiting column 207 is in sliding contact with the sliding auxiliary parts 308; an electric heating sheet 2010 is fixedly installed on the left end face of the second copper heat conducting sheet 204; when the reset connecting spring 208 and the spring connecting piece 303 are both in a stretched state, the right end face of the third copper heat conducting sheet 305 is in contact and fit with the left end face of the first copper heat conducting sheet 102; a guiding rack 306 is fixedly installed on the front end face of the guiding block 3; a rotation mating groove 205 is formed on the front inner end face of the monitoring opening 201, and a guiding transmission part 401 is arranged inside the rotation mating groove 205, and the guiding transmission part 401 is an incomplete gear; an embedded groove 202 is formed at the bottom end face of the monitoring block 2 corresponding to the rotation mating groove 205, and a group of motors 4 are fixedly installed on the top surface of the inner end of the embedded groove 202; the rotating shaft end of the motor 4 penetrates through the rotation mating groove 205 and is fixedly installed and connected to the axial center part of the guiding transmission part 401; the guiding transmission part 401 is meshed with the guiding rack 306.
[0037] In an embodiment of the present invention, the monitoring block 2 is externally powered. A microcontroller 2016 is provided inside the monitoring block 2. The electric heating sheet 2010, the temperature sensor 304, and the motor 4 are all electrically connected to the microcontroller 2016. A timing module 2012, a timing module 2013, a positioning module 2011, and a 5G module 2014 are also provided inside the monitoring block 2. The timing module 2012, the timing module 2013, the positioning module 2011, and the 5G module 2014 are all electrically connected to the microcontroller 2016. The initial timing value of the timing module 2012 is not limited and can be set according to requirements. The initial timing value of the timing module 2013 is ten seconds. The 5G module 2014 is wirelessly connected to the monitoring center 2015 for data transmission. When the timing value of the timing module 2012 is reached, the timing module 2012 feeds back a signal to the microcontroller 2016. The microcontroller 2016 controls the rotating shaft end of the motor 4 to rotate clockwise for one circle, and at the same time controls the electric heating sheet 2010 to start heating and the timing module 2013 to start timing. When the timing value of the timing module 2013 is reached, the timing module 2013 feeds back a signal to the microcontroller 2016, and the microcontroller 2016 controls the electric heating sheet 2010 to turn off. When the temperature detected by the temperature sensor 304 exceeds the threshold, the temperature sensor 304 feeds back a signal to the microcontroller 2016. The microcontroller 2016 controls the 5G module 2014 to wirelessly transmit a message to the monitoring center 2015, and at the same time attaches the positioning data of the positioning module 2011. When the guiding transmission member 401 meshes with the guiding rack 306 in a clockwise direction for transmission, the guiding block 3 moves leftward along the monitoring opening 201, and synchronously drives the plugging block 302 to move leftward along the plugging opening 209. At this time, the reset connection spring 208 is gradually compressed. When the left end face of the third copper heat conducting sheet 305 is in contact with the right end face of the second copper heat conducting sheet 204, the guiding transmission member 401 does not disengage from the guiding rack 306, and at this time, the spring connecting member 303 is gradually stretched.
[0038] Working principle of this embodiment:
[0039] In the present invention, the temperature of the battery body 1 is conducted through the cooperation of the first copper heat conducting sheet 102 fixedly connected to the battery body 1. When the reset connection spring 208 and the spring connecting member 303 are both in an extended state, the right end face of the third copper heat conducting sheet 305 is in contact with the left end face of the first copper heat conducting sheet 102. Therefore, through the heat conduction between the first copper heat conducting sheet 102 and the third copper heat conducting sheet 305, the temperature measuring end of the temperature sensor 304 can realize real-time detection of the temperature of the battery body 1.
[0040] When a high-temperature abnormality occurs in the battery body 1, through the heat conduction between the first copper heat-conducting sheet 102 and the third copper heat-conducting sheet 305, if the temperature detected by the temperature sensor 304 exceeds the specified threshold, the temperature sensor 304 feeds back a signal to the microcontroller 2016. The microcontroller 2016 controls the 5G module 2014 to wirelessly transmit a message to the monitoring center 2015, and at the same time attaches the positioning data of the positioning module 2011, so that the staff in the monitoring center 2015 can timely learn that a high-temperature abnormality has occurred in the current battery body 1, and based on the positioning data of the positioning module 2011, go to repair in time;
[0041] To ensure the normal operation of the high-temperature monitoring and alarm function of the battery body 1 in the present invention, the present invention detects and determines the operating state of the temperature sensor 304 for temperature detection at regular intervals. The specific operation is as follows:
[0042] First, the staff sets a special time period through the timing module 2012, for example, 8 o'clock in the morning. When the timing value of the timing module 2012 is reached, the timing module 2012 feeds back a signal to the microcontroller 2016. The microcontroller 2016 controls the shaft end of the motor 4 to rotate clockwise for one circle, and at the same time controls the electric heating sheet 2010 to start heating and the timing module 2013 to start timing;
[0043] When the shaft end of the motor 4 rotates clockwise, the guiding transmission member 401 meshes with and drives the guiding rack 306 to synchronously drive the guiding block 3 to move leftward along the monitoring opening 201. Under the limiting plug-in fit of the limiting jack 307 and the limiting post 207, while ensuring the stable movement of the guiding block 3, the limiting plug-in block 301 also synchronously moves leftward along the reset mating groove 206 and simultaneously compresses the reset connecting spring 208;
[0044] When the guiding block 3 moves leftward, it drives the limiting plug-in block 301 to move leftward along the plugging opening 209 through the spring connecting member 303 until the left end face of the third copper heat-conducting sheet 305 is in contact with the right end face of the second copper heat-conducting sheet 204. Since the side length dimension of the third copper heat-conducting sheet 305 is larger than the side length dimension of the plugging opening 209, at this time, due to the contact obstruction between the third copper heat-conducting sheet 305 and the second copper heat-conducting sheet 204, the spring connecting member 303 will be gradually stretched during the leftward movement of the guiding block 3;
[0045] When the electric heating sheet 2010 starts heating, the heat it generates will be conducted to the second copper heat-conducting sheet 204. At this time, since the left end face of the third copper heat-conducting sheet 305 is in contact with the right end face of the second copper heat-conducting sheet 204, through the heat conduction between the third copper heat-conducting sheet 305 and the second copper heat-conducting sheet 204, the temperature measuring end of the temperature sensor 304 will detect a temperature exceeding its specified threshold. Therefore, at this time, a feedback signal is given to the microcontroller 2016, and the microcontroller 2016 controls the 5G module 2014 to wirelessly transmit a message to the monitoring center 2015, and at the same time attach the positioning data of the positioning module 2011. The staff in the monitoring center 2015 can, based on the message feedback within a specific time period of the timing module 2012, determine that the temperature sensor 304 currently used for temperature detection is in a normal operating state without faults; when the temperature sensor 304 fails and cannot perform the temperature detection function, then within the specific time period of the timing module 2012, the staff in the monitoring center 2015 does not receive a message feedback, and it can be determined that the high-temperature monitoring and alarm function for the battery body 1 is faulty and needs to be repaired and maintained in time;
[0046] Since the guiding transmission member 401 of the present invention is an incomplete gear, when the guiding transmission member 401 is disengaged from the guiding rack 306, under the reset springback of the reset connecting spring 208 and the spring connecting member 303, the third copper heat-conducting sheet 305 will return to the state where its right end face is in contact with the left end face of the first copper heat-conducting sheet 102 again.
[0047] In this article, the following points need to be noted:
[0048] 1. The drawings of the embodiments of the present disclosure only relate to the structures involved in the embodiments of the present disclosure, and other structures can refer to the general design.
[0049] 2. Without conflict, the embodiments of the present disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0050] The above is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure.
Claims
1. A battery with a high temperature alarm function, characterized in that: include: A battery body (1), the battery body (1) being a storage battery, a monitoring block (2) being arranged directly below the battery body (1); the left end face and the right end face of the monitoring block (2) are each provided with a buckle groove (203) penetrating the top face thereof; a buckle member (101) is fixedly mounted on the left side and the right side of the bottom face of the battery body (1), the two buckle members (101) being respectively connected to the two buckle grooves (203) by buckling; the bottom face of the monitoring block (2) is provided with a monitoring opening (201) penetrating the top face thereof, the monitoring opening (201) being in a rectangular opening structure; the bottom face of the battery body (1) is fixedly connected with a first copper heat conductive sheet (102), and the first copper heat conductive sheet (102) is plugged into the right edge portion of the inside of the monitoring opening (201); the monitoring A second copper heat conductive sheet (204) is fixedly connected inside the measuring opening (201), and the second copper heat conductive sheet (204) is located on the left side. A plug-in opening (209) penetrating through the right end face of the second copper heat conductive sheet (204) is provided at the center of the left end face of the second copper heat conductive sheet (204), and the plug-in opening (209) is in a square opening structure. A plug-in block (302) in a square strip structure is plugged inside the plug-in opening (209), and a group of temperature sensors (304) are fixedly installed at the center of the right end face of the plug-in block (302), the temperature measuring end of the temperature sensor (304) faces the right side, and a third copper heat conductive sheet (305) in a square plate structure is fixedly connected to the temperature measuring end of the temperature sensor (304), and the side length of the third copper heat conductive sheet (305) is greater than the side length of the plug-in opening (209).
2. A battery with a high temperature alarm function according to claim 1, characterized in that: The left end face of the plug-in block (302) is fixedly connected to a guide block (3) with a square bar structure via a spring connector (303); a reset matching groove (206) with a rectangular groove structure is provided on the rear side of the inner end of the monitoring opening (201), and a limit column (207) is fixedly connected between the inner left side face and the inner right side face of the reset matching groove (206); a reset connection spring (208) is sleeved on the outer periphery of the limit column (207), and the left end of the reset connection spring (208) is fixedly connected to the inner left side face of the reset matching groove (206); a limit plug-in block (301) is fixedly mounted on the rear end face of the guide block (3), and the limit plug-in block (301) is slidably plugged into the reset matching groove (206), and the left end face of the limit plug-in block (301) is fixedly connected to the right end of the reset connection spring (208).
3. A battery with a high temperature alarm function according to claim 2, characterized in that: The left end face of the limit plug block (301) is provided with a limit plug hole (307) penetrating the right end face thereof, and the inner circumference of the limit plug hole (307) adjacent to the left opening end and the right opening end is in a circular array, each of which is embedded with four sliding auxiliary parts (308) rotatably installed, and the sliding auxiliary parts (308) are spheres; the limit plug hole (307) is slidably plugged with the limit column (207), and the outer circumference of the limit column (207) is in sliding contact with the sliding auxiliary parts (308).
4. A battery with a high temperature alarm function according to claim 3, characterized in that: The left end surface of the second copper heat conducting plate (204) is fixedly mounted with an electric heating plate (2010); the reset connection spring (208) and the spring connector (303) are both in an extended state, and the right end surface of the third copper heat conducting plate (305) is in contact with the left end surface of the first copper heat conducting plate (102).
5. A battery with a high temperature alarm function according to claim 4, characterized in that: A guide rack (306) is fixedly mounted on the front end surface of the guide block (3); a rotational matching groove (205) is provided on the front side surface of the inner end of the monitoring opening (201); a guide transmission member (401) is provided inside the rotational matching groove (205); the guide transmission member (401) is an incomplete gear; an embedded groove (202) is provided on the bottom end surface of the monitoring block (2) relative to the rotational matching groove (205); a motor (4) is fixedly mounted on the top surface of the inner end of the embedded groove (202); the shaft end of the motor (4) passes through the rotational matching groove (205) and is fixedly mounted and connected to the axial center of the guide transmission member (401); the guide transmission member (401) is meshed with the guide rack (306).
6. A battery with a high temperature alarm function according to claim 5, characterized in that: The monitoring block (2) is externally connected to a power supply, and a microcontroller (2016) is arranged inside the monitoring block (2), and the electric heating plate (2010), the temperature sensor (304) and the motor (4) are all electrically connected to the microcontroller (2016); the monitoring block (2) is also internally provided with a timing module (2012), a timing module (2013), a positioning module (2011) and a 5G module (2014), and the timing module (2012), the timing module (2013), the positioning module (2011) and the 5G module (2014) are all electrically connected to the microcontroller (2016); the initial timing value of the timing module (2012) is not limited, and the timing value can be set according to demand; the initial timing value of the timing module (2013) is ten seconds; and the 5G module (2014) is connected to the monitoring center (2015) via a wireless network transmission.
7. A battery with a high temperature alarm function according to claim 6, characterized in that: When the timing value of the timing module (2012) is reached, the timing module (2012) gives a feedback signal to the microcontroller (2016), and the microcontroller (2016) controls the rotating shaft end of the motor (4) to rotate one circle clockwise, and simultaneously controls the electric heating plate (2010) to start heating and the timing module (2013) to start timing; when the timing value of the timing module (2013) is reached, the timing module (2013) gives a feedback signal to the microcontroller (2016), and the microcontroller (2016) controls the electric heating plate (2010) to turn off; when the temperature detected by the temperature sensor (304) exceeds a threshold value, the temperature sensor (304) gives a feedback signal to the microcontroller (2016), and the microcontroller (2016) controls the 5G module (2014) to wirelessly transmit a message to the monitoring center (2015), and simultaneously attaches the positioning data of the positioning module (2011).
8. A battery with a high temperature alarm function according to claim 7, characterized in that: When the guide transmission member (401) engages the transmission guide rack (306) clockwise, the guide block (3) moves leftward along the monitoring opening (201) and simultaneously drives the plug-in block (302) to move leftward along the plug-in opening (209). At this time, the reset connection spring (208) is gradually compressed, and when the left end surface of the third copper heat conductive plate (305) is in contact with the right end surface of the second copper heat conductive plate (204), the guide transmission member (401) does not disengage from the guide rack (306). At this time, the spring connection member (303) is gradually stretched.
Citation Information
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