Thermosensitive module
By using an insulated and thermally conductive component to cover the wiring in the temperature sensor, the problems of complex installation and poor practicality of existing temperature sensors are solved, enabling fast and accurate temperature sensing and reducing production costs.
Patent Information
- Application Number
- CN202111604417.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-24
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2041-12-24
AI Technical Summary
Existing temperature sensors are cumbersome to install and use, affecting work efficiency, have poor practicality, are difficult to effectively sense the actual temperature of objects, and have high production costs.
The first end of the ribbon cable is covered with an insulating thermally conductive component and connected to the NTC thermistor. The ribbon cable does not make conductive contact with the thermally conductive housing, but makes contact with the thermally conductive housing through the insulating thermally conductive component, thereby achieving insulation between the NTC thermistor and the thermally conductive housing. Combined with the insulation seal, this ensures the accuracy of temperature transmission.
It achieves convenient and quick temperature sensing, ensures the accuracy of temperature sensing, avoids circuit interference, and reduces production costs.
Smart Images

Figure CN114295241B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of temperature sensing technology, and in particular to a temperature sensing module. Background Technology
[0002] A sensor is a detection device that can sense the information being measured and transform the sensed information into an electrical signal or other required form of information output according to certain rules, so as to meet the requirements of information transmission, processing, storage, display, recording and control.
[0003] Temperature sensors used for sensing temperature are widely used in power conversion power supplies, switching power supplies, UPS power supplies, various electric heaters, electronic energy-saving lamps, electronic ballasts, and power circuit protection for various electronic devices. They are also used to manufacture temperature compensation, control, and measurement products for temperature control and detection in household appliances such as air conditioners, microwave ovens, electric fans, and electric heaters, as well as in office automation equipment.
[0004] However, existing temperature sensors are cumbersome to install and use, which seriously affects work efficiency, and their practicality is poor. They are difficult to effectively sense the actual temperature of objects and have high production costs. Summary of the Invention
[0005] Based on this, the present invention provides a temperature sensing module that achieves effective sensing of actual temperature by preventing the ribbon cable from making conductive contact with the heat-conducting housing and by using the insulating seal of the insulating heat-conducting component.
[0006] A temperature sensing module includes an insulating thermally conductive component, an NTC thermistor, a thermally conductive housing, and a ribbon cable. The ribbon cable is mounted on the thermally conductive housing, with a first end extending out of the thermally conductive housing without contacting it. The first end of the ribbon cable is electrically connected to the NTC thermistor. The insulating thermally conductive component covers the first end of the ribbon cable and the NTC thermistor, and is in contact with the thermally conductive housing.
[0007] The heat-conducting housing can contact the object to be tested, and the second end of the ribbon cable extends out of the heat-conducting housing and can be electrically connected to a temperature control module.
[0008] During installation, the aforementioned temperature sensing module first connects the first end of the ribbon cable to the NTC thermistor. Then, the ribbon cable is mounted on the heat-conducting housing, with the first end extending beyond the housing without making conductive contact. Finally, the insulating thermally conductive element is wrapped around the first end of the ribbon cable and the NTC thermistor, and then made in contact with the housing. This achieves temperature transfer between the NTC thermistor, the insulating thermally conductive element, and the housing, while simultaneously providing insulation between the NTC thermistor or the ribbon cable and the housing. When performing temperature sensing, this module only requires the heat-conducting housing to be installed or in contact with the object being measured, making it convenient and quick to use. It can rapidly achieve temperature sensing of the object being measured, ensuring accurate temperature sensing. Furthermore, this temperature sensing module achieves initial insulation between the NTC thermistor and the thermally conductive housing by preventing the ribbon cable from making conductive contact with the thermally conductive housing. The insulation and sealing of the insulating thermally conductive component provides secondary insulation, thereby avoiding circuit interference and increasing the accuracy of temperature sensing.
[0009] In one embodiment, the thermally conductive housing includes a thermally conductive terminal and a thermally conductive cover plate, the thermally conductive cover plate being mounted on the thermally conductive terminal, and the ribbon cable being clamped between the thermally conductive terminal and the thermally conductive cover plate;
[0010] The thermally conductive terminal can contact the object under test, and the insulating thermally conductive component is in contact with the thermally conductive terminal.
[0011] In one embodiment, the thermally conductive terminal includes a thermally conductive contact portion and a thermally conductive connection portion connected to the thermally conductive contact portion, the thermally conductive cover plate is mounted on the thermally conductive connection portion, and the ribbon cable can be clamped between the thermally conductive connection portion and the thermally conductive cover plate;
[0012] The thermally conductive contact portion can contact the object to be tested, and the insulating thermally conductive component contacts the thermally conductive connection portion.
[0013] In one embodiment, the heat-conducting connection portion is provided with a first snap-fit portion, and the heat-conducting cover plate is provided with a second snap-fit portion, wherein the first snap-fit portion can snap-fit with the second snap-fit portion.
[0014] In one embodiment, the thermally conductive connection portion has a protrusion on the side facing the thermally conductive cover plate, and the ribbon cable can be clamped between the protrusion and the thermally conductive cover plate.
[0015] In one embodiment, a plurality of protrusions are provided, and the plurality of protrusions are arranged along the extension direction of the ribbon cable.
[0016] In one embodiment, the heat-conducting terminal is a nickel sheet terminal, and the heat-conducting cover is a nickel sheet cover.
[0017] In one embodiment, the ribbon cable includes a first conductor, a second conductor, and an insulating layer covering the first conductor and the second conductor. The first conductor and the second conductor are insulated from each other. The insulating layer is mounted on the heat-conducting housing. The first end of the first conductor and the first end of the second conductor are exposed outside the heat-conducting housing and do not contact the heat-conducting housing.
[0018] The first end of the first conductor and the first end of the second conductor are respectively electrically connected to the NTC thermistor, and the insulating thermally conductive component covers the first end of the first conductor, the first end of the second conductor, and the NTC thermistor.
[0019] In one embodiment, the NTC thermistor is provided with a first electrical connection terminal and a second electrical connection terminal, the first conductor is electrically connected to the first electrical connection terminal, and the second conductor is electrically connected to the second electrical connection terminal.
[0020] In one embodiment, the insulating thermally conductive element is an insulating thermally conductive adhesive. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the temperature sensing module of the present invention;
[0022] Figure 2 for Figure 1 A schematic diagram of the cross-section at the first conductor;
[0023] Figure 3 for Figure 2 Enlarged view of point A in the middle;
[0024] Figure 4 for Figure 1 An explosion diagram;
[0025] Figure 5 for Figure 4 Schematic diagram of the structure of the heat-conducting terminal;
[0026] Figure 6 for Figure 4 A schematic diagram of the structure of the heat-conducting cover plate.
[0027] The meanings of the labels in the attached diagram are as follows:
[0028] 1-Insulating and heat-conducting components;
[0029] 2-NTC thermistor;
[0030] 3-Heat-conducting housing; 31-Heat-conducting terminal; 311-Heat-conducting contact part; 312-Heat-conducting connection part; 3121-Base plate; 3122-First side plate; 3123-Second side plate; 3124-Protrusion; 313-First snap-fit part; 3131-First snap-fit block; 3132-Second snap-fit block; 32-Heat-conducting cover plate; 321-Second snap-fit part; 3211-First snap-fit hole; 3212-Second snap-fit hole; 322-Top plate; 323-Third side plate; 324-Fourth side plate;
[0031] 4-Floor cable; 41-First conductor; 42-Second conductor; 43-Insulation layer. Detailed Implementation
[0032] To facilitate understanding of the present invention, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of the invention are shown in the drawings. However, the invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a thorough and complete understanding of the disclosure of the invention.
[0033] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component.
[0034] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.
[0035] like Figures 1 to 6 As shown, this is a temperature sensing module according to an embodiment of the present invention, including: an insulating thermally conductive element 1, an NTC thermistor 2, a thermally conductive housing 3, and a ribbon cable 4. The ribbon cable 4 is mounted on the thermally conductive housing 3, with a first end extending out of the thermally conductive housing 3 and not in contact with it. The first end of the ribbon cable 4 is electrically connected to the NTC thermistor 2. The insulating thermally conductive element 1 covers the first end of the ribbon cable 4 and the NTC thermistor 2, and the insulating thermally conductive element 1 is in contact with the thermally conductive housing 3.
[0036] The heat-conducting housing 3 can contact the object to be tested, and the second end of the ribbon cable 4 extends out of the heat-conducting housing 3 and can be electrically connected to a temperature control module.
[0037] During installation, the temperature sensing module is first electrically connected to the NTC thermistor 2 via the first end of the ribbon cable 4. Then, the ribbon cable 4 is mounted on the heat-conducting housing 3, with the first end of the ribbon cable 4 extending out of the heat-conducting housing 3 without making conductive contact with it. Finally, the insulating heat-conducting component 1 is wrapped around the first end of the ribbon cable 4 and the NTC thermistor 2, and is made in contact with the heat-conducting housing 3. This achieves temperature transfer between the NTC thermistor 2, the insulating heat-conducting component 1, and the heat-conducting housing 3, while simultaneously achieving insulation between the NTC thermistor 2 or the ribbon cable 4 and the heat-conducting housing 3.
[0038] When performing temperature sensing, this temperature sensing module only requires the heat-conducting housing 3 to be installed or in contact with the object to be measured, making it convenient and quick to use. It can rapidly achieve temperature sensing of the object and ensure accuracy. Furthermore, by preventing the ribbon cable 4 from making conductive contact with the heat-conducting housing 3, the module achieves initial insulation between the NTC thermistor 2 and the heat-conducting housing 3. The insulating and sealing effect of the insulating heat-conducting component 1 provides secondary insulation, thereby avoiding circuit interference and increasing the accuracy of temperature sensing.
[0039] The temperature sensing module provided in this invention can be applied to real-time temperature monitoring of electronic devices or automotive batteries that require temperature monitoring, and can also be applied to temperature monitoring of various metal electrical components.
[0040] In one embodiment, such as Figures 1 to 6 As shown, the heat-conducting housing 3 includes a heat-conducting terminal 31 and a heat-conducting cover plate 32. The heat-conducting cover plate 32 is mounted on the heat-conducting terminal 31. The ribbon cable 4 can be clamped between the heat-conducting terminal 31 and the heat-conducting cover plate 32 to realize the installation of the ribbon cable 4.
[0041] The thermally conductive terminal 31 can contact the object under test, thereby transferring the temperature of the object to the thermally conductive terminal 31. The insulating thermally conductive element 1 contacts the thermally conductive terminal 31, thereby transferring the heat received by the thermally conductive terminal 31 to the insulating thermally conductive element 1, and then through the insulating thermally conductive element 1 to the NTC thermistor 2. The NTC thermistor 2 performs temperature detection, and the detection signal is finally transmitted to an external temperature control module or temperature controller via the ribbon cable 4.
[0042] In one embodiment, such as Figure 5 As shown, the heat-conducting terminal 31 includes a heat-conducting contact portion 311 and a heat-conducting connection portion 312 connected to the heat-conducting contact portion 311. The heat-conducting cover plate 32 is installed on the heat-conducting connection portion 312. The ribbon cable 4 can be clamped between the heat-conducting connection portion 312 and the heat-conducting cover plate 32 to realize the installation of the ribbon cable 4.
[0043] The thermally conductive contact portion 311 can contact the object to be tested, and the insulating thermally conductive component 1 contacts the thermally conductive connection portion 312 to achieve heat transfer. It can be understood that the heat from the object to be tested will be transferred sequentially through the thermally conductive contact portion 311, the thermally conductive connection portion 312, and the insulating thermally conductive component 1 to the NTC thermistor 2, where the NTC thermistor 2 will perform temperature detection.
[0044] In one embodiment, such as Figure 5 and Figure 6 As shown, the heat-conducting connection part 312 is provided with a first snap-fit part 313, and the heat-conducting cover plate 32 is provided with a second snap-fit part 321. The first snap-fit part 313 can snap-fit with the second snap-fit part 321, thereby realizing the installation connection between the heat-conducting terminal 31 and the heat-conducting cover plate 32, and at the same time, the ribbon cable 4 can be clamped between the heat-conducting terminal 31 and the heat-conducting cover plate 32.
[0045] In one embodiment, such as Figure 5 and Figure 6 As shown, the thermally conductive connection portion 312 includes a base plate 3121, a first side plate 3122, and a second side plate 3123. The base plate 3121 is connected to the conductive contact portion 311. The first side plate 3121 and the second side plate 3123 are respectively connected to opposite sides of the base plate 3121 to form the thermally conductive connection portion 312 of the thermally conductive terminal 31. Preferably, the first side plate 3122 and the second side plate 3123 are perpendicular to the base plate 3121, that is, the first side plate 3122 and the second side plate 3123 are parallel to each other, so as to facilitate the connection between the thermally conductive terminal 31 and the thermally conductive cover plate 32. Further, the first snap-fit portion 313 includes a first snap-fit block 3131 disposed on the first side plate 3122 and a second snap-fit block 3132 disposed on the second side plate 3123.
[0046] The heat-conducting cover plate 32 includes a top plate 322, a third side plate 323, and a fourth side plate 324. The third side plate 323 and the fourth side plate 324 are respectively connected to opposite sides of the top plate 322 to form the heat-conducting cover plate 32. Preferably, the third side plate 323 and the fourth side plate 324 are perpendicular to the top plate 322, that is, the third side plate 323 and the fourth side plate 324 are parallel to each other, so as to facilitate the connection between the heat-conducting cover plate 32 and the heat-conducting terminal 31. Further, the second snap-fit portion 321 includes a first snap-fit hole 3211 provided on the third side plate 323 and a second snap-fit hole 3212 provided on the fourth side plate 324.
[0047] The first snap-fit block 3131 can snap into the first snap-fit hole 3211, and the second snap-fit block 3132 can snap into the second snap-fit hole 3212, thereby snapping the first side plate 3122 into the third side plate 323 and the second side plate 3123 into the fourth side plate 324, so as to connect the heat-conducting terminal 31 and the heat-conducting cover plate 32 from both sides, thereby enhancing the stability of the connection between the two and preventing the ribbon cable 4 from coming off the heat-conducting housing 3 due to unstable connection, that is, preventing the ribbon cable 4 from coming off the heat-conducting terminal 31 or the heat-conducting cover plate 32.
[0048] In one embodiment, such as Figure 5 and Figure 6 As shown, the first side plate 3122, the second side plate 3123, the third side plate 323 and the fourth side plate 324 extend in the same direction, and all extend in the same direction as the ribbon cable 4, so as to limit the ribbon cable 4 in a direction perpendicular to the ribbon cable 4 and ensure connection stability.
[0049] In one embodiment, such as Figures 1 to 6 As shown, multiple first latching blocks 3131 and multiple second latching blocks 3132 can be provided, and correspondingly, multiple first latching holes 3211 and multiple second latching holes 3212 can also be provided. Specifically, the number of first latching holes 3211 should be the same as the number of first latching blocks 3131, and they should be set in a one-to-one correspondence. The number of second latching holes 3212 should be the same as the number of second latching blocks 3132, and they should be set in a one-to-one correspondence. By providing multiple first latching blocks, multiple second latching blocks 3132, multiple first latching holes 3211, and multiple second latching holes 3212, the connection stability between the heat-conducting terminal 31 and the heat-conducting cover plate 32 is enhanced.
[0050] In one embodiment, such as Figures 1 to 6 As shown, a protrusion 3124 is formed on the side of the thermally conductive connection portion 312 facing the thermally conductive cover plate 32, and the ribbon cable 4 can be clamped between the protrusion 3124 and the thermally conductive cover plate 32. Specifically, the protrusion 3124 can be provided on the side of the base plate 3121 facing the thermally conductive cover plate 32.
[0051] By utilizing the protrusion 3124, the ribbon cable 4 is physically raised, creating a gap between the ribbon cable 4 and the heat-conducting terminal 31, thereby achieving initial insulation between the NTC thermistor 2 and the heat-conducting terminal 31.
[0052] In one embodiment, such as Figures 1 to 6As shown, the protrusion 3124 has a horizontal top surface on the side near the heat-conducting cover plate 32. The horizontal top surface can contact the ribbon cable 4, thereby making the ribbon cable 4 more stable and ensuring the gap width between the ribbon cable 4 and the heat-conducting terminal 31.
[0053] Furthermore, the protrusion 3124 also has an arc-shaped side surface that is in contact with the horizontal top surface and located on the side of the horizontal top surface facing away from the heat-conducting cover plate 32. The position where the arc-shaped side surface is in contact with the horizontal top surface forms an arc-shaped connecting surface. By forming the arc-shaped connecting surface around the periphery of the horizontal top surface, the friction between the protrusion 3124 and the ribbon cable 4 is reduced, thereby reducing wear.
[0054] Preferably, the protrusion 3124 can be a dot-like structure or a block-like structure. Understandably, the shape of the protrusion 3124 can be adjusted according to actual needs, and its specific shape is not limited herein.
[0055] In one embodiment, such as Figure 5 As shown, multiple protrusions 3124 are provided, and the multiple protrusions 3124 are arranged along the extension direction of the ribbon cable 4. By providing multiple protrusions 3124, the ribbon cable 4 is made more stable, ensuring that the gap width between the ribbon cable 4 and the heat-conducting terminal 31 remains stable.
[0056] In one embodiment, such as Figures 1 to 6 As shown, the thermally conductive terminal 31 is a nickel sheet terminal, the thermally conductive cover plate 32 is a nickel sheet cover, and the insulating thermally conductive component 1 is an insulating thermally conductive adhesive. By using nickel-made terminals and cover plates, and further insulating and sealing with insulating thermally conductive adhesive, the thermal insulation performance is improved, making the temperature detection results more accurate.
[0057] In one embodiment, such as Figures 1 to 6 As shown, the ribbon cable 4 includes a first conductor 41, a second conductor 42, and an insulating layer 43 covering the first conductor 41 and the second conductor 42. The first conductor 41 and the second conductor 42 are insulated from each other. The insulating layer 43 is installed on the heat-conducting housing 33. The first end of the first conductor 41 and the first end of the second conductor 42 are exposed on the heat-conducting housing 3 and neither of them is in contact with the heat-conducting housing 3.
[0058] The first end of the first conductor 41 and the first end of the second conductor 42 are respectively electrically connected to the NTC thermistor 2. The insulating heat-conducting component 1 covers the first end of the first conductor 41, the first end of the second conductor 42 and the NTC thermistor 2, thereby achieving the covering of the ribbon cable 4 and the NTC thermistor 2 by the insulating heat-conducting component 1.
[0059] In one embodiment, such as Figures 1 to 6 As shown, the NTC thermistor 2 is provided with a first electrical connection terminal and a second electrical connection terminal. When the NTC thermistor 2 is electrically connected to the ribbon cable 4, the first conductor 41 can be electrically connected to the first electrical connection terminal, and the second conductor 42 can be electrically connected to the second electrical connection terminal to form a complete temperature sensing circuit.
[0060] In the embodiments of the present invention, the uses of each structure are as follows:
[0061] (1) Cable 4: transmits the corresponding current of the temperature sensed by the NTC thermistor 2 back to the temperature control module (such as the control unit or controller).
[0062] (2) Heat-conducting cover plate 32 (nickel sheet cover): It works with heat-conducting terminal 31 (nickel sheet terminal) to fix the position of the ribbon cable 4.
[0063] (3) NTC thermistor 2: collects the real-time temperature of the heat-conducting terminal 31 and transmits it back to the temperature control module through the ribbon cable 4.
[0064] (4) Insulating and heat-conducting components: Insulate the NTC thermistor 2 and the ribbon cable 4.
[0065] (5) Thermally conductive terminal 31 (nickel sheet terminal): It makes contact and fixes with the object being measured, and then uses the high thermal conductivity of the nickel sheet to transfer heat to the NTC thermistor 2.
[0066] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0067] The above embodiments merely illustrate preferred implementations of the present invention, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the protection scope of the present invention. Therefore, the protection scope of this invention should be determined by the appended claims.
Claims
1. A temperature sensing module, characterized in that: The device includes an insulating thermally conductive component, an NTC thermistor, a thermally conductive housing, and a ribbon cable. The ribbon cable is mounted on the thermally conductive housing, with a first end extending out of the thermally conductive housing and not in conductive contact with it. The first end of the ribbon cable is electrically connected to the NTC thermistor. The insulating thermally conductive component covers the first end of the ribbon cable and the NTC thermistor, and is in contact with the thermally conductive housing. The heat-conducting housing is in contact with the object to be tested, and the second end of the ribbon cable extends out of the heat-conducting housing and is electrically connected to a temperature control module. The heat-conducting housing includes heat-conducting terminals and a heat-conducting cover plate. The heat-conducting terminals include a heat-conducting contact portion and a heat-conducting connection portion connected to the heat-conducting contact portion. A protrusion is formed on the side of the heat-conducting connection portion facing the heat-conducting cover plate. The ribbon cable is clamped between the protrusion and the heat-conducting cover plate. A horizontal top surface is formed on the side of the protrusion near the heat-conducting cover plate. The horizontal top surface is in contact with the ribbon cable. An arc-shaped side surface is also formed on the protrusion, which is connected to the horizontal top surface and located on the side of the horizontal top surface facing away from the heat-conducting cover plate. The thermally conductive connection portion includes a base plate, a first side plate, and a second side plate. The base plate is in contact with the thermally conductive contact portion, and the first side plate and the second side plate are respectively connected to opposite sides of the base plate to form the thermally conductive connection portion of the thermally conductive terminal. The heat-conducting cover plate includes a top plate, a third side plate, and a fourth side plate. The third side plate and the fourth side plate are respectively connected to the opposite sides of the top plate to form the heat-conducting cover plate. The heat-conducting connection part is provided with a first snap-fit part, and the heat-conducting cover plate is provided with a second snap-fit part, and the first snap-fit part snaps with the second snap-fit part; The first snap-fit portion includes a first snap-fit block disposed on the first side plate and a second snap-fit block disposed on the second side plate; the second snap-fit portion includes a first snap-fit hole disposed on the third side plate and a second snap-fit hole disposed on the fourth side plate; the first snap-fit block snaps into the first snap-fit hole and the second snap-fit block snaps into the second snap-fit hole, thereby snapping the first side plate into the third side plate and the second side plate into the fourth side plate.
2. The temperature sensing module according to claim 1, characterized in that: The heat-conducting cover plate is installed on the heat-conducting terminal, and the ribbon cable is clamped between the heat-conducting terminal and the heat-conducting cover plate; The thermally conductive terminal is in contact with the object under test, and the insulating thermally conductive component is in contact with the thermally conductive terminal.
3. The temperature sensing module according to claim 2, characterized in that: The heat-conducting cover plate is installed on the heat-conducting connection part, and the ribbon cable is clamped between the heat-conducting connection part and the heat-conducting cover plate; The thermally conductive contact portion contacts the object to be tested, and the insulating thermally conductive component contacts the thermally conductive connection portion.
4. The temperature sensing module according to claim 2, characterized in that: The protrusions are provided in multiple ways, and the multiple protrusions are arranged along the extension direction of the ribbon cable.
5. The temperature sensing module according to claim 2, characterized in that: The heat-conducting terminal is a nickel sheet terminal, and the heat-conducting cover is a nickel sheet cover.
6. The temperature sensing module according to claim 1, characterized in that: The cable includes a first conductor, a second conductor, and an insulating layer covering the first conductor and the second conductor. The first conductor and the second conductor are insulated from each other. The insulating layer is installed on the heat-conducting housing. The first end of the first conductor and the first end of the second conductor are exposed outside the heat-conducting housing and do not contact the heat-conducting housing. The first end of the first conductor and the first end of the second conductor are respectively electrically connected to the NTC thermistor, and the insulating thermally conductive component covers the first end of the first conductor, the first end of the second conductor, and the NTC thermistor.
7. The temperature sensing module according to claim 6, characterized in that: The NTC thermistor is provided with a first electrical connection terminal and a second electrical connection terminal. The first conductor is electrically connected to the first electrical connection terminal, and the second conductor is electrically connected to the second electrical connection terminal.
8. The temperature sensing module according to claim 1, characterized in that: The insulating and thermally conductive component is an insulating and thermally conductive adhesive.
Citation Information
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