Fascia gun with self-adaptive adjustment of hot compress function and massage function
By introducing an MCU and current and temperature sampling modules into the massage device, and using a configuration table of motor current and heat therapy temperature, the massage intensity and heat therapy temperature can be adaptively adjusted. This solves the problem that existing massage devices cannot automatically adjust, improves intelligence and safety, and reduces costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHUHAI YUNMAI TECH CO LTD
- Filing Date
- 2025-02-10
- Publication Date
- 2026-04-10
AI Technical Summary
Existing massage devices cannot accurately identify users' actual needs, nor can they automatically adjust massage intensity and heat temperature, posing safety and reliability issues. Furthermore, sensor technology is complex and expensive, making it difficult to popularize.
It employs an MCU, a motor current sampling module, and a heat therapy temperature sampling module. By using a configuration table that corresponds motor current to heat therapy temperature, it achieves adaptive adjustment of massage intensity and heat therapy temperature, and uses the MCU for intelligent control.
It enables intelligent adjustment of massage devices, improves massage effect and safety, reduces costs, and overcomes the complexity and high cost of sensor technology.
Smart Images

Figure CN224099668U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to massage equipment technical field, concretely relates to the hot compress function and the massage function self -adaptation adjustment's fascia gun. BACKGROUND
[0002] With the development of science and technology and the improvement of people's living standards, massage equipment has gradually entered people's daily life and become an indispensable part of people's daily life. Massage equipment helps people relax muscles, relieve fatigue, improve blood circulation and improve physical fitness by simulating manual massage. At the same time, with the continuous development of intelligent control technology and hot compress device technology, massage equipment is gradually developing towards intelligence and multifunction.
[0003] The existing massage equipment mainly massages through motor driving mechanical structure, and the massage strength and hot compress temperature are adjusted manually, and the temperature adjustment has small gear, that is, the temperature change interval is limited, the user's hot compress experience is poor, and some massage equipment will break the hot compress action control every time the massage strength is adjusted. Although this adjustment method is simple, it is not intelligent enough to automatically adjust according to the actual needs of the user, and it cannot guarantee the massage effect and safety. In addition, some massage equipment also uses sensor technology to identify the change of massage strength and hot compress temperature, but these sensor technologies are often complex and expensive, which is difficult to popularize.
[0004] It can be seen that the existing massage equipment has many problems in intelligence and multifunction. First of all, the existing massage equipment cannot accurately identify the actual needs of the user, cannot automatically adjust the massage strength and hot compress temperature, and leads to poor massage effect. Secondly, the existing massage equipment also has problems in safety and reliability. If the massage strength and hot compress temperature are too high, it is easy to cause harm to the user. In addition, although the existing sensor technology can identify the change of massage strength and hot compress temperature, the use of sensor technology is complex and expensive, which is difficult to popularize.
[0005] Therefore, it is necessary to provide a simple, intelligent and low-cost massage equipment to better meet the needs of users. UTILITY MODEL CONTENT
[0006] The technical problem to be solved by the utility model is to provide a hot compress function and massage function self-adaptive adjustment fascia gun, which has the characteristics of simple structure, low cost and more intelligent.
[0007] In order to solve the above technical problems, the utility model adopts the technical scheme of:
[0008] The muscle fascia gun with self-adaptive adjustment of hot compress function and massage function comprises an MCU, a motor, a motor current sampling module, a hot compress circuit and a hot compress temperature sampling module; the motor current and the hot compress temperature corresponding configuration table are stored in the MCU;
[0009] The motor is connected with the MCU via the motor current sampling module; the hot compress circuit is connected with the MCU via the hot compress temperature sampling module.
[0010] Optionally, the motor current sampling module comprises a voltage division sampling resistor and an operational amplifier;
[0011] The motor is connected with the input end of the operational amplifier via the voltage division sampling resistor; the output end of the operational amplifier is connected with the MCU.
[0012] Optionally, the motor current sampling module further comprises a resistor R52, a resistor R77 and a resistor R78;
[0013] One end of the voltage division sampling resistor is connected with one end of the motor and the resistor R52 respectively, and the other end thereof is connected with a ground end and one end of the resistor R77 respectively; the other end of the resistor R52 is connected with the non-inverting input end of the operational amplifier; the other end of the resistor R77 is connected with the inverting input end of the operational amplifier; the inverting input end of the operational amplifier is connected with the output end of the operational amplifier via the resistor R78.
[0014] Optionally, the motor current sampling module further comprises a resistor R57 and a capacitor C21;
[0015] One end of the resistor R57 is connected with the output end of the operational amplifier, and the other end thereof is connected with the MCU and grounded via the capacitor C21 respectively.
[0016] Optionally, the hot compress temperature sampling module comprises a resistor R6 and a resistor R5;
[0017] The hot compress circuit is grounded via the series-connected resistor R6 and resistor R5; the temperature sampling IO port of the MCU is connected to the connecting line between the resistor R6 and the resistor R5.
[0018] Optionally, the hot compress temperature sampling module is a temperature sensor.
[0019] The utility model discloses a beneficial effect lies in: the utility model discloses the fascia gun, its MCU can be according to current motor current value that motor current sampling module gathers, through inquiring the prestorage motor current and hot compress temperature corresponding configuration table, determines the hot compress temperature corresponding to it, and adjusts the hot compress temperature of hot compress circuit according to this, until the hot compress temperature reaches the expectation through the hot compress temperature sampling module. Visible, the utility model discloses the fascia gun has the function of the automatic adjustment hot compress temperature according to current massage strength, can realize the intelligent regulation and control of hot compress temperature, thereby improve the intelligent degree of fascia gun, can better satisfy the user demand, and optimize the massage effect, in addition, compared with through sensor technology realizes, the utility model still has the characteristics of low cost. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is a structure schematic diagram of the fascia gun of hot compress function and massage function self -adaptation adjustment for the utility model embodiment one provides;
[0021] Figure 2 It is an example of the corresponding configuration table of motor current-motor strength-hot compress temperature in the utility model embodiment one;
[0022] Figure 3 It is a structure schematic diagram of the fascia gun of hot compress function and massage function self -adaptation adjustment for the utility model specific implementation;
[0023] Figure 4 It is the circuit structure schematic diagram of motor current sampling module in the utility model embodiment two;
[0024] Figure 5 It is the circuit structure schematic diagram of hot compress temperature sampling module in the utility model embodiment two.
[0025] Label explanation:
[0026] 1, motor;11, motor current sampling module;
[0027] 2, hot compress circuit;22, hot compress temperature sampling module;
[0028] 3, power supply module. DETAILED DESCRIPTION
[0029] In order to explain the possible application scene, technical principle, the specific scheme that can be implemented of the utility model in detail, can realize the purpose and effect etc., the following is in conjunction with the specific embodiment listed and cooperates with the drawing detailedly explained. The embodiment recorded in this paper is only used for more clearly explaining the technical scheme of the utility model, therefore only as an example, and can not be used to limit the protection scope of the utility model.
[0030] The term "embodiment" is mentioned in this document means that the specific features, structures or properties described in combination with the embodiment can be included in at least one embodiment of the present application. The term "embodiment" appearing in various places in the specification does not necessarily refer to the same embodiment, nor does it particularly limit its independence or association with other embodiments. In principle, in this application, as long as there is no technical contradiction or conflict, each technical feature mentioned in each embodiment can be combined in any way to form a corresponding implementable technical solution.
[0031] Unless otherwise defined, the meanings of the technical terms used herein are the same as those commonly understood by those skilled in the art to which the present application belongs; the use of related terms in this document is only for the purpose of describing specific embodiments, and is not intended to limit the present application.
[0032] In the description of the present application, the phrase "and / or" is a description of the logical relationship between the objects, which means that there can be three relationships, for example, A and / or B, which means that there are three cases: A exists, B exists, and A and B exist at the same time. In addition, the character " / " in this document generally represents a "or" logical relationship between the associated objects before and after.
[0033] In the present application, phrases such as "first" and "second" are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual quantity, primary or secondary, or order relationship between the entities or operations.
[0034] Without more limitations, in the present application, the use of "includes", "contains", "has" or other similar expressions in the sentence is intended to cover non-exclusive inclusion, and these expressions do not exclude the presence of other elements in the process, method or product including the described elements, so that the process, method or product including a series of elements can not only include those limited elements, but also include other elements not explicitly listed, or also include elements inherent to such process, method or product.
[0035] As understood in the "Guidelines for Examination", in the present application, "greater than", "less than", "exceeding" and the like are understood as not including the number; "above", "below", "within" and the like are understood as including the number. In addition, in the description of the embodiments of the present application, the meaning of "multiple" is more than two (including two), and similar expressions related to "multiple" are also understood in this way, for example, "multiple groups", "multiple times" and the like, unless otherwise explicitly limited.
[0036] In the description of the embodiments of the utility model, the space related expressions used, such as '' center '' '' longitudinal '' '' transverse '' '' length '' '' width '' '' thickness '' '' upper '' '' lower '' '' front '' '' rear '' '' left '' '' right '' '' vertical '' '' horizontal '' '' vertical '' '' top '' '' bottom '' '' inner '' '' outer '' '' clockwise '' '' counterclockwise '' '' axial '' '' radial '' '' circumferential '' and the like, the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the specific embodiment or the drawing, only for the convenience of describing the specific embodiment of the utility model or for the convenience of the reader to understand, and not indicate or imply that the indicated device or component must have a specific position, a specific orientation, or be constructed or operated in a specific orientation, therefore, it cannot be understood as a limitation on the embodiments of the utility model.
[0037] Unless otherwise expressly provided or limited, in the description of the embodiments of the utility model, the terms such as '' installation '' '' connection '' '' connection '' '' fixation '' '' setting '' should be understood broadly.For example, the '' connection '' can be fixed connection, or detachable connection, or integrated setting, which can be mechanical connection, or electrical connection, or communication connection, which can be directly connected, or indirectly connected through intermediate medium, which can be the communication or interaction relationship between two elements.For the skilled in the art to which the utility model belongs, the specific meaning of the above terms in the embodiments of the utility model can be understood according to the specific circumstances.
[0038] Please refer to Figures 1 to 3 , the embodiment of the utility model is:
[0039] The embodiment provides a kind of self-adaptive adjustment of hot compress function and massage function fascia gun, as Figure 1 It is shown that it comprises: MCU, motor 1, motor current sampling module 11, hot compress circuit 2 and hot compress temperature sampling module 22;The MCU has motor current and hot compress temperature corresponding configuration table stored in it;
[0040] The motor 1 is connected with the MCU via the motor current sampling module 11;The hot compress circuit 2 is connected with the MCU via the hot compress temperature sampling module 22.
[0041] In the embodiment, the motor current and hot compress temperature corresponding configuration table refers to the corresponding relationship table of motor current and hot compress temperature.It can be understood that the size of motor current directly affects the torque and speed of motor, so as to determine the massage (also can be understood as motor) strength and speed.I.e., motor current and motor strength (i.e., also can be understood as massage strength) have direct corresponding relationship, and ideal corresponding relationship between massage strength and hot compress temperature suitable for most people can be obtained according to experimental data or research data and the like big data.Thus, ideal corresponding relationship between motor current and hot compress temperature can be obtained.
[0042] It can also be understood that a slight change in motor current is not enough for the user to feel a significant massage intensity, and the massage intensity is often provided to the user in the form of interval gears for selection. Therefore, for the fascia gun, a certain interval range of motor current is usually corresponded to a massage intensity. For example, 1A-1.5A of motor current corresponds to the first gear massage intensity. Since the massage intensity and the hot compress temperature usually also adopt a one-to-one correspondence. Therefore, the pre-set motor current and hot compress temperature corresponding configuration table in the embodiment adopts a corresponding relationship that a certain interval range of motor current corresponds to a hot compress temperature.
[0043] In some specific embodiments, a configuration table constituted by the corresponding relationship between the motor current and the hot compress temperature can be directly established according to the corresponding relationship of the motor current-motor intensity-hot compress temperature. Thus, for the MCU, only one corresponding relationship needs to be queried in the table lookup process to determine the hot compress temperature corresponding to the currently received motor current. The motor current and hot compress temperature corresponding configuration table obtained based on this specific embodiment has the advantage of higher table lookup efficiency.
[0044] In still some specific embodiments, a configuration table of the corresponding relationship among the motor current-motor intensity-hot compress temperature can also be established according to the corresponding relationship of the motor current-motor intensity-hot compress temperature. Thus, for the MCU, in the table lookup process, the motor intensity corresponding to the current motor current needs to be determined first through the corresponding relationship between the "motor current-motor intensity", and then the corresponding hot compress temperature is determined through the corresponding relationship between the "motor intensity-hot compress temperature". The motor current and hot compress temperature corresponding configuration table obtained based on this specific embodiment has the advantages of complete corresponding relationship and convenient tracing.
[0045] As a specific example of the above specific embodiments, the corresponding relationship between the motor current and the actually measured motor intensity can be established by sampling the motor current. Of course, this corresponding relationship can also directly adopt the corresponding relationship of the motor current and the motor intensity established in the development and design stage of the fascia gun. Then, by configuring the hot compress temperature suitable for different motor intensities, the corresponding configuration table of the motor current-motor intensity-hot compress temperature can be obtained, or the corresponding configuration table of the motor current-hot compress temperature can be further simplified. For example, Figure 2 As shown, it is an example of the corresponding configuration table of the motor current-motor intensity-hot compress temperature. It can be known that the corresponding configuration table is set to different temperature intervals or gear intervals by subdividing the motor intensity and the hot compress temperature and by association. Figure 2
[0046] In still some specific embodiments of the embodiment, as Figure 3 As shown, the fascia gun further comprises a power supply module 3 connected with the motor 1 and the hot compress circuit 2 respectively.
[0047] In the embodiment, the motor is used to drive the massage head to move, and the motor force is determined.
[0048] The motor current sampling module is used to collect the locked-rotor current value of the motor and send it to the MCU.
[0049] The hot compress temperature sampling module is used to collect the hot compress temperature output by the hot compress circuit and send it to the MCU.
[0050] The MCU is used to refer to the motor current and hot compress temperature corresponding configuration table, determine the hot compress temperature corresponding to the current received motor current, and adjust the hot compress temperature output by the hot compress circuit accordingly until the hot compress temperature sent by the hot compress temperature sampling module determines that the current hot compress temperature reaches the expectation.
[0051] The embodiment provides a hot compress function and massage function adaptive adjustment fascia gun, please combine Figure 3 for understanding, its working principle is:
[0052] During the use of the fascia gun, the motor current sampling module collects the current current value of the motor in real time and sends it to the MCU; if the hot compress function is turned on, the hot compress temperature sampling module also collects the current hot compress temperature of the hot compress circuit in real time and sends it to the MCU; the MCU will determine the hot compress temperature corresponding to the current current value by querying the pre-stored motor current and hot compress temperature corresponding configuration table (hereinafter referred to as configuration table) according to the received current current value, and judge whether the current hot compress temperature received and the hot compress temperature determined by the table are consistent; if they are consistent, no operation is performed; if they are not consistent, the hot compress circuit is regulated according to the hot compress temperature determined by the table, until the current hot compress temperature received and the hot compress temperature determined by the table are consistent.
[0053] From the above, the embodiment provides a hot compress function and massage function adaptive adjustment fascia gun, which can realize intelligent control of hot compress massage temperature, simplify operation, improve the massage intelligent degree of the fascia gun, and has the characteristics of low cost and simple structure. In particular, compared with the existing fascia gun with hot compress function, the following advantages are obtained:
[0054] (1) Overcome the problem that the existing massage machine cannot accurately identify the actual needs of the user and cannot automatically adjust the massage force and hot compress temperature, and improve the massage effect;
[0055] (2) Overcome the existing massage machine in the safety and reliability problems, can effectively avoid massage force too big and hot compress temperature too high may cause harm to the user, the embodiment increases the use safety;
[0056] (3) Overcome the existing massage machine support adjustment hot compress position is less, limit temperature change interval problem, the embodiment corresponding each massage force is configured with the hot compress temperature that adapts, can provide greater temperature change interval;
[0057] (4) Overcome the problem of complex and high cost brought by sensor technology, the embodiment realizes automatic adjustment by sampling motor locked-rotor current and MCU recognition and regulation, reduces the cost.
[0058] Please refer to Figure 4 and Figure 5 , the embodiment two of the utility model is:
[0059] The embodiment is based on embodiment one to make further extension, and the internal structure of the fascia gun is specifically refined.
[0060] In the embodiment, as Figure 4 Indicated, the motor current sampling module includes a voltage dividing sampling resistor R76 and an operational amplifier U11;The motor is connected with the input end of the operational amplifier U11 via the voltage dividing sampling resistor R76;The output end of the operational amplifier U11 is connected with the MCU.
[0061] Here, by connecting a voltage dividing sampling resistor R76 to the negative end U1 of the motor for voltage dividing sampling, and then connecting an operational amplifier U11, the locked-rotor current value of the negative end U1 of the motor is sampled.
[0062] In still some specific embodiments, as Figure 4 Indicated, the motor current sampling module further includes a resistor R52, a resistor R77 and a resistor R78;One end of the voltage dividing sampling resistor R76 is connected with the negative end U1 of the motor and one end of the resistor R52 respectively, and the other end is connected with the ground end and one end of the resistor R77 respectively;The other end of the resistor R52 is connected with the non-inverting input end (1 pin) of the operational amplifier U11;The other end of the resistor R77 is connected with the inverting input end (3 pin) of the operational amplifier U11;The inverting input end (3 pin) of the operational amplifier U11 is also connected with the output end (4 pin) of the operational amplifier U11 via the resistor R78. Figure 4 Figure 4 Figure 4 Figure 4
[0063] Here, by connecting resistors R52 and R77 before the input of operational amplifier U11, the voltage across the voltage divider sampling resistor R76 can be amplified. Resistor R78 serves to reduce output offset voltage, improve circuit tracking accuracy, and enhance common-mode rejection ratio.
[0064] In this embodiment, the amplification factor A of the operational amplifier U11 is A = R78 / R52. Preferably, R52 = R77.
[0065] In some specific implementations, such as Figure 4 As shown, the motor current sampling module also includes a resistor R57 and a capacitor C21; one end of the resistor R57 is connected to the output terminal of the operational amplifier, and the other end is connected to the MCU and grounded via the capacitor C21.
[0066] Here, resistor R57 and capacitor C21 mainly serve as feedback mechanisms, suppress parasitic oscillations, and filter the output. To a certain extent, they can improve the output accuracy and stability of the operational amplifier.
[0067] In some specific implementations, such as Figure 4 As shown, the motor current sampling module further includes resistors R20 and R35; the non-inverting input terminal of the operational amplifier U11 is also connected to the power supply module U3 via resistor R35; the non-inverting input terminal of the operational amplifier U11 is also grounded via resistor R35. Preferably, R20 = R35 = 2 * R78.
[0068] In this embodiment, the motor current sampling module obtains the motor current based on the motor current I = (U3 - U2) / (A * R76). Where U3 is the voltage output by the power supply module; U2 is the voltage output by operational amplifier U11; A is the amplification factor of operational amplifier U11; and R76 is the voltage divider sampling resistor.
[0069] In this embodiment, as Figure 5 As shown, the hot compress temperature sampling module includes resistors R6 and R5; the output terminal VDD of the hot compress circuit is grounded via resistors R6 and R5 connected in series; the MCU performs ADC sampling through the temperature sampling IO port connected to the connection line between resistors R6 and R5 to obtain the hot compress temperature value.
[0070] Here, resistor R6 is configured as a voltage divider resistor; resistor R5 is configured as an NTC sampling resistor.
[0071] In some embodiments, the hot compress temperature sampling module can also be directly implemented using a temperature sensor, that is, the hot compress circuit is connected with the MCU through a temperature sensor.
[0072] Based on any of the above embodiments, the utility model also provides a specific application scenario:
[0073] When the fascia gun is working, the MCU reads the current current value of the motor, and determines the motor strength corresponding to the current current value through the pre-stored configuration table, to identify the current massage strength value N0.
[0074] When the hot compress function is turned on, the MCU reads the current temperature T0 output by the hot compress circuit through the hot compress head.
[0075] When the massage strength of the fascia gun changes, the motor current changes accordingly; the MCU identifies that the massage strength value N0 changes to N1 by collecting the current current value of the motor; the MCU determines that the hot compress temperature value corresponding to the massage strength N1 is T1 according to the configuration table; and the MCU adjusts the hot compress temperature to reach T1.
[0076] In summary, the utility model provides a fascia gun with self-adaptive adjustment of hot compress function and massage function, which has the following advantages:
[0077] 1. High degree of intelligence: the utility model can automatically adjust the corresponding relationship between the massage strength and the hot compress temperature by identifying the motor locked-rotor current, meets the actual needs of users, and improves the massage effect; meanwhile, the utility model also has an intelligent control function, can automatically detect the changes of the massage strength and the hot compress temperature, and guarantees the massage effect and safety.
[0078] 2. Low cost: the implementation of the utility model does not require complex circuits and control algorithms, reduces the production cost, and makes the fascia gun of the utility model more economical and practical, and easy to popularize.
[0079] 3. High safety: the utility model can monitor the changes of the massage strength and the hot compress temperature in real time by identifying the motor locked-rotor current, that is, it is convenient to find abnormal conditions, and massage is stopped in time, so that damage to users is avoided.
[0080] The above only describes the embodiments of the utility model, and does not limit the patent range of the utility model, and any equivalent transformation or direct or indirect application in related technical fields based on the contents of the utility model specification and drawings is also included in the patent protection range of the utility model.
Claims
1. A fascia gun with adaptive adjustment of hot compress function and massage function, characterized in that, The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit.
2. The self-adaptive adjusting fascia gun with hot compress and massage functions according to claim 1, characterized in that, The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit.
3. The self-adaptive adjusting fascia gun with hot compress and massage functions according to claim 2, characterized in that, The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit.
4. The self-adaptive adjusting fascia gun with hot compress and massage functions according to claim 3, characterized in that, The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit.
5. The self-adaptive adjustment of hot compress and massage function fascia gun according to claim 1, wherein, The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit.
6. The self-adaptive adjustment of hot compress and massage function fascia gun according to claim 1, wherein, The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit. The application relates to a temperature sampling module for a hot compress circuit.