Neck physiotherapy equipment and physiotherapy control device and method thereof

By using flexible plates and electrode sheets in neck red light treatment equipment, combined with temperature detection and control modules, the problem of poor equipment thickness and physiotherapy effect is solved, and thinner and safe physiotherapy effect is improved.

CN120114768BActive Publication Date: 2025-08-12E SHINE SYST LTD
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Patent Information

Application Number
CN202510601591.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-12
Publication Date
2025-08-12
Estimated Expiration
2045-05-12

AI Technical Summary

Technical Problem

The existing red light treatment equipment on the neck is too thick, making it difficult to fit the user's neck. The light conduction distance is too long and causes energy loss, poor physical therapy effect, and low user experience.

Method used

The flexible plate and electrode plate design is adopted. The lamp group is set on the inside of the flexible plate and the electrode plate is set on the center area outside the flexible plate. Combined with the temperature detection module and the control module, dynamic current regulation and lamp group control are realized to ensure that the heating temperature is within a safe range.

Benefits of technology

It reduces the thickness of neck physiotherapy equipment, improves the physiotherapy effect, increases the physical therapy area, ensures user safety, and improves user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application discloses a neck physiotherapy device and its physiotherapy control device and method, which relate to the field of human body physiotherapy technology. The method includes: the physiotherapy control device includes a control module, an electrode sheet, a flexible board, a lamp group, a power supply, and a temperature detection module. The electrode sheet, the lamp group, the power supply, and the temperature detection module are all connected to the control module. The lamp group is arranged on the inner side of the flexible board, and the electrode sheet is arranged on the outer side of the flexible board. The temperature detection module is used to detect the heating temperature of the electrode sheet, and the electrode sheet is used to generate heat. The control module is used to reduce the current of the electrode sheet when it detects that the heating temperature is greater than a preset temperature threshold, and is also used to control the electrode sheet to stop generating heat and turn off the lamp group when it detects that the heating temperature is greater than a preset over-temperature threshold. The preset temperature threshold is less than the preset over-temperature threshold. The present application solves the technical problem of poor user experience caused by poor physiotherapy effect of neck physiotherapy equipment.
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Description

Technical Field

[0001] The embodiments of the present application relate to the field of human physiotherapy technology, and in particular to neck physiotherapy equipment and physiotherapy control devices and methods thereof. Background Art

[0002] Red light therapy lamps, which emit red light of a specific wavelength to the human body, are widely used in physical therapy, health care, and beauty. Their therapeutic mechanisms include promoting local blood circulation and accelerating tissue repair. In recent years, red light therapy devices for the neck have emerged to meet the needs of neck physical therapy.

[0003] However, the red light therapy devices currently used for the neck are usually thick. Neck therapy devices that are too thick are not only difficult to fit the user's neck, but also cause energy loss due to the long light transmission distance, resulting in poor therapy effects of the neck therapy devices, and thus a low user experience.

[0004] The above content is only used to assist in understanding the technical solutions of the embodiments of the present application and does not constitute an admission that the above content is prior art. Summary of the Invention

[0005] The main purpose of the embodiments of the present application is to provide a neck physiotherapy device and a physiotherapy control device and method thereof, aiming to solve the technical problem of low user experience caused by poor physiotherapy effect of the neck physiotherapy device.

[0006] To achieve the above objectives, an embodiment of the present application provides a physical therapy control device, comprising a control module, an electrode sheet, a flexible board, a lamp group, a power supply, and a temperature detection module, wherein the electrode sheet, the lamp group, the power supply, and the temperature detection module are all connected to the control module;

[0007] The power supply includes a first battery and a second battery, the lamp group is arranged on the inner side of the flexible board, the electrode sheet is arranged in a preset central area on the outer side of the flexible board, the temperature detection module is arranged on a side of the electrode sheet away from the flexible board, the first battery and the second battery are arranged on the outer side of the flexible board, the first battery is adjacent to the first end of the electrode sheet, and the second battery is adjacent to the second end of the electrode sheet;

[0008] The temperature detection module is used to detect the heating temperature of the electrode sheet, and the electrode sheet is used to generate heat;

[0009] The control module is used to reduce the current of the electrode sheet when it is detected that the heating temperature is greater than a preset temperature threshold, and is also used to control the electrode sheet to stop heating and turn off the lamp group when it is detected that the heating temperature is greater than a preset over-temperature threshold;

[0010] Wherein, the preset temperature threshold is less than the preset over-temperature threshold.

[0011] In one embodiment, the physical therapy control device further comprises a device top cover and a device bottom cover, and the first battery comprises a side cover battery and a top cover battery;

[0012] The device top cover includes a first side cover, a soft rubber semi-ring top cover, and a second side cover, wherein the first side cover is detachably connected to a first end of the soft rubber semi-ring top cover, and the second side cover is detachably connected to a second end of the soft rubber semi-ring top cover;

[0013] The device top cover and the outer side of the flexible plate are closed to form a cavity, and the inner side of the flexible plate is detachably connected to the device bottom cover;

[0014] The cavity includes a first inner cavity between the first side cover and the flexible plate, a second inner cavity between the soft rubber semi-ring top cover and the flexible plate, and a third inner cavity between the second side cover and the flexible plate;

[0015] The side cover battery is disposed in the first inner cavity, and the electrode sheet, the temperature detection module, the second battery, and the top cover battery are disposed in the second inner cavity. The first end of the top cover battery is adjacent to the first end of the electrode sheet, the second end of the top cover battery is adjacent to the side cover battery, and the second end of the electrode sheet is adjacent to the second battery.

[0016] A control module is disposed in the third inner cavity.

[0017] In one embodiment, the physiotherapy control device further comprises a touch screen, and the second side cover is provided with a screen installation window;

[0018] The touch screen is arranged on the screen installation window, and the touch screen is connected to the control module;

[0019] The control module is used to receive a dimming instruction triggered by a user on the touch screen, and adjust the luminous brightness of the lamp group according to the dimming instruction.

[0020] In addition, to achieve the above-mentioned purpose, this embodiment further provides a physical therapy control method, which includes:

[0021] receiving a dimming indication triggered by a user on a touch screen of the physiotherapy control device, and determining a dimming ratio from the dimming indication;

[0022] According to the dimming ratio, the current of the lamp group in the physiotherapy control device is adjusted to adjust the brightness of the lamp group.

[0023] In one embodiment, the physical therapy control method further includes:

[0024] receiving a temperature requirement indication triggered by a user on a touch screen, determining a required temperature from the temperature requirement indication, and using the sum of the required temperature and a preset non-sensing temperature as a target temperature, wherein the required temperature is less than a preset over-temperature threshold;

[0025] Obtaining a target preset current, and controlling the electrode sheet to be heated to a target temperature according to the target preset current;

[0026] Lowering the temperature based on the difference between the required temperature and the preset non-sensing temperature;

[0027] determining a ratio of the reduced temperature to the target temperature to obtain a temperature ratio, and performing a square root operation on the temperature ratio to obtain a reduction ratio;

[0028] taking the product of the reduction ratio and the target preset current as a target reduced current, and determining a reduction duration according to the target temperature, the reduced temperature, the target preset current, and the target reduced current;

[0029] When the temperature of the electrode sheet reaches the target temperature, controlling the current of the electrode sheet to decrease from the target preset current to the target reduced current within the reduction time period;

[0030] When the current of the electrode sheet is the target reduced current and / or the temperature of the electrode sheet is the reduced temperature, the current of the electrode sheet is restored to the target preset current within the preset recovery time, and when the temperature of the electrode sheet reaches the target temperature, the current of the electrode sheet is controlled to be reduced from the target preset current to the target reduced current within the reduction time, until a neck therapy off indication is received, and the electrode sheet is controlled to stop heating.

[0031] In one embodiment, the step of obtaining the target preset current includes:

[0032] Obtaining the current temperature of the electrode sheet and determining a plurality of preset currents;

[0033] Determining the heating time required for the electrode sheet to rise from the current temperature to the target temperature based on each of the preset currents;

[0034] For each of the preset currents, calculating the energy consumed by the electrode sheet when running at the preset current for the heating time;

[0035] For each of the preset currents, performing a weighted summation on the heating time and the energy corresponding to the preset current to obtain a heating weight;

[0036] The preset current with the minimum heating weight is determined among the preset currents as the target preset current.

[0037] In one embodiment, the step of determining the reduction duration according to the target temperature, the reduced temperature, the target preset current, and the target reduced current includes:

[0038] Taking the difference between the target temperature and the reduced temperature as the temperature difference, and calculating the product of the temperature difference and the obtained heat capacity of the electrode sheet to obtain the temperature heat capacity;

[0039] Acquiring an internal resistance of the electrode sheet, and determining a first heating power of the electrode sheet under the target preset current based on the internal resistance and the target preset current;

[0040] determining a second heating power of the electrode sheet under the target reduced current according to the internal resistance and the target reduced current;

[0041] Calculating the difference between the first heating power and the second heating power to obtain a power difference;

[0042] The ratio of the temperature heat capacity to the power difference is used as the reduction time.

[0043] In one embodiment, the physical therapy control method further includes:

[0044] Acquiring the ambient temperature, and when the ambient temperature is less than a preset low temperature threshold, if it is detected that the current time of the neck physiotherapy device reaches the predetermined advance start time, controlling the electrode sheet to heat to a preset suitable temperature according to a preset preheating current; or

[0045] If it is detected that the lamp group of the neck therapy device is turned on and there is no predetermined advance start time in the neck therapy device, the electrode sheet is controlled to be heated to a preset suitable temperature according to a preset maximum current, and when the heating temperature of the electrode sheet reaches the preset suitable temperature, a usage prompt is output to prompt the user that the temperature of the neck therapy device has reached the preset suitable temperature;

[0046] The predetermined early start time is the difference between the preset use time and the preset preheating time. The preset preheating time is the time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature when it operates at the preset preheating current.

[0047] In addition, to achieve the above-mentioned purpose, an embodiment of the present application also provides a physiotherapy device, which includes the physiotherapy control device as described above.

[0048] In addition, to achieve the above-mentioned purpose, an embodiment of the present application also provides a computer program product, including a computer program, which implements the steps of the above-mentioned physiotherapy control method when executed by a processor.

[0049] One or more technical solutions proposed in the embodiments of the present application have at least the following technical effects: This embodiment arranges a control module, an electrode sheet, a flexible board, a lamp group, a power supply and a temperature detection module in the physiotherapy control device, so that the lamp group can be arranged on the flexible board, and the flexible board can be bent, so that the neck physiotherapy device can be arranged around the neck, thereby facilitating the provision of more physiotherapy area for the user and improving the physiotherapy effect. Moreover, since the flexible board is much thinner than the glass fiber epoxy resin copper clad board (the lamp group in the general neck red light therapy lamp is arranged on the glass fiber epoxy resin copper clad board), the thickness of the neck physiotherapy device can be reduced. Moreover, the power supply includes a first battery and a second battery, and the first battery and the second battery can also be arranged on the outside of the flexible board. The first battery and the second battery are respectively arranged at the two ends of the electrode sheet, which also facilitates the reduction of the thickness of the battery, thereby also reducing the thickness of the neck physiotherapy device. Furthermore, the present application can set an electrode sheet at a preset center position on the outside of the flexible board, and the electrode sheet can be used to generate heat. Since the neck therapy device in the present application is relatively thin, the heat generated by the electrode sheet can effectively heat the neck, thereby improving the therapy effect. At the same time, the present application will also detect the heating temperature of the electrode sheet through a temperature detection module, thereby facilitating the reduction of the current of the electrode sheet when the heating temperature is greater than the preset temperature threshold, thereby realizing dynamic current regulation of the electrode sheet, and also turning off the electrode sheet and the light group when the heating temperature is greater than the preset over-temperature threshold, thereby improving the therapy effect while ensuring the safety of the user, thereby improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0050] The drawings herein are incorporated into and constitute a part of the specification, illustrate embodiments consistent with the embodiments of the present application, and together with the specification are used to explain the principles of the embodiments of the present application.

[0051] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, for ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0052] Figure 1 This is a schematic diagram of module connections in one embodiment of the physiotherapy control device according to an embodiment of the present application;

[0053] Figure 2 This is a schematic diagram of the exploded structure of the neck physiotherapy device in the physiotherapy control device according to an embodiment of the present application;

[0054] Figure 3 This is a structural diagram of a neck physiotherapy device in an example of a physiotherapy control device according to an embodiment of the present application;

[0055] Figure 4This is a structural diagram of a neck physiotherapy device in another example of the physiotherapy control device according to an embodiment of the present application;

[0056] Figure 5 This is a schematic diagram of a module including a touch screen in a physiotherapy control device according to an embodiment of the present application;

[0057] Figure 6 This is a schematic diagram of module connections in another embodiment of the physiotherapy control device of the present application;

[0058] Figure 7 A flow chart of an embodiment of a physical therapy control method according to an embodiment of the present application.

[0059] Description of Figure Numbers:

[0060] 100, control module; 200, electrode sheet; 300, flexible board; 400, lamp assembly; 500, power supply; 600, temperature detection module; 510, first battery; 520, second battery; 511, top cover battery; 512, side cover battery; 700, touch screen; G1, soft rubber semi-ring top cover; G2, first side cover; G3, second side cover; G4, device bottom cover; DG, device top cover; Z, lamp beads; K1, switch; K2, decorative sheet; SC, window; GJ, silicone plug; JK, interface; CK, screen installation window; 900, AC power; 800, power adapter; D1, soft rubber semi-ring top cover when viewed from above; C1, first side cover when viewed from the side; C2, second side cover when viewed from the side; J, neck therapy device when viewed from the front; D2, device bottom cover when viewed from the top; S1, neck therapy device when viewed from the first side; S2, neck therapy device when viewed from the second side.

[0061] The purpose, features and advantages of the embodiments of the present application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION

[0062] It should be understood that the specific embodiments described herein are merely used to explain the technical solutions of the embodiments of the present application and are not intended to limit the embodiments of the present application.

[0063] In order to better understand the technical solutions of the embodiments of the present application, a detailed description will be given below in conjunction with the accompanying drawings and specific implementation methods.

[0064] Red light therapy lamp is a lamp used in the fields of physical therapy, health care and beauty. Red light therapy lamp can stimulate cell activity, repair cells, accelerate blood circulation, improve metabolism, relieve fatigue, reduce pain, etc.

[0065] Currently, due to the limitations of component size or structure, the thickness of neck red light therapy lamps on the market basically exceeds 20mm, and some even reach over 30mm, resulting in a poor user experience.

[0066] Therefore, an embodiment of the present application provides a physiotherapy control device for a neck physiotherapy device. This embodiment sets a control module, an electrode sheet, a flexible board, a lamp group, a power supply and a temperature detection module in the physiotherapy control device, so that the lamp group can be set on the flexible board, thereby facilitating the neck physiotherapy device to be set around the neck, thereby facilitating providing the user with more physiotherapy area and improving the physiotherapy effect. Moreover, since the flexible board is much thinner than the glass fiber epoxy resin copper clad board (the lamp group in the general neck red light therapy lamp is set on the glass fiber epoxy resin copper clad board), the thickness of the neck physiotherapy device can be reduced. Furthermore, in the embodiment of the present application, an electrode sheet can be set on the top of the flexible board, and the electrode sheet can be used for generating heat. Since the neck therapy device in the embodiment of the present application is relatively thin, the heat generated by the electrode sheet can effectively heat the neck, thereby improving the therapy effect. At the same time, in the present application, the heating temperature of the electrode sheet will be detected by the temperature detection module, thereby facilitating the reduction of the current of the electrode sheet when the heating temperature is greater than the preset temperature threshold, thereby realizing dynamic regulation of the current of the electrode sheet, and also turning off the electrode sheet and the light group when the heating temperature is greater than the preset over-temperature threshold, thereby improving the therapy effect while ensuring the safety of the user, thereby improving the user experience.

[0067] In addition, since the neck therapy device in this embodiment is thinner, when the electrode plate is set in the center of the neck therapy device for heating, the human body is more likely to feel the heat, and there may be a risk of burns when the electrode plate is continuously heated. Therefore, this embodiment will reduce the current of the electrode plate when the heating temperature is greater than the preset temperature threshold, thereby realizing dynamic adjustment of the current of the electrode plate. It will also turn off the electrode plate and the light group when the heating temperature is greater than the preset over-temperature threshold, thereby improving the therapy effect while ensuring the safety of the user, thereby improving the user experience.

[0068] Based on this, the embodiment of the present application provides a physiotherapy control device for a neck physiotherapy device, referring to Figure 1 The physiotherapy control device includes a control module 100, an electrode sheet 200, a flexible board 300, a lamp group 400, a power supply 500 and a temperature detection module 600. The electrode sheet 200, the lamp group 400, the power supply 500 and the temperature detection module 600 are all connected to the control module 100.

[0069] The power supply 500 includes a first battery and a second battery. The lamp assembly 400 is disposed on the inner side of the flexible board 300. The electrode sheet 200 is disposed in a predetermined central area outside the flexible board 300. The temperature detection module 600 is disposed on a side of the electrode sheet 200 away from the flexible board 300. The first battery and the second battery are disposed on the outer side of the flexible board, with the first battery adjacent to a first end of the electrode sheet and the second battery adjacent to a second end of the electrode sheet.

[0070] The temperature detection module 600 is used to detect the heating temperature of the electrode sheet 200, and the electrode sheet 200 is used to generate heat;

[0071] The control module 100 is used to reduce the current of the electrode sheet 200 when it is detected that the heating temperature is greater than a preset temperature threshold, and is also used to control the electrode sheet 200 to stop heating and turn off the lamp group 400 when it is detected that the heating temperature is greater than a preset over-temperature threshold;

[0072] Wherein, the preset temperature threshold is less than the preset over-temperature threshold.

[0073] It should be noted that the neck therapy device includes a therapy control device. The lamp assembly 400 includes multiple infrared lamp groups and multiple red light groups. For example, the lamp assembly 400 includes a red light group with a wavelength of 635nm (nanometers), a red light group with a wavelength of 660nm, an infrared light group with a wavelength of 850nm, and an infrared light group with a wavelength of 940nm. The infrared lamp groups can emit infrared light, and the red light groups can emit red light. The infrared lamp groups are composed of multiple infrared light-emitting diodes, and the red light groups are composed of multiple red light-emitting diodes. The lamp beads of the infrared lamp groups and the red light groups are both soldered to the flexible board 300. The multiple infrared lamp groups and the multiple red light groups included in the lamp assembly 400 are separately mounted on the flexible board 300, with the infrared lamp groups connected in parallel, the red light groups connected in parallel, and the red light groups and the infrared lamp groups connected in parallel. The lamp assembly 400 can be mounted on the bottom of the flexible board 300. The control module 100 can control each red light group and each infrared light group separately. For example, the control module 100 can control the pulse of each red light group separately, or can control the pulse of each infrared light group separately. The control module 100 can also control the brightness, lighting duration, on and / or off of each red light group and each infrared light group in a unified manner. This embodiment does not impose specific limitations on this.

[0074] An electrode sheet 200 is placed on the top of the flexible board 300. The electrode sheet 200 can be positioned in a preset central area on the top of the flexible board 300. However, the electrode sheet 200 can be welded to the top of the flexible board 300 or not. This embodiment does not specifically limit this.

[0075] The thickness of the flexible board 300 ranges from 0.2mm to 0.5mm, much thinner than the 1.6mm thickness of a fiberglass epoxy copper-clad laminate. Furthermore, the flexible board 300 easily wraps around the neck, increasing the therapeutic area. Conventional fiberglass epoxy copper-clad laminates are rigid circuit boards that cannot achieve curved surfaces. Rigid circuit boards are flat and cannot wrap around the neck, thus affecting the therapeutic effect. The lamp assembly includes multiple lamp beads, and the flexible board can be configured into a movable U-shape, with the lamp beads evenly distributed inside the flexible board.

[0076] And because in this embodiment, the electrode sheet 200 can be set at the top center of the flexible plate 300, the electrode sheet 200 can be set in the center of the neck physiotherapy device, and the position of the electrode sheet 200 can exactly correspond to the position of the cervical spine. When the neck treatment device is turned on and used, the heating electrode sheet 200 can start working, heating up and emitting energy, thereby achieving the effect of local dehumidification for the user.

[0077] The power supply 500 can power the control module 100, which can be directly connected to the lamp assembly 400, the electrode sheet 200, and the temperature detection module 600. The power supply 500 can provide a 3.7V voltage to the control module 100 and can be connected to the mains. The power supply can include a first battery 510 and a second battery 520, which can jointly provide a 3.7V voltage to the control module.

[0078] The temperature detection module 600 can be a temperature sensor, which can be installed on the electrode sheet 200. Since the electrode sheet 200 generates heat, the temperature sensor is installed on the electrode sheet 200 to detect the location with the highest temperature in the neck physiotherapy device. This facilitates the subsequent control of the current of the electrode sheet 200 and the turning on and off of the light group 400 based on the detected heating temperature of the electrode sheet 200. The temperature detection module 600 can be used to detect the heating temperature of the electrode sheet 200, which reflects the temperature of the electrode sheet 200.

[0079] The preset temperature threshold is less than the preset over-temperature threshold. The difference between the preset temperature threshold and the preset over-temperature threshold can be a preset value, which is greater than 0. For example, the preset value can be 5, 6, or 7, etc., which is not specifically limited in this embodiment. When the heating temperature is greater than the preset temperature threshold, the control module 100 reduces the current of the electrode sheet 200. This can reduce the current of the electrode sheet 200 in advance to reduce heating of the electrode sheet 200 and prevent the temperature of the electrode sheet 200 from exceeding the preset over-temperature threshold. This can extend the treatment time of the neck therapy device to improve the treatment effect.

[0080] Furthermore, when it is detected that the heating temperature is greater than the preset over-temperature threshold, the electrode sheet 200 and the lamp group 400 will be turned off, thereby preventing the electrode sheet 200 and the lamp group 400 from continuing to heat up, so as to avoid scalding the user.

[0081] The therapy control device also includes a voice module. When the temperature detected is greater than a preset over-temperature threshold, the control module 100 can also control the voice module to output a prompt to inform the user that the current temperature of the neck therapy device is too high and that the light assembly 400 and electrode pads 200 have been turned off. The voice module can also be a buzzer, which can be controlled to emit an alarm sound to alert the user when the temperature exceeds the preset over-temperature threshold. The preset over-temperature threshold can be 42 degrees Celsius or can be set based on actual conditions, and this embodiment does not specifically limit this.

[0082] In this embodiment, a control module 100, an electrode sheet 200, a flexible board 300, a lamp group 400, a power supply 500, and a temperature detection module 600 are provided in the therapy control device, so that the lamp group 400 can be provided on the flexible board 300, thereby facilitating that the neck therapy device can be provided around the neck, thereby facilitating providing the user with a larger therapy area and improving the therapy effect. Moreover, since the flexible board 300 is much thinner than the glass fiber epoxy resin copper clad board (the lamp group 400 in a general neck red light therapy lamp is provided on a glass fiber epoxy resin copper clad board), the thickness of the neck therapy device can be reduced. Furthermore, in the embodiment of the present application, an electrode sheet 200 can be set on the top of the flexible board 300, and the electrode sheet 200 can be used for generating heat. Since the neck therapy device in the embodiment of the present application is relatively thin, the heat generated by the electrode sheet 200 can effectively heat the neck, thereby improving the therapy effect. At the same time, in the embodiment of the present application, the heating temperature of the electrode sheet 200 will be detected by the temperature detection module 600, thereby facilitating the reduction of the current of the electrode sheet 200 when the heating temperature is greater than the preset temperature threshold, thereby realizing dynamic current regulation of the electrode sheet 200, and also turning off the electrode sheet 200 and the light group 400 when the heating temperature is greater than the preset over-temperature threshold, thereby improving the therapy effect while ensuring the safety of the user, thereby improving the user experience.

[0083] Further, in a feasible embodiment, please refer to Figure 2 , the physiotherapy control device further includes a device top cover DG and a device bottom cover G4, and the first battery 510 includes a side cover battery 512 and a top cover battery 511;

[0084] The device top cover DG includes a first side cover G2, a soft rubber semi-ring top cover G1, and a second side cover G3. The first side cover G2 is detachably connected to a first end of the soft rubber semi-ring top cover G1, and the second side cover G3 is detachably connected to a second end of the soft rubber semi-ring top cover G1.

[0085] The device top cover DG and the outer side of the flexible board 300 are closed to form a cavity, and the inner side of the flexible board 300 is detachably connected to the device bottom cover G4;

[0086] The cavity includes a first inner cavity between the first side cover G2 and the flexible plate 300, a second inner cavity between the soft rubber semi-ring top cover G1 and the flexible plate 300, and a third inner cavity between the second side cover G3 and the flexible plate 300;

[0087] The side cover battery 512 is disposed in the first inner cavity, and the electrode sheet 200, the temperature detection module 600, the second battery 520, and the top cover battery 511 are disposed in the second inner cavity. The first end of the top cover battery 511 is adjacent to the first end of the electrode sheet 200, the second end of the top cover battery 511 is adjacent to the side cover battery 512, and the second end of the electrode sheet 200 is adjacent to the second battery 520.

[0088] A control module 100 is disposed in the third inner cavity.

[0089] It should be noted that the top cover DG and bottom cover G4 of the therapy control device, when joined, form the appearance of the neck therapy device. The top cover DG comprises a first side cover G2, a soft-rubber semi-ring top cover G1, and a second side cover G3, which are joined together. The soft-rubber semi-ring top cover G1 is made of soft rubber, allowing for a certain degree of expansion and contraction when the neck therapy device is opened, making it easier for the user to wear. Figure 2 This is an exploded view of the neck therapy device. Figure 2 The first inner cavity, the second inner cavity and the third inner cavity are not marked in FIG. Figure 2 Detailed description is given of the components corresponding to the first inner cavity, the second inner cavity and the third inner cavity.

[0090] For example, a side cover battery is disposed in the first inner cavity, an electrode sheet, a temperature detection module, a second battery and a top cover battery are disposed in the second inner cavity, and a control module is disposed in the third inner cavity.

[0091] In addition, the physiotherapy control device also includes a power adapter, a switch and an interface. The power adapter and the switch are connected to the control module 100, and the interface is connected to the power adapter. The interface can be a type-c interface. The control module 100 can also be connected to the mains by connecting the power adapter and the type-c interface in sequence, and then it can also be powered by connecting to the mains. The control module 100 can power the lamp group 400 and the electrode sheet 200. The type-c interface can also be used to charge with an adapted mobile terminal, such as a mobile phone. A silicone plug is also provided on the type-c interface, thereby effectively protecting the type-c interface from dust and moisture from the outside world. Furthermore, in this embodiment, the mobile terminal can also be connected to the type-c interface to achieve a communication connection between the mobile terminal and the neck physiotherapy device, so that the user can control the neck physiotherapy device through the mobile terminal, and then when the user wears the neck physiotherapy device, the neck physiotherapy device can be adjusted without the user taking off the neck physiotherapy device. The second side cover is provided with a screen installation window, a switch installation position and an interface installation position. The interface installation position is provided at one end of the second side cover away from the soft rubber semi-ring top cover, and the button installation position is provided between the screen installation window and the interface installation position; the interface is provided at the interface installation position, and the interface is detachably connected to the silicone plug.

[0092] For further information, please refer to Figure 3 and Figure 4 The figure shows the appearance of the neck physiotherapy equipment. Figure 3 In the diagram, D1 refers to the soft rubber semi-ring top cover when viewed from above, C1 refers to the first side cover when viewed from the side, C2 shows the second side cover when viewed from the side, D2 is the bottom cover of the device when viewed from above, and J shows a front view of the neck therapy device. Figure 4 The neck physiotherapy device is shown in different viewing angles. For example, J refers to the neck physiotherapy device under the front view, S1 is the neck physiotherapy device under the first side view, and the first test view is the view of the neck physiotherapy device at the second side view, and the second test view is the view of the neck physiotherapy device at the second side view.

[0093] in, Figure 2 G1 refers to the soft rubber half-ring top cover. Figure 2 The 600 in the figure refers to the structure of the temperature detection module. Figure 2 The 200 in the figure refers to the structure of the electrode sheet. Figure 2The middle power supply can be composed of three batteries, which are respectively arranged under the soft rubber semi-ring top cover and on the inner side of the first side cover, so as to facilitate the uniform distribution of the weight of the overall neck physiotherapy device. 300 refers to the structure of the flexible board, G2 refers to the structure of the first side cover, G4 refers to the structure of the bottom cover of the device, and the top of the bottom cover of the device also includes multiple holes, each hole corresponds to the lamp bead on the flexible board, and the lamp bead Z is welded at the bottom of the flexible board. The lamp beads Z form a lamp group. 100 can refer to the structure of the control module, 700 refers to the structure of the touch screen, K1 refers to the structure of the switch, K2 is the decoration of the switch, G3 refers to the structure of the second side cover, SC is a window for displaying the touch screen, GJ is a silicone plug, and the structure is arranged at the bottom of the second side cover. For example, you can refer to Figure 4 , Figure 4 From the perspective of S2, you can see the interface JK. DG is the top cover of the device. Figure 2 The power adapter is not shown.

[0094] In the neck therapy device, the power supply can be composed of multiple batteries, and the power supply can provide a voltage of 3.7V for the control module. The battery can be a customized thin battery. For example, the battery in the embodiment of the present application is 6.7mm thick, which is thinner than the traditional lithium battery (18mm thick). This can further reduce the thickness of the neck therapy device. When multiple batteries are arranged inside the shell, considering the weight uniformity of the entire neck therapy device, the multiple batteries can be evenly distributed under the soft rubber semi-ring top cover. For example, you can refer to Figure 2 , thereby facilitating the weight balance of the neck therapy device. For example, the thickness of the neck therapy device is about 12 to 15 mm.

[0095] Further, in a feasible embodiment, please refer to Figure 2 and Figure 5 , the physiotherapy control device further includes a touch screen 700, and the second side cover G3 is provided with a screen installation window CK;

[0096] The touch screen 700 is disposed in the screen installation window CK, and the touch screen 700 is connected to the control module 100;

[0097] The control module 100 is configured to receive a dimming instruction triggered by a user on the touch screen 700 and adjust the luminous brightness of the light group 400 according to the dimming instruction.

[0098] It should be noted that the touch screen 700 can interact with the user, and the user can trigger a dimming indicator on the touch screen 700. The dimming indicator is used to indicate adjustment of the light assembly 400's brightness. The dimming indicator can include an adjustment ratio, and the current of the light assembly 400 can be adjusted based on the adjustment ratio to adjust the light assembly 400's brightness. For example, the touch screen 700 can display two dimming ratios. For example, the first dimming ratio is 100%, and the second dimming ratio can be 50%. The first dimming ratio of 100% indicates that the light assembly 400 in the neck therapy device is operating at full current, while the second dimming ratio of 50% indicates that the light assembly 400 in the neck therapy device is operating at 50% of full current. In other embodiments, a dimming progress bar can be displayed on the touch screen 700. The dimming progress bar can be adjusted from 0 to 100%. The user can flexibly adjust the brightness of the light assembly 400 by adjusting the ratio in the dimming progress bar, with brightness adjustment accuracy down to 1%. This embodiment is not specifically limited to this.

[0099] The user can also set the timing duration of the light group 400 on the touch screen 700. The timing duration represents the lighting duration of the light group 400. The timing duration can be set based on actual conditions. This embodiment does not specifically limit this. For example, the timing duration corresponding to each red light group and each infrared light group can be displayed on the touch screen 700. The touch screen 700 can also display the main switch of the light group 400. The main switch of the light group 400 is used to uniformly control the opening and closing of the light group 400. The touch screen 700 can be an LED liquid crystal display. Figure 2 , Figure 2 The figure shows the location of the screen installation window on the second side cover.

[0100] By setting a touch screen 700 in the neck therapy device, it is convenient for the user to adjust the neck therapy device based on his or her own needs, so as to improve the user's experience. Figure 6 , Figure 6 The diagram of the module connection of the physiotherapy control device in the neck physiotherapy device and the mains power is shown in FIG. The mains power 900 is connected to the power adapter 800, and the power adapter 800 can be connected to the control module. The electric fish adapter and the control module can be connected through an interface. Figure 6 The interface is not shown in the figure. The control module can also be connected to a power supply, a switch, and a touch screen. The control module can also be connected to a temperature detection module, an electrode sheet, and a light group.

[0101] Further, based on the above embodiment of the present application, in another embodiment of the present application, the same or similar contents as the above embodiment can be referred to the above introduction, and no further details will be given later. Figure 7The embodiment of the present application further provides a physiotherapy control method for a neck physiotherapy device, which is applied to a physiotherapy control device for a neck physiotherapy device. The control method includes steps S10 to S30:

[0102] Step S10, real-time monitoring of the heating temperature of the electrode sheet in the physical therapy control device;

[0103] Step S20, if it is detected that the heating temperature is greater than a preset temperature threshold, reducing the current of the electrode sheet;

[0104] Step S30: If it is detected that the heating temperature is greater than a preset over-temperature threshold, the electrode sheet is controlled to stop heating and the light group in the physiotherapy control device is turned off.

[0105] It should be noted that the heating temperature is the temperature of the electrode sheet detected by the temperature detection module, the preset temperature threshold is less than the preset over-temperature threshold, and the difference between the preset temperature threshold and the preset over-temperature threshold can be a preset value, which is greater than 0. For example, the preset value can be 5, 6, or 7, etc. This embodiment does not specifically limit this. When the heating temperature is greater than the preset temperature threshold, the current of the electrode sheet is reduced, and the current of the electrode sheet can be reduced in advance to reduce the heating of the electrode sheet and prevent the temperature of the electrode sheet from exceeding the preset over-temperature threshold. In turn, the treatment time of the neck treatment device can be extended to improve the treatment effect.

[0106] When it is detected that the heating temperature is greater than the preset over-temperature threshold, the electrode sheet and the lamp group will be turned off to prevent the electrode sheet and the lamp group from continuing to heat up, so as to avoid scalding the user.

[0107] The therapy control device also includes a voice module. Upon detecting a temperature exceeding a preset over-temperature threshold, the device can output a prompt through the voice module to inform the user that the neck therapy device is currently overheated and that the light assembly and electrodes have been turned off. The voice module can also be a buzzer, which can be controlled to emit an alarm sound to alert the user when the temperature exceeds a preset over-temperature threshold. The preset over-temperature threshold can be 42 degrees Celsius or can be set based on actual conditions; this embodiment does not impose specific limitations on this.

[0108] For example, the temperature of the electrode sheet in the physical therapy control device is monitored in real time. If the temperature is detected to be greater than a preset temperature threshold, the current of the electrode sheet is reduced. For example, the current of the electrode sheet can be reduced to 50% of the original value. This embodiment does not specifically limit this. If the temperature is detected to be less than or equal to the preset temperature threshold, the current of the electrode sheet is maintained unchanged. If the temperature is detected to be greater than a preset over-temperature threshold, the electrode sheet and the light assembly can be turned off, thereby avoiding the risk of burns to the user caused by the continuous heating of the electrode sheet and the light assembly.

[0109] This embodiment, by arranging a control module, an electrode sheet, a flexible board, a lamp assembly, a power supply, and a temperature detection module in the therapy control device, allows the lamp assembly to be mounted on the flexible board. This allows the neck therapy device to be positioned around the neck, thereby providing a larger therapy area for the user and improving the therapy effect. Furthermore, because the flexible board is much thinner than a fiberglass epoxy resin copper-clad laminate (the lamp assembly in a conventional neck red light therapy lamp is mounted on a fiberglass epoxy resin copper-clad laminate), the thickness of the neck therapy device can be reduced. Furthermore, in this embodiment, an electrode sheet can be mounted on top of the flexible board. The electrode sheet can generate heat. Since the neck therapy device in this embodiment is relatively thin, the heat generated by the electrode sheet can effectively heat the neck, improving the therapy effect. Furthermore, in this embodiment, the temperature detection module detects the temperature of the electrode sheet. When the temperature exceeds a preset temperature threshold, the current flowing through the electrode sheet is reduced, achieving dynamic current regulation. Furthermore, when the temperature exceeds a preset over-temperature threshold, the electrode sheet and lamp assembly are turned off, thereby improving the therapy effect while ensuring user safety and enhancing the user experience.

[0110] In a feasible embodiment, the physiotherapy control method of the neck physiotherapy device further includes steps A10 to A20:

[0111] Step A10, receiving a dimming instruction triggered by a user on the touch screen of the physiotherapy control device, and determining a dimming ratio from the dimming instruction;

[0112] Step A20: adjusting the current of the lamp group in the physiotherapy control device according to the dimming ratio to adjust the brightness of the lamp group.

[0113] It should be noted that the touch screen can interact with the user, and the user can trigger the dimming indication on the touch screen. The dimming indication is used to indicate the adjustment of the luminous brightness of the lamp group. The dimming indication may include an adjustment ratio. The current of the lamp group can be adjusted according to the adjustment ratio to achieve the adjustment of the luminous brightness of the lamp group. For example, two gears of dimming ratios can be displayed on the touch screen. For example, the dimming ratio of the first gear is 100%, and the dimming ratio of the second gear can be 50%. The dimming ratio of 100% in the first gear indicates that the lamp group in the neck physiotherapy device is running at the maximum current, and the dimming ratio of 50% in the second gear indicates that the lamp group in the neck physiotherapy device is running at 50% of the maximum current. In other embodiments, a dimming progress bar can also be displayed on the touch screen. The dimming progress bar can be adjusted from 0 to 100%. The user can flexibly adjust the luminous brightness of the lamp group by adjusting the ratio in the dimming progress bar, and the brightness adjustment can be accurate to 1%. This embodiment does not make specific limitations on this.

[0114] For example, a dimming instruction triggered by a user on the touch screen of the therapy control device is received, a dimming ratio is determined from the dimming instruction, and the current of the lamp group in the therapy control device is adjusted based on the dimming ratio to adjust the brightness of the lamp group. For example, the current in the lamp group can be the product of the dimming ratio and the maximum current supported by the lamp group. This embodiment can receive the dimming ratio set by the user on the touch screen, thereby facilitating an improved user experience.

[0115] In a feasible embodiment, the physiotherapy control method of the neck physiotherapy device may further include steps B10 to B70:

[0116] Step B10, receiving a temperature requirement indication triggered by the user on the touch screen, determining a required temperature from the temperature requirement indication, and using the sum of the required temperature and a preset non-sensing temperature as a target temperature, wherein the required temperature is less than the preset over-temperature threshold;

[0117] It should be noted that the user can also trigger a temperature demand indication on the touch screen. For example, the user can determine the temperature that the neck therapy device needs to provide based on their own needs. The demand temperature is the target temperature that the user wants the neck therapy device to reach. The preset non-sensing temperature value can be pre-set. The preset non-sensing temperature value can be 0.5°C, 1°C, 1.5°C, or 2°C, etc., and this embodiment does not specifically limit this. The preset non-sensing temperature value can reflect temperature changes that are difficult for the user to perceive. For example, the user's demand temperature may be 35°C, so when the temperature fluctuates between 34°C and 36°C, the user may still perceive it as 35°C. The demand temperature is less than the preset over-temperature threshold, thereby preventing the user from operating incorrectly and causing the demand temperature to exceed the preset over-temperature threshold, thereby preventing the user from being burned. For example, when the demand temperature set by the user is greater than the preset over-temperature threshold, a prompt can be output on the touch screen, indicating that the temperature is too high and there may be a risk of burns, and suggesting that the user adjust the demand temperature.

[0118] The target temperature can be the sum of the required temperature and the preset non-sensing temperature. The target temperature is greater than the required temperature. When the temperature of the neck therapy device changes from the required temperature to the target temperature, the user may not feel the change, which makes it easier to heat the electrode temperature to the target temperature first.

[0119] Step B20, obtaining a target preset current, and controlling the electrode sheet to be heated to a target temperature according to the target preset current;

[0120] Step B30, lowering the temperature according to the difference between the required temperature and the preset non-sensing temperature;

[0121] Step B40, determining the ratio of the reduced temperature to the target temperature to obtain a temperature ratio, and performing a square root operation on the temperature ratio to obtain a reduction ratio;

[0122] It should be noted that the current of the electrode sheet can be controlled to be a target preset current, so as to control the electrode sheet to be heated to the target temperature under the target preset current. The reduced temperature is the difference between the required temperature and the preset non-sensing temperature. If the reduced temperature is less than the required temperature, the reduced temperature is also less than the target temperature. Since the heating power of the electrode sheet is proportional to the square of the current, the ratio of the reduced temperature to the target temperature can be determined, the temperature ratio can be determined, and the temperature ratio can be squared to obtain the reduction ratio. The reduction ratio can then be used to reflect the ratio by which the current of the electrode sheet needs to be reduced when the target temperature is reduced to the reduced temperature.

[0123] This embodiment can adjust the current in the electrode sheet in the neck therapy device based on the user's required temperature, so that the temperature of the electrode sheet can be maintained around the required temperature, avoiding the temperature being too high or too low, thereby improving the user's experience. At the same time, due to the change in current, the current of the electrode sheet can be avoided from being maintained at a high current, thereby reducing the energy consumption of the neck therapy device, making the neck therapy device have a longer battery life, and thereby improving the user's experience.

[0124] Exemplarily, a temperature requirement indication triggered by a user on the touch screen is received, the required temperature is determined from the temperature requirement indication, and the sum of the required temperature and the preset non-sensing temperature is used as the target temperature, and based on the obtained target preset current, the electrode sheet is controlled to be heated to the target temperature, and the difference between the required temperature and the preset non-sensing temperature is used as the reduced temperature, and the ratio of the reduced temperature to the target temperature is determined to obtain the temperature ratio, and the temperature ratio is squared to obtain the reduction ratio, and then the reduction ratio can be used to determine the ratio by which the current needs to be reduced when dropping from the target temperature to the reduced temperature.

[0125] Step B50, taking the product of the reduction ratio and the target preset current as the target reduced current, and determining the reduction duration according to the target temperature, the reduced temperature, the target preset current, and the target reduced current;

[0126] Step B60, when the temperature of the electrode sheet reaches the target temperature, controlling the current of the electrode sheet to decrease from the target preset current to the target reduced current within the reduction time period;

[0127] It should be noted that the target reduction current is the current required when the temperature of the electrode sheet reaches the reduction temperature. The reduction duration is the time required to reduce the temperature from the target temperature to the reduction temperature. The reduction duration is determined based on the target temperature, the reduction temperature, the target preset current, and the target reduction current to ensure that the temperature of the electrode sheet is less than or equal to the target temperature and greater than or equal to the reduction temperature during the reduction duration, thereby preventing the user from perceiving temperature changes of the neck therapy device.

[0128] Exemplarily, the product of the reduction ratio and the target preset current is used as the target reduction current, and the reduction duration is determined based on the target temperature, the reduction temperature, the target preset current, and the target reduction current, so as to facilitate the subsequent linear reduction of the target preset current to the target reduction current within the reduction duration, that is, the current of the electrode sheet is not suddenly changed from the target preset current to the target reduction current, so as to facilitate the stability of the neck physiotherapy device. For example, the reduction rate when reducing from the target preset current to the target reduction current within the reduction duration is determined. For example, the current difference between the target preset current and the target reduction current can be determined, and the ratio of the current difference to the reduction duration is used as the reduction rate. The unit of the reduction duration can be seconds. The current of the electrode sheet can then be controlled to reduce the current of the electrode sheet according to the reduction rate, so as to reduce the current of the electrode sheet from the target preset current to the target reduction current within the reduction duration.

[0129] Step B70, when the current of the electrode sheet is the target reduced current and / or the temperature of the electrode sheet is the reduced temperature, restore the current of the electrode sheet to the target preset current within the preset recovery time, and return to the step of controlling the current of the electrode sheet to decrease from the target preset current to the target reduced current within the reduction time when the temperature of the electrode sheet reaches the target temperature, until a neck therapy off indication is received, then controlling the electrode sheet to stop heating.

[0130] It should be noted that when it is detected that the current of the electrode sheet is the target reduction current, and / or the temperature of the electrode sheet is the reduction temperature, the current of the electrode sheet can be restored to the target preset current within the preset recovery time. Because it is possible that when the current of the electrode sheet has not yet been reduced to the target reduction current, the temperature of the electrode sheet has already been reduced to the reduction temperature. If the current of the electrode sheet is continued to be reduced at this time, it may cause the temperature of the electrode sheet to continue to decrease. Therefore, when the temperature of the electrode sheet is the reduction temperature, it is necessary to increase the current as soon as possible to avoid the temperature of the electrode sheet from falling below the reduction temperature in order to improve the user experience. When the current of the electrode sheet drops to the target reduction current, the current can no longer be reduced to avoid the temperature of the electrode sheet from falling below the reduction temperature, so as to avoid reducing the user experience.

[0131] The neck therapy off indication can be triggered by the user. The user can trigger the neck therapy off indication on the touch screen. The neck therapy off indication is used to stop heating the neck therapy device. When the neck therapy off indication is received, the current of the electrode can be controlled to 0 to control the electrode to stop heating.

[0132] The preset recovery time may be determined based on actual conditions. For example, the preset recovery time may be the same as the reduction time.

[0133] Exemplarily, when the current of the electrode sheet is the target reduced current and / or the temperature of the electrode sheet is the reduced temperature, the current of the electrode sheet is restored to the target preset current within the preset recovery time, and the process returns to step B60 until a neck therapy shutdown instruction is received, and the electrode sheet is controlled to stop heating. For example, the current of the electrode sheet can be adjusted to 0. For example, the preset recovery time can be divided into a first recovery time, a preset stabilization time, and a second recovery time. For example, the recovery rate when recovering from the target reduced current to the target reduced current within the recovery time can be first determined. For example, the current difference between the target preset current and the target reduced current can be determined, and the ratio of the current difference to the preset recovery time is used as the recovery rate. The unit of the recovery time can be seconds. Then, the current of the electrode sheet can be controlled according to the recovery rate to restore the current of the electrode sheet. At the same time, when it is detected that the temperature of the electrode sheet has reached the required temperature, the current of the electrode sheet is stopped from being increased. At the same time, the target required current when the temperature of the electrode sheet reaches the required temperature is obtained, and the first recovery time required to recover from the target preset current to the target required current is obtained. The recovery time is subtracted from the first recovery time and the preset stable time to obtain the second recovery time. After the temperature of the electrode sheet has been at the required temperature for a preset stable time, it is linearly recovered from the target required current to the target preset current within the second recovery time. Thereby, the time for the neck physiotherapy device to be maintained at the required temperature can be increased. The preset stable time can be determined based on actual conditions, and this embodiment does not make specific restrictions on this.

[0134] Since in this embodiment, the current of the electrode sheet is not fixed, but varies between the target reduced current and the target preset current, it is convenient to maintain the temperature of the neck physiotherapy device at around the user's required temperature, thereby avoiding overheating of the neck physiotherapy device and preventing the neck physiotherapy device from stopping due to overheating, thereby improving the continuity of physiotherapy and improving the physiotherapy effect of the neck physiotherapy device.

[0135] In a feasible embodiment, step B20 further includes steps B21 to B25:

[0136] Step B21, obtaining the current temperature of the electrode sheet and determining a plurality of preset currents;

[0137] Step B22, determining the heating time required for the electrode sheet to rise from the current temperature to the target temperature based on each of the preset currents;

[0138] Step B23, for each of the preset currents, calculating the energy consumed by the electrode sheet when running at the preset current for the heating time;

[0139] Step B24: for each of the preset currents, performing weighted summation on the heating time and the energy corresponding to the preset current to obtain a heating weight;

[0140] Step B25 , determining the preset current with the minimum heating weight among the preset currents as the target preset current.

[0141] It should be noted that the current temperature is the latest temperature of the electrode sheet detected by the temperature detection module, and each preset current is supported by the electrode sheet in the neck physiotherapy device. For example, the maximum current of the electrode sheet can be obtained, and multiple current intervals are divided between 0 and the maximum current of the electrode sheet according to the preset division unit. In each current interval, any current is selected as the preset current. For example, the preset division unit can be 2A, that is, for each current interval, the difference between the two interval boundary values of the current interval is 2. The preset division unit can also be set based on actual conditions, and this embodiment does not make specific restrictions on this. Energy can reflect the electrical energy consumed by the electrode sheet.

[0142] The heating time is the time required to heat the device from the current temperature to the target temperature. Each preset current has its own corresponding heating time. Different preset currents consume different amounts of power per unit time. Therefore, when heating the device from the current temperature to the target temperature, different preset currents may take different amounts of time, and the energy consumed by the electrode sheet may also be different. Therefore, the energy consumed by the electrode sheet when running at the preset current for the heating time can be calculated. For example, the energy consumed can be calculated by multiplying the square of the preset current, the internal resistance of the electrode sheet, and the heating time corresponding to the preset current.

[0143] Each preset current has its own corresponding heating weight. The heating weight of each preset current is obtained by weighted summing the heating time and the energy consumed by the electrode sheet when running at the preset current for the heating time.

[0144] The weights corresponding to the heating time and energy can be set based on actual conditions. This embodiment does not make any specific restrictions on this. The weights of the heating time corresponding to different preset currents are the same, and the weights of the energy corresponding to different preset currents are also the same.

[0145] In this embodiment, the longer the heating time and the more power consumed, the greater the heating weight. The shorter the heating time and the less power consumed, the smaller the heating weight. The target preset current is the one with the smallest heating weight among the preset currents. This means that if the target preset current is used to control the heating of the electrode sheet, a balance can be achieved between the heating time and the power consumed. That is, the heating time will not be too long, and the power consumed will not be too much. This makes it easier to save energy while speeding up the heating of the electrode sheet, so as to quickly meet the user's needs. This in turn helps improve the user experience.

[0146] Exemplarily, the current temperature of the electrode sheet is obtained, and multiple preset currents are determined. The heating time required for the electrode sheet to rise from the current temperature to the target temperature when it runs at each preset current is determined. Then, the power consumed by the electrode sheet when it runs at each preset current for the heating time is calculated. For each preset current, the heating time and power corresponding to the preset current are weighted and summed to obtain the heating weight. Among the preset currents, the preset current with the smallest heating weight is determined as the target preset current.

[0147] Initially, the electrode sheet is heated from the current temperature to the target temperature within the heating period. In order to prevent the temperature of the electrode sheet from continuing to rise, the current of the electrode sheet needs to be reduced. Therefore, when the current of the electrode sheet reaches the target temperature, the current of the electrode sheet will be reduced in order to reduce the temperature of the electrode sheet. In order to prevent the temperature of the electrode sheet from continuing to decrease, the current of the electrode sheet will need to be increased to increase the temperature of the electrode sheet, thereby ensuring that the temperature of the electrode sheet can be maintained at the required temperature and near the required temperature, for example, between the target temperature and the reduced temperature, thereby improving the user experience.

[0148] In a feasible embodiment, step B60 further includes steps B61 to B65:

[0149] Step B61, taking the difference between the target temperature and the reduced temperature as the temperature difference, and calculating the product of the temperature difference and the obtained heat capacity of the electrode sheet to obtain the temperature heat capacity;

[0150] Step B62, obtaining the internal resistance of the electrode sheet, and determining a first heating power of the electrode sheet under the target preset current based on the internal resistance and the target preset current;

[0151] Step B63, determining a second heating power of the electrode sheet under the target reduced current according to the internal resistance and the target reduced current;

[0152] Step B64, calculating the difference between the first heating power and the second heating power to obtain a power difference;

[0153] Step B65: Using the ratio of the temperature heat capacity to the power difference as the reduction time.

[0154] It should be noted that the target temperature is greater than the reduced temperature. The first heating power represents the power consumed by the electrode sheet when it operates at the target preset current. The first heating power can be the product of the square of the target preset current and the internal resistance. The second heating power represents the power consumed by the electrode sheet when it operates at the target reduced current. The second heating power can be the product of the square of the target reduced current and the internal resistance. The heat capacity of the electrode sheet can be directly obtained from the product specifications corresponding to the electrode sheet. In other embodiments, the heat capacity of the electrode sheet can also be determined based on the specific heat capacity of the material of the electrode sheet and the mass of the electrode sheet. For example, the product of the specific heat capacity of the electrode sheet and the mass of the electrode sheet is calculated to obtain the heat capacity of the electrode sheet.

[0155] The temperature difference can represent the amount of heat that the electrode needs to dissipate, and the power difference can represent the reduced heat power of the electrode, which is the difference between the first heat power and the second heat power. The unit of temperature is Kelvin (K), the unit of heat capacity is joule per Kelvin (J / K), and the unit of power is watt (W), and watt is equal to joule per second (J / s). Therefore, the product of the temperature difference and the heat capacity is the temperature heat capacity, and the ratio of the temperature heat capacity to the power difference can be used to obtain the unit of time. Therefore, the reduction time can be determined based on the ratio of the temperature heat capacity to the power difference.

[0156] Exemplarily, the difference between the target temperature and the reduced temperature is used as the temperature difference, and the product of the temperature difference and the heat capacity of the electrode sheet is calculated to obtain the temperature heat capacity; the internal resistance of the electrode sheet is obtained, and the first heating power of the electrode sheet under the target preset current is determined based on the internal resistance and the target preset current; the second heating power of the electrode sheet under the target reduced current is determined based on the internal resistance and the target reduced current; the difference between the first heating power and the second heating power is calculated to obtain the power difference; and the ratio of the temperature heat capacity to the power difference is used as the reduction time. In this way, it is possible to determine the reduction time of the electrode sheet from the target temperature to the reduced temperature, thereby facilitating the reduction of the current of the electrode sheet from the target preset current to the target reduced current within the reduction time, so as to avoid the current reduction time being too long, causing the temperature of the electrode sheet to drop below the reduced temperature, thereby facilitating the user experience. In addition, this embodiment determines the reduction time by the ratio of the temperature heat capacity and the power difference. While ensuring that the reduction time is relatively reasonable, it can also reduce the complexity of determining the reduction time.

[0157] In a feasible embodiment, the physiotherapy control method of the neck physiotherapy device further includes steps C10 to C20:

[0158] Step C10, obtaining the ambient temperature, and if it is detected that the current time of the neck physiotherapy device reaches the predetermined advance start time when the ambient temperature is lower than the preset low temperature threshold, controlling the electrode sheet to be heated to a preset suitable temperature according to a preset preheating current;

[0159] Alternatively, in step C20, if it is detected that the lamp group of the neck therapy device is turned on and there is no predetermined advance start time in the neck therapy device, the electrode sheet is controlled to be heated to a preset suitable temperature according to a preset maximum current, and when the heating temperature of the electrode sheet reaches the preset suitable temperature, a usage prompt is output to prompt the user that the temperature of the neck therapy device has reached the preset suitable temperature;

[0160] The predetermined early start time is the difference between the preset use time and the preset preheating time. The preset preheating time is the time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature when it operates at the preset preheating current.

[0161] It should be noted that the ambient temperature can be the current weather temperature obtained by the neck therapy device, or can be obtained from the mobile terminal when the neck therapy device communicates with the mobile terminal. This embodiment does not specifically limit this. When it is detected that the light group is turned on, and there is no predetermined advance start time in the neck therapy device, it indicates that the user currently needs to use the neck therapy device, and then the electrode sheet can be controlled to heat to a preset suitable temperature according to the preset maximum current. The preset suitable temperature can be set based on actual conditions. The preset suitable temperature can be a temperature that the user perceives is not too cold, thereby facilitating an improved user experience. The preset maximum current is the maximum current supported by the electrode sheet.

[0162] The preset low temperature threshold can be set based on actual conditions, and this embodiment does not impose specific restrictions on this. The preset low temperature threshold can be 15°C, etc., and this embodiment does not impose specific restrictions on this. When the ambient temperature is lower than the preset low temperature threshold, it means that the ambient temperature is low. When the user directly wears the neck therapy device, the user may feel cold, which affects the user's experience. Therefore, in this embodiment, when the ambient temperature is lower than the preset low temperature threshold, if it is detected that the lamp group of the neck therapy device is turned on, the electrode sheet is controlled to heat to the preset suitable temperature according to the preset maximum current. At the same time, when it is detected that the lamp group is turned on, a prompt can be output to remind the user that the current neck therapy device is relatively cold and it is recommended to wear it later. When the electrode sheet is heated to the preset suitable temperature, a usage prompt can also be output to remind the user that the temperature of the current neck therapy device is relatively suitable and it is recommended to wear it.

[0163] In other embodiments, the ambient temperature can also be obtained when it is detected that the neck therapy device is turned on. When the ambient temperature is lower than the preset low temperature threshold, if there is no predetermined preset usage time for the neck therapy device, the electrode sheet is directly controlled to heat to the preset suitable temperature according to the preset maximum current, so that the subsequent user can use it directly when turning on the light group.

[0164] The preset usage time can be the time at which the neck therapy device is scheduled to be used. The current time is the current time of the clock module within the neck therapy device. When the current time reaches the scheduled advance start time, the electrode sheet can be controlled to heat to a preset suitable temperature according to the preset preheating current.

[0165] The scheduled lifting and opening time is the difference between the preset use time and the preset preheating time. The preset preheating time is the time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature when it is running at the preset preheating current. The preset preheating current can be set based on actual conditions. This embodiment does not specifically limit this. For example, the method for determining the preset preheating current can be the same as the method for determining the target preset current. Specifically, based on each preset current, the rise time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature is determined respectively; for each preset current, the energy consumed by the electrode sheet when it runs at the preset current for the rise time is calculated; for each preset current, the rise time and energy corresponding to the preset current are weighted and summed to obtain a weight; and the preset current with the minimum weight among the preset currents is determined as the preset preheating current.

[0166] In this embodiment, the user's desired temperature can be specified during use of the neck therapy device, before the device turns on the light assembly or the electrode pads, or when a preset usage time is scheduled. This embodiment does not impose any specific limitations on this. If the ambient temperature is less than the preset low temperature threshold and there is a preset usage time and desired temperature, the target temperature corresponding to the desired temperature can be used as the preset suitable temperature to meet the user's needs. After the temperature of the electrode pads reaches the target temperature, step B60 can be continued.

[0167] Exemplarily, the ambient temperature is obtained. When the ambient temperature is less than a preset low temperature threshold, if it is detected that the current moment of the neck therapy device reaches the predetermined advance start time, the electrode sheet is controlled to be heated to a preset suitable temperature according to a preset preheating current; or, if it is detected that the light group of the neck therapy device is turned on and there is no predetermined use time in the neck therapy device, the electrode sheet is controlled to be heated to a preset suitable temperature according to a preset maximum current. When the heating temperature of the electrode sheet reaches the preset suitable temperature, a usage prompt is output to prompt the user that the temperature of the neck therapy device has reached the preset suitable temperature. This embodiment can provide a good user experience for the user by preheating the neck therapy device in advance.

[0168] The present application provides a neck physiotherapy device, which includes the above-mentioned physiotherapy control device; the neck physiotherapy device can also implement the physiotherapy control method in the above-mentioned embodiment.

[0169] The neck therapy device provided in this application, employing the therapy control method of the aforementioned embodiment, can address the technical issue of poor user experience resulting from the poor therapy effects of the neck therapy device. Compared to the prior art, the beneficial effects of the neck therapy device provided in this application are the same as those of the therapy control method provided in the aforementioned embodiment, and the other technical features of the neck therapy device are the same as those disclosed in the aforementioned embodiment, and are not further elaborated here.

[0170] It should be understood that the various parts disclosed in this application can be implemented using hardware, software, firmware, or a combination thereof. In the description of the above embodiments, specific features, structures, materials, or characteristics can be combined in any one or more embodiments or examples in a suitable manner.

[0171] The above are only specific embodiments of the present application, but the scope of protection of this application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included in the scope of protection of this application. Therefore, the scope of protection of this application should be based on the scope of protection of the claims.

[0172] This embodiment provides a computer-readable storage medium having computer-readable program instructions stored thereon, and the computer-readable program instructions are used to execute the physical therapy control method in the above-mentioned embodiment 1.

[0173] The computer-readable storage medium provided in the embodiments of the present application may be, for example, a USB flash drive, but is not limited to electrical, magnetic, optical, electromagnetic, infrared, or semiconductor devices, equipment, or components, or any combination thereof. More specific examples of computer-readable storage media may include, but are not limited to, an electrical connection having one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable EPROM (Electrical Programmable Read Only Memory) or flash memory, optical fiber, a portable compact disc CD-ROM (compact disc read-only memory), an optical storage device, a magnetic storage device, or any suitable combination thereof. In this embodiment, the computer-readable storage medium may be any tangible medium that contains or stores a program that can be used by or in conjunction with an instruction execution device, device, or component. The program code contained on the computer-readable storage medium may be transmitted using any suitable medium, including but not limited to: wires, optical cables, RF (Radio Frequency), etc., or any suitable combination thereof.

[0174] The computer-readable storage medium may be included in the neck therapy device; or it may exist independently without being assembled into the neck therapy device.

[0175] The above-mentioned computer-readable storage medium carries one or more programs. When the above-mentioned one or more programs are executed by the neck physiotherapy device, the neck physiotherapy device enables the following: real-time monitoring of the heating temperature of the electrode sheet in the physiotherapy control device; if it is detected that the heating temperature is greater than a preset temperature threshold, the current of the electrode sheet is reduced; if it is detected that the heating temperature is greater than a preset over-temperature threshold, the electrode sheet is controlled to stop heating and the light group in the physiotherapy control device is turned off.

[0176] Computer program code for performing the operations of the present disclosure may be written in one or more programming languages, or a combination thereof, including object-oriented programming languages such as Java, Smalltalk, C++, and conventional procedural programming languages such as "C" or similar programming languages. The program code may be executed entirely on the user's computer, partially on the user's computer, as a stand-alone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving a remote computer, the remote computer may be connected to the user's computer via any type of network, including a LAN (local area network) or WAN (wide area network), or may be connected to an external computer (e.g., via the Internet using an Internet service provider).

[0177] The flowcharts and block diagrams in the accompanying drawings illustrate the possible implementation architecture, functions and operations of the equipment, methods and computer program products according to various embodiments of the present application. In this regard, each box in the flowchart or block diagram can represent a module, program segment or a part of code, and the module, program segment or a part of code contains one or more executable instructions for realizing the specified logical function. It should also be noted that in some alternative implementations, the functions marked in the box can also occur in a different order than that marked in the accompanying drawings. For example, two boxes represented in succession can actually be executed substantially in parallel, and they can sometimes be executed in the opposite order, depending on the functions involved. It should also be noted that each box in the block diagram and / or flowchart, and the combination of the boxes in the block diagram and / or flowchart can be implemented with a dedicated hardware-based device that performs the specified function or operation, or can be implemented with a combination of dedicated hardware and computer instructions.

[0178] The modules involved in the embodiments described in this disclosure may be implemented in software or hardware, wherein the name of a module does not necessarily limit the unit itself.

[0179] The computer-readable storage medium provided in the embodiments of this application stores computer-readable program instructions for executing the aforementioned physical therapy control method, aiming to address the technical issue of poor user experience resulting from the poor physical therapy effects of neck physical therapy devices. Compared to the prior art, the beneficial effects of the computer-readable storage medium provided in the embodiments of this application are the same as those of the physical therapy control method provided in the aforementioned embodiments, and are not further elaborated here.

[0180] An embodiment of the present application also provides a computer program product, including a computer program, which implements the steps of the above-mentioned physiotherapy control method when executed by a processor.

[0181] The computer program product provided in the embodiments of this application is intended to address the technical issue of poor user experience resulting from the poor therapeutic effects of neck therapy devices. Compared to the prior art, the beneficial effects of the computer program product provided in the embodiments of this application are the same as those of the therapy control method provided in the aforementioned embodiments, and are not further elaborated here.

[0182] The above are only preferred embodiments of the embodiments of the present application, and do not limit the patent scope of the embodiments of the present application. Any equivalent structure or equivalent process transformation made using the contents of the description and drawings of the embodiments of the present application, or directly or indirectly applied in other related technical fields, are also included in the patent processing scope of the embodiments of the present application.

Claims

1. A physiotherapy control device for a neck physiotherapy device, characterized in that: The physiotherapy control device includes a control module, an electrode sheet, a flexible board, a lamp group, a power supply and a temperature detection module, and the electrode sheet, the lamp group, the power supply and the temperature detection module are all connected to the control module; The power supply includes a first battery and a second battery, the lamp group is arranged on the inner side of the flexible board, the electrode sheet is arranged in a preset central area on the outer side of the flexible board, the temperature detection module is arranged on a side of the electrode sheet away from the flexible board, the first battery and the second battery are arranged on the outer side of the flexible board, the first battery is adjacent to the first end of the electrode sheet, and the second battery is adjacent to the second end of the electrode sheet; The temperature detection module is used to detect the heating temperature of the electrode sheet, and the electrode sheet is used to generate heat; The control module is configured to reduce the current ratio of the electrode sheet when detecting that the heating temperature is greater than a preset temperature threshold, and is further configured to control the electrode sheet to stop heating and turn off the lamp group when detecting that the heating temperature is greater than a preset over-temperature threshold, wherein the preset temperature threshold is less than the preset over-temperature threshold; The physiotherapy control device is used to receive the temperature demand indication, determine the required temperature from the temperature demand indication, and use the sum of the required temperature and a preset non-sensing temperature as the target temperature, wherein the required temperature is less than a preset over-temperature threshold; Obtaining a target preset current, and controlling the electrode sheet to heat to a target temperature according to the target preset current; using the difference between the required temperature and the preset non-sensing temperature as the reduced temperature; determining the ratio of the reduced temperature to the target temperature to obtain a temperature ratio, and performing a square root operation on the temperature ratio to obtain a reduction ratio; The product of the reduction ratio and the target preset current is used as the target reduction current, and the reduction time is determined based on the target temperature, the reduction temperature, the target preset current and the target reduction current; when the temperature of the electrode sheet reaches the target temperature, the current of the electrode sheet is controlled to decrease from the target preset current to the target reduction current within the reduction time.

2. The physiotherapy control device of the neck physiotherapy equipment according to claim 1, characterized in that: The physical therapy control device further includes a device top cover and a device bottom cover, and the first battery includes a side cover battery and a top cover battery; The device top cover includes a first side cover, a soft rubber semi-ring top cover, and a second side cover, wherein the first side cover is detachably connected to a first end of the soft rubber semi-ring top cover, and the second side cover is detachably connected to a second end of the soft rubber semi-ring top cover; The device top cover and the outer side of the flexible plate are closed to form a cavity, and the inner side of the flexible plate is detachably connected to the device bottom cover; The cavity includes a first inner cavity between the first side cover and the flexible plate, a second inner cavity between the soft rubber semi-ring top cover and the flexible plate, and a third inner cavity between the second side cover and the flexible plate; The side cover battery is disposed in the first inner cavity, and the electrode sheet, the temperature detection module, the second battery, and the top cover battery are disposed in the second inner cavity. The first end of the top cover battery is adjacent to the first end of the electrode sheet, the second end of the top cover battery is adjacent to the side cover battery, and the second end of the electrode sheet is adjacent to the second battery. A control module is disposed in the third inner cavity.

3. The physiotherapy control device of the neck physiotherapy equipment according to claim 2, characterized in that: The physiotherapy control device further includes a touch screen, and the second side cover is provided with a screen installation window; The touch screen is arranged on the screen installation window, and the touch screen is connected to the control module; The control module is used to receive a dimming instruction triggered by a user on the touch screen, and adjust the luminous brightness of the lamp group according to the dimming instruction.

4. A physical therapy control method for a neck physical therapy device, characterized in that: A physiotherapy control device applied to a neck physiotherapy device, wherein the method comprises: Real-time monitoring of the heating temperature of the electrode in the physical therapy control device; If it is detected that the heating temperature is greater than a preset temperature threshold, reducing the current ratio of the electrode sheet; If it is detected that the heating temperature is greater than a preset over-temperature threshold, the electrode sheet is controlled to stop heating and the light group in the physiotherapy control device is turned off; The physical therapy control method further includes: receiving a temperature demand indication, determining a demand temperature from the temperature demand indication, and using the sum of the demand temperature and a preset non-sensing temperature as a target temperature, wherein the demand temperature is less than a preset over-temperature threshold; Obtaining a target preset current, and controlling the electrode sheet to heat to a target temperature according to the target preset current; using the difference between the required temperature and the preset non-sensing temperature as the reduced temperature; determining the ratio of the reduced temperature to the target temperature to obtain a temperature ratio, and performing a square root operation on the temperature ratio to obtain a reduction ratio; The product of the reduction ratio and the target preset current is used as the target reduction current, and the reduction time is determined based on the target temperature, the reduction temperature, the target preset current and the target reduction current; when the temperature of the electrode sheet reaches the target temperature, the current of the electrode sheet is controlled to decrease from the target preset current to the target reduction current within the reduction time.

5. The physiotherapy control method of the neck physiotherapy device according to claim 4, characterized in that: The physical therapy control method further comprises: receiving a dimming indication triggered by a user on a touch screen of the physiotherapy control device, and determining a dimming ratio from the dimming indication; According to the dimming ratio, the current of the lamp group in the physiotherapy control device is adjusted to adjust the brightness of the lamp group.

6. The physiotherapy control method of the neck physiotherapy device according to claim 4, characterized in that: After the step of reducing the target preset current to the target reduced current, the method further comprises: When the current of the electrode sheet is the target reduced current and / or the temperature of the electrode sheet is the reduced temperature, the current of the electrode sheet is restored to the target preset current within the preset recovery time, and when the temperature of the electrode sheet reaches the target temperature, the current of the electrode sheet is controlled to be reduced from the target preset current to the target reduced current within the reduction time, until a neck therapy off indication is received, and the electrode sheet is controlled to stop heating.

7. The physiotherapy control method of the neck physiotherapy device according to claim 6, characterized in that: The step of obtaining the target preset current includes: Obtaining the current temperature of the electrode sheet and determining a plurality of preset currents; Determining the heating time required for the electrode sheet to rise from the current temperature to the target temperature based on each of the preset currents; For each of the preset currents, calculating the energy consumed by the electrode sheet when running at the preset current for the heating time; For each of the preset currents, performing a weighted summation on the heating time and the energy corresponding to the preset current to obtain a heating weight; The preset current with the minimum heating weight is determined among the preset currents as the target preset current.

8. The physiotherapy control method of the neck physiotherapy device according to claim 6, characterized in that: The step of determining the reduction time according to the target temperature, the reduced temperature, the target preset current, and the target reduced current includes: Taking the difference between the target temperature and the reduced temperature as the temperature difference, and calculating the product of the temperature difference and the obtained heat capacity of the electrode sheet to obtain the temperature heat capacity; Acquiring an internal resistance of the electrode sheet, and determining a first heating power of the electrode sheet under the target preset current based on the internal resistance and the target preset current; determining a second heating power of the electrode sheet under the target reduced current according to the internal resistance and the target reduced current; Calculating the difference between the first heating power and the second heating power to obtain a power difference; The ratio of the temperature heat capacity to the power difference is used as the reduction time.

9. The physiotherapy control method of the neck physiotherapy device according to claim 4, characterized in that: The physical therapy control method further includes: Acquiring the ambient temperature, and when the ambient temperature is less than a preset low temperature threshold, if it is detected that the current time of the neck physiotherapy device reaches the predetermined advance start time, controlling the electrode sheet to heat to a preset suitable temperature according to a preset preheating current; or If it is detected that the lamp group of the neck therapy device is turned on and there is no predetermined advance start time in the neck therapy device, the electrode sheet is controlled to be heated to a preset suitable temperature according to a preset maximum current, and when the heating temperature of the electrode sheet reaches the preset suitable temperature, a usage prompt is output to prompt the user that the temperature of the neck therapy device has reached the preset suitable temperature; The predetermined early start time is the difference between the preset use time and the preset preheating time. The preset preheating time is the time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature when it operates at the preset preheating current.

10. A neck physiotherapy device, characterized in that: The neck therapy device includes the therapy control device according to any one of claims 1-3.

Citation Information

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