Neck physiotherapy equipment and physiotherapy control device and method thereof
By adopting flexible plate and dynamic current adjustment technology in neck physiotherapy equipment, the problem of poor physical therapy results in excessive thickness of existing equipment is solved, achieving more efficient physical therapy effects and better user experience.
Patent Information
- Application Number
- CN202510601591.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2045-05-12
AI Technical Summary
The existing red light treatment equipment used for the neck is too thick, resulting in poor physical therapy effect and low user experience.
A physiotherapy control device for neck physiotherapy equipment is designed, using a control module, electrode sheet, flexible plate, lamp group, power supply and temperature detection module. The lamp group is arranged on the flexible plate, the electrode sheet is arranged outside the flexible plate, and the temperature detection module is used to detect the heating temperature of the electrode sheet, and dynamically adjust the current of the electrode sheet through the control module to avoid overheating.
By thinning the equipment structure, the physiotherapy effect is improved, the physiotherapy area is increased, the equipment thickness is reduced, the user's user experience is improved, and the user's safety is ensured through temperature detection and dynamic current regulation.
Smart Images

Figure CN120114768A_ABST
Abstract
Description
Technical Field
[0001] The embodiments of the present application relate to the technical field of human physical therapy, and in particular to a neck physical therapy device, its physical therapy control device and method. Background Art
[0002] Red light therapy lamps act on the human body by emitting red light of a specific wavelength, and are widely used in the fields of physical therapy, health care and beauty. Its treatment mechanisms include promoting local blood circulation, accelerating tissue repair, etc. In recent years, in order to meet the needs of neck physical therapy, red light therapy devices for the neck have emerged.
[0003] Currently, the red light therapy devices for the neck are usually relatively thick. An overly thick neck physical therapy device is not only difficult to fit the user's neck, but also causes energy loss due to too long a light conduction distance, resulting in poor physical therapy effects of the neck physical therapy device, and further leading to a low user experience.
[0004] The above content is only used to assist in understanding the technical solution of the embodiments of the present application, and does not represent 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 physical therapy device, its physical therapy control device and method, aiming to solve the technical problem of low user experience caused by poor physical therapy effects of the neck physical therapy device.
[0006] To achieve the above purpose, the embodiments of the present application provide a physical therapy control device, which includes a control module, electrode plates, a flexible board, a lamp group, a power supply and a temperature detection module. The electrode plates, 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 plates are arranged in a preset central area on the outer side of the flexible board. The temperature detection module is arranged on the side of the electrode plates 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 plates, and the second battery is adjacent to the second end of the electrode plates; The temperature detection module is used to detect the heating temperature of the electrode plates, and the electrode plates are used for heating; The control module is used to reduce the current of the electrode plates when it detects that the heating temperature is greater than a preset temperature threshold, and is also used to control the electrode plates to stop heating and turn off the lamp group when it detects 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.
[0007] In one embodiment, the physiotherapy 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 half-ring top cover, and a second side cover. The first side cover is detachably connected to the first end of the soft rubber half-ring top cover, and the second side cover is detachably connected to the second end of the soft rubber half-ring top cover; The device top cover and the outer side of the flexible board are closed to form a cavity, and the inner side of the flexible board is detachably connected to the device bottom cover; The cavity includes a first inner cavity between the first side cover and the flexible board, a second inner cavity between the soft rubber half-ring top cover and the flexible board, and a third inner cavity between the second side cover and the flexible board; The side cover battery is arranged in the first inner cavity, and the electrode sheet, the temperature detection module, the second battery, and the top cover battery are arranged 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; The control module is arranged in the third inner cavity.
[0008] In one embodiment, 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 in the screen installation window, and the touch screen is connected to the control module; The control module is configured to receive a dimming instruction triggered by a user on the touch screen, and adjust the light emission brightness of the lamp group according to the dimming instruction.
[0009] In addition, to achieve the above object, the present embodiment further provides a physiotherapy control method, and the method includes: 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; 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.
[0010] In one embodiment, the physiotherapy control method further includes: Receiving a temperature requirement instruction triggered by a user on the touch screen, determining a required temperature from the temperature requirement instruction, and taking the sum of the required temperature and a preset non-sensing temperature amount as a target temperature, where the required temperature is less than the preset over-temperature threshold; Obtaining a target preset current, and controlling the electrode sheet to heat to the target temperature according to the target preset current; Use the difference between the required temperature and the preset insensitive temperature amount as the temperature reduction; Determine the ratio of the temperature reduction to the target temperature to obtain a temperature ratio, and perform a square root operation on the temperature ratio to obtain a reduction ratio; Take the product of the reduction ratio and the target preset current as the target reduction current, and determine the reduction duration according to the target temperature, the temperature reduction, the target preset current, and the target reduction current; When the temperature of the electrode sheet reaches the target temperature, control the current of the electrode sheet to decrease from the target preset current to the target reduction current within the reduction duration; When the current of the electrode sheet is the target reduction current and / or the temperature of the electrode sheet is the temperature reduction, restore the current of the electrode sheet to the target preset current within a preset recovery duration, and return to the step of controlling the current of the electrode sheet to decrease from the target preset current to the target reduction current when the temperature of the electrode sheet reaches the target temperature, until a neck physiotherapy off instruction is received, then control the electrode sheet to stop heating.
[0011] In one embodiment, the step of obtaining the target preset current includes: Obtain the current temperature of the electrode sheet and determine a plurality of preset currents; According to each of the preset currents, respectively determine the heating duration required for the electrode sheet to rise from the current temperature to the target temperature; For each of the preset currents, calculate the energy consumed when the electrode sheet operates at the preset current for the heating duration; For each of the preset currents, perform a weighted sum of the heating duration and the energy corresponding to the preset current to obtain a heating weight value; Determine the preset current with the smallest heating weight value among the preset currents as the target preset current.
[0012] In one embodiment, the step of determining the reduction duration according to the target temperature, the temperature reduction, the target preset current, and the target reduction current includes: Take the difference between the target temperature and the temperature reduction as the temperature difference, and calculate the product of the temperature difference and the heat capacity of the obtained electrode sheet to obtain the temperature heat capacity; Obtain the internal resistance of the electrode sheet, and determine the first heating power of the electrode sheet at the target preset current according to the internal resistance and the target preset current; Determine the second heating power of the electrode sheet at the target reduction current according to the internal resistance and the target reduction current; Calculate the difference between the first heating power and the second heating power to obtain a power difference; Take the ratio of the temperature heat capacity to the power difference as the reduction duration.
[0013] In one embodiment, the physical therapy control method further includes: Obtain the ambient temperature. When the ambient temperature is less than a preset low temperature threshold, if it is detected that the current time of the neck physical therapy device reaches a predetermined early start time, then control the electrode sheet to heat to a preset appropriate temperature according to a preset preheating current; or, If it is detected that the lamp group of the neck physical therapy device is turned on and there is no predetermined early start time in the neck physical therapy device, then control the electrode sheet to heat to a preset appropriate temperature according to a preset maximum current. When the heating temperature of the electrode sheet reaches the preset appropriate temperature, output a usage prompt to prompt the user that the temperature of the neck physical therapy device reaches the preset appropriate temperature; Wherein, the predetermined early start time is the difference between a preset usage time and a preset preheating duration, and the preset preheating duration is the duration required for the electrode sheet to rise from the ambient temperature to the preset appropriate temperature when operating at the preset preheating current.
[0014] In addition, to achieve the above object, an embodiment of the present application further provides a physical therapy device, and the physical therapy device includes the physical therapy control device as described above.
[0015] In addition, to achieve the above object, an embodiment of the present application further provides a computer program product, including a computer program, and when the computer program is executed by a processor, the steps of the physical therapy control method as described above are implemented.
[0016] One or more technical solutions proposed in the embodiments of the present application have at least the following technical effects: In this embodiment, by setting a control module, electrode plates, a flexible board, a lamp group, a power supply, and a temperature detection module in the physiotherapy control device, it is possible to set the lamp group on the flexible board, and the flexible board can be bent, so that the neck physiotherapy device can be arranged around the neck, which is convenient for providing a larger physiotherapy area for users and improving the physiotherapy effect. Moreover, since the flexible board is much thinner than the glass fiber epoxy copper clad laminate (the lamp group in a general neck red light therapy lamp is set on the glass fiber epoxy copper clad laminate), the thickness of the neck physiotherapy device can be reduced. 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 outer side of the flexible board. The first battery and the second battery are respectively arranged at both ends of the electrode plate, which is also convenient for reducing the thickness of the battery, and thus the thickness of the neck physiotherapy device can also be reduced. Further, in the present application, the electrode plate can be set at a preset central position on the outer side of the flexible board, and the electrode plate can be used for heating. Since the neck physiotherapy device in the present application is relatively thin, the heat generated by the electrode plate can effectively heat the neck, improving the physiotherapy effect. At the same time, in the present application, the temperature detection module is also used to detect the heating temperature of the electrode plate. When the heating temperature is greater than the preset temperature threshold, the current of the electrode plate is reduced, realizing the dynamic adjustment of the current of the electrode plate. When the heating temperature is greater than the preset over-temperature threshold, the electrode plate and the lamp group are turned off, ensuring the safety of the user while improving the physiotherapy effect, and thus improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The accompanying drawings herein are incorporated into the specification and form a part of this specification, showing embodiments consistent with the embodiments of the present application, and are used together with the specification to explain the principles of the embodiments of the present application.
[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the accompanying drawings required for use in the description of the embodiments or the prior art. Obviously, for those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0019] Figure 1 It is a schematic diagram of module connection in an embodiment of the physiotherapy control device in the embodiments of the present application; Figure 2 It is an exploded view of the structure of the neck physiotherapy device in the physiotherapy control device in the embodiments of the present application; Figure 3 It is a schematic diagram of the structure of the neck physiotherapy device in an example in the physiotherapy control device in the embodiments of the present application; Figure 4 It is a schematic diagram of the structure of the neck physiotherapy device in another example in the physiotherapy control device in the embodiments of the present application; Figure 5 Schematic diagram of the module including a touch screen in the physiotherapy control device according to an embodiment of the present application; Figure 6 Schematic diagram of the module connection of another embodiment in the physiotherapy control device according to an embodiment of the present application; Figure 7 Flow chart of an embodiment of the physiotherapy control method according to an embodiment of the present application.
[0020] Explanation of the reference numerals in the drawings: 100, control module; 200, electrode patch; 300, flexible board; 400, lamp group; 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 half-ring top cover; G2, first side cover; G3, second side cover; G4, device bottom cover; DG, device top cover; Z, lamp bead; K1, switch; K2, decorative piece; SC, window; GJ, silica gel plug; JK, interface; CK, screen installation window; 900, mains electricity; 800, power adapter; D1, soft rubber half-ring top cover from the top view; C1, first side cover from the side view; C2, second side cover from the side view; J, neck physiotherapy device from the front view; D2, device bottom cover from the bottom view; S1, neck physiotherapy device from the first side view; S2, neck physiotherapy device from the second side view.
[0021] The realization of the purpose, functional features and advantages of the embodiments of the present application will be further described with reference to the embodiments and the accompanying drawings. Detailed implementation manners
[0022] It should be understood that the specific embodiments described herein are only used to explain the technical solutions of the embodiments of the present application, and are not used to limit the embodiments of the present application.
[0023] In order to better understand the technical solutions of the embodiments of the present application, the following will be described in detail with reference to the drawings in the specification and specific implementation manners.
[0024] Red light therapy lamps are a type of lamp used in physiotherapy, health care, and beauty fields. Red light therapy lamps can stimulate cell activity, have a repair effect on cells, accelerate blood circulation, improve metabolism, relieve fatigue, and reduce pain, etc.
[0025] Currently, due to the limitations of the component size or structure of the neck red light therapy lamps on the market, the product thickness of the neck red light therapy lamps basically exceeds 20 mm, and even reaches more than 30 mm, resulting in a poor user experience.
[0026] Therefore, the embodiment of the present application provides a physiotherapy control device for a neck physiotherapy device. In this embodiment, a control module, electrode plates, a flexible board, a lamp group, a power supply, and a temperature detection module are arranged in the physiotherapy control device, so that the lamp group can be arranged on the flexible board, which is convenient for the neck physiotherapy device to be arranged around the neck, thus facilitating the provision of a larger physiotherapy area for the user and improving the physiotherapy effect. Moreover, since the flexible board is much thinner than a glass fiber epoxy copper clad laminate (the lamp group in a general red light therapy lamp for the neck is arranged on a glass fiber epoxy copper clad laminate), the thickness of the neck physiotherapy device can be reduced. Further, in the embodiment of the present application, electrode plates can be arranged on the top of the flexible board, and the electrode plates can be used for heating. Since the neck physiotherapy device in the embodiment of the present application is thinner, the heat generated by the electrode plates can effectively heat the neck, improving the physiotherapy effect. At the same time, in this application, the temperature detection module is also used to detect the heating temperature of the electrode plates, so as to facilitate reducing the current of the electrode plates when the heating temperature is greater than the preset temperature threshold, realizing the dynamic adjustment of the current of the electrode plates. When the heating temperature is greater than the preset over-temperature threshold, the electrode plates and the lamp group are turned off, ensuring the safety of the user while improving the physiotherapy effect, and thus improving the user experience.
[0027] In addition, since the neck physiotherapy device in this embodiment has become thinner, when the electrode plates are arranged in the center of the neck physiotherapy device for heating, the human body can more easily feel the heat, and there may be a risk of scalding when the electrode plates are continuously heated. Therefore, in this embodiment, when the heating temperature is greater than the preset temperature threshold, the current of the electrode plates is reduced, realizing the dynamic adjustment of the current of the electrode plates. When the heating temperature is greater than the preset over-temperature threshold, the electrode plates and the lamp group are turned off, ensuring the safety of the user while improving the physiotherapy effect, and thus improving the user experience.
[0028] 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, electrode plates 200, a flexible board 300, a lamp group 400, a power supply 500, and a temperature detection module 600. The electrode plates 200, the lamp group 400, the power supply 500, and the temperature detection module 600 are all connected to the control module 100; The power supply 500 includes a first battery and a second battery. The lamp group 400 is arranged on the inner side of the flexible board 300. The electrode plates 200 are arranged in a preset central area on the outer side of the flexible board 300. The temperature detection module 600 is arranged on the side of the electrode plates 200 away from the flexible board 300. 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 plates, and the second battery is adjacent to the second end of the electrode plates; The temperature detection module 600 is used to detect the heating temperature of the electrode sheet 200, and the electrode sheet 200 is used for heating; The control module 100 is used to reduce the current of the electrode sheet 200 when it detects 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 detects 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.
[0029] It should be noted that the neck physiotherapy device includes a physiotherapy control device. The lamp group 400 includes a plurality of infrared lamp groups and a plurality of red light lamp groups. For example, the lamp group 400 includes a red light lamp group with a wavelength of 635 nm (nanometers), a red light lamp group with a wavelength of 660 nm, an infrared lamp group with a wavelength of 850 nm, and an infrared lamp group with a wavelength of 940 nm. The infrared lamp group can emit infrared light, and the red light lamp group can emit red light. The infrared lamp group is composed of a plurality of lamp beads that can emit infrared light, and the red light lamp group is composed of a plurality of lamp beads that can emit red light. The lamp beads of the infrared lamp group and the lamp beads of the red light lamp group are both welded to the flexible board 300. The plurality of infrared lamp groups and the plurality of red light lamp groups included in the lamp group 400 are respectively arranged on the flexible board 300. Each infrared lamp group is connected in parallel, each red light lamp group is connected in parallel, and the red light lamp group and the infrared lamp group are connected in parallel. The lamp group 400 can be arranged at the bottom of the flexible board 300. The control module 100 can respectively control each red light lamp group and each infrared lamp group. For example, it can respectively control the pulses of each red light lamp group, or control the pulses of each infrared lamp group. The control module 100 can also uniformly control the brightness, light emission duration, on and / or off, etc. of each red light lamp group and each infrared lamp group. This embodiment does not make specific limitations on this.
[0030] The electrode sheet 200 is placed on the top of the flexible board 300. The position of the electrode sheet 200 can be in a preset central area on the top of the flexible board 300, but the electrode sheet 200 may not be welded to the top of the flexible board 300, or may be welded to the top of the flexible board 300. This embodiment does not make specific limitations on this.
[0031] The thickness of the flexible board 300 is 0.2 mm (millimeters) to 0.5 mm, which is much thinner than the 1.6 mm thickness of the glass fiber epoxy copper clad laminate. And the flexible board 300 is also convenient for surrounding the neck, making the physiotherapy area larger. While the conventional glass fiber epoxy copper clad laminate belongs to a rigid circuit board and cannot achieve a curved surface effect. The rigid circuit board has to be set as a plane, and thus cannot surround the neck, which will affect the treatment effect. The lamp group includes a plurality of lamp beads. The flexible board can be set as a movable U shape, and each of the lamp beads is evenly distributed on the inner side of the flexible board.
[0032] Moreover, in this embodiment, the electrode sheet 200 can be disposed at the center of the top of the flexible board 300, so that the electrode sheet 200 can be arranged at the center of the neck physiotherapy device. Furthermore, the position where the electrode sheet 200 is disposed can exactly correspond to the position of the neck spine. When the neck treatment device is turned on and used, the heating electrode sheet 200 can start to work, simultaneously heating up and emitting energy, thereby achieving the effect of local dehumidification for the user.
[0033] The power supply 500 can supply power to the control module 100. The control module 100 can be directly connected to the lamp group 400, the electrode sheet 200, and the temperature detection module 600. The power supply 500 can provide a voltage of 3.7V for the control module 100, and the power supply 500 can be connected to the mains. The power supply can include a first battery 510 and a second battery 520, and the first battery and the second battery can jointly provide a voltage of 3.7V for the control module.
[0034] The temperature detection module 600 can be a temperature sensor. The temperature sensor can be disposed on the electrode sheet 200. Since the electrode sheet 200 generates heat, the temperature sensor disposed on the electrode sheet 200 can detect the position with the highest temperature in the neck physiotherapy device. Furthermore, it is convenient to subsequently control the current of the electrode sheet 200 and the turning on and off of the lamp group 400 according to 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, and the heating temperature reflects the temperature of the electrode sheet 200.
[0035] 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. The preset value is greater than 0. For example, the preset value can be 5, 6, or 7, etc. This embodiment does not make specific limitations on this. When the heating temperature is greater than the preset temperature threshold, the control module 100 reduces the current of the electrode sheet 200, thereby reducing the current of the electrode sheet 200 in advance to reduce the heat generated by the electrode sheet 200 and avoid the temperature of the electrode sheet 200 being greater than the preset over-temperature threshold. Furthermore, the physiotherapy duration of the neck physiotherapy device can be extended to improve the physiotherapy effect.
[0036] 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 generate heat and avoiding scalding the user.
[0037] The physiotherapy control device further includes a voice module. When it detects that the heating temperature is greater than a preset over-temperature threshold, the control module 100 can also control the voice module to output a prompt to notify the user that the current temperature of the neck physiotherapy device is too high, and the lamp group 400 and the electrode sheet 200 have been turned off. The voice module can be a buzzer, which can emit an alarm sound when the heating temperature is greater than the preset over-temperature threshold to notify the user. The preset over-temperature threshold can be 42 degrees Celsius, or it can be set based on the actual situation. This embodiment does not make specific limitations on this.
[0038] In this embodiment, by providing the control module 100, the electrode sheet 200, the flexible board 300, the lamp group 400, the power supply 500, and the temperature detection module 600 in the physiotherapy control device, the lamp group 400 can be arranged on the flexible board 300, which is convenient for the neck physiotherapy device to be arranged around the neck, thus facilitating providing a larger physiotherapy area for the user and improving the physiotherapy effect. Moreover, since the flexible board 300 is much thinner than the glass fiber epoxy copper clad board (the lamp group 400 in a general neck red light therapy lamp is arranged on the glass fiber epoxy copper clad board), the thickness of the neck physiotherapy device can be reduced. Further, in this embodiment of the application, the electrode sheet 200 can be arranged on the top of the flexible board 300, and the electrode sheet 200 can be used for heating. Since the neck physiotherapy device in this embodiment of the application is relatively thin, the heat generated by the electrode sheet 200 can effectively heat the neck, improving the physiotherapy effect. At the same time, in this embodiment of the application, the temperature detection module 600 is also used to detect the heating temperature of the electrode sheet 200, which is convenient for reducing the current of the electrode sheet 200 when the heating temperature is greater than the preset temperature threshold, realizing the dynamic adjustment of the current of the electrode sheet 200. When the heating temperature is greater than the preset over-temperature threshold, the electrode sheet 200 and the lamp group 400 are turned off, ensuring the safety of the user while improving the physiotherapy effect, and thus enhancing the user experience.
[0039] 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; The device top cover DG includes a first side cover G2, a soft rubber half-ring top cover G1, and a second side cover G3. The first side cover G2 is detachably connected to the first end of the soft rubber half-ring top cover G1, and the second side cover G3 is detachably connected to the second end of the soft rubber half-ring top cover G1; 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; 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 glue 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; 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. A first end of the top cover battery 511 is adjacent to a first end of the electrode sheet 200, a second end of the top cover battery 511 is adjacent to the side cover battery 512, and a second end of the electrode sheet 200 is adjacent to the second battery 520; The control module 100 is disposed in the third inner cavity.
[0040] It should be noted that after the device top cover DG and the device bottom cover G4 of the physiotherapy control device are spliced, the appearance of the neck physiotherapy device can be obtained. The device top cover DG includes a first side cover G2, a soft glue semi-ring top cover G1, and a second side cover G3 that are sequentially spliced. The device top cover DG is spliced with the device bottom cover G4. Among them, the soft glue semi-ring top cover G1 is a top cover made of soft glue, so that when the neck therapeutic instrument is opened, the top cover has a certain ability to stretch and deform, which is convenient for users to wear. Figure 2 is an exploded view of the neck physiotherapy device. In Figure 2 the first inner cavity, the second inner cavity, and the third inner cavity are not marked, but in Figure 2 the devices corresponding to the first inner cavity, the second inner cavity, and the third inner cavity are shown respectively.
[0041] 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.
[0042] In addition, the physiotherapy control device further 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 power by sequentially connecting the power adapter and the type-c interface, and thus can also be powered by connecting to the mains power. The control module 100 can supply power to the lamp group 400 and the electrode sheet 200. The type-c interface can also be used to charge an adapted mobile terminal, such as a mobile phone. A silica gel plug is also provided on the type-c interface, which effectively protects the type-c interface from being isolated from dust and moisture in the outside world. Further, in this embodiment, the mobile terminal can also be connected to the type-c interface to realize the 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. Thus, during the process of the user wearing the neck physiotherapy device, the user can adjust the neck physiotherapy device without taking off the neck physiotherapy device. A screen installation window, a switch installation position, and an interface installation position are provided on the second side cover. The interface installation position is arranged at one end of the second side cover away from the soft rubber half-ring top cover, and the button installation position is arranged between the screen installation window and the interface installation position; the interface is arranged at the interface installation position, and the interface is detachably connected to the silica gel plug.
[0043] Further, please refer to Figure 3 and Figure 4 which show the external schematic diagram of the neck physiotherapy device. Figure 3 In Figure 4 , D1 refers to the soft rubber half-ring top cover in the top view angle, C1 refers to the first side cover in the side view angle, C2 shows the second side cover in the side view angle, D2 is the device bottom cover in the bottom view angle, and J shows the front view schematic diagram of the neck physiotherapy device. In
[0044] Among them, Figure 2 G1 in Figure 2 refers to the soft rubber half-ring top cover, Figure 2 600 in Figure 2The power supply in the middle can be composed of three batteries, which are respectively arranged under the soft rubber semi-circular top cover and inside 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 device bottom cover. There are also multiple holes on the top of the device bottom cover, and each hole corresponds to the lamp beads on the flexible board. The lamp beads Z are welded to the bottom of the flexible board, and each lamp bead forms 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 ornament of the switch, G3 refers to the structure of the second side cover, SC is the window for displaying the touch screen, GJ is the silica gel plug, and the structure is set at the bottom of the second side cover. For example, reference can be made to Figure 4 , Figure 4 From the perspective of S2 in Figure 2 the power adapter is not shown.
[0045] In the neck physiotherapy device, the power supply can be composed of multiple batteries spliced together, 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 thickness of the battery in the embodiment of the present application is 6.7mm, which is thinner than the traditional lithium battery (thickness 18mm). Furthermore, the thickness of the neck physiotherapy device can be further reduced. When multiple batteries are arranged inside the shell, considering the weight uniformity of the entire neck treatment device, multiple batteries can be evenly distributed under the soft rubber semi-circular top cover. For example, reference can be made to Figure 2 , so as to facilitate ensuring the weight balance of the neck physiotherapy device. For example, the thickness of the neck physiotherapy device is about 12 - 15mm.
[0046] Furthermore, 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; The touch screen 700 is arranged in the screen installation window CK, and the touch screen 700 is connected to the control module 100; The control module 100 is used to receive the dimming instruction triggered by the user on the touch screen 700, and adjust the light emission brightness of the lamp group 400 according to the dimming instruction.
[0047] It should be noted that the touch screen 700 can interact with the user, and the user can trigger a dimming instruction on the touch screen 700. The dimming instruction is used to indicate the adjustment of the light emission brightness of the lamp group 400. The dimming instruction may include an adjustment ratio, and the current of the lamp group 400 can be adjusted according to the adjustment ratio to achieve the adjustment of the light emission brightness of the lamp group 400. For example, two dimming ratios of gears can be displayed on the touch screen 700. For example, the dimming ratio of the first gear is 100%, and the dimming ratio of the second gear can be 50%. The 100% dimming ratio of the first gear indicates that the lamp group 400 in the neck physiotherapy device operates at the maximum current, and the 50% dimming ratio of the second gear indicates that the lamp group 400 in the neck physiotherapy device operates at 50% of the maximum current. In other embodiments, a dimming progress bar can also be displayed on the touch screen 700. The dimming progress bar can be adjusted from 0 to 100%. The user can flexibly adjust the light emission brightness of the lamp group 400 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.
[0048] The user can also set the timing duration of the lamp group 400 on the touch screen 700. The timing duration represents the light emission duration of the lamp group 400, and the timing duration can be set based on the actual situation. This embodiment does not make specific limitations on this. For example, the corresponding timing durations of 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 total switch of the lamp group 400, and the total switch of the lamp group 400 is used to uniformly control the turning on and off of the lamp group 400. The touch screen 700 can be an LED liquid crystal display screen. Refer to Figure 2 , Figure 2 shows the setting position of the screen installation window on the second side cover.
[0049] By setting the touch screen 700 in the neck physiotherapy device, it is convenient for the user to adjust the neck therapeutic device based on their own needs, so as to improve the user experience. In addition, please refer to Figure 6 , Figure 6 shows the schematic diagram of the module connection where the physiotherapy control device in the neck physiotherapy device is connected to the mains. The mains 900 is connected to the power adapter 800, and the power adapter 800 can be connected to the control module. The electrofishing adapter and the control module can be connected through an interface. The interface is not shown in Figure 6 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, electrode pads, and a lamp group.
[0050] Furthermore, based on the above embodiments of the present application, in another embodiment of the present application, for the same or similar content as the above embodiments, reference can be made to the above introduction and will not be repeated hereinafter. On this basis, refer to Figure 7, the embodiment of the present application further provides a physical therapy control method for a neck physical therapy device, which is applied to the physical therapy control device of the neck physical therapy device. The control method includes steps S10 to S30: Step S10, continuously monitor the heating temperature of the electrode plate in the physical therapy control device; Step S20, if it is detected that the heating temperature is greater than the preset temperature threshold, reduce the current of the electrode plate; Step S30, when it is detected that the heating temperature is greater than the preset over-temperature threshold, control the electrode plate to stop heating and turn off the lamp group in the physical therapy control device.
[0051] It should be noted that the heating temperature is the temperature of the electrode plate detected by the temperature detection module. 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, and the preset value is greater than 0. For example, the preset value can be 5, 6 or 7, etc. This embodiment does not make specific limitations on this. When the heating temperature is greater than the preset temperature threshold, the current of the electrode plate is reduced, and thus the current of the electrode plate can be reduced in advance to reduce the heating of the electrode plate, avoid the temperature of the electrode plate being greater than the preset over-temperature threshold, and then the physical therapy duration of the neck physical therapy device can be extended to improve the physical therapy effect.
[0052] When it is detected that the heating temperature is greater than the preset over-temperature threshold, the electrode plate and the lamp group will be turned off, thereby avoiding the continuous heating of the electrode plate and the lamp group to avoid scalding the user.
[0053] The physical therapy control device further includes a voice module. When it is detected that the heating temperature is greater than the preset over-temperature threshold, a prompt can also be output through the language module to prompt the user that the current temperature of the neck physical therapy device is too high and the lamp group and the electrode plate have been turned off. The voice module can be a buzzer, which can control the buzzer to emit an alarm sound when the heating temperature is greater than the preset over-temperature threshold to prompt the user. The preset over-temperature threshold can be 42 degrees Celsius, or it can be set based on the actual situation. This embodiment does not make specific limitations on this.
[0054] Exemplarily, continuously monitor the heating temperature of the electrode plate in the physical therapy control device. If it is detected that the heating temperature is greater than the preset temperature threshold, reduce the current of the electrode plate. For example, the current of the electrode plate can be reduced to 50% of the original, etc. This embodiment does not make specific limitations on this. If it is detected that the heating temperature is less than or equal to the preset temperature threshold, keep the current of the electrode plate unchanged. If it is detected that the heating temperature is greater than the preset over-temperature threshold, the electrode plate and the lamp group can be turned off, thereby avoiding the risk of scalding the user caused by the continuous heating of the electrode plate and the lamp group.
[0055] In this embodiment, a control module, electrode plates, a flexible board, a lamp group, a power supply, and a temperature detection module are provided in the physiotherapy control device, so that the lamp group can be arranged on the flexible board, which is convenient for the neck physiotherapy device to be arranged around the neck, thus facilitating the provision of a larger physiotherapy area for the user and improving the physiotherapy effect. Moreover, since the flexible board is much thinner than the glass fiber epoxy copper clad laminate (the lamp group in a general neck red light therapy lamp is arranged on the glass fiber epoxy copper clad laminate), the thickness of the neck physiotherapy device can be reduced. Further, in this embodiment of the present application, electrode plates can be arranged on the top of the flexible board, and the electrode plates can be used for heating. Since the neck physiotherapy device in this embodiment of the present application is relatively thin, the heat generated by the electrode plates can effectively heat the neck, improving the physiotherapy effect. At the same time, in this embodiment of the present application, the temperature detection module is also used to detect the heating temperature of the electrode plates, so as to facilitate reducing the current of the electrode plates when the heating temperature is greater than the preset temperature threshold, realizing the dynamic adjustment of the current of the electrode plates. Moreover, when the heating temperature is greater than the preset over-temperature threshold, the electrode plates and the lamp group are turned off, ensuring the safety of the user while improving the physiotherapy effect, and thus improving the user experience.
[0056] In a feasible embodiment, the physiotherapy control method of the neck physiotherapy device further includes steps A10 to A20: Step A10: Receive the dimming instruction triggered by the user on the touch screen of the physiotherapy control device, and determine the dimming ratio from the dimming instruction; Step A20: Adjust the current of the lamp group in the physiotherapy control device according to the dimming ratio to adjust the brightness of the lamp group.
[0057] It should be noted that the touch screen can interact with the user, and the user can trigger a dimming instruction on the touch screen. The dimming instruction is used to indicate the adjustment of the light emission brightness of the lamp group. The dimming instruction may include an adjustment ratio, and the current of the lamp group can be adjusted according to the adjustment ratio to achieve the adjustment of the light emission brightness of the lamp group. For example, two dimming ratio levels can be displayed on the touch screen. For example, the dimming ratio of the first level is 100%, and the dimming ratio of the second level can be 50%. The 100% dimming ratio of the first level indicates that the lamp group in the neck physiotherapy device operates at the maximum current, and the 50% dimming ratio of the second level indicates that the lamp group in the neck physiotherapy device operates 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 light emission 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 in this regard.
[0058] Exemplarily, a dimming instruction triggered by a user on the touch screen of the physiotherapy control device is received, a dimming ratio is determined from the dimming instruction, and according to the dimming ratio, the current of the lamp group in the physiotherapy control device is adjusted to achieve the adjustment of 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 on the touch screen, thereby facilitating the improvement of the user experience.
[0059] In a feasible embodiment, the physiotherapy control method of the neck physiotherapy device may further include steps B10 to B70: Step B10, receiving a temperature demand instruction triggered by a user on the touch screen, determining a demand temperature from the temperature demand instruction, and taking the sum of the demand temperature and a preset insensitive temperature amount as the target temperature, where the demand temperature is less than the preset over-temperature threshold; It should be noted that the user can also trigger a temperature demand instruction on the touch screen. For example, the user can determine the temperature that the neck physiotherapy device needs to provide according to their own needs. The demand temperature is the target temperature that the user hopes the neck physiotherapy device to reach. The preset insensitive temperature amount can be preset in advance. The preset insensitive temperature amount can be 0.5°C, 1°C, 1.5°C, 2°C, etc. This embodiment does not make specific limitations on this. The preset insensitive temperature amount can reflect the temperature change that the user is not easily aware of. For example, if the user's demand temperature is 35°C, then when the temperature changes 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 avoiding the user's misoperation, resulting in the demand temperature being greater than the preset over-temperature threshold, and thus avoiding the user being scalded, etc. For example, when the demand temperature set by the user is greater than the preset over-temperature threshold, a prompt of "The temperature is too high and there may be a risk of scalding" can be output on the touch screen, and the user is advised to adjust the demand temperature.
[0060] The target temperature can be the sum of the demand temperature and the preset insensitive temperature amount. The target temperature is greater than the demand temperature. When the temperature of the neck physiotherapy device changes from the demand temperature to the target temperature, the user may not perceive the change, thereby facilitating the subsequent heating of the electrode sheet temperature to the target temperature first.
[0061] Step B20, obtaining a target preset current, and controlling the electrode sheet to be heated to the target temperature according to the target preset current; Step B30, taking the difference between the demand temperature and the preset insensitive temperature amount as the temperature reduction; Step B40, determining the ratio of the temperature reduction to the target temperature to obtain a temperature ratio, and performing a square root operation on the temperature ratio to obtain a reduction ratio; It should be noted that the current of the electrode sheet can be controlled to the target preset current so as to control the electrode sheet to heat to the target temperature at the target preset current. The temperature reduction is the difference between the required temperature and the preset insensitive temperature amount. The temperature reduction is less than the required temperature and 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 temperature reduction to the target temperature can be determined, the temperature ratio can be determined, and the square root operation is performed on the temperature ratio to obtain the reduction ratio. Furthermore, the reduction ratio can reflect the ratio by which the current of the electrode sheet needs to be reduced when the temperature is reduced from the target temperature to the temperature reduction.
[0062] In this embodiment, based on the required temperature of the user, the current in the electrode sheet of the neck physiotherapy device can be adjusted, so that the temperature of the electrode sheet can be maintained around the required temperature, avoiding too high or too low temperature, which is convenient for improving the user experience. At the same time, due to the change of the current, the current of the electrode sheet can be prevented from being maintained at a high level all the time, thereby reducing the energy consumption of the neck physiotherapy device and making the battery life of the neck physiotherapy device stronger, which is convenient for improving the user experience.
[0063] Exemplarily, receive the temperature requirement instruction triggered by the user on the touch screen, determine the required temperature from the temperature requirement instruction, take the sum of the required temperature and the preset insensitive temperature amount as the target temperature, and control the electrode sheet to heat to the target temperature according to the obtained target preset current. Take the difference between the required temperature and the preset insensitive temperature amount as the temperature reduction, determine the ratio of the temperature reduction to the target temperature to obtain the temperature ratio, and perform a square root operation on the temperature ratio to obtain the reduction ratio. Furthermore, the reduction ratio can be used to determine the ratio by which the current needs to be reduced when the temperature drops from the target temperature to the temperature reduction.
[0064] Step B50: Take the product of the reduction ratio and the target preset current as the target reduction current, and determine the reduction duration according to the target temperature, the temperature reduction, the target preset current, and the target reduction current; Step B60: When the temperature of the electrode sheet reaches the target temperature, control the current of the electrode sheet to drop from the target preset current to the target reduction current within the reduction duration; It should be noted that the target reduction current is the current required when the temperature of the electrode sheet is the temperature reduction. The reduction duration is the duration required to reduce the temperature from the target temperature to the temperature reduction. Determine the reduction duration according to the target temperature, the temperature reduction, the target preset current, and the target reduction current, so as to ensure that within the reduction duration, the temperature of the electrode sheet is less than or equal to the target temperature and greater than or equal to the temperature reduction, so as to prevent the user from perceiving the temperature change of the neck physiotherapy device.
[0065] Exemplarily, the product of the reduction ratio and the target preset current is used as the target reduction current. Based on the target temperature, the reduction temperature, the target preset current, and the target reduction current, the reduction duration is determined. Then, it is convenient to linearly reduce the target preset current to the target reduction current within the reduction duration in the subsequent process, that is, the current of the electrode sheet is not suddenly changed from the target preset current to the target reduction current, which is convenient to ensure 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. Then, the current of the electrode sheet can be controlled to decrease at the reduction rate to reduce the current of the electrode sheet from the target preset current to the target reduction current within the reduction duration.
[0066] Step B70, when 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 is restored to the target preset current within a preset recovery duration, and the step of controlling the current of the electrode sheet to decrease from the target preset current to the target reduction current within the reduction duration when the temperature of the electrode sheet reaches the target temperature is returned. Until a neck physiotherapy shutdown instruction is received, the heating of the electrode sheet is controlled to stop.
[0067] 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 duration. Because there may be a situation where the temperature of the electrode sheet has dropped to the reduction temperature before the current of the electrode sheet has dropped to the target reduction current. If the current of the electrode sheet continues to decrease 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, the current needs to be increased as soon as possible to prevent the temperature of the electrode sheet from dropping below the reduction temperature, so as to improve the user experience. When the current of the electrode sheet drops to the target reduction current, the current can no longer be decreased to prevent the temperature of the electrode sheet from dropping below the reduction temperature and avoid reducing the user experience.
[0068] The neck physiotherapy shutdown instruction can be triggered by the user. The user can trigger the neck physiotherapy shutdown instruction on the touch screen. The neck physiotherapy shutdown instruction is used for the neck physiotherapy device to stop heating. When the neck physiotherapy shutdown instruction is received, the current of the electrode sheet can be controlled to be 0 to control the electrode sheet to stop heating.
[0069] The preset recovery duration can be determined based on the actual situation. For example, the preset recovery duration can also be the same as the reduction duration.
[0070] Exemplarily, when the current of the electrode patch is the target reduced current and / or the temperature of the electrode patch is the reduced temperature, within a preset recovery duration, the current of the electrode patch is restored to the target preset current, and step B60 is returned until a neck physiotherapy shutdown instruction is received, and the electrode patch is controlled to stop heating. For example, the current of the electrode patch can be adjusted to 0. For example, the preset recovery duration can be split into a first recovery duration, a preset stabilization duration, and a second recovery duration. For example, the recovery rate when restoring from the target reduced current to the target reduced current within the recovery duration can be determined first. For example, the current difference between the target preset current and the target reduced current is determined, and the ratio of the current difference to the preset recovery duration is used as the recovery rate. The unit of the recovery duration can be seconds. Furthermore, the current of the electrode patch can be controlled to be restored at the recovery rate first. At the same time, when it is detected that the temperature of the electrode patch reaches the required temperature, the increase in the current of the electrode patch is stopped. At the same time, the target required current when the temperature of the electrode patch reaches the required temperature is obtained, and the first recovery duration required to restore from the target preset current to the target required current is obtained. The second recovery duration is obtained by subtracting the first recovery duration and the preset stabilization duration from the recovery duration. After the temperature of the electrode patch remains at the required temperature for the preset stabilization duration, within the second recovery duration, it is linearly restored from the target required current to the target preset current. Thus, the duration for which the neck physiotherapy device maintains at the required temperature can be increased. The preset stabilization duration can be determined based on the actual situation, and this embodiment does not make specific limitations on this.
[0071] Since in this embodiment, the current of the electrode patch 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 within the user's required temperature range, thereby avoiding overheating of the neck physiotherapy device and preventing the neck physiotherapy device from stopping operation due to overheating. Furthermore, the continuity of physiotherapy can be improved, and the physiotherapy effect of the neck physiotherapy device can be enhanced.
[0072] In a feasible embodiment, step B20 further includes steps B21 to B25: Step B21, obtaining the current temperature of the electrode patch and determining a plurality of preset currents; Step B22, respectively determining the heating duration required for the electrode patch to rise from the current temperature to the target temperature according to each preset current; Step B23, for each preset current, calculating the energy consumed when the electrode patch operates for the heating duration at the preset current; Step B24, for each preset current, performing weighted summation on the heating duration and the energy corresponding to the preset current to obtain a heating weight value; Step B25, determining the preset current with the smallest heating weight value among the preset currents as the target preset current.
[0073] It should be noted that the current temperature is the latest temperature of the electrode sheet detected by the temperature detection module. Each preset current can be 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 can be divided between 0 and the maximum current of the electrode sheet according to a preset division unit. Any current in each current interval 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 boundary values of the current interval is 2. The preset division unit can also be set according to the actual situation, and this embodiment does not make specific limitations on this. Energy can reflect the electrical energy consumed by the electrode sheet.
[0074] The heating duration is the duration required to raise the current temperature to the target temperature. Each preset current has its own corresponding heating duration. Different preset currents consume different powers per unit time. Therefore, when raising the current temperature to the target temperature, different preset currents may take different durations, and the energy required to be consumed by the electrode sheet is also different. Therefore, the energy that needs to be consumed when the electrode sheet operates at the preset current for the heating duration can be calculated. For example, the product of the square of the preset current, the internal resistance of the electrode sheet, and the heating duration corresponding to the preset current can be calculated to obtain the consumed energy.
[0075] Each preset current has its own corresponding heating weight value. The heating weight value of each preset current is obtained by weighted summation of the heating duration and the energy consumed when the electrode sheet operates at this preset current for the heating duration.
[0076] The weights corresponding to the heating duration and energy can be set according to the actual situation, and this embodiment does not make specific limitations on this. The weights of the heating durations corresponding to different preset currents are the same, and the weights of the energies corresponding to different preset currents are also the same.
[0077] In this embodiment, if the heating duration is longer and the power consumed is more, the heating weight value is larger; if the heating duration is shorter and the power consumed is less, the heating weight value is smaller. The target preset current is the one with the smallest heating weight value among all preset currents, indicating that if the electrode sheet is controlled to generate heat through the target preset current, a balance can be achieved between the heating duration and the power consumed, that is, the heating duration will not be too long and the power consumed will not be too much. Furthermore, it is convenient to save energy while accelerating the heating speed of the electrode sheet to quickly meet the user's needs. Thus, it is convenient to improve the user experience.
[0078] Exemplarily, obtain the current temperature of the electrode sheet, determine a plurality of preset currents, determine the heating duration required for the electrode sheet to rise from the current temperature to the target temperature when operating at each preset current respectively, and then calculate the power consumed when the electrode sheet operates at each preset current for the heating duration respectively. For each preset current, perform a weighted sum of the heating duration and power corresponding to the preset current to obtain a heating weight value, and determine the preset current with the smallest heating weight value among the preset currents as the target preset current.
[0079] Initially, the electrode sheet rises from the current temperature to the target temperature within the heating duration. In order to prevent the temperature of the electrode sheet from continuously rising, it is necessary to reduce the current of the electrode sheet. Therefore, in this embodiment, when the current of the electrode sheet reaches the target temperature, the current of the electrode sheet is also reduced to lower the temperature of the electrode sheet. And to prevent the temperature of the electrode sheet from continuing to drop, it is necessary to increase the current of the electrode sheet to increase the temperature of the electrode sheet, so as to facilitate ensuring that the temperature of the electrode sheet can be maintained at or near the required temperature. For example, between the target temperature and the reduced temperature, which is convenient for improving the user experience.
[0080] In a feasible embodiment, step B60 further includes steps B61 to B65: Step B61, take the difference between the target temperature and the reduced temperature as the temperature difference, and calculate the product of the temperature difference and the heat capacity of the obtained electrode sheet to obtain the temperature heat capacity; Step B62, obtain the internal resistance of the electrode sheet, and determine the first heating power of the electrode sheet at the target preset current according to the internal resistance and the target preset current; Step B63, determine the second heating power of the electrode sheet at the target reduced current according to the internal resistance and the target reduced current; Step B64, calculate the difference between the first heating power and the second heating power to obtain the power difference; Step B65, take the ratio of the temperature heat capacity to the power difference as the reduction duration.
[0081] It should be noted that the target temperature is greater than the reduced temperature. The first heating power represents the power consumed when the electrode sheet operates at the target preset current, and 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 when the electrode sheet operates at the target reduced current, and 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 specification corresponding to the electrode sheet. In other embodiments, the heat capacity of the electrode sheet can also be determined according to the specific heat capacity of the material of the electrode sheet and the mass of the electrode sheet. For example, calculate the product of the specific heat capacity of the electrode sheet and the mass of the electrode sheet to obtain the heat capacity of the electrode sheet.
[0082] The temperature difference can characterize the heat that the electrode sheet needs to dissipate, the power difference can characterize the reduced heating power of the electrode sheet, which is the difference between the first heating power and the second heating power. The unit of temperature is Kelvin (K), the unit of heat capacity is joule per Kelvin (J / K), 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 gives the temperature heat capacity, and the ratio of the temperature heat capacity to the power difference can obtain the unit of time. Therefore, the reduction duration can be determined based on the ratio of the temperature heat capacity to the power difference.
[0083] 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 based on the internal resistance and the target preset current, the first heating power of the electrode sheet at the target preset current is determined; based on the internal resistance and the target reduced current, the second heating power of the electrode sheet at the target reduced current is determined; the difference between the first heating power and the second heating power is calculated to obtain the power difference; the ratio of the temperature heat capacity to the power difference is used as the reduction duration. Thus, the reduction duration for the electrode sheet to decrease from the target temperature to the reduced temperature is determined, which facilitates reducing the current of the electrode sheet from the target preset current to the target reduced current within the reduction duration, so as to avoid the temperature of the electrode sheet dropping below the reduced temperature due to an overly long current reduction duration, and further facilitate ensuring the user experience. In addition, in this embodiment, the reduction duration is determined by the ratio of the temperature heat capacity to the power difference, which can reduce the complexity of determining the reduction duration while ensuring that the reduction duration is relatively reasonable.
[0084] In a feasible embodiment, the physiotherapy control method of the neck physiotherapy device further includes steps C10 to C20: Step C10, obtain the ambient temperature. When the ambient temperature is less than the preset low temperature threshold, if it is detected that the current time of the neck physiotherapy device reaches the predetermined early start time, then control the electrode sheet to heat to the preset appropriate temperature according to the preset preheating current; Or, step C20, if it is detected that the lamp group of the neck physiotherapy device is turned on and there is no predetermined early start time in the neck physiotherapy device, then control the electrode sheet to heat to the preset appropriate temperature according to the preset maximum current, and when the heating temperature of the electrode sheet reaches the preset appropriate temperature, output a use prompt to prompt the user that the temperature of the neck physiotherapy device reaches the preset appropriate temperature; Wherein, the predetermined early start time is the difference between the preset use time and the preset preheating duration, and the preset preheating duration is the duration required for the electrode sheet to rise from the ambient temperature to the preset appropriate temperature when operating at the preset preheating current.
[0085] It should be noted that the ambient temperature can be the current weather temperature obtained by the neck physiotherapy device, or it can be obtained from the mobile terminal when the neck physiotherapy device communicates with the mobile terminal. This embodiment does not make specific limitations on this. When it is detected that the lamp group is turned on and there is no predetermined early start time in the neck physiotherapy device, it indicates that the user currently needs to use the neck physiotherapy device. Then, the electrode sheet can be controlled to heat to a preset appropriate temperature according to the preset maximum current. The preset appropriate temperature can be set based on the actual situation. The preset appropriate temperature can be a temperature that the user perceives as not being very cold, thereby facilitating the improvement of the user experience. The preset maximum current is the maximum current supported by the electrode sheet.
[0086] The preset low temperature threshold can be set based on the actual situation. This embodiment does not make specific limitations on this. The preset low temperature threshold can be 15°C or the like. This embodiment does not make specific restrictions on this. When the ambient temperature is lower than the preset low temperature threshold, it indicates that the ambient temperature is relatively low. When the user directly wears the neck physiotherapy device, the user may feel cold, thereby affecting the user experience. Therefore, in this embodiment, when the ambient temperature is lower than the preset low temperature threshold and it is detected that the lamp group of the neck physiotherapy device is turned on, the electrode sheet is controlled to heat to the preset appropriate 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 prompt the user that the current neck physiotherapy device is relatively cold and it is recommended to wear it later. When the electrode sheet is heated to the preset appropriate temperature, a usage prompt can also be output to prompt the user that the current temperature of the neck physiotherapy device is appropriate and it is recommended to wear it.
[0087] In other embodiments, the ambient temperature can also be obtained when it is detected that the neck physiotherapy device is powered on. In the case where the ambient temperature is lower than the preset low temperature threshold, if there is no predetermined preset usage time for the neck physiotherapy device, the electrode sheet is directly controlled to heat to the preset appropriate temperature according to the preset maximum current, so that the user can directly use it when the lamp group is turned on later.
[0088] The preset usage time can be the time for making an appointment to use the neck physiotherapy device. The current time is the current time of the clock module inside the neck physiotherapy device. When the current time reaches the predetermined early start time, the electrode sheet can be controlled to heat to the preset appropriate temperature according to the preset preheating current.
[0089] The scheduled start-up time is the difference between the preset usage time and the preset preheating duration. The preset preheating duration is the time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature when operating at the preset preheating current. The preset preheating current can be set according to the actual situation, and this embodiment does not make specific limitations in this regard. For example, the determination method of the preset preheating current can be the same as that of the target preset current. Specifically, according to each preset current, the rising time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature is determined respectively; for each of the preset currents, the energy consumed when the electrode sheet operates at the preset current for the rising time is calculated; for each preset current, the rising time and energy corresponding to the preset current are weighted and summed to obtain a weight value; the preset current with the smallest weight value among the preset currents is determined as the preset preheating current.
[0090] In this embodiment, the required temperature of the user can be specified during the use of the neck physiotherapy device, or can be specified before turning on the lamp group or before turning on the electrode sheet of the neck physiotherapy device, or can be determined when scheduling the preset usage time. This embodiment does not make specific limitations in this regard. When the ambient temperature is less than the preset low temperature threshold, and there is a preset usage time and a required temperature, the target temperature corresponding to the required temperature can be used as the preset suitable temperature to meet the user's needs. At the same time, after the temperature of the electrode sheet reaches the target temperature, step B60 can also be continued to be executed.
[0091] Exemplarily, the ambient temperature is obtained. When the ambient temperature is less than the preset low temperature threshold, if it is detected that the current time of the neck physiotherapy device reaches the scheduled early start-up time, the electrode sheet is controlled to heat to the preset suitable temperature according to the preset preheating current; or, if it is detected that the lamp group of the neck physiotherapy device is turned on and there is no preset usage time in the neck physiotherapy device, the electrode sheet is controlled to heat to the preset suitable temperature according to the 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 physiotherapy device reaches the preset suitable temperature. By preheating the neck physiotherapy device in advance, this embodiment can provide a good user experience for the user.
[0092] This application provides a neck physiotherapy device, and the neck physiotherapy device includes a physiotherapy control device as above; the neck physiotherapy device can also implement the physiotherapy control method in the above embodiment.
[0093] The neck physiotherapy device provided by this application adopts the physiotherapy control method in the above-mentioned embodiment, which can solve the technical problem of low user experience caused by poor physiotherapy effect of the neck physiotherapy device. Compared with the prior art, the beneficial effects of the neck physiotherapy device provided by this application are the same as those of the physiotherapy control method provided by the above-mentioned embodiment, and other technical features in this neck physiotherapy device are the same as those disclosed in the method of the previous embodiment, which will not be elaborated here.
[0094] It should be understood that each part disclosed in this application can be implemented by hardware, software, firmware or a combination thereof. In the description of the above embodiments, specific features, structures, materials or characteristics can be combined in a suitable manner in any one or more embodiments or examples.
[0095] The above is only the specific implementation manner of this application, but the protection scope of this application is not limited thereto. Any person skilled in the art can easily think of changes or substitutions within the technical scope disclosed in this application, and all of them should be covered by the protection scope of this application. Therefore, the protection scope of this application should be subject to the protection scope of the claims.
[0096] This embodiment provides a computer-readable storage medium having computer-readable program instructions stored thereon for executing the physiotherapy control method in the first embodiment above.
[0097] The computer-readable storage medium provided by the embodiments of this application can be, for example, a USB flash drive, but is not limited to electrical, magnetic, optical, electromagnetic, infrared, or semiconductor devices, apparatuses or components, or any combination of the above. More specific examples of the computer-readable storage medium may include, but are not limited to: electrical connections with one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable EPROM (Electrical Programmable Read Only Memory), or flash memory, optical fibers, portable compact disk CD-ROM (compact disk read-only memory), optical storage devices, magnetic storage devices, or any suitable combination of the above. In this embodiment, the computer-readable storage medium can be any tangible medium that contains or stores a program that can be used by or in conjunction with an instruction execution device, apparatus or component. The program code contained on the computer-readable storage medium can be transmitted by any appropriate medium, including but not limited to: wires, optical cables, RF (Radio Frequency), etc., or any suitable combination of the above.
[0098] The above computer-readable storage medium may be included in the neck physiotherapy device; or it may exist separately without being assembled into the neck physiotherapy device.
[0099] The above computer-readable storage medium carries one or more programs. When the above one or more programs are executed by the neck physiotherapy device, the neck physiotherapy device is enabled to: monitor in real time the heating temperature of the electrode plates in the physiotherapy control device; if it is detected that the heating temperature is greater than a preset temperature threshold, reduce the current of the electrode plates; if it is detected that the heating temperature is greater than a preset over-temperature threshold, control the electrode plates to stop heating and turn off the lamp group in the physiotherapy control device.
[0100] Computer program code for performing the operations of the present disclosure may be written in one or more programming languages or combinations thereof. The above programming languages include object-oriented programming languages such as Java, Smalltalk, C++, and also include conventional procedural programming languages such as the "C" language or similar programming languages. The program code may be executed entirely on the user's computer, partially on the user's computer, executed 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 the case of a remote computer, the remote computer may be connected to the user's computer through any type of network, including a LAN (local area network) or a WAN (Wide Area Network), or it may be connected to an external computer (for example, by connecting through an Internet service provider via the Internet).
[0101] The flowcharts and block diagrams in the accompanying drawings illustrate the possible architectures, functions, and operations of the devices, methods, and computer program products according to various embodiments of the present application. In this regard, each block in the flowchart or block diagram may represent a module, a program segment, or a part of code that contains one or more executable instructions for implementing the specified logical function. It should also be noted that in some alternative implementations, the functions marked in the blocks may occur in a different order than that marked in the accompanying drawings. For example, two consecutive blocks shown may actually be executed substantially in parallel, and they may sometimes be executed in the reverse order, depending on the functions involved. It should also be noted that each block in the block diagram and / or flowchart, and the combinations of blocks in the block diagram and / or flowchart, may be implemented by a dedicated hardware-based device for performing the specified functions or operations, or may be implemented by a combination of dedicated hardware and computer instructions.
[0102] The modules involved in the embodiments of the present disclosure can be implemented in software or in hardware. In some cases, the name of the module does not constitute a limitation on the unit itself.
[0103] The computer-readable storage medium provided by the embodiments of the present application stores computer-readable program instructions for executing the above-mentioned physical therapy control method, aiming to solve the technical problem of low user experience caused by poor physical therapy effect of the neck physical therapy device. Compared with the prior art, the beneficial effects of the computer-readable storage medium provided by the embodiments of the present application are the same as those of the physical therapy control method provided by the above embodiments, and will not be elaborated here.
[0104] The embodiments of the present application also provide a computer program product, including a computer program, and when the computer program is executed by a processor, the steps of the physical therapy control method as described above are implemented.
[0105] The computer program product provided by the embodiments of the present application aims to solve the technical problem of low user experience caused by poor physical therapy effect of the neck physical therapy device. Compared with the prior art, the beneficial effects of the computer program product provided by the embodiments of the present application are the same as those of the physical therapy control method provided by the above embodiments, and will not be elaborated here.
[0106] The above are only the 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 by using the specification and drawings of the embodiments of the present application, or directly or indirectly applied in other related technical fields, shall be included in the patent scope of the embodiments of the present application by the same token.
Claims
1. A physiotherapy control device for a neck physiotherapy device, characterized in that: The physiotherapy control device comprises 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; The power source 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 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; Wherein, the preset temperature threshold is less than the preset over-temperature threshold.
2. The physiotherapy control device of the neck physiotherapy equipment according to claim 1, characterized in that: The physiotherapy 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; The device top cover comprises 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 top cover of the device is closed with the outer side of the flexible board to form a cavity, and the inner side of the flexible board is detachably connected with the bottom cover of the device; 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 arranged in the first inner cavity, the electrode sheet, the temperature detection module, the second battery and the top cover battery are arranged 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 arranged 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 comprises 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 light 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 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.
5. The physiotherapy control method of the neck physiotherapy device according to claim 4, characterized in that: The physical therapy control method also includes: 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: The physical therapy control method also includes: Receiving a temperature requirement indication triggered by a user on the touch screen, determining a required temperature from the temperature requirement indication, and taking 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; Obtaining a target preset current, and controlling the electrode sheet to be heated to a target temperature according to the target preset current; The temperature is lowered according to the difference between the required temperature and the preset non-sensing temperature; Determine the ratio of the reduced temperature to the target temperature to obtain a temperature ratio, and perform a square root operation on the temperature ratio to obtain a reduction ratio; 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; 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; 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 a 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 shutdown 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 comprises: Acquiring the current temperature of the electrode sheet and determining a plurality of preset currents; Determining the heating time required for the electrode sheet to increase from the current temperature to the target temperature according to each of the preset currents; For each of the preset currents, calculating the energy consumed by the electrode sheet when it is operated at the preset current for the heating time; For each of the preset currents, weighted summing is performed on the heating duration 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; Acquire the internal resistance of the electrode sheet, and determine the first heating power of the electrode sheet under the target preset current according to 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 taken 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 comprises: 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-up 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; Among them, the predetermined early start time is the difference between the preset use time and the preset preheating time, and the preset preheating time is the time required for the electrode sheet to rise from the ambient temperature to the preset suitable temperature when running at the preset preheating current.
10. A neck physiotherapy device, characterized in that: The neck therapy device comprises a therapy control device as described in any one of claims 1-3.
Citation Information
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