Heating method and device, massage equipment and computer program product
By intelligently switching between zoned heating layers and single-zone heating layers, the massage device can select the appropriate heating object and area according to the input voltage, solving the problem of unstable heating caused by voltage changes and achieving more efficient and flexible heating control.
Patent Information
- Application Number
- CN202511112018.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2025-10-31
AI Technical Summary
Existing massage devices have unstable heating effects when the voltage changes, making it difficult to adapt to different voltage environments, which leads to problems with heating speed or safety.
By flexibly switching between zoned heating layers and single-zone heating layers, the appropriate heating object and heating area can be selected according to the input voltage, thereby achieving automatic adjustment and intelligent control of heating power.
It improves the flexibility and adaptability of heating effects, ensuring effective heating under different voltage conditions and enhancing the user experience.
Smart Images

Figure CN120881802A_ABST
Abstract
Description
Technical Field
[0001] This application relates to massage equipment technology, and more particularly to a heating method and apparatus, massage equipment, and computer program products. Background Technology
[0002] With the development of the massage market, massage devices have gradually become more widespread. Massage devices typically use heating elements to promote blood circulation and relieve fatigue. During the heating process, the voltage supplied to the massage device may change, thus affecting its heating effect. Summary of the Invention
[0003] This application provides a heating method and apparatus, a massage device, and a computer program product, which enable the heating structure to have a more flexible heating method and thus improve the heating effect.
[0004] The technical solution of this application embodiment is implemented as follows:
[0005] This application provides a heating method, the method comprising:
[0006] Obtain the input voltage transmitted from the power supply terminal;
[0007] Based on the input voltage, the heating object in the heating structure corresponding to the input voltage is controlled to be heated;
[0008] The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
[0009] In some embodiments, the heating object further includes a single-zone heating layer, and controlling the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage includes:
[0010] If the input voltage is within a first voltage range or a second voltage range, and it is determined based on the input voltage that the heating power of the heating structure is greater than a preset power threshold, then the heating of the single-zone heating layer is controlled.
[0011] If the heating power of the heating structure is determined to be less than or equal to the preset power threshold based on the input voltage, then the heating is switched to a portion of the heating area of the partitioned heating layer.
[0012] The voltage in the first voltage range is lower than the voltage in the second voltage range.
[0013] In some embodiments, controlling the heating object in the heating structure corresponding to the input voltage to heat based on the input voltage includes:
[0014] When the input voltage is within the third voltage range, all heating areas of the partitioned heating layer are controlled to be heated.
[0015] The voltage in the second voltage range is lower than the voltage in the third voltage range.
[0016] In some embodiments, at least one of the single-zone heating layers of the heating structure includes a first heating layer and a second heating layer;
[0017] The control of heating the single-zone heating layer includes:
[0018] When the input voltage is within the first voltage range, the first heating layer is controlled to heat up;
[0019] When the input voltage is within the second voltage range, the second heating layer is controlled to heat up.
[0020] In some embodiments, at least one heating region includes a first heating region, a second heating region, and a third heating region;
[0021] The switching to partial heating area heating of the partitioned heating layer includes:
[0022] When the input voltage is within the first voltage range, heating is switched from the first heating layer to the first heating area.
[0023] When the input voltage is within the second voltage range, the heating process switches from heating the second heating layer to heating both the first heating region and the second heating region.
[0024] In some embodiments, heating the object corresponding to the input voltage in the controlled heating structure includes:
[0025] The common positive terminal of the partitioned heating layer is connected to the first negative terminal of the first heating region in the partitioned heating layer, so that the first heating region is heated;
[0026] The common positive terminal of the partitioned heating layer is connected to the second negative terminal of the second heating region in the partitioned heating layer, so that both the first heating region and the second heating region are heated.
[0027] The common positive terminal of the partitioned heating layer is connected to the third negative terminal of the third heating region in the partitioned heating layer, so that the first heating region, the second heating region and the third heating region are all heated.
[0028] In some embodiments, controlling the heating object in the heating structure corresponding to the input voltage to heat based on the input voltage includes:
[0029] Based on the input voltage, determine the target driving circuit corresponding to the input voltage;
[0030] The target driving circuit drives the heating object corresponding to the input voltage in the heating structure to be heated.
[0031] In some embodiments, driving the heating object corresponding to the input voltage through the target driving circuit includes:
[0032] When the target driving circuit is the first driving circuit, the first heating layer of the heating structure is driven to heat or the first heating area of the heating structure is driven to heat.
[0033] When the target driving circuit is a second driving circuit, the second heating layer of the heating structure is driven to heat or the first heating area and the second heating area of the heating structure are driven to heat.
[0034] When the target driving circuit is a third driving circuit, the first heating region, the second heating region, and the third heating region of the heating structure are driven to heat.
[0035] This application provides a heating device, including:
[0036] The acquisition module is used to acquire the input voltage transmitted from the power supply terminal;
[0037] The control module is used to control the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage;
[0038] The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
[0039] This application provides a heating device, including:
[0040] Memory, used to store executable instructions;
[0041] A processor, when executing executable instructions stored in the memory, implements the method provided in the embodiments of this application.
[0042] This application provides a computer-readable storage medium storing a computer program or executable instructions thereon, which, when executed by a processor, implements the method provided in this application.
[0043] This application provides a computer program product, including a computer program or instructions, which, when executed by a processor, implement the method provided in this application.
[0044] The embodiments of this application have the following beneficial effects:
[0045] In this embodiment, the heating object can be either a portion or the entire heating area of the partitioned heating layer, making the heating method of the heating structure more flexible and thus improving the heating effect. Furthermore, this embodiment can automatically select different heating objects based on the input voltage, making heating control more intelligent and improving the user experience. In addition, the heating control of this embodiment can be applied to varying input voltages, thereby expanding the heating scenarios and making the heating control more universal. Attached Figure Description
[0046] Figure 1 This is a flowchart illustrating the heating method provided in the embodiments of this application. Figure 1 .
[0047] Figure 2 This is a schematic diagram of the heating structure provided in the embodiments of this application.
[0048] Figure 3 This is a flowchart illustrating the heating method provided in the embodiments of this application. Figure 2 .
[0049] Figure 4 This is a flowchart illustrating the heating method provided in the embodiments of this application. Figure 3 .
[0050] Figure 5 This is a block diagram of a heating device provided for an embodiment of this application. Detailed Implementation
[0051] To make the objectives, technical solutions, and advantages of this application clearer, the application will be further described in detail below with reference to the accompanying drawings. The described embodiments should not be regarded as limitations on this application. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0052] In the following description, references are made to “some embodiments,” which describe a subset of all possible embodiments. However, it is understood that “some embodiments” may be the same subset or different subsets of all possible embodiments and may be combined with each other without conflict.
[0053] In the following description, the terms "first, second, third" are used merely to distinguish similar objects and do not represent a specific ordering of objects. It is understood that "first, second, third" may be interchanged in a specific order or sequence where permitted, so that the embodiments of this application described herein can be implemented in an order other than that illustrated or described herein.
[0054] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein is for the purpose of describing embodiments of this application only and is not intended to limit this application.
[0055] In related technologies, heating elements are used to convert electrical power into heat, and are considered linear devices. To achieve the same temperature with the same heating area, the same power consumption is required. Therefore, manufacturing heating elements with high voltage will result in slower heating speeds, or even failure to reach the required temperature, when powered by low voltage. Conversely, manufacturing heating elements with low voltage will result in excessive current when powered by high voltage, potentially causing them to malfunction.
[0056] Based on this, this application proposes a heating method that can be applied to a massage device, which may include a lumbar massage pillow. Of course, the massage device can also be used on other parts of the human body, such as the head or shoulders, and this application does not limit this application.
[0057] Figure 1 This is a schematic flowchart of a heating method provided in an embodiment of this application. Figure 1 As shown, the massage device performs this heating method by including the following steps:
[0058] Step 1001: Obtain the input voltage transmitted from the power supply terminal;
[0059] Step 1002: Based on the input voltage, control the heating object in the heating structure corresponding to the input voltage to be heated;
[0060] The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
[0061] In this embodiment, the heating method can be applied to a scenario where a massage device controls a heating structure for heating. For example, the massage device includes a vehicle-mounted massage device, which can be placed on a car seat and electrically connected to a vehicle power supply to provide power. In this case, the vehicle-mounted massage device can obtain the input voltage transmitted from the power supply terminal electrically connected to the vehicle power supply and select the object to be heated corresponding to the input voltage.
[0062] In step 1001, the massage device may include a control circuit and a detection circuit. Acquiring the input voltage transmitted from the power supply terminal may include: obtaining the input voltage by detecting the voltage at the power supply terminal through the detection circuit. Of course, the control circuit may also directly acquire and identify the input voltage transmitted from the power supply terminal without a detection circuit; this embodiment does not limit this approach.
[0063] It should be noted that the input voltage transmitted by the power supply varies depending on the usage scenario of the massage device.
[0064] For example, in a vehicle setting, different car models may have onboard power supplies that can provide 5V, 9V, or 12V. When connecting onboard power supplies with different voltages, different objects can be selected for heating based on the different input voltages obtained, thus adapting to the voltage variations in the vehicle setting.
[0065] For example, in a home setting, a power strip is used; this power strip integrates a communication interface that can provide 5V, 9V, or 12V voltage. When the power supply is connected to a communication interface that provides different voltages, different heating objects can be selected based on the different input voltages obtained, thus adapting to voltage variations in a home setting.
[0066] Of course, for home use, an adapter can also be used, which provides 9V voltage. When heating by electrically connecting the adapter to the power source, the corresponding object to be heated can be selected.
[0067] In step 1002, after obtaining the input voltage, the heating object corresponding to the input voltage can be determined first, and then the heating object can be controlled to perform heating.
[0068] Here, the object to be heated corresponds to a heating voltage. Determining the object to be heated corresponding to the input voltage can include: if the voltage difference between the input voltage and the heating voltage of the object to be heated is less than a preset difference, the object to be heated corresponding to the input voltage can be determined as the object to be heated if the voltage difference is less than the preset difference.
[0069] For example, if the input voltage is 5V and the heating voltage corresponding to the object being heated is also 5V, then the object being heated with a 5V heating voltage can be used as the object being heated corresponding to the input voltage.
[0070] Of course, there can be a first mapping relationship between the input voltage and different heating objects. The heating object corresponding to the input voltage can be found based on the first mapping relationship, and then the found heating object can be controlled to perform heating.
[0071] In this embodiment of the application, the heating structure includes a partitioned heating layer, which is divided into at least two heating regions.
[0072] Here, the object to be heated by the heating structure may include: a partial heating area, or it may include: the entire heating area.
[0073] The heating of the object corresponding to the input voltage in the above-mentioned heating structure based on input voltage control can include: selecting a portion of the heating area for heating based on the input voltage, or selecting the entire heating area for heating based on the input voltage.
[0074] In this embodiment, the heating object further includes a single-zone heating layer. Since at least a portion of the heating voltage is the same in both the single-zone heating layer and the partitioned heating layer, when determining the heating object corresponding to the input voltage, if the determined heating object includes heating areas of both the single-zone heating layer and the partitioned heating layer, then heating can be selected based on the heating power, either by heating the single-zone heating layer or by heating a portion of the heating area.
[0075] For example, such as Figure 2 As shown, at least one single-zone heating layer of the heating structure includes: a first heating layer 101 and a second heating layer 102; the second heating layer 102 is stacked between the first heating layer 101 and the partitioned heating layer 103, and the partitioned heating layer 103 can be divided into a first heating region A, a second heating region B and a third heating voltage C.
[0076] The heating voltage corresponding to the first heating region A is the same as the heating voltage corresponding to the first heating layer 101, which is 5V; the heating voltage corresponding to the second heating region B is the same as the heating voltage corresponding to the second heating layer 102, which is 9V; and the heating voltage corresponding to the third heating region C is 12V.
[0077] Based on an input voltage of 5V, the first heating layer or the first heating area can be controlled to heat; based on an input voltage of 9V, the second heating layer can be controlled to heat, or the first heating area and the second heating area can be controlled to heat; based on an input voltage of 12V, the first heating area, the second heating area, and the third heating area can be controlled to heat.
[0078] In this embodiment of the application, the massage device may include a device body and a heating structure. The heating structure has a partitioned heating layer, which is located close to the heating surface of the device body to reduce energy loss.
[0079] It is understood that in this embodiment, the heating object can be either a portion or the entire heating area of the partitioned heating layer, making the heating method of the heating structure more flexible and thus improving the heating effect. Furthermore, this embodiment can automatically select different heating objects based on the input voltage, making heating control more intelligent and improving the user experience. In addition, the heating control of this embodiment can be applied to varying input voltages, thereby expanding the heating scenarios and making the heating control universally applicable.
[0080] In some embodiments, such as Figure 3 As shown, based on the input voltage, the heating object corresponding to the input voltage in the heating structure is controlled to be heated, that is, step 1002 includes:
[0081] Step 1002A: When the input voltage is within the first voltage range or the second voltage range, if the heating power of the heating structure is determined to be greater than the preset power threshold based on the input voltage, then the heating of the single-zone heating layer is controlled.
[0082] If the heating power of the heating structure is less than or equal to a preset power threshold based on the input voltage, then the heating will be switched to a portion of the heating area of the partitioned heating layer.
[0083] The voltage in the first voltage range is lower than the voltage in the second voltage range.
[0084] In other embodiments, such as Figure 3 As shown, step 1002 may further include:
[0085] Step 1002B: When the input voltage is within the third voltage range, control all heating areas of the partitioned heating layer to be heated; the voltage of the second voltage range is less than the voltage of the third voltage range.
[0086] In this embodiment of the application, after obtaining the input voltage, the voltage range of the input voltage can be determined first. If the input voltage is in the third voltage range, the heating of all heating areas of the partitioned heating layer can be directly controlled. If the input voltage is in the first voltage range or the second voltage range, the heating power can be determined based on the input voltage to determine whether the heating power is greater than the preset power threshold, so as to select single-zone heating or partitioned heating.
[0087] Here, if the heating power is greater than the preset power threshold, it indicates that the heating power of the heating structure is high and can support heating of a single heating layer; if the heating power is less than or equal to the preset power threshold, it indicates that the heating power of the heating structure is low and may not be able to support heating of a single heating layer, requiring switching to partial heating of a partitioned heating layer.
[0088] It should be noted that when the input voltage is within the first voltage range or the second voltage range, the heating object corresponding to the input voltage may include a single-zone heating layer and a partitioned heating layer.
[0089] like Figure 2 As shown, at least one single-zone heating layer of the heating structure includes a first heating layer 101 and a second heating layer 102; in some embodiments, controlling the heating of the single-zone heating layer includes:
[0090] When the input voltage is within the first voltage range, the first heating layer is controlled to heat; when the input voltage is within the second voltage range, the second heating layer is controlled to heat.
[0091] In this embodiment of the present disclosure, the heating voltage of the first heating layer is matched with the input voltage within a first voltage range. Therefore, when the input voltage is within the first voltage range, the first heating layer is selected for heating.
[0092] Furthermore, the heating voltage of the second heating layer matches the input voltage within the second voltage range. Therefore, when the input voltage is within the second voltage range, heating is selected from the second heating layer.
[0093] It is understood that, in the embodiments of this disclosure, a more suitable single-zone heating layer can be selected based on different input voltages and heating powers, which can not only adapt to changes in input voltage but also improve the heating effect.
[0094] like Figure 2 As shown, a portion of the heating area of the partitioned heating layer 103 may include: a first heating area A and a second heating area B; it may also include: the first heating area A. In some embodiments, switching to heating in a portion of the heating area of the partitioned heating layer includes:
[0095] When the input voltage is within the first voltage range, heating is switched from the first heating layer to the first heating area.
[0096] When the input voltage is within the second voltage range, the heating process switches from heating the second heating layer to heating both the first heating region and the second heating region.
[0097] In this embodiment of the disclosure, the heating voltage of the first heating region is matched with the input voltage which is within a first voltage range. Therefore, when the input voltage is within the first voltage range, the first heating region is selected for heating.
[0098] Furthermore, the heating voltage of the second heating region matches the input voltage within the second voltage range. Therefore, when the input voltage is within the second voltage range, both the first and second heating regions are selected for heating.
[0099] It is understood that, in the embodiments of this disclosure, a more suitable heating area can be selected for heating based on different input voltages and heating power, which can not only adapt to changes in input voltage but also improve the heating effect.
[0100] In this embodiment of the application, when the input voltage is within the third voltage range, the heating object corresponding to the input voltage may include all heating areas of the partitioned heating layer, i.e., Figure 2The first heating region A, the second heating region B, and the third heating region C are shown.
[0101] In this embodiment, a first voltage range, a second voltage range, and a third voltage range can be set according to the voltage provided by the plugged-in power supply.
[0102] For example, if the voltage provided by the plugged-in power supply includes 5V, 9V and 12V, then the first voltage range can be determined based on the 5V voltage provided by the plugged-in power supply, so that 5V is within the first voltage range.
[0103] Similarly, a second voltage range is determined based on the 9V voltage provided by the plugged-in power supply, ensuring that the 9V falls within the second voltage range. And a third voltage range is determined based on the 12V voltage provided by the plugged-in power supply, ensuring that the 12V falls within the third voltage range.
[0104] It is understood that, in the embodiments of this application, different heating objects of the heating structure can be controlled to be heated by judging that the input voltage is in different voltage ranges, which makes the heating method more flexible.
[0105] In this embodiment of the application, a sudden drop in input voltage may cause the provided heating power to be insufficient to support the heating of the current object. Therefore, the change in input voltage can be detected to determine whether the heating power is greater than a preset power threshold, and then the heating object can be switched.
[0106] Here, if the detected change in input voltage is within a preset change range, it is determined that the heating power is greater than the preset power threshold, and thus the heating of the single-zone heating layer can be controlled.
[0107] If the change in input voltage is outside the preset change range, the heating power is determined to be less than or equal to the preset power threshold, and then the heating can be switched to a part of the heating area of the partitioned heating layer.
[0108] It should be noted that the preset variation range can be set based on the voltage range of the input voltage. When the input voltage is within a first voltage range, a first variation range can be set based on the voltage within that first voltage range. When the input voltage is within a second voltage range, a second variation range can be set based on the voltage within that second voltage range.
[0109] For example, when the input voltage is within the first voltage range,
[0110] If the detected change in input voltage is outside the first change range, it can be determined that the heating power is less than or equal to a preset power threshold, and thus heating can be selected for a portion of the zoned heating layer. If the detected change in input voltage is within the first change range, it can be determined that the heating power is greater than the preset power threshold, and thus heating of the single-zone heating layer can continue.
[0111] For example, when the input voltage is within the second voltage range,
[0112] If the detected change in input voltage is outside the second change range, it can be determined that the heating power is less than or equal to a preset power threshold, and thus heating can be selected for a portion of the zoned heating layer. If the detected change in input voltage is within the second change range, it can be determined that the heating power is greater than the preset power threshold, and thus heating of the single-zone heating layer can continue.
[0113] In this embodiment, the input voltage may be lowered after prolonged heating, which may result in the heating power not being able to better support the heating of the current object. Therefore, this embodiment can also detect the heating time to determine whether the heating power is greater than the preset power threshold, and then select whether to switch the heating object.
[0114] Here, if the heating time is detected to be within the preset time range, it is determined that the heating power is greater than the preset power threshold, and thus the heating of the single-zone heating layer can be controlled.
[0115] If the heating time is detected to be outside the preset time range, the heating power is determined to be less than or equal to the preset power threshold, and then the heating can be switched to a part of the heating area of the partitioned heating layer.
[0116] It should be noted that the preset duration range can be set based on the voltage range of the input voltage. When the input voltage is within a first voltage range, a first duration range can be set based on the voltage within that first voltage range. When the input voltage is within a second voltage range, a second duration range can be set based on the voltage within that second voltage range.
[0117] For example, when the input voltage is within the first voltage range,
[0118] If the heating duration is detected to be outside the first duration range, it can be determined that the heating power is less than or equal to a preset power threshold, and thus heating can be selected for a portion of the zoned heating layer. If the input voltage change is detected to be within the first duration range, it can be determined that the heating power is greater than the preset power threshold, and thus heating of the single-zone heating layer can continue.
[0119] For example, when the input voltage is within the second voltage range,
[0120] If the heating duration is detected to be outside the second duration range, it can be determined that the heating power is less than or equal to a preset power threshold, and thus heating can be selected for a portion of the zoned heating layer. If the input voltage change is detected to be within the second duration range, it can be determined that the heating power is greater than the preset power threshold, and thus heating of the single-zone heating layer can continue.
[0121] It should be noted that the massage device can be set with a timer and a flag. The timer can be used to record the heating duration, and the flag can be used for status monitoring to monitor whether the heating power changes from being greater than the preset power threshold to being less than or equal to the preset power threshold after a long period of heating.
[0122] Here, after prolonged heating, the input voltage is pulled low, eventually causing the flag bit to reset. Therefore, in this embodiment, the heating duration can be skipped, and the determination of whether the heating power exceeds a preset power threshold can be made directly by detecting the flag bit.
[0123] For example, when the flag is detected to be reset, it is determined that the heating power is less than or equal to the preset power threshold, and then the heating is switched to a part of the heating area of the partitioned heating layer; when the flag is detected not to be reset, it is determined that the heating power is greater than the preset power threshold, and then the heating of the single-zone heating layer continues to be controlled.
[0124] In this embodiment, besides determining whether the heating power is greater than the preset power threshold solely based on the detected change in input voltage or the heating duration, it is also possible to determine whether the heating power is greater than the preset power threshold simultaneously based on both the change in input voltage and the heating duration. For example, if the change in input voltage is within a preset range and the heating duration is within a preset range, then the heating power can be determined to be greater than the preset power threshold; otherwise, the heating power is determined to be less than or equal to the preset power threshold.
[0125] It is understood that, in the embodiments of this application, considering the impact of heating power on heating during the heating process, it is proposed to determine whether it is necessary to switch from single-zone heating to partitioned heating based on whether the heating power is greater than a preset power threshold. In this way, heating can not only be more flexible, but also the heating effect can be improved.
[0126] In some embodiments, heating the object corresponding to the input voltage in the controlled heating structure includes:
[0127] The common positive terminal of the partitioned heating layer is connected to the first negative terminal of the first heating region in the partitioned heating layer, so that the first heating region is heated;
[0128] The common positive terminal of the partitioned heating layer is connected to the second negative terminal of the second heating region in the partitioned heating layer, so that both the first heating region and the second heating region are heated.
[0129] The common positive terminal of the partitioned heating layer is connected to the third negative terminal of the third heating region in the partitioned heating layer, so that the first heating region, the second heating region and the third heating region are all heated.
[0130] In the embodiments of this application, such as Figure 2 As shown, the common positive terminal C+ and the first negative terminal C1- of the first heating region A can be connected to form a first power supply circuit. Based on the power supply voltage provided by the first power supply circuit, the first heating region A can be heated.
[0131] It is understood that, in the embodiments of this application, heating of the first heating area can be achieved by controlling the connection between the common positive terminal and the first negative terminal.
[0132] In the embodiments of this application, such as Figure 2 As shown, a second power supply circuit can be formed when the common positive terminal C+ is connected to the second negative terminal C2- of the second heating region B. Based on the power supply voltage provided by the second power supply circuit, the first heating region A and the second heating region B can be heated.
[0133] It is understood that, in the embodiments of this application, by controlling the connection between the common positive terminal and the second negative terminal, the first heating area and the second heating area can be heated.
[0134] In the embodiments of this application, such as Figure 2 As shown, the common positive terminal C+ and the third negative terminal C3- of the third heating region C can be connected to form a third power supply circuit. Based on the power supply voltage provided by the third power supply circuit, the first heating region A, the second heating region B and the third heating region C can be heated.
[0135] It is understood that, in the embodiments of this application, by controlling the connection between the common positive terminal and the third negative terminal, the first heating region, the second heating region, and the third heating region can be heated.
[0136] In some embodiments, such as Figure 4 As shown, based on the input voltage, the heating object in the heating structure that matches the input voltage is heated, i.e., step 1002 includes:
[0137] Step 1002C: Based on the input voltage, determine the target driving circuit corresponding to the input voltage;
[0138] Step 1002D: Drive the heating object in the heating structure corresponding to the input voltage through the target driving circuit.
[0139] In this embodiment, the control circuit is electrically connected to multiple drive circuits, and different drive circuits can provide different heating voltages. Here, the target drive circuit can be any one of the multiple drive circuits.
[0140] It should be noted that there is a second mapping relationship between the input voltage and the driving circuit, and the target driving circuit corresponding to the input voltage can be found through the second mapping relationship.
[0141] It is understood that in the embodiments of this application, the target driving circuit drives the heating object corresponding to the input voltage to heat, which enables the driving circuit to provide heating voltage to the heating object in a better way.
[0142] In some embodiments, a target driving circuit drives a heating object that matches the input voltage to perform heating, including:
[0143] When the target driving circuit is a first voltage driving circuit, the first heating layer of the driving heating structure is heated or the first heating area of the driving heating structure is heated.
[0144] When the target driving circuit is a second voltage driving circuit, the second heating layer of the driving heating structure is heated or the first heating area and the second heating area of the driving heating structure are heated.
[0145] When the target driving circuit is a third voltage driving circuit, the first heating region, the second heating region, and the third heating region of the heating structure are driven to heat.
[0146] In this embodiment, the multiple drive circuits electrically connected to the control circuit include a first drive circuit, a second drive circuit, and a third drive circuit. The first drive circuit is electrically connected to the first heating layer and the first heating region; the second drive circuit is electrically connected to the second heating layer and the second heating region; and the third drive circuit is electrically connected to the third heating region.
[0147] Here, the heating voltage provided by the first driving circuit can be used to heat the first heating layer or the first heating area; the heating voltage provided by the second driving circuit can be used to heat the second heating layer, as well as the first and second heating areas; the heating voltage provided by the third driving circuit can be used to heat the first, second, and third heating areas.
[0148] In this embodiment of the application, heating the first heating layer of the driving heating structure or heating the first heating area of the driving heating structure includes:
[0149] If the input voltage is within the first voltage range, and the heating power of the heating structure is determined to be greater than the preset power threshold based on the input voltage, then the first driving circuit is used to drive the first heating layer to heat.
[0150] If the input voltage is within the first voltage range, and the heating power of the heating structure is determined to be less than or equal to a preset power threshold based on the input voltage, then the first driving circuit is used to drive the first heating area to be heated.
[0151] In this embodiment of the application, driving the second heating layer of the heating structure to heat or driving the first heating region and the second heating region of the heating structure to heat includes:
[0152] If the input voltage is within the second voltage range, and the heating power of the heating structure is determined to be greater than the preset power threshold based on the input voltage, then the second driving circuit is used to drive the second heating layer to heat.
[0153] If the input voltage is within the second voltage range, and the heating power of the heating structure is determined to be less than or equal to a preset power threshold based on the input voltage, then the first heating area and the second heating area are heated by the second driving circuit.
[0154] This application also proposes a heating device. For example... Figure 5 As shown, the heating device 500 includes:
[0155] The acquisition module 501 is used to acquire the input voltage transmitted from the power supply terminal;
[0156] Control module 502 is used to control the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage;
[0157] The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
[0158] In some embodiments, the control module includes:
[0159] The first sub-control module is used to control the heating of the single-zone heating layer if the heating power of the heating structure is determined to be greater than a preset power threshold based on the input voltage when the input voltage is within a first voltage range or a second voltage range.
[0160] If the heating power of the heating structure is determined to be less than or equal to the preset power threshold based on the input voltage, then the heating is switched to a portion of the heating area of the partitioned heating layer.
[0161] The voltage in the first voltage range is lower than the voltage in the second voltage range.
[0162] In some embodiments, the control module includes: a second sub-control module, configured to control the heating of all heating areas of the partitioned heating layer when the input voltage is within a third voltage range;
[0163] The voltage in the second voltage range is lower than the voltage in the third voltage range.
[0164] In some embodiments, the first sub-control module is further configured to control the heating of the first heating layer when the input voltage is within the first voltage range, and to control the heating of the second heating layer when the input voltage is within the second voltage range.
[0165] In some embodiments, the second sub-control module is further configured to switch from heating the first heating layer to heating the first heating region when the input voltage is within the first voltage range; and to switch from heating the second heating layer to heating both the first heating region and the second heating region when the input voltage is within the second voltage range.
[0166] In some embodiments, the control module is further configured to: control the common positive terminal of the partitioned heating layer to connect with the first negative terminal of the first heating region in the partitioned heating layer, so that the first heating region is heated; control the common positive terminal of the partitioned heating layer to connect with the second negative terminal of the second heating region in the partitioned heating layer, so that both the first heating region and the second heating region are heated; and control the common positive terminal of the partitioned heating layer to connect with the third negative terminal of the third heating region in the partitioned heating layer, so that the first heating region, the second heating region, and the third heating region are all heated.
[0167] In some embodiments, the control module includes:
[0168] A drive determination module is used to determine a target drive circuit corresponding to the input voltage based on the input voltage.
[0169] The driving heating module is used to drive the heating object corresponding to the input voltage to heat through the target driving circuit.
[0170] In some embodiments, the driving heating module is further configured to drive the first heating layer of the heating structure to heat or drive the first heating area of the heating structure to heat when the target driving circuit is a first driving circuit;
[0171] When the target driving circuit is a second driving circuit, the second heating layer of the heating structure is driven to heat or the first heating area and the second heating area of the heating structure are driven to heat.
[0172] When the target driving circuit is a third driving circuit, the first heating region, the second heating region, and the third heating region of the heating structure are driven to heat.
[0173] Regarding the apparatus in the above embodiments, the specific manner in which each module performs its operation has been described in detail in the embodiments related to the method, and will not be elaborated upon here.
[0174] This application provides a computer program product comprising a computer program or executable instructions stored in a computer-readable storage medium. A processor of a computer device reads the computer program or executable instructions from the computer-readable storage medium and executes the computer program or executable instructions, causing the computer device to perform the heating method described in this application embodiment.
[0175] This application provides a computer-readable storage medium storing a computer program or executable instructions. When the computer program or executable instructions are executed by a processor, the processor will execute the heating method provided in this application, for example... Figure 1 The heating method shown includes:
[0176] Obtain the input voltage transmitted from the power supply terminal;
[0177] Based on the input voltage, the heating object in the heating structure corresponding to the input voltage is controlled to be heated;
[0178] The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
[0179] In some embodiments, the computer-readable storage medium may be a memory such as FRAM, ROM, PROM, EP ROM, EEPROM, flash memory, magnetic surface memory, optical disk, or CD-ROM; or it may be a variety of devices including one or any combination of the above-mentioned memories.
[0180] In some embodiments, executable instructions may take the form of a program, software, software module, script, or code, written in any form of programming language (including compiled or interpreted languages, or declarative or procedural languages), and may be deployed in any form, including as a standalone program or as a module, component, subroutine, or other unit suitable for use in a computing environment.
[0181] As an example, executable instructions may, but do not necessarily, correspond to files in a file system. They may be stored as part of a file that holds other programs or data, for example, in one or more scripts in a Hyper Text Markup Language (HTML) document, in a single file dedicated to the program in question, or in multiple collaborating files (e.g., a file that stores one or more modules, subroutines, or code sections).
[0182] As an example, executable instructions can be deployed to execute on a single computing device, or on multiple computing devices located in one location, or on multiple computing devices distributed across multiple locations and interconnected via a communication network.
[0183] The above description is merely an embodiment of this application and is not intended to limit the scope of protection of this application. Any modifications, equivalent substitutions, and improvements made within the spirit and scope of this application are included within the scope of protection of this application.
Claims
1. A heating method, characterized in that, The method includes: Obtain the input voltage transmitted from the power supply terminal; Based on the input voltage, the heating object in the heating structure corresponding to the input voltage is controlled to be heated; The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
2. The method according to claim 1, characterized in that, The heating object further includes a single-zone heating layer. The step of controlling the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage includes: If the input voltage is within a first voltage range or a second voltage range, and it is determined based on the input voltage that the heating power of the heating structure is greater than a preset power threshold, then the heating of the single-zone heating layer is controlled. If the heating power of the heating structure is determined to be less than or equal to the preset power threshold based on the input voltage, then the heating is switched to a portion of the heating area of the partitioned heating layer. The voltage in the first voltage range is lower than the voltage in the second voltage range.
3. The method according to claim 2, characterized in that, The step of controlling the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage includes: When the input voltage is within the third voltage range, all heating areas of the partitioned heating layer are controlled to be heated. The voltage in the second voltage range is lower than the voltage in the third voltage range.
4. The method according to claim 2, characterized in that, At least one of the single-zone heating layers of the heating structure includes a first heating layer and a second heating layer; The control of heating the single-zone heating layer includes: When the input voltage is within the first voltage range, the first heating layer is controlled to heat up; When the input voltage is within the second voltage range, the second heating layer is controlled to heat up.
5. The method according to claim 4, characterized in that, At least one heating zone includes a first heating zone, a second heating zone, and a third heating zone; The switching to partial heating area heating of the partitioned heating layer includes: When the input voltage is within the first voltage range, heating is switched from the first heating layer to the first heating area. When the input voltage is within the second voltage range, the heating process switches from heating the second heating layer to heating both the first heating region and the second heating region.
6. The method according to any one of claims 1 to 5, characterized in that, The heating object corresponding to the input voltage in the controlled heating structure is heated, including: The common positive terminal of the partitioned heating layer is connected to the first negative terminal of the first heating region in the partitioned heating layer, so that the first heating region is heated; The common positive terminal of the partitioned heating layer is connected to the second negative terminal of the second heating region in the partitioned heating layer, so that both the first heating region and the second heating region are heated. The common positive terminal of the partitioned heating layer is connected to the third negative terminal of the third heating region in the partitioned heating layer, so that the first heating region, the second heating region and the third heating region are all heated.
7. The method according to any one of claims 1 to 5, characterized in that, The step of controlling the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage includes: Based on the input voltage, determine the target driving circuit corresponding to the input voltage; The target driving circuit drives the heating object corresponding to the input voltage in the heating structure to be heated.
8. The method according to claim 7, characterized in that, The step of driving the heating object corresponding to the input voltage through the target driving circuit includes: When the target driving circuit is the first driving circuit, the first heating layer of the heating structure is driven to heat or the first heating area of the heating structure is driven to heat. When the target driving circuit is the second driving circuit, the second heating layer of the heating structure is driven to heat or both the first heating area and the second heating area of the heating structure are driven to heat. When the target driving circuit is a third driving circuit, the first heating region, the second heating region, and the third heating region of the heating structure are all heated.
9. A heating device, characterized in that, The device includes: The acquisition module is used to acquire the input voltage transmitted from the power supply terminal; The control module is used to control the heating object in the heating structure corresponding to the input voltage to heat up based on the input voltage; The object to be heated includes at least one heating region of the partitioned heating layer in the heating structure.
10. A massage device, characterized in that, The massage device includes: Memory, used to store executable instructions or computer programs; A processor, when executing executable instructions stored in the memory, implements the method according to any one of claims 1 to 8.
11. A computer program product, comprising a computer program or instructions, characterized in that, When the computer program or the instructions are executed by the processor, they implement the method according to any one of claims 1 to 8.
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