Electric pulse massage device
By combining the user's health status and sound waveform information with a deep learning model, the massage electrode circuit is controlled to output a personalized electric pulse waveform signal, solving the problem of low intelligence of existing massage equipment and achieving a more efficient massage effect.
Patent Information
- Application Number
- CN202510559904.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-09-23
AI Technical Summary
Existing massage equipment cannot automatically output appropriate electric pulse signals according to the actual situation of the user, resulting in a low level of intelligence and poor massage effect.
A deep learning model is used to combine the user's health status information and sound waveform information, and the massage controller controls the massage electrode circuit to output personalized electric pulse waveform signals, including grabbing waveforms, lifting waveforms, shaking waveforms, tapping waveforms, pinching waveforms and pulling waveforms, etc., to simulate different massage techniques.
It significantly improves the intelligence level and massage effect of massage equipment, and can independently determine the massage method according to the user's specific situation, thereby improving the personalization and effect of massage.
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Figure CN120679084A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of massage equipment, in particular to an electric pulse massage device. Background Art
[0002] With the rapid development of the application of electronic technology in the field of healthcare, more and more electric pulse-based massage devices have appeared on the market; when using the above-mentioned massage devices, users stick one or more electric pulse output patches on the massage device to the part where the user needs to massage, so that the massage device can output electric pulse signals to the part where the user needs to massage through the electric pulse output patches, so that the electric pulse signals can directly act on the user's skin and be transmitted to the muscle tissue to achieve a massage effect.
[0003] Currently, existing massage devices mostly store one or more electric pulse signal waveforms. When users use the massage device for massage, they can adjust the gear knob on the massage device to make the electric pulse output patch output electric pulse signals of different waveforms to the part that the user needs to massage, thereby simulating different massage methods.
[0004] However, current massage devices can only determine the user's selection of a preset electric pulse signal waveform based on the user's operation of the gear knob, and then output the electric pulse signal selected by the user to massage the user. This makes it impossible for the massage device to automatically output a suitable electric pulse signal to massage the user based on the user's actual situation. As a result, the current massage device has a low level of intelligence and a poor massage effect on the user. Summary of the Invention
[0005] In view of this, the present application provides an electric pulse massage device, the main purpose of which is to solve the technical problem of the low level of intelligence of current massage equipment.
[0006] According to a first aspect of the present invention, there is provided an electric pulse massage device, the device comprising a massage controller and at least one massage electrode circuit, the massage electrode circuit being provided with an electric pulse output patch;
[0007] The massage controller is used to obtain health status information of a target object and sound waveform information of the target object, and input the health status information and the sound waveform information into a pre-trained deep learning model to obtain massage mode information output by the deep learning model, wherein the massage mode information includes an electric pulse waveform signal corresponding to each massage electrode circuit and an electric pulse output time;
[0008] The massage controller is also used to determine the electric pulse waveform signal and the electric pulse output time corresponding to the massage electrode circuit based on the massage mode information, and control the massage electrode circuit to output the electric pulse waveform signal through the electric pulse output patch within the electric pulse output time.
[0009] In an optional embodiment, the training method of the deep learning model includes: obtaining multiple groups of model training data, and sample massage method information corresponding to each group of the model training data, wherein the model training data includes preset health status information and preset sound waveform information; using the model training data as the input parameter of a preset neural network model, and using the sample massage method information corresponding to the model training data as the output parameter of the neural network model, iteratively training the neural network model, and obtaining the deep learning model that can receive health status information and sound waveform information and output massage method information.
[0010] In an optional embodiment, the massage controller includes a control unit, a power control circuit, a high-voltage generating circuit and a battery; the power input end of the power control circuit is connected to the power output end of the battery to obtain the power supply voltage from the battery, the power output end of the power control circuit is connected to the voltage access end of the high-voltage generating circuit, and the control end of the power control circuit is connected to the control end of the control unit; the control unit is used to control the power input end of the power control circuit and the power output end of the power control circuit to be in an on or off state; the power output end of the high-voltage generating circuit is respectively connected to the power access end of each of the massage electrode circuits; the control unit is also used to control the high-voltage generating circuit to boost the power supply voltage to obtain a boosted voltage, so as to power each of the massage electrode circuits based on the boosted voltage.
[0011] In an optional embodiment, the massage electrode circuit includes a first output circuit, a second output circuit, a first switch circuit and a second switch circuit; the electric pulse output patch includes a first output terminal arranged at the first output circuit, and a second output terminal arranged at the second output circuit; the power input terminal of the first output circuit is connected to the power output terminal of the high-voltage generating circuit to obtain the boosted voltage, the first control terminal of the first output circuit is connected to the first terminal of the first switch circuit, the second terminal of the first switch circuit is grounded, the second control terminal of the first output circuit is connected to the first terminal of the second switch circuit, the second terminal of the second switch circuit is grounded; the first control terminal of the control unit is connected to the first switch The control terminal of the control unit is connected to the control terminal of the second switching circuit, the second control terminal of the control unit is connected to the control terminal of the second switching circuit, when the control unit controls the first switching circuit to be turned on and controls the second switching circuit to be turned off, the first output terminal of the first output circuit outputs the boosted voltage; the power input terminal of the second output circuit is connected to the power output terminal of the high-voltage generating circuit to obtain the boosted voltage, the first control terminal of the second output circuit is connected to the first terminal of the second switching circuit, and the second control terminal of the second output circuit is connected to the first terminal of the first switching circuit; when the control unit controls the first switching circuit to be turned on and controls the second switching circuit to be turned on, the second output terminal of the second output circuit outputs the boosted voltage.
[0012] In an optional embodiment, the first output circuit includes a first transistor, a second transistor, a first resistor, a second resistor, and a third resistor; the first switch circuit includes a fourth resistor and a third transistor; the second switch circuit includes a fifth resistor and a fourth transistor; the emitter terminal of the first transistor and the first end of the first resistor are connected to the power output terminal of the high-voltage generating circuit, the collector terminal of the first transistor is connected to the emitter terminal of the second transistor and the first output terminal, and the collector terminal of the second transistor is grounded; the first control terminal of the control unit is connected to the first end of the fourth resistor, and the fourth The second end of the resistor is connected to the base terminal of the third transistor, the emitter terminal of the third transistor is grounded, the collector terminal of the third transistor is connected to the first end of the second resistor, and the second end of the second resistor is respectively connected to the base terminal of the first transistor and the second end of the first resistor; the first end of the third resistor is connected to the base terminal of the second transistor, the second end of the third resistor is connected to the collector terminal of the fourth transistor, the emitter terminal of the fourth transistor is grounded, the base terminal of the fourth transistor is connected to the first end of the fifth resistor, and the second end of the fifth resistor is connected to the second control terminal of the control unit.
[0013] In an optional embodiment, the second output circuit includes a fifth transistor, a sixth transistor, a sixth resistor, a seventh resistor and an eighth resistor; the emitter terminal of the fifth transistor and the first end of the sixth resistor are connected to the power supply output terminal of the high-voltage generating circuit, the collector terminal of the fifth transistor is connected to the second output terminal and the emitter terminal of the sixth transistor, respectively, and the collector terminal of the sixth transistor is grounded; the second end of the sixth resistor is connected to the base terminal of the fifth transistor and the first end of the seventh resistor, respectively, and the second end of the seventh resistor is connected to the collector terminal of the fourth transistor; the base terminal of the sixth transistor is connected to the first end of the eighth resistor, and the second end of the eighth resistor is connected to the collector terminal of the third transistor.
[0014] In an optional embodiment, the high-voltage generating circuit includes a first capacitor, a second capacitor, a third capacitor, a ninth resistor, a tenth resistor, an eleventh resistor, a first inductor, a first Schottky diode, a seventh transistor, and an eighth transistor; the first end of the first capacitor, the first end of the second capacitor, and the first end of the first inductor are connected to the power output end of the power control circuit, and the second end of the first capacitor and the second end of the second capacitor are grounded; the second end of the first inductor is respectively connected to the anode end of the first Schottky diode and the collector end of the seventh transistor, and the emitter end of the seventh transistor is grounded. The base terminal of the seventh transistor is connected to the first end of the ninth resistor, and the second end of the ninth resistor is connected to the third control terminal of the control unit; the cathode terminal of the first Schottky diode is respectively connected to the first end of the third capacitor, the power access terminal of the massage electrode circuit and the first end of the tenth resistor, the second end of the third capacitor is grounded, the second end of the tenth resistor is connected to the collector terminal of the eighth transistor, the emitter terminal of the eighth transistor is grounded, the base terminal of the eighth transistor is connected to the first end of the eleventh resistor, and the second end of the eleventh resistor is connected to the fourth control terminal of the control unit.
[0015] In an optional embodiment, the control end of the control unit includes a first control sub-end and a second control sub-end, and the power control circuit includes a first switch tube, a ninth transistor, a second Schottky diode, a third Schottky diode, a fourth Schottky diode, a fourth capacitor, a twelfth resistor, a thirteenth resistor, a fourteenth resistor and a fifteenth resistor; the power output end of the battery is respectively connected to the first end of the twelfth resistor and the source end of the first switch tube, the drain end of the first switch tube is connected to the anode end of the second Schottky diode, and the cathode end of the second Schottky diode is respectively connected to the voltage access end of the high voltage generating circuit and the first end of the thirteenth resistor; the The second end of the thirteenth resistor is respectively connected to the first end of the fourth capacitor and the first end of the fourteenth resistor, and the second end of the fourth capacitor and the second end of the fourteenth resistor are grounded; the first control sub-end is connected to the anode end of the third Schottky diode, the second control sub-end is connected to the anode end of the fourth Schottky diode, the cathode end of the third Schottky diode and the cathode end of the fourth Schottky diode are connected to the first end of the fifteenth resistor, the second end of the fifteenth resistor is connected to the base end of the ninth transistor, the emitter end of the ninth transistor is grounded, and the collector end of the ninth transistor is respectively connected to the two ends of the twelfth resistor and the gate end of the first switching tube.
[0016] In an optional embodiment, the electric pulse massage device also includes a controller power supply circuit, which includes a first voltage conversion chip, a fifth capacitor and a sixth capacitor; the voltage input end and the enable end of the first voltage conversion chip are connected to an external power supply for accessing the power supply voltage, and the voltage output end of the first voltage conversion chip is connected to the voltage input end of the control unit; the first end of the fifth capacitor is connected to the voltage input end of the first voltage conversion chip, and the second end of the fifth capacitor is grounded; the first end of the sixth capacitor is connected to the voltage output end of the first voltage conversion chip, and the second end of the sixth capacitor is grounded; the first voltage conversion chip is used to convert the power supply voltage into a component power supply voltage of a first preset voltage level, and output the component power supply voltage to the voltage input end of the control unit to power the control unit.
[0017] In an optional embodiment, the electric pulse massage device further includes a wireless communication unit; the wireless communication unit is used to establish a wireless communication connection between the massage controller and a remote host computer.
[0018] The present invention provides an electric pulse massage device. First, the electric pulse output patch on the massage electrode circuit can be set to the part of the user's body that needs to be massaged. Then, the user's health status information and the sound waveform information emitted by the user when speaking can be obtained, and the health status information and sound waveform information are input into a pre-trained deep learning model. The deep learning model outputs massage method information including an electric pulse waveform signal and an electric pulse output time, and controls each massage electrode circuit to output an electric pulse waveform signal within the electric pulse output time based on the massage method information to massage the user. The electric pulse massage device provided by this application can, through an artificial intelligence model, autonomously determine the massage method for the user based on the user's information, significantly improving the intelligence level of the massage equipment and improving the massage effect on the user.
[0019] The above description is only an overview of the technical solution of the present application. In order to more clearly understand the technical means of the present application, it can be implemented in accordance with the contents of the specification. In order to make the above and other purposes, features and advantages of the present application more obvious and easy to understand, the specific implementation methods of the present application are listed below. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The drawings described herein are used to provide a further understanding of the present invention and constitute a part of this application. The exemplary embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation of the present invention. In the drawings:
[0021] Figure 1 FIG1 shows one of the structural schematic diagrams of an electric pulse massage device provided by an embodiment of the present invention;
[0022] Figure 2 A schematic diagram of capturing a waveform signal provided by an embodiment of the present invention is shown;
[0023] Figure 3 A schematic diagram of a waveform signal provided by an embodiment of the present invention is shown;
[0024] Figure 4 A schematic diagram of a jitter waveform signal provided by an embodiment of the present invention is shown;
[0025] Figure 5 A schematic diagram of a tapping waveform signal provided by an embodiment of the present invention is shown;
[0026] Figure 6 A schematic diagram of a pinch waveform signal provided by an embodiment of the present invention is shown;
[0027] Figure 7 A schematic diagram of a pull-out waveform signal provided by an embodiment of the present invention is shown;
[0028] Figure 8The second structural diagram of an electric pulse massage device provided by an embodiment of the present invention is shown;
[0029] Figure 9 It shows one of the structural schematic diagrams of a massage electrode circuit provided by an embodiment of the present invention;
[0030] Figure 10 A second structural diagram of a massage electrode circuit provided by an embodiment of the present invention is shown;
[0031] Figure 11 A schematic structural diagram of a high voltage generating circuit provided by an embodiment of the present invention is shown;
[0032] Figure 12 A schematic structural diagram of a power supply control circuit provided by an embodiment of the present invention is shown;
[0033] Figure 13 A schematic structural diagram of a controller power supply circuit provided by an embodiment of the present invention is shown;
[0034] Figure 14 A schematic structural diagram of a wireless communication unit provided by an embodiment of the present invention is shown;
[0035] Figure 15 A schematic structural diagram of a battery charging circuit provided by an embodiment of the present invention is shown. DETAILED DESCRIPTION
[0036] The present invention will be described in detail below with reference to the accompanying drawings and in combination with embodiments. It should be noted that, unless there is a conflict, the embodiments and features in the embodiments of the present application can be combined with each other.
[0037] Currently, existing massage devices often store one or more electrical pulse signal waveforms. When using the massage device for a massage, the user can adjust the gear knob on the massage device to cause the massage device to output electrical pulse signals of different waveforms to the area the user desires to massage through the electrical pulse output patch on the massage device, thereby simulating different massage methods. However, current massage devices can only determine the user's selection of a preset electrical pulse signal waveform based on the user's operation of the gear knob, and then output the user's selected electrical pulse signal to perform a massage for the user. This means that the massage device cannot automatically output the appropriate electrical pulse signal for the user's massage based on the user's actual situation. This results in a low level of intelligence in current massage devices and a poor massage effect for the user.
[0038] In order to solve the above problems, in one embodiment, Figure 1As shown, an electric pulse massage device is provided, which is described by taking the device used to massage a user as a target object as an example. The device includes a massage controller 100 and at least one massage electrode circuit 200, and the massage electrode circuit 200 is provided with an electric pulse output patch 210; wherein, the massage controller 100 can be a computer device such as a single-chip microcomputer, and can provide working power to the massage electrode circuit 200.
[0039] Specifically, the massage controller 100 is used to obtain the health status information of the target object and the sound waveform information of the target object, and input the health status information and the sound waveform information into a pre-trained deep learning model to obtain the massage method information output by the deep learning model.
[0040] The target subject's health status information may include their blood pressure, weight, age, blood routine, and medical condition information. The user can input this information into a host computer (not shown), allowing the massage controller 100 to obtain this information from the host computer. Furthermore, the target subject can speak to the host computer, which can receive the target subject's voice waveform information via its microphone and transmit the information to the massage controller 100. The voice waveform information includes voice and tone, which can correspond to the Five Elements theory of Traditional Chinese Medicine.
[0041] Furthermore, the massage mode information includes the electric pulse waveform signal and the electric pulse output time corresponding to each massage electrode circuit 200. Here, the electric pulse output time can be the time point and duration of controlling the massage electrode circuit 200 to output the electric pulse waveform signal, which is used to calibrate the massage time for the user.
[0042] Furthermore, the pulse waveform signal is used to act on the target subject's skin and transmit to the muscle tissue to achieve a massage effect. Here, the pulse waveform signal output by the deep learning model can include a grabbing waveform signal, a lifting waveform signal, a shaking waveform signal, a tapping waveform signal, a pinching waveform signal, and a pulling waveform signal. Different pulse waveform signals can simulate different massage techniques.
[0043] Specifically, such as Figure 2 As shown, a grabbing waveform signal cycle can be 5.8 seconds, with an interval of 2.2 seconds between adjacent signal cycles. A grabbing waveform signal cycle can include multiple signal pulse peaks, each of which can be 100 microseconds long, with an interval of 1 millisecond between adjacent signal pulse peaks. When the grabbing waveform signal acts on the user's skin, it can produce a grabbing massage effect.
[0044] Further, such as Figure 3As shown, a lifting waveform signal cycle can be 5.8 seconds, with an interval of 2.2 seconds between adjacent signal cycles. A lifting waveform signal cycle can include multiple signal pulse peaks, each of which can be 100 microseconds long, with an interval of 0.3 milliseconds between adjacent signal pulse peaks. When the lifting waveform signal is applied to the user's skin, it can provide a lifting and massaging effect.
[0045] Further, such as Figure 4 As shown, a jitter waveform signal cycle can be 5.6 seconds, with an interval of 2.2 seconds between adjacent signal cycles. A jitter waveform signal cycle can include multiple signal pulse peaks, each with a duration of 260 microseconds and an interval of 100 milliseconds between adjacent signal pulse peaks. When the jitter waveform signal is applied to the user's skin, it can produce a shaking massage effect.
[0046] Further, such as Figure 5 As shown, the tapping waveform signal can have a continuous waveform and can include multiple signal pulse peaks. The duration of the signal pulse peaks can be 260 microseconds, and the interval between two adjacent signal pulse peaks can be 320 milliseconds. When the tapping waveform signal acts on the user's skin, it can provide a tapping massage effect.
[0047] Further, such as Figure 6 As shown, the pinch waveform signal may have a signal cycle of 6 seconds, with an interval of 2.2 seconds between each adjacent signal cycle. A pinch waveform signal cycle may include multiple signal pulse peaks, each having a duration of 200 microseconds, with an interval of 10 milliseconds between adjacent signal pulse peaks. When the pinch waveform signal is applied to the user's skin, it can produce a pinching and massaging effect.
[0048] Further, such as Figure 7 As shown, the plucking waveform signal may have a signal period of 5.8 seconds, with an interval of 2.2 seconds between each adjacent signal period. A single plucking waveform signal period may include multiple signal pulse peaks, each having a duration of 400 microseconds, with an interval of 5 milliseconds between each signal pulse peak. When the plucking waveform signal is applied to the user's skin, it can produce a plucking massage effect.
[0049] Here, the training method of the deep learning model includes: first, obtaining multiple groups of model training data and sample massage method information corresponding to each group of the model training data, wherein the model training data includes preset health status information and preset sound waveform information, the preset health status information includes blood pressure, weight, age, blood routine and disease information, and the preset sound waveform information includes the waveform of the sound signal. Furthermore, the sample massage method information corresponding to the model training data includes the electric pulse waveform signal and the electric pulse output time corresponding to each massage electrode circuit, which is used to simulate what kind of massage method should be provided to the user when the preset health status information and preset sound waveform information are collected from the user. Then, the model training data is used as the input parameter of the preset neural network model, and the sample massage method information corresponding to the model training data is used as the output parameter of the neural network model. The neural network model is iteratively trained to obtain a deep learning model that can receive health status information and sound waveform information and output massage method information.
[0050] Further, such as Figure 1 As shown, the massage controller 100 is further configured to determine the corresponding electric pulse waveform signal and electric pulse output time of the massage electrode circuit 200 based on the massage mode information, and control the massage electrode circuit 200 to output the electric pulse waveform signal via its electric pulse output patch 210 during the electric pulse output time. Different massage electrode circuits 200 can output different electric pulse waveform signals to simulate different massage techniques and intensities. By setting different electric pulse output times for each massage electrode circuit, the massage electrode circuits located at different acupoints of the user can massage in a timed sequence. This allows multiple massage electrode circuits to simulate different acupoint massage patterns, thereby enhancing the massage effect for the user. The voltage amplitude of the electric pulse waveform signal can be 24V, 20V, or 16V, respectively. 24V corresponds to a high-range massage voltage, 20V corresponds to a mid-range massage voltage, and 16V corresponds to a low-range massage voltage. The user can adjust the massage voltage according to actual needs.
[0051] The electric pulse massage device provided in this embodiment can use an artificial intelligence model to autonomously determine the massage method for the user based on the user's information, which significantly improves the intelligence level of the massage equipment and improves the massage effect on the user.
[0052] In an optional embodiment, if Figure 8As shown, the massage controller includes a control unit 110, a power control circuit 120, a high-voltage generating circuit 130, and a battery 140. The control unit 110 can be a computer device such as a single-chip microcomputer, and the battery 140 can be a lithium battery installed in the massage controller. Furthermore, the control unit 110 can also be connected to each massage electrode circuit 200 to control the massage electrode circuit 200.
[0053] Specifically, the power input end of the power control circuit 120 is connected to the power output end of the battery 140 to obtain the power supply voltage from the battery 140, the power output end of the power control circuit 120 is connected to the voltage access end of the high-voltage generating circuit 130, and the control end of the power control circuit 120 is connected to the control end of the control unit 110.
[0054] Furthermore, the control unit 110 is used to control the power input end of the power control circuit 120 and the power output end of the power control circuit 120 to be in an on or off state. When the power input end of the power control circuit 120 and the power output end of the power control circuit 120 are in an on state, the high-voltage generating circuit 130 can obtain the power voltage provided by the battery 140 through the power control circuit 120. When the power input end of the power control circuit 120 and the power output end of the power control circuit 120 are in a off state, the high-voltage generating circuit 130 cannot obtain the power voltage provided by the battery 140.
[0055] Furthermore, the power output terminal of the high-voltage generating circuit 130 is connected to the power input terminal of each massage electrode circuit 200. Furthermore, the control unit 110 is further configured to control the high-voltage generating circuit 130 to boost the power supply voltage to obtain a boosted voltage, which is then used to power each massage electrode circuit 200. Here, the control unit 110 is further configured to control the high-voltage generating circuit 130 to increase the voltage level of the power supply voltage to obtain a boosted voltage capable of providing a massage effect on the user, thereby enabling the massage electrode circuit 200 to output an electrical pulse waveform signal to the user under the control of the control unit 110.
[0056] The embodiment provided in the present application can obtain electric energy from a battery through a power supply control circuit, and the high-voltage generating circuit can boost the obtained electric energy to obtain a boosted voltage that provides a signal amplitude for an electric pulse waveform signal, and output the electric pulse waveform signal to the user through a massage electrode circuit, thereby ensuring the stability of the amplitude of the electric pulse waveform signal and improving the massage effect of the electric pulse massage device.
[0057] In an optional embodiment, if Figure 9As shown, the massage electrode circuit includes a first output circuit 230, a second output circuit 240, a first switching circuit 250 and a second switching circuit 260; the electric pulse output patch includes a first output terminal OUT1 arranged at the first output circuit 230, and a second output terminal OUT2 arranged at the second output circuit 240.
[0058] Specifically, the power input end of the first output circuit 230 is connected to the power output end of the high-voltage generating circuit 130 to obtain the boosted voltage, the first control end of the first output circuit 230 is connected to the first end of the first switching circuit 250, the second end of the first switching circuit 250 is grounded, the second control end of the first output circuit 230 is connected to the first end of the second switching circuit 260, and the second end of the second switching circuit 260 is grounded.
[0059] Furthermore, a first control terminal of the control unit 110 is connected to a control terminal of the first switch circuit 250, and a second control terminal of the control unit 110 is connected to a control terminal of the second switch circuit 260. When the control unit 110 controls the first and second terminals of the first switch circuit 250 to be conductive and the first and second terminals of the second switch circuit 260 to be disconnected, the first output terminal OUT1 of the first output circuit 230 outputs the boosted voltage. As an example, if the first output terminal OUT1 is required to output a specific electrical pulse waveform signal, when a signal pulse peak of the electrical pulse waveform signal is required to be output, the first and second terminals of the first switch circuit 250 are controlled to be conductive and the first and second terminals of the second switch circuit 260 are controlled to be disconnected, thereby causing the first output terminal OUT1 to output the boosted voltage. When the electrical pulse waveform signal is between adjacent signal pulse peaks, the first and second terminals of the first switch circuit 250 are controlled to be disconnected and the first and second terminals of the second switch circuit 260 are controlled to be conductive, thereby preventing the first output terminal OUT1 from outputting the boosted voltage, thereby achieving the effect of the first output terminal OUT1 outputting the specific electrical pulse waveform signal.
[0060] Furthermore, the power input terminal of the second output circuit 240 is connected to the power output terminal of the high-voltage generating circuit 130 to obtain the boosted voltage. The first control terminal of the second output circuit 240 is connected to the first terminal of the second switch circuit 260, and the second control terminal of the second output circuit 240 is connected to the first terminal of the first switch circuit 250. When the control unit 110 controls the first and second terminals of the first switch circuit 250 to be disconnected and the first and second terminals of the second switch circuit 260 to be connected, the second output terminal OUT2 of the second output circuit 240 outputs the boosted voltage. Here, the method for outputting the electrical pulse waveform signal via the second output terminal OUT2 can refer to the method for outputting the electrical pulse waveform signal via the first output terminal OUT1 described above, and will not be repeated here.
[0061] The embodiment provided in the present application can realize the output of electric pulse waveform signal by controlling whether the first output circuit and the second output circuit output the boost voltage, thereby improving the accuracy of the electric pulse waveform signal output by the electric pulse massage device, and further improving the massage effect of the electric pulse massage device.
[0062] In an optional embodiment, if Figure 10 As shown, the first output circuit includes a first transistor S1, a second transistor S2, a first resistor R1, a second resistor R2 and a third resistor R3; the first switch circuit includes a fourth resistor R4 and a third transistor S3; the second switch circuit includes a fifth resistor R5 and a fourth transistor S4.
[0063] Specifically, the emitter end of the first transistor S1 and the first end of the first resistor R1 are connected to the power output end of the high-voltage generating circuit 130, the collector end of the first transistor S1 is connected to the emitter end of the second transistor S2 and the first output terminal OUT1, and the collector end of the second transistor S2 is grounded.
[0064] Furthermore, the first control end of the control unit 110 is connected to the first end of the fourth resistor R4, the second end of the fourth resistor R4 is connected to the base end of the third transistor S3, the emitter end of the third transistor S3 is grounded, the collector end of the third transistor S3 is connected to the first end of the second resistor R2, and the second end of the second resistor R2 is respectively connected to the base end of the first transistor S1 and the second end of the first resistor R1.
[0065] Furthermore, the first end of the third resistor R3 is connected to the base terminal of the second transistor S2, the second end of the third resistor R3 is connected to the collector terminal of the fourth transistor S4, the emitter terminal of the fourth transistor S4 is grounded, the base terminal of the fourth transistor S4 is connected to the first end of the fifth resistor R5, and the second end of the fifth resistor R5 is connected to the second control terminal of the control unit 110. Here, when the control unit 110 sends a high-level signal to the first end of the fourth resistor R4, the third transistor S3 is turned on, allowing the voltage output by the high-voltage generating circuit 130 to act on the base terminal of the first transistor S1, thereby turning on the first transistor S1. Simultaneously, when the control unit 110 sends a low-level signal to the second end of the fifth resistor R5, the fourth transistor S4 is turned off, preventing the base terminal of the second transistor S2 from receiving voltage, thereby turning off the second transistor S2. At this point, the boosted voltage output by the high-voltage generating circuit 130 can be output to the user's skin via the first output terminal OUT1. Conversely, when the control unit 110 sends a low-level signal to the first end of the fourth resistor R4 and a high-level signal to the second end of the fifth resistor R5, the circuit connection between the first output terminal OUT1 and the high-voltage generating circuit 130 is disconnected, thereby preventing the voltage output by the high-voltage generating circuit 130 from being output to the user's skin through the first output terminal OUT1.
[0066] Furthermore, the second output circuit includes a fifth transistor S5, a sixth transistor S6, a sixth resistor R6, a seventh resistor R7 and an eighth resistor R8.
[0067] Specifically, the emitter end of the fifth transistor S5 and the first end of the sixth resistor R6 are connected to the power output end of the high-voltage generating circuit 130, the collector end of the fifth transistor S5 is respectively connected to the second output terminal OUT2 and the emitter end of the sixth transistor S6, and the collector end of the sixth transistor S6 is grounded.
[0068] Furthermore, the second end of the sixth resistor R6 is connected to the base end of the fifth transistor S5 and the first end of the seventh resistor R7 respectively, and the second end of the seventh resistor R7 is connected to the collector end of the fourth transistor S4.
[0069] Furthermore, the base terminal of the sixth transistor S6 is connected to the first terminal of the eighth resistor R8, and the second terminal of the eighth resistor R8 is connected to the collector terminal of the third transistor S3. Here, when the control unit 110 sends a high-level signal to the second terminal of the fifth resistor R5, the fourth transistor S4 is turned on, allowing the voltage output by the high-voltage generating circuit 130 to act on the base terminal of the fifth transistor S5, thereby turning on the fifth transistor S5. Simultaneously, when the control unit 110 sends a low-level signal to the first terminal of the fourth resistor R4, the third transistor S3 is turned off, preventing the base terminal of the sixth transistor S6 from receiving voltage, thereby turning off the sixth transistor S6. At this point, the boosted voltage output by the high-voltage generating circuit 130 can be delivered to the user's skin via the second output terminal OUT2. Conversely, when the control unit 110 sends a high-level signal to the first end of the fourth resistor R4 and sends a low-level signal to the second end of the fifth resistor R5, the circuit connection between the second output terminal OUT2 and the high-voltage generating circuit 130 is disconnected, thereby preventing the voltage output by the high-voltage generating circuit 130 from being output to the user's skin through the second output terminal OUT2.
[0070] The embodiment provided in the present application enables the control unit to accurately control the massage electrode circuit to output a high voltage signal or a low voltage signal by sending an electrical signal to the first switch circuit and the second switch circuit of each massage electrode circuit, so as to output the electric pulse waveform signal to the user's skin, thereby achieving massage for the user and thereby improving the massage effect on the user.
[0071] In an optional embodiment, if Figure 11 As shown, the high voltage generating circuit includes a first capacitor C1, a second capacitor C2, a third capacitor C3, a ninth resistor R9, a tenth resistor R10, an eleventh resistor R11, a first inductor L1, a first Schottky diode D1, a seventh transistor S7 and an eighth transistor S8.
[0072] Specifically, the first end of the first capacitor C1, the first end of the second capacitor C2, and the first end of the first inductor L1 are connected to the power output terminal of the power control circuit 120, and the second end of the first capacitor C1 and the second end of the second capacitor C2 are grounded. Here, the power control circuit 120 can output the power supply voltage to the high-voltage generating circuit.
[0073] Furthermore, the second end of the first inductor L1 is respectively connected to the anode end of the first Schottky diode D1 and the collector end of the seventh transistor S7, the emitter end of the seventh transistor S7 is grounded, the base end of the seventh transistor S7 is connected to the first end of the ninth resistor R9, and the second end of the ninth resistor R9 is connected to the third control end of the control unit 110.
[0074] Furthermore, the cathode terminal of the first Schottky diode D1 is respectively connected to the first end of the third capacitor C3, the power access terminal of the massage electrode circuit 200 and the first end of the tenth resistor R10, the second end of the third capacitor C3 is grounded, the second end of the tenth resistor R10 is connected to the collector terminal of the eighth transistor S8, the emitter terminal of the eighth transistor S8 is grounded, the base terminal of the eighth transistor S8 is connected to the first end of the eleventh resistor R11, and the second end of the eleventh resistor R11 is connected to the fourth control terminal of the control unit 110.
[0075] Here, the high-voltage generating circuit can constitute a boost chopper circuit. Here, when the control unit 110 controls the seventh transistor S7 to turn on, the input voltage flows through the first inductor L1. Since the power supply control circuit 120 inputs direct current, the current in the first inductor L1 increases linearly at a certain rate, which is related to the size of the first inductor L1. As the inductor current increases, some energy is stored in the first inductor L1. Subsequently, when the control unit 110 controls the seventh transistor S7 to turn off, due to the current retention characteristic of the first inductor L1, the current flowing through the first inductor L1 does not immediately drop to zero. Instead, it slowly drops to zero from the value at the time of complete charging. Simultaneously, the third capacitor C3 is charged, causing the voltage across the third capacitor C3 to increase. At this point, the voltage is already higher than the input voltage, and the voltage boost is complete. Furthermore, the boosted voltage can be output to the massage electrode circuit 200 to implement the functions of the massage electrode circuit 200.
[0076] The embodiment provided in the present application can boost the voltage output by the battery based on the high-voltage generating circuit, ensuring that the electric pulse waveform signal applied to the user's skin through the massage electrode circuit has a sufficient voltage value to ensure the massage effect on the user.
[0077] In an optional embodiment, if Figure 12 As shown, the control end of the control unit 110 includes a first control sub-end and a second control sub-end, and the power control circuit includes a first switch tube Q1, a ninth transistor S9, a second Schottky diode D2, a third Schottky diode D3, a fourth Schottky diode D4, a fourth capacitor C4, a twelfth resistor R12, a thirteenth resistor R13, a fourteenth resistor R14 and a fifteenth resistor R15.
[0078] Specifically, the power output end of the battery 140 is respectively connected to the first end of the twelfth resistor R12 and the source end of the first switch tube Q1, the drain end of the first switch tube Q1 is connected to the anode end of the second Schottky diode D2, and the cathode end of the second Schottky diode D2 is respectively connected to the voltage access end of the high-voltage generating circuit 130 and the first end of the thirteenth resistor R13.
[0079] Furthermore, the second end of the thirteenth resistor R13 is connected to the first end of the fourth capacitor C4 and the first end of the fourteenth resistor R14 respectively, and the second end of the fourth capacitor C4 and the second end of the fourteenth resistor R14 are grounded.
[0080] Furthermore, the first control sub-terminal is connected to the anode terminal of the third Schottky diode D3, the second control sub-terminal is connected to the anode terminal of the fourth Schottky diode D4, the cathode terminal of the third Schottky diode D3 and the cathode terminal of the fourth Schottky diode D4 are connected to the first end of the fifteenth resistor R15, the second end of the fifteenth resistor R15 is connected to the base terminal of the ninth transistor S9, the emitter terminal of the ninth transistor S9 is grounded, and the collector terminal of the ninth transistor S9 is respectively connected to the two ends of the twelfth resistor R12 and the gate terminal of the first switch tube Q1.
[0081] Here, when the control unit 110 outputs a high-level signal through the first control sub-terminal and the second control sub-terminal, the ninth transistor S9 is turned on, thereby allowing the voltage output by the battery 140 to act on the gate terminal of the first switch tube Q1, causing the first switch tube Q1 to turn on, thereby allowing the electric energy output by the battery 140 to be sent to the high-voltage generating circuit 130; conversely, when the control unit 110 stops outputting a high-level signal through the first control sub-terminal and the second control sub-terminal, the ninth transistor S9 is turned off, causing the first switch tube Q1 to be turned off, thereby preventing the electric energy output by the battery 140 from being sent to the high-voltage generating circuit 130. In addition, the electric pulse massage device may also have a power switch SW1 for controlling whether power is supplied to the electric pulse massage device. The technical solution provided in this application can accurately control the power control circuit based on the control unit to send the electric energy output by the battery to the high-voltage generating circuit, or stop supplying power to the high-voltage generating circuit, thereby improving the operability of the electric pulse massage device.
[0082] In an optional embodiment, if Figure 13 As shown, the electric pulse massage device further includes a controller power supply circuit, which includes a first voltage conversion chip U1, a fifth capacitor C5, and a sixth capacitor C6. The first voltage conversion chip U1 can step down the external voltage to provide a suitable power supply voltage for the control unit 110.
[0083] Specifically, the voltage input terminal IN and the enable terminal EN of the first voltage conversion chip U1 are connected to the external power supply VCC for accessing the power supply voltage, and the voltage output terminal OUT of the first voltage conversion chip U1 is connected to the voltage input terminal of the control unit 110.
[0084] Furthermore, the first end of the fifth capacitor C5 is connected to the voltage input terminal IN of the first voltage conversion chip U1, the second end of the fifth capacitor C5 is grounded, the first end of the sixth capacitor C6 is connected to the voltage output terminal OUT of the first voltage conversion chip U1, and the second end of the sixth capacitor C6 is grounded.
[0085] Here, the first voltage conversion chip U1 is used to convert the supply voltage into a component supply voltage of a first preset voltage level, and output the component supply voltage to the voltage input terminal of the control unit 110 to power the control unit 110. The component supply voltage of the first preset voltage level can be 3V. The technical solution provided in this application can provide a suitable supply voltage for the control unit based on an independent voltage conversion chip, thereby improving the power supply stability of the electric pulse massage device.
[0086] In an optional embodiment, if Figure 14 As shown, the electric pulse massage device further includes a wireless communication unit 150, wherein the wireless communication unit 150 can be a Bluetooth communication chip.
[0087] Furthermore, the wireless communication unit 150 is used to establish a wireless communication connection between the massage controller and a remote host computer (not shown in the figure) to receive health status information and sound waveform information input by the user from the host computer. Specifically, the wireless communication unit 150 can be arranged in a communication circuit to be connected to the control unit 110 through the communication circuit. Here, the communication circuit can also include a first circuit resistor R01 and a light-emitting diode LED. According to the technical solution provided by the present application, the electric pulse massage device can establish a wireless communication connection with a remote host computer through the wireless communication unit to remotely receive health status information, sound waveform information and other control information, thereby improving the operational convenience of the electric pulse massage device.
[0088] Furthermore, the electric pulse massage device also includes a battery charging circuit, such as Figure 15 As shown, the battery charging circuit includes a universal serial bus access chip U2, a second voltage conversion chip U3, a second circuit resistor R02, a third circuit resistor R03, a fourth circuit resistor R04, a fifth circuit resistor R05, a first circuit capacitor C01, and a second circuit capacitor C02. The universal serial bus access chip U2 is used to access an external power source (not shown) via a universal serial bus (USB) interface to obtain external power. Furthermore, the second voltage conversion chip U3 can convert the voltage received by the universal serial bus access chip U2 to obtain the power supply voltage required by the components of the electric pulse massage device, and power the battery 140 or the control unit 110.
[0089] The electric pulse massage device provided by the present application can determine the appropriate massage method for the user based on the user's actual situation based on a deep learning model, significantly improving the intelligence level of the massage equipment and improving the massage effect on the user; at the same time, the technical solution of the present application can accurately output electric pulse waveform signals to the user's skin by optimizing the power control circuit, high-voltage generation circuit and massage electrode circuit in the device at the circuit level, thereby improving the massage effect of the electric pulse massage device.
[0090] The serial numbers of the above application are for descriptive purposes only and do not represent the advantages or disadvantages of the implementation scenarios. The above disclosure only discloses several specific implementation scenarios of the present application, but the present application is not limited thereto. Any changes that can be conceived by those skilled in the art should fall within the scope of protection of the present application.
Claims
1. An electric pulse massage device, characterized in that: The device includes a massage controller and at least one massage electrode circuit, wherein the massage electrode circuit is provided with an electric pulse output patch; The massage controller is used to obtain health status information of a target object and sound waveform information of the target object, and input the health status information and the sound waveform information into a pre-trained deep learning model to obtain massage mode information output by the deep learning model, wherein the massage mode information includes an electric pulse waveform signal corresponding to each massage electrode circuit and an electric pulse output time; The massage controller is also used to determine the electric pulse waveform signal and the electric pulse output time corresponding to the massage electrode circuit based on the massage mode information, and control the massage electrode circuit to output the electric pulse waveform signal through the electric pulse output patch within the electric pulse output time.
2. The electric pulse massage device according to claim 1, characterized in that: The training method of the deep learning model includes: Acquire multiple sets of model training data and sample massage method information corresponding to each set of the model training data, wherein the model training data includes preset health status information and preset sound waveform information; The model training data is used as the input parameter of a preset neural network model, and the sample massage method information corresponding to the model training data is used as the output parameter of the neural network model. The neural network model is iteratively trained to obtain the deep learning model that can receive health status information and sound waveform information and output massage method information.
3. The electric pulse massage device according to claim 1, characterized in that: The massage controller includes a control unit, a power control circuit, a high voltage generating circuit and a battery; The power input terminal of the power control circuit is connected to the power output terminal of the battery to obtain the power voltage from the battery, the power output terminal of the power control circuit is connected to the voltage input terminal of the high-voltage generating circuit, and the control terminal of the power control circuit is connected to the control terminal of the control unit; The control unit is used to control the power input terminal of the power control circuit and the power output terminal of the power control circuit to be in an on or off state; The power output terminal of the high voltage generating circuit is respectively connected to the power input terminal of each massage electrode circuit; The control unit is further configured to control the high voltage generating circuit to boost the power supply voltage to obtain a boosted voltage, so as to supply power to each of the massage electrode circuits based on the boosted voltage.
4. The electric pulse massage device according to claim 3, characterized in that: The massage electrode circuit includes a first output circuit, a second output circuit, a first switch circuit, and a second switch circuit; the electric pulse output patch includes a first output terminal provided at the first output circuit, and a second output terminal provided at the second output circuit; The power input terminal of the first output circuit is connected to the power output terminal of the high-voltage generating circuit to obtain the boosted voltage, the first control terminal of the first output circuit is connected to the first terminal of the first switch circuit, the second terminal of the first switch circuit is grounded, and the second control terminal of the first output circuit is connected to the first terminal of the second switch circuit, and the second terminal of the second switch circuit is grounded; The first control terminal of the control unit is connected to the control terminal of the first switch circuit, and the second control terminal of the control unit is connected to the control terminal of the second switch circuit. When the control unit controls the first switch circuit to be turned on and controls the second switch circuit to be turned off, the first output terminal of the first output circuit outputs the boosted voltage; The power input terminal of the second output circuit is connected to the power output terminal of the high-voltage generating circuit to obtain the boosted voltage, the first control terminal of the second output circuit is connected to the first terminal of the second switch circuit, and the second control terminal of the second output circuit is connected to the first terminal of the first switch circuit; When the control unit controls the first switch circuit to be turned off and controls the second switch circuit to be turned on, the second output terminal of the second output circuit outputs the boosted voltage.
5. The electric pulse massage device according to claim 4, characterized in that: The first output circuit includes a first transistor, a second transistor, a first resistor, a second resistor, and a third resistor; the first switch circuit includes a fourth resistor and a third transistor; and the second switch circuit includes a fifth resistor and a fourth transistor. The emitter terminal of the first transistor and the first end of the first resistor are connected to the power output terminal of the high-voltage generating circuit, the collector terminal of the first transistor is connected to the emitter terminal of the second transistor and the first output terminal, and the collector terminal of the second transistor is grounded; The first control terminal of the control unit is connected to the first end of the fourth resistor, the second end of the fourth resistor is connected to the base terminal of the third transistor, the emitter terminal of the third transistor is grounded, the collector terminal of the third transistor is connected to the first end of the second resistor, and the second end of the second resistor is connected to the base terminal of the first transistor and the second end of the first resistor respectively; The first end of the third resistor is connected to the base end of the second transistor, the second end of the third resistor is connected to the collector end of the fourth transistor, the emitter end of the fourth transistor is grounded, the base end of the fourth transistor is connected to the first end of the fifth resistor, and the second end of the fifth resistor is connected to the second control end of the control unit.
6. The electric pulse massage device according to claim 5, characterized in that: The second output circuit includes a fifth transistor, a sixth transistor, a sixth resistor, a seventh resistor and an eighth resistor; The emitter terminal of the fifth transistor and the first end of the sixth resistor are connected to the power output terminal of the high-voltage generating circuit, the collector terminal of the fifth transistor is connected to the second output terminal and the emitter terminal of the sixth transistor respectively, and the collector terminal of the sixth transistor is grounded; The second end of the sixth resistor is connected to the base terminal of the fifth transistor and the first end of the seventh resistor respectively, and the second end of the seventh resistor is connected to the collector terminal of the fourth transistor; The base terminal of the sixth transistor is connected to the first terminal of the eighth resistor, and the second terminal of the eighth resistor is connected to the collector terminal of the third transistor.
7. The electric pulse massage device according to claim 3, characterized in that: The high voltage generating circuit includes a first capacitor, a second capacitor, a third capacitor, a ninth resistor, a tenth resistor, an eleventh resistor, a first inductor, a first Schottky diode, a seventh transistor, and an eighth transistor; The first end of the first capacitor, the first end of the second capacitor, and the first end of the first inductor are connected to the power output terminal of the power control circuit, and the second end of the first capacitor and the second end of the second capacitor are grounded; The second end of the first inductor is connected to the anode end of the first Schottky diode and the collector end of the seventh transistor respectively, the emitter end of the seventh transistor is grounded, the base end of the seventh transistor is connected to the first end of the ninth resistor, and the second end of the ninth resistor is connected to the third control end of the control unit; The cathode terminal of the first Schottky diode is respectively connected to the first end of the third capacitor, the power access terminal of the massage electrode circuit and the first end of the tenth resistor, the second end of the third capacitor is grounded, the second end of the tenth resistor is connected to the collector terminal of the eighth transistor, the emitter terminal of the eighth transistor is grounded, the base terminal of the eighth transistor is connected to the first end of the eleventh resistor, and the second end of the eleventh resistor is connected to the fourth control terminal of the control unit.
8. The electric pulse massage device according to claim 3, characterized in that: The control end of the control unit includes a first control sub-end and a second control sub-end, and the power control circuit includes a first switch tube, a ninth transistor, a second Schottky diode, a third Schottky diode, a fourth Schottky diode, a fourth capacitor, a twelfth resistor, a thirteenth resistor, a fourteenth resistor, and a fifteenth resistor; The power output terminal of the battery is respectively connected to the first terminal of the twelfth resistor and the source terminal of the first switching tube, the drain terminal of the first switching tube is connected to the anode terminal of the second Schottky diode, and the cathode terminal of the second Schottky diode is respectively connected to the voltage input terminal of the high-voltage generating circuit and the first terminal of the thirteenth resistor; The second end of the thirteenth resistor is connected to the first end of the fourth capacitor and the first end of the fourteenth resistor respectively, and the second end of the fourth capacitor and the second end of the fourteenth resistor are grounded; The first control sub-terminal is connected to the anode terminal of the third Schottky diode, the second control sub-terminal is connected to the anode terminal of the fourth Schottky diode, the cathode terminal of the third Schottky diode and the cathode terminal of the fourth Schottky diode are connected to the first end of the fifteenth resistor, the second end of the fifteenth resistor is connected to the base terminal of the ninth transistor, the emitter terminal of the ninth transistor is grounded, and the collector terminal of the ninth transistor is respectively connected to the two ends of the twelfth resistor and the gate terminal of the first switching tube.
9. The electric pulse massage device according to claim 3, characterized in that: The electric pulse massage device further includes a controller power supply circuit, wherein the controller power supply circuit includes a first voltage conversion chip, a fifth capacitor, and a sixth capacitor; The voltage input terminal and the enable terminal of the first voltage conversion chip are connected to an external power supply for receiving a power supply voltage, and the voltage output terminal of the first voltage conversion chip is connected to the voltage input terminal of the control unit; A first end of the fifth capacitor is connected to the voltage input end of the first voltage conversion chip, a second end of the fifth capacitor is grounded, a first end of the sixth capacitor is connected to the voltage output end of the first voltage conversion chip, and a second end of the sixth capacitor is grounded; The first voltage conversion chip is used to convert the power supply voltage into a component power supply voltage of a first preset voltage level, and output the component power supply voltage to the voltage input terminal of the control unit to power the control unit.
10. The electric pulse massage device according to claim 1, characterized in that: The electric pulse massage device further includes a wireless communication unit; The wireless communication unit is used to establish a wireless communication connection between the massage controller and a remote host computer.
Citation Information
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