Communication charging dock and electrical stimulation control system

By designing a communication charging base with an integrated power communication module and multiple positions, the problem of the limited number of low-frequency host electrical stimulation schemes was solved, enabling the simultaneous use of multiple electrical stimulation hosts and the output of efficient electrical stimulation schemes.

CN224319085UActive Publication Date: 2026-06-02CHENGDU YISHENG MEDICAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHENGDU YISHENG MEDICAL TECH CO LTD
Filing Date
2025-03-03
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing low-frequency hosts have a limited number of preset electrical stimulation schemes and a limited number of interfaces, which limits the number of target objects. Furthermore, the efficiency of setting electrical stimulation schemes is low, making it difficult to meet the electrical stimulation needs of multiple target objects.

Method used

Design a communication charging base that integrates a power communication module and multiple positions to support the charging and communication of multiple electrostimulation hosts. The host can be controlled to enable the simultaneous use of multiple electrostimulation hosts and output different electrostimulation schemes according to the positions.

Benefits of technology

It improves the output efficiency of electrical stimulation programs, supports the simultaneous use of multiple electrical stimulation hosts, simplifies the setup process of electrical stimulation programs, and enhances the efficiency of electrical stimulation.

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Abstract

This invention provides a communication charging base and an electrostimulation control system, relating to the field of medical devices. The system includes: a base body with a power communication module having a communication interface; and multiple sensor positions placed on the base body, all located on the same side of the base body and arranged in an array. Each sensor position has a contact point, and the contacts of each sensor position are connected in series or parallel and connected to the power communication module. The contact point of each sensor position is used to electrically connect to an electrostimulation host for charging and communication with the electrostimulation host. This invention's communication charging base can accommodate multiple electrostimulation hosts, each of which can communicate with a control host to save the electrostimulation scheme represented by its corresponding sensor position, improving the efficiency of setting electrostimulation schemes for multiple electrostimulation hosts separately.
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Description

Technical Field

[0001] This utility model relates to the field of medical devices, and in particular to a communication charging base and an electrical stimulation control system for an electrical stimulation host. Background Technology

[0002] Electrotherapy refers to the treatment of diseases using different types of electric currents and electromagnetic fields, and it is one of the most commonly used methods in physical therapy. It mainly includes direct current therapy, low-frequency pulse electrotherapy, medium-frequency pulse electrotherapy, high-frequency electrotherapy, and electrostatic therapy.

[0003] Current low-frequency stimulation devices have the following drawbacks in use: The number of preset electrical stimulation programs is limited due to the limited number of interfaces on the device and to avoid clutter from excessive wiring. Generally, only 2-4 programs are preset for electrical stimulation. The number of target subjects that can be stimulated simultaneously is also limited. Furthermore, when the number of target subjects requiring electrical stimulation exceeds the preset programs, additional programs must be added on-site, and setting up these programs takes considerable time. Therefore, when there are many target subjects requiring electrical stimulation, the efficiency of setting up the programs is low, resulting in low overall efficiency of the electrical stimulation. Utility Model Content

[0004] The purpose of this invention is to provide a communication charging base and an electrical stimulation control system that can communicate and charge multiple electrical stimulation hosts. Low-frequency hosts or medium-low frequency hosts can output different electrical stimulation schemes to multiple electrical stimulation hosts through the communication charging base, thereby improving the communication efficiency of multiple electrical stimulation hosts.

[0005] This utility model embodiment provides a communication charging dock, the communication charging dock comprising:

[0006] The base body is equipped with a power communication module with a communication interface;

[0007] Multiple sensor positions are placed on the base body, all of which are located on the same side of the base body and arranged in an array. Each sensor position is provided with a contact that integrates charging and communication. The contacts between each sensor position are connected to the power communication module. The contacts of each sensor position are used to electrically connect to the electrical stimulation host to charge or communicate with the electrical stimulation host.

[0008] Preferably, the power communication module further includes a wireless communication module, and / or the power communication module further includes an expansion interface and / or a charging interface disposed on the base body.

[0009] Preferably, the base body is equipped with a battery and / or a main control module connected to the power communication module.

[0010] Preferably, the machine position is provided with a magnetic positioning structure.

[0011] Preferably, each position on the base body is provided with a receiving groove for placing the electrical stimulation host, and the contact is located at the bottom of the receiving groove.

[0012] Preferably, the inner wall of the receiving groove is provided with a protruding guide structure.

[0013] Preferably, the inner wall of the receiving groove is provided with a magnetic positioning structure.

[0014] Preferably, the cavity of the receiving groove is a trapezoidal cavity, and the bottom of the receiving groove serves as the short bottom side of the trapezoidal cavity; or, the cavity of the receiving groove is an arc-shaped cavity.

[0015] Preferably, the communication charging stand further includes a mounting base, the mounting base having multiple support frames, the support frames being slidably connected to the mounting base, and each support frame having a base body.

[0016] This invention also provides an electrostimulation control system, comprising: multiple electrostimulation hosts, a control host, and a communication charging base as described in any of the above embodiments. The control host is connected to a communication interface on the base body via a data cable for communicating with the electrostimulation hosts placed at the location on the communication charging base. The control host may be a mid-to-low frequency host that outputs mid-frequency and low-frequency stimulation schemes, or a low-frequency host that only outputs low-frequency stimulation schemes; or a host that outputs multi-band stimulation schemes, such as low-frequency, mid-frequency, and high-frequency stimulation schemes. That is, the frequency band corresponding to the stimulation signals generated by the control host of this invention is not limited.

[0017] In summary, the present invention has the following main advantages:

[0018] The communication charging base is equipped with a power communication module, which can be connected to the control host (low-frequency host / medium-low frequency host) via a communication interface. The charging base has multiple positions, each capable of holding an electrostimulation host for communication and charging. Using this charging base as an intermediate base station, communication between the control host and multiple electrostimulation hosts can be achieved. The control host can output different stimulation schemes to the electrostimulation hosts based on different positions, enabling the simultaneous use of more electrostimulation hosts and thus providing simultaneous electrostimulation to more target objects. During communication, simply placing any electrostimulation host in the corresponding position quickly enables the low-frequency or medium-low frequency host to output the corresponding electrostimulation scheme to the electrostimulation host for storage, improving the output efficiency of the electrostimulation scheme. Attached Figure Description

[0019] Figure 1This is a diagram of one embodiment of the communication charging dock of this utility model;

[0020] Figure 2 This is a diagram of one embodiment of the electrical stimulation control system of this utility model;

[0021] Figure 3 This is a diagram of another embodiment of the electrical communication charging base of this utility model;

[0022] Figure 4 This is a diagram of another embodiment of the electrical stimulation control system of this utility model;

[0023] Figure 5 This is a schematic diagram of the electrical stimulation control system of this utility model.

[0024] Figure 6 This is a diagram of one embodiment of the electrical stimulation host of this utility model.

[0025] Reference numerals: 1. Communication charging base; 101. Third main control module; 102. Third power communication module; 2. Electrostimulation host; 201. First main control module; 202. First power communication module; 203. First interaction module; 2031. Magnetic buckle; 2032. Groove; 2041. Second contact; 3. Control host; 301. Second main control module; 302. Second power communication module; 303. Second interaction module; 4. Position; 5. First contact; 10. First wire; 11. Second wire; 12. Communication interface; 13. Communication interface; 14. Expansion interface; 15. Guide structure; 16. Magnetic buckle. Detailed Implementation

[0026] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model. Unless otherwise defined, the technical or scientific terms used herein should have the ordinary meaning understood by those skilled in the art to which this utility model pertains. The terms "comprising" and similar expressions used herein mean that the element or object preceding the word covers the element or object listed following the word and its equivalents, but does not exclude other elements or objects.

[0027] Firstly, please combine Figure 1 and Figure 3 As shown, this utility model embodiment provides a communication charging dock, the communication charging dock 1 includes:

[0028] The base body is equipped with a power communication module with a communication interface 12;

[0029] Multiple charging stations 4 are placed on the base body, all of which are located on the same side of the base body and arranged in an array. Each charging station 4 is provided with a contact that integrates charging and communication (see...). Figure 1 and Figure 3 The first contact 5 in the middle), the first contact 5 between each machine position 4 are connected in series or in parallel and connected to the power communication module. The contact of each machine position is used to electrically connect to the electric stimulation host 2 to charge or communicate with the electric stimulation host 2.

[0030] The communication charging base of this utility model is equipped with a communication interface 12, which can be connected to a control host. In this specification, the control host can be a mid-to-low frequency host that outputs mid-frequency stimulation schemes and low-frequency stimulation schemes, or a low-frequency host that only outputs low-frequency stimulation schemes; or a multi-frequency host that outputs multi-band stimulation schemes, such as low-frequency stimulation schemes, mid-frequency stimulation schemes, and high-frequency stimulation schemes. That is, the frequency band corresponding to the stimulation signals generated by the control host of this utility model is not limited. The communication charging base is provided with multiple positions 4, each position 4 having a first contact 5 for communication and charging. Each first contact is connected to a power communication module. Thus, the communication charging base 1 can serve as an intermediate base station for communication and charging. Each position can hold an electrostimulation host 2. This utility model can realize communication between the control host and multiple electrostimulation hosts 2 through the communication charging base 1. The low-frequency host 3, mid-to-low frequency host, or multi-band host can output stimulation schemes to the electrostimulation host 2 according to the position 4 where each electrostimulation host is located, so as to realize the simultaneous use of more electrostimulation hosts and thus simultaneously electrostimulate more target objects.

[0031] In some specific embodiments, please refer to Figure 1 , Figure 3 and Figure 5 As shown, the communication charging base 1 includes multiple first contacts 5, which are electrically connected to the third power communication module 102 in the communication charging base 1. Electrical connection between each device 4 and the electrical stimulation host 2 is achieved through the first contacts 5. Specifically, see... Figure 6 As shown, the electrostimulation host 2 is provided with a second contact 2041. When the electrostimulation host 2 is placed on the communication charging base 1, the first contact 5 and the second contact 2041 are electrically connected when they come into contact, which can charge the battery in the electrostimulation host 2. In addition, the first contact 5 and the second contact 2041 are electrically connected when they come into contact, which allows the electrostimulation host 2 to establish communication with the control host 3 through the communication charging base 1, so that the control host 3 can output the first electrostimulation scheme to the electrostimulation host 2. That is, in this embodiment, the first contact 5 and the second contact 2041 serve as both a charging port and a communication port.

[0032] In some specific embodiments, please refer to Figure 3 and Figure 4 As shown, the communication charging dock 1 is equipped with a communication interface 12 and an expansion interface 14. Both the communication interface 12 and the expansion interface 14 are connected to the power communication module (see...). Figure 5 The third power supply communication module 102 is connected to the communication interface 12, which can be electrically connected to the first contact 5 in each machine position 4 via the third power supply communication module 102. The communication interface 12 can be connected via a data cable (see... Figure 4 The second wire 11 is electrically connected to the communication interface 13 on the control host 3, and the expansion interface 14 can realize the electrical connection between multiple communication charging docks 1. In this embodiment, the power communication module realizes the function of the communication charging dock 1 through the communication interface 12 and the expansion interface 14, so that it integrates power management and wired communication.

[0033] Specifically, communication interfaces 13 and 12 can be configured as Remer interfaces, and Remer connectors are provided at both ends of the second wire 11. When the Remer connectors are inserted into the Remer interfaces, the control host 3 and the communication charging base 1 are electrically connected.

[0034] In some specific embodiments, the communication charging base 1 is also provided with a charging interface, through which a power adapter is connected to charge the electrostimulation host on the device. Optionally, the power communication module of the communication charging base 1 includes a battery, which can be charged through the charging interface. Optionally, the communication charging base 1 also includes a battery for supplying power to the electrostimulation host 2 when the communication charging base 1 is disconnected from the control host 3. Exemplarily, there is one battery, and this battery is electrically connected to each device 4, so that each electrostimulation host 2 can obtain power from the battery when placed on the device 4. Exemplarily, there can be multiple batteries, and the number of batteries matches the number of device 4, that is, each device 4 is provided with one battery, which ensures that each electrostimulation host 2 can obtain sufficient power.

[0035] In some specific embodiments, the power communication module also includes a wireless communication module, and the communication charging dock can communicate wirelessly with the control host through the wireless communication module.

[0036] For a specific embodiment, please refer to... Figure 4 As shown, there can be multiple communication charging docks 1. One of the communication charging docks 1 is electrically connected to the communication interface 13 on the control host 3 through the second wire 11. Adjacent communication charging docks 1 are electrically connected to each other through the first wire 10. The first end of the first wire 10 is electrically connected to the expansion interface 14 on one of the communication charging docks 1, and the second end of the first wire 10 is electrically connected to the communication interface 12 on the communication charging dock 1 that needs to be expanded, so as to realize the expansion of multiple communication charging docks 1.

[0037] In another specific embodiment, there may be multiple communication charging bases 1, and multiple communication interfaces on the control host. Each communication charging base 1 is connected to the communication interface on the control host through a second wire.

[0038] As a specific embodiment, the communication charging dock also includes a mounting base (not shown). The mounting base is provided with multiple support frames, which are slidably connected to the mounting base. Each support frame is provided with a base body. In this embodiment, the mounting base is provided with multiple support frames, and each layer can hold one communication charging dock described in the above embodiments, which facilitates the interconnection and movement between the communication charging docks.

[0039] In one specific embodiment, each of the four positions on the base body is equipped with a magnetic positioning structure, which corresponds to the magnetic structure on the electrical stimulation host to achieve positioning and fixation of the electrical stimulation host and prevent the host from falling. For details, please refer to... Figure 2 and Figure 4 As shown, each of the machine positions 4 is equipped with two magnetic buckles 16. Figure 6 As shown, the electrical stimulation host 2 is equipped with a magnetic buckle 2031. The two sets of magnetic buckles serve as a magnetic positioning structure to achieve magnetic fixation of the electrical stimulation host 2 at the machine position and facilitate separation.

[0040] In one specific embodiment, please refer to Figure 1 and Figure 3 As shown, each of the four positions on the base body is provided with a receiving groove for placing the electrical stimulation host 2, and the first contact 5 is located at the bottom of the receiving groove. Specifically, the inner wall of the receiving groove is provided with a protruding guide structure 15, see Figure 6 As shown, a groove 2032 can be correspondingly provided on the electrical stimulation host 2. The guide structure 15 and the groove 2032 cooperate to achieve quick alignment and insertion of the electrical stimulation host 2, further ensuring the precise contact of the first contact 5 and the second contact 2041.

[0041] In another embodiment, the cavity of the aforementioned receiving groove is a trapezoidal cavity, and the bottom of the receiving groove serves as the short base of the trapezoidal cavity; or, the cavity of the receiving groove is an arc-shaped cavity. The shape of the cavity of the receiving groove is adapted to the shape of the electrical stimulation host 2, which facilitates the improvement of the positioning stability of the electrical stimulation host 2.

[0042] In one specific embodiment, the base body is equipped with a main control module connected to the power communication module. See [link / reference]. Figure 5As shown, in the communication charging dock 1, the third power communication module 102 is connected to the third main control module 101. The third main control module 101 can be a microcontroller to realize the logic control of the third power communication module 102. The third main control module 101 is electrically connected to the control host 3 through the third power communication module 102, and the third power communication module 102 is electrically connected to the machine position 4. The control host 3 can pre-store the preset electric stimulation scheme in the third main control module 101 in the communication charging dock 1. When the electric stimulation host 2 is placed on the machine position 4, the first main control module 201 in the electric stimulation host 2 reads the electric stimulation scheme stored in the third main control module 101 through the first power communication module 202 and the third power communication module 102, reducing the resources occupied by the electric stimulation scheme stored in the second main control module 301 of the control host 3.

[0043] One embodiment of this utility model also provides an electrostimulation control system, which includes: multiple electrostimulation hosts, a control host, and a communication charging base as described in any of the above embodiments. The control host is connected to a communication interface on the base body via a data cable for communicating with the electrostimulation hosts placed at the location of the communication charging base. See details. Figure 2 , Figure 4 and Figure 5 As shown, the control host 3 connects via a data cable (see...) Figure 4 The second wire 11) is connected to the communication interface 12 of the communication charging base 1. The control host 3 can be used to preset the electrical stimulation scheme and can transmit the preset electrical stimulation scheme to the corresponding electrical stimulation host 2 according to different positions 4 on the communication charging base 1. The electrical stimulation host 2 is used to perform electrical stimulation on the skin of the target object. Whenever any electrical stimulation host 2 is placed on any position 4 of the communication charging base 1, the electrical stimulation host 2 and the control host 3 start communicating so that the electrical stimulation host 2 can obtain and save the electrical stimulation scheme corresponding to the corresponding position 4, and the communication charging base 1 can also charge the electrical stimulation host 2.

[0044] Specifically, corresponding electrical stimulation schemes are set according to different positions 4. Specifically, the electrical stimulation scheme is set in the operation interface of the control host and matched to the corresponding position. Subsequently, the electrical stimulation host 2 only needs to be placed on the corresponding position 4 to obtain the electrical stimulation scheme set in the control host 3. Then, the electrical stimulation host 2 can perform electrical stimulation on the target object according to the corresponding scheme. The electrical stimulation scheme includes parameters such as the set electrical stimulation time, frequency, and pulse width.

[0045] Please combine Figure 5As shown, the electrostimulation host 2 includes a first main control module 201, a first power communication module 202, and a first interaction module 203. The first main control module 201 is electrically connected to the first power communication module 202 and the first interaction module 203. When the electrostimulation host 2 is placed on the device 4, the first power communication module 202 communicates with the control host 3 to obtain the electrostimulation scheme corresponding to the device 4 and stores it in the first main control module 201. Specifically, the first power communication module 202 is connected to the third power communication module 102 on the communication charging base 1, and the third power communication module 102 is connected to the second power communication module 302 in the control host 3, realizing communication between the electrostimulation host 2 and the control host 3. When the electrostimulation host 2 is placed on the device 4, it communicates to obtain the electrostimulation scheme in the control host 3 and stores it in the first main control module 201 in the electrostimulation host 2.

[0046] As a specific embodiment of the electrical stimulation host, the electrical stimulation host 2 also includes a storage battery electrically connected to the first power communication module 202 and used for power supply, which can charge the storage battery when the electrical stimulation host 2 is placed on the communication charging base 1.

[0047] As a specific embodiment of the electrical stimulation host, the electrical stimulation host 2 also includes a stimulation output module for connecting electrode patches to perform electrical stimulation on the target object. The stimulation output module can be a magnetic snap 2031, which is connected to a magnetic snap set on the electrode patch via magnetism. Specifically, when the electrode patch is set to be fixed by magnetic attraction, it is fixed and electrically connected by the magnetism between two sets of magnetic snaps, so that the electrical stimulation host 2 and the electrode patch can directly perform electrical stimulation on the target object.

[0048] As a specific embodiment of the electrical stimulation host, see Figure 5 As shown, the electrical stimulation host 2 may also include a first interactive module 203, used to control the first main control module 201 to send an electrical stimulation signal from the stimulation output module according to the first electrical stimulation scheme. In this embodiment, the first electrical stimulation scheme may be a low-frequency electrical stimulation scheme, a second electrical stimulation scheme, or a high-frequency electrical stimulation scheme. The aforementioned first interactive module 203 may include a display screen for displaying content, an intensity button for controlling intensity, and an on / off button for controlling on and off. The display screen is used to display the electrical stimulation scheme, whether it is in standby mode, battery information, and whether the electrical stimulation scheme has been successfully saved, etc. When the electrical stimulation host 2 performs electrical stimulation, it is electrically connected to the first main control module 201 through the on / off button and the intensity button. The electrical signal generated by pressing the on / off button is transmitted to the first main control module 201 to turn it on or off, and the electrical signal generated by pressing the intensity button is transmitted to the first main control module 201 to adjust the electrical stimulation intensity.

[0049] As one embodiment of the control host, the aforementioned control host 3 can be a mid-to-low frequency host that outputs mid-frequency stimulation schemes and low-frequency stimulation schemes, or a host that outputs multi-band stimulation schemes. The control host is used to set the second electrical stimulation scheme and directly connect electrode patches with wires to perform electrical stimulation on the target object, as well as to set the first electrical stimulation scheme and transmit the first electrical stimulation scheme to the electrical stimulation host 2 through the communication charging base 1. In this embodiment, the second electrical stimulation scheme can have the same stimulation frequency band as the first electrical stimulation scheme, both being low-frequency, mid-frequency, or high-frequency; the second electrical stimulation scheme can have a different stimulation frequency band than the first electrical stimulation scheme, thus making the control host more adaptable.

[0050] As an example, please refer to Figure 5 As shown, the control host may include: a power supply module for providing power; a stimulation output module for directly connecting electrode patches with wires to perform mid-frequency electrical stimulation on the target object; a second interaction module 303 for setting a second electrical stimulation scheme and a first electrical stimulation scheme; a second main control module 301 for storing the second electrical stimulation scheme and the first electrical stimulation scheme, and inputting instructions through the second interaction module 303 to control the second main control module 301, so that the stimulation output module emits an electrical stimulation signal according to the second electrical stimulation scheme; a second power communication module 302 for transmitting the first electrical stimulation scheme in the second main control module 301 to the electrical stimulation host 2; the second main control module 301 is electrically connected to the second interaction module 303, the stimulation output module, and the second power communication module 302, respectively, and the power supply module is electrically connected to the second power communication module 302.

[0051] Specifically, the control host is powered by a power module, and the electrostimulation scheme is set and stored in the second main control module 301 through the second interaction module 303. In a specific implementation, the second interaction module 303 includes a touch screen, a power button, and control buttons. The second main control module 301 may also include a storage unit to store the electrostimulation scheme, which is divided into a second electrostimulation scheme and a first electrostimulation scheme. In one specific embodiment, when performing mid-frequency electrostimulation on the target object, the second main control module 301 forms a second electrostimulation scheme, causing the stimulation output module to emit a corresponding mid-frequency electrical signal, and then electrostimulates the target object through the electrode patch connected to it. The stimulation output module can be a Remer interface, which is directly electrically connected to the electrode patch through a wire. When performing low-frequency electrostimulation on the target object, the second main control module 301 forms a first electrostimulation scheme and stores it in the electrostimulation host 2 through the communication charging base 1. The electrostimulation host 2 is connected to the electrode patch, and the electrostimulation host 2 emits a low-frequency electrical signal to perform low-frequency electrostimulation on the target object through the stored first electrostimulation scheme.

[0052] The above-mentioned stimulation output module includes multiple output ports, which can be low-frequency output ports, medium-frequency output ports, or high-frequency output ports. Each output port is connected to a wire via a connector, and the wire is connected to an electrode patch via any of the following methods: pin-type, magnetic type, or snap-on type.

[0053] As another embodiment of the control host 3, the control host 3 is a low-frequency host that only outputs low-frequency stimulation schemes. Please refer to... Figure 5 As shown, the low-frequency host includes a second main control module 301, a second power communication module 302, and a second interaction module 303. The second main control module 301 is electrically connected to the second power communication module 302 and the second interaction module 303, respectively, and controls the second interaction module 303 to store a preset electrical stimulation scheme in the second main control module 301. When the electrical stimulation host 2 is placed on the machine position 4, the first power communication module 202 and the second power communication module 302 are electrically connected through the communication charging base 1, and the second main control module 301 is electrically connected to the first main control module 201 through the second power communication module 302 and the first power communication module 202, so that the preset electrical stimulation scheme in the second main control module 301 is stored in the first main control module 201.

[0054] Specifically, the second interaction module 303 includes a touch screen. The electrical stimulation scheme corresponding to the position 4 is set on the touch screen of the second interaction module 303 and stored in the second main control module 301. When the electrical stimulation host 2 is placed on the position 4, the electrical stimulation scheme in the second main control module 301 is stored in the first main control module 201 through the second power communication module 302, the position 4 and the first power communication module 202.

[0055] In one specific embodiment, the electrical stimulation control system further includes an electrode patch. The electrode patch is provided with a magnetic snap that cooperates with the magnetic snap 2031 on the electrical stimulation host 2 to attract the target object. Through the electrical connection of the two sets of magnetic snaps, the electrical stimulation host 2 can perform electrical stimulation on the target object through the electrode patch.

[0056] In some specific embodiments, several communication charging docks 1 are provided, and the connected communication charging docks 1 can be electrically connected in series to realize the expansion of the communication charging dock 1.

[0057] In some specific embodiments, the control host 3 and the communication charging dock 1, as well as adjacent communication charging docks 1, are connected by Remo connectors for power supply and communication.

[0058] Although the embodiments of this utility model have been described in detail above, it will be apparent to those skilled in the art that various modifications and variations can be made to these embodiments. However, it should be understood that such modifications and variations fall within the scope and spirit of this utility model as described in the claims. Moreover, the utility model described herein may have other embodiments and can be implemented or realized in various ways.

Claims

1. A communication charging dock, characterized in that, The communication charging dock includes: The base body is equipped with a power communication module with a communication interface; Multiple positions are placed on the base body, all positions are located on the same side of the base body and arranged in an array. Each position is provided with a contact that integrates charging and communication. The contacts between each position are connected to the power communication module. The contacts of each position are used to electrically connect to the electric stimulation host to charge the electric stimulation host or to establish communication between the electric stimulation host and the control host through the power communication module. The power communication module also includes an expansion interface on the base body, which is used to connect the two communication charging docks electrically.

2. The communication charging dock according to claim 1, characterized in that, The power communication module further includes a wireless communication module, and / or the power communication module further includes a charging interface disposed on the base body.

3. The communication charging dock according to claim 1 or claim 2, characterized in that, The base body is equipped with a battery and / or a main control module connected to the power communication module.

4. The communication charging dock according to claim 1, characterized in that, The machine position is equipped with a magnetic positioning structure.

5. The communication charging dock according to claim 1, characterized in that, Each position on the base body is provided with a receiving slot for placing the electrical stimulation host, and the contact is located at the bottom of the receiving slot.

6. The communication charging dock according to claim 5, characterized in that, The inner wall of the receiving groove is provided with a protruding guide structure.

7. The communication charging dock according to claim 5, characterized in that, The inner wall of the receiving groove is provided with a magnetic positioning structure.

8. The communication charging dock according to any one of claims 5 to 7, characterized in that, The cavity of the receiving groove is a trapezoidal cavity, and the bottom of the receiving groove serves as the short bottom side of the trapezoidal cavity; or, the cavity of the receiving groove is an arc-shaped cavity.

9. The communication charging dock according to claim 1, characterized in that, The communication charging stand also includes a mounting base, on which multiple support frames are provided. The support frames are slidably connected to the mounting base, and each support frame is provided with a base body.

10. An electrical stimulation control system, characterized in that, include: The device includes multiple electrostimulation units, a control unit, and a communication charging base as described in any one of claims 1 to 9, wherein the control unit is connected to a communication interface on the base body via a data cable for communicating with the electrostimulation units located at the position of the communication charging base.