Intelligent plate adaptation system
By installing a slot on the base plate of the desktop electro-ultrasound therapy device to install a pluggable function board, and using the MCU to communicate with the slot interface, flexible adaptation between the function board and the base plate is achieved, solving the problems of system complexity and high cost, improving the practicality of the product and reducing costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-16
- Publication Date
- 2026-03-06
AI Technical Summary
Desktop electro-ultrasound therapy equipment systems are complex and costly, making it difficult to flexibly adapt different functional modules.
Design an intelligent board adaptation system that installs pluggable function boards by setting slots on the base plate, and uses an MCU to communicate with the slot interface, supporting SPIx communication mode, to achieve flexible plugging and unplugging and identification of function boards and base plates.
This improved the product's usability and confidentiality, reduced costs, and solved the compatibility issues between different functional boards and desktop electro-ultrasound therapy equipment.
Smart Images

Figure CN223969374U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of medical equipment, and in particular to an intelligent module adaptation system. Background Technology
[0002] Common desktop electro-ultrasound therapy devices can simultaneously perform multiple treatment methods such as ultrasound and electrical stimulation, and can be adapted to different functional modules according to different product needs. However, in order to achieve these multi-channel and multi-functional features, the system of desktop electro-ultrasound therapy devices is relatively complex and the cost is also relatively high. Utility Model Content
[0003] To address the aforementioned issues, this invention provides an intelligent board adaptation system. By installing various flexibly pluggable functional boards in slots on the base plate, it solves the compatibility problem between different functional boards and desktop electro-ultrasound therapy equipment, improving product usability, increasing product confidentiality, and reducing costs.
[0004] According to one aspect of this utility model, an intelligent board adaptation system is provided, including a host computer and a base plate that are communicatively connected to each other. The base plate is provided with multiple slots, and multiple function boards are detachably mounted on each slot. Each function board has a code. Each function board includes an MCU, a slot interface, an identification circuit, a stimulation circuit, and an electrode interface. The MCU is communicatively connected to the slot interface, the slot interface is connected to the slot, the MCU is connected to the identification circuit, and the MCU is connected to the electrode interface through the stimulation circuit. The electrode interface is used to connect electrodes.
[0005] In some embodiments, each of the functional boards communicates with the baseboard using SPIx communication. The advantage of this is that it describes the specific communication method between the functional boards and the baseboard.
[0006] In some implementations, the number of slots is 4-10. The advantage is that it describes a suitable number of slots, but other options can be made depending on actual needs.
[0007] In some embodiments, the functional panel includes an ultrasound therapy functional panel and an electrical stimulation therapy functional panel. The advantage is that while the types of functional panels are described, other types can be configured as needed.
[0008] In some implementations, the number of the various functional boards can be arbitrarily configured. This has the advantage that they can be used to implement a variety of functions as needed.
[0009] In some implementations, function boards of the same type use a unified code. This is advantageous because it allows for convenient and unified control of function boards of the same type, while also allowing for the definition of different codes as needed.
[0010] In some implementations, the pin state of the slot is low by default and high when the function board is inserted. The advantage is that the pin state settings of the slot are described.
[0011] In some embodiments, the functional board is further provided with an electrode detachment circuit, through which the MCU and the electrode interface are connected. The advantage is that when an electrode connected to the electrode interface detaches, the electrode detachment circuit feeds back the situation to the MCU. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure of an intelligent module adaptation system according to one embodiment of the present invention;
[0013] Figure 2 for Figure 1 A schematic diagram of the functional board shown;
[0014] Figure 3 for Figure 1 The diagram shows the operation flowchart of an intelligent module adaptation system.
[0015] In the diagram: 1. Host computer; 2. Base plate; 3. Slot; 4. Function board; 5. MCU; 6. Slot interface; 7. Recognition circuit; 8. Stimulation circuit; 9. Electrode interface; 10. Electrode detachment circuit. Detailed Implementation
[0016] The present invention will now be described in further detail with reference to the accompanying drawings.
[0017] like Figure 1 As shown, the system mainly consists of a host computer and a baseboard that are interconnected, and multiple function boards are pluggably installed on the baseboard.
[0018] In the communication connection with the host computer 1, the base plate 2 is used to interact with the system of the host computer 1 and can receive and distribute tasks issued by the host computer 1.
[0019] Multiple slots 3 are provided on the base plate 2, and each function board 4 can be plugged into and installed in each slot 3, thereby achieving the effect of fixing the function board 4 and establishing a communication channel between the function board 4 and the host computer 1. When each function board 4 is installed in its respective slot 3, it uses the SPIx communication method to communicate with the base plate 2.
[0020] Each function board 4 has a code. Function boards 4 of the same type generally use a unified code, but different codes can also be defined as needed.
[0021] The specific number of slots 3 is generally 4-10, but other settings can be made depending on the situation.
[0022] Furthermore, depending on different usage requirements, different functional panels 4 can be designed and used. For example, in this embodiment, an ultrasound therapy functional panel and an electrical stimulation therapy functional panel can be selected. At the same time, the number of various functional panels 4 can be arbitrarily configured; for example, in this embodiment, four ultrasound therapy functional panels and four electrical stimulation therapy functional panels are configured.
[0023] like Figure 2 As shown, function board 4 includes an MCU, slot interface 6, recognition circuit 7, stimulation circuit 8, electrode detachment circuit 10, and electrode interface 9. The connection methods and functions of each structure are as follows:
[0024] The MCU is connected to slot interface 6 for communication, and slot interface 6 is connected to slot 3. In this way, the MCU can communicate with the base plate 2 through slot interface 6.
[0025] When the MCU is connected to the identification circuit 7, the MCU can identify the code of the function board 4 through the identification circuit 7, and then send it to the base plate 2 through the slot interface 6, thereby identifying the function board 4.
[0026] The MCU is connected to the electrode interface 9 through the stimulation circuit 8. The MCU can send signals to the electrode interface 9 through the stimulation circuit 8, stimulating the electrodes connected to the electrode interface 9 to operate, so as to perform ultrasound therapy or electrical stimulation therapy, etc.
[0027] The MCU and the electrode interface 9 are also connected through the electrode detachment circuit 10. When the electrode connected to the electrode interface 9 is detached, the situation is fed back to the MCU through the electrode detachment circuit 10.
[0028] like Figure 3 As shown, the system mainly includes the following steps when it is in operation.
[0029] First, after the device is powered on, the system reads the status pins in each slot 3. If the pin status is high (the default is low), it means that a function card has been inserted into the slot 3; otherwise, it is determined that no function board 4 has been inserted into the slot 3, and control and communication with the slot 3 are abandoned.
[0030] Then, when it is determined that there is a function board 4 in slot 3, the system will establish a connection with the function board 4, read the code of the function board 4, identify the type of the function board 4, and record it in the system.
[0031] Finally, for each different function board 4, its status data is identified, including whether the board is in good working condition and whether it can output functions. When the function board 4 is determined to be in good condition, it enters the working mode and waits for the host computer 1 to send instructions to the corresponding function board 4 for interactive control and signal output. The host computer 1 sends tasks to the baseboard 2, including parameters such as the waveforms output by each function board 4, so that the function board 4 can perform functions and output waveforms according to the instructions of the host computer 1.
[0032] The intelligent module adaptation system of this utility model has the following beneficial effects:
[0033] 1. By installing various functional boards 4 in the slots 3 of the base plate 2, the compatibility problem between different functional boards and the desktop electro-ultrasound therapy equipment is solved;
[0034] 2. The function board 4 can be flexibly plugged in and out, which improves the product's usability and reduces costs;
[0035] 3. It increases the confidentiality of the product, ensuring that the product cannot be copied or tampered with, and reduces the risk of use.
[0036] The above descriptions are merely some embodiments of this utility model. For those skilled in the art, various modifications and improvements can be made without departing from the inventive concept of this utility model, and all such modifications and improvements fall within the protection scope of this utility model.
Claims
1. An intelligent tile adaptation system, characterized by: The application relates to a device for treating a patient, which comprises a host computer (1) and a bottom plate (2) connected with each other, wherein a plurality of slots (3) are arranged on the bottom plate (2), a plurality of functional plates (4) are pluggably arranged on the slots (3), and each of the functional plates (4) is provided with a code; an MCU (5), a slot interface (6), an identification circuit (7), a stimulation circuit (8) and an electrode interface (9) are arranged in the functional plate (4), wherein the MCU (5) is connected with the slot interface (6), the slot interface (6) is connected with the slot (3), the MCU (5) is connected with the identification circuit (7), and the MCU (5) is connected with the electrode interface (9) through the stimulation circuit (8), and the electrode interface (9) is used for connecting an electrode.
2. The intelligent tile adaptation system of claim 1, wherein: Each of the functional plates (4) is connected with the bottom plate (2) through an SPIx communication mode.
3. The intelligent tile adaptation system of claim 1, wherein: The number of the slots (3) is 4-10.
4. The intelligent tile adaptation system of claim 3, wherein: The functional plate (4) comprises an ultrasonic treatment functional plate and an electric stimulation treatment functional plate.
5. The intelligent tile adaptation system of claim 4, wherein: The number of the functional plates (4) can be configured at will.
6. The intelligent tile adaptation system of claim 4, wherein: The same type of the functional plate (4) is provided with a unified code.
7. The intelligent tile adaptation system of claim 1, wherein: The pin state of the slot (3) is low by default and is high when the functional plate (4) is inserted.
8. The intelligent tile adaptation system of claim 1, wherein: An electrode falling-off circuit (10) is further arranged in the functional plate (4), and the MCU (5) is connected with the electrode interface (9) through the electrode falling-off circuit (10).