Power supply control method and device for display terminal of ultrasound equipment

The power supply capacity of the display terminal is adaptively adjusted, which solves the problem of unstable operation of ultrasonic devices on different terminals, ensuring the normal operation of the equipment and imaging effect, which is widely adaptable and does not require additional hardware.

CN115793504BActive Publication Date: 2025-08-29VINNO TECH (SUZHOU) CO LTD
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Patent Information

Application Number
CN202211724047.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-30
Publication Date
2025-08-29
Estimated Expiration
2042-12-30

AI Technical Summary

Technical Problem

In the prior art, the difference in power supply capacity of the display terminal causes the palm ultrasonic detector to fail to meet the power requirements when running on different terminals, resulting in the device being directly inactive or the imaging effect is poor.

Method used

By adaptively adjusting the power supply capacity of the display terminal, dynamically adjusting the operating parameters of the ultrasonic equipment, so that it can operate at the best power on different terminals, avoiding direct downtime and improving imaging quality.

Benefits of technology

It realizes normal operation and high-quality imaging of ultrasonic devices on display terminals with different power supply capabilities, without the need for additional hardware design, and is widely adaptable.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a power supply control method and device for a display terminal of an ultrasonic device, comprising the following steps: S1: outputting current operating parameters to the ultrasonic device; S2: detecting whether the display terminal can receive current operating data sent by the ultrasonic device; if so, updating the current operating parameters in step S1, and cyclically executing steps S1 and S2; if not, setting the operating parameters before the current operating parameters as configuration parameters of the display terminal; application of this method can give full play to the advantage of the wide applicability of a handheld ultrasonic detector in connecting to various display terminals, while avoiding the problem of insufficient power supply capacity of some display terminals causing the ultrasonic device to directly shut down. At the same time, it does not need to operate at the lowest power supply capacity, and automatically adapts to the power supply capacity of different display terminals, resulting in better imaging effects.
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Description

Technical Field

[0001] The present invention relates to the field of ultrasonic equipment, and in particular to a method and device for controlling power supply of a display terminal of ultrasonic equipment. Background Art

[0002] With the rapid development of medical technology, ultrasonic testing equipment plays an important role and has a great impact. It can help doctors effectively recognize and understand the health status of patients. Technological advances have made ultrasonic testing equipment increasingly miniaturized, and handheld ultrasonic detectors have emerged. Users only need to connect the handheld ultrasonic detector to a display terminal to use it. Such a display terminal can be a computer, tablet or even a mobile phone, and these display terminals provide power for the handheld ultrasonic detector.

[0003] In the process of implementing the present invention, the inventors found that there are some problems in the prior art:

[0004] Although the handheld ultrasonic detector can be powered by various display terminals, which brings the benefit of wide applicability, the power supply capabilities of different display terminals are different during the connection process. For some display terminals with weak power supply capabilities, they cannot meet all the working power requirements of the handheld ultrasonic detector. Then two situations arise: either the handheld ultrasonic detector detects that the power supply capacity of the display terminal is insufficient and stops working directly, or the handheld ultrasonic detector operates with the minimum power supply capacity that the display terminal can provide. Although the operation of the equipment is guaranteed, the imaging effect is not good. Summary of the Invention

[0005] To solve at least one of the above-mentioned problems in the prior art, an object of the present invention is to provide a method and apparatus for controlling power supply of a display terminal of an ultrasound device, which can adaptively adjust the power supply capacity of the display terminal.

[0006] To achieve the above-mentioned object of the invention, an embodiment of the present invention provides a method for controlling power supply of a display terminal of an ultrasound device, comprising the following steps:

[0007] S1: Outputting current operating parameters to the ultrasound device, wherein the current operating parameters are parameters used to control the ultrasound device to perform scanning operations;

[0008] S2: Detecting whether the display terminal can receive the current operation data sent by the ultrasound device;

[0009] If yes, update the current operating parameters in step S1, and execute steps S1 and S2 cyclically, wherein the power of the ultrasound device when operating with the updated current operating parameters is greater than the power when operating with the current operating parameters before the update;

[0010] If not, the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal.

[0011] As a further improvement of the present invention, the following steps are further included before step S1:

[0012] Outputting initial operating parameters to the ultrasound device, wherein the initial operating parameters are minimum power supply capacity that can be provided by the power supply control, and the minimum power supply capacity can drive the ultrasound device to operate;

[0013] The display terminal receives initial operation data sent by the ultrasound device, wherein the initial operation data is data of the ultrasound device operating with the initial operation parameters.

[0014] As a further improvement of the present invention, if the display terminal can receive the current operating data sent by the ultrasound device, the display terminal verifies the current operating data;

[0015] If the current operating data is verified to be correct, the current operating parameters in step S1 are updated, and steps S1 and S2 are executed cyclically;

[0016] If the current running data verification is incorrect, step S1 and step S2 are re-executed until the current running data verification is correct.

[0017] As a further improvement of the present invention, the step of updating the current operating parameters in step S1 is to increase the voltage in the current operating parameters.

[0018] As a further improvement of the present invention, each time step S1 and step S2 are cycled, the voltage increases by the same amount.

[0019] As a further improvement of the present invention, the following steps are also included:

[0020] If the display terminal can receive the current operating data sent by the ultrasound device, and the current operating parameters correspond to the rated power range of the ultrasound device, the current operating parameters corresponding to the rated power range are set as configuration parameters of the display terminal.

[0021] As a further improvement of the present invention, the following steps are also included:

[0022] If the ultrasound device is connected to the display terminal for the first time, executing the display terminal power supply control method of the ultrasound device;

[0023] If it is not the first time that the ultrasound device is connected to the display terminal, the configuration parameters are obtained.

[0024] To achieve one of the above-mentioned objectives, an embodiment of the present invention provides a display terminal power supply control device for ultrasound equipment, comprising:

[0025] An operating parameter setting module, configured to output current operating parameters to the ultrasound device, wherein the current operating parameters are parameters used to control the ultrasound device to perform scanning operations;

[0026] A detection module, configured to detect whether the display terminal can receive the current operation data sent by the ultrasound device;

[0027] If yes, the operating parameter setting module updates the current operating parameters and cyclically executes the steps in the operating parameter setting module and the detection module, wherein the power of the ultrasound device when operating with the updated current operating parameters is greater than the power when operating with the current operating parameters before the update;

[0028] If not, the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal.

[0029] To achieve one of the above-mentioned objectives, an embodiment of the present invention provides an electronic device, including:

[0030] a storage module storing a computer program;

[0031] The processing module can implement the steps in the above-mentioned method for controlling power supply of the display terminal of the ultrasound device when executing the computer program.

[0032] To achieve one of the above-mentioned objects of the invention, an embodiment of the present invention provides a readable storage medium storing a computer program, which, when executed by a processing module, can implement the steps in the above-mentioned method for controlling power supply of a display terminal of an ultrasound device.

[0033] Compared with the existing technology, the present invention has the following beneficial effects: the display terminal power supply control method of the ultrasound equipment can give full play to the advantage of the wide applicability of the handheld ultrasound detector in connecting to various display terminals, while avoiding the problem of insufficient power supply capacity of some display terminals causing the ultrasound equipment to directly shut down. At the same time, it does not need to operate at the lowest power supply capacity, and automatically adapts to the power supply capacity of different display terminals, ensuring the normal operation and scanning of the ultrasound equipment. It can be achieved without adding additional hardware design, and the imaging effect is better. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 This is a structural diagram of an ultrasound device connected to a display terminal according to an embodiment of the present invention;

[0035] Figure 2 This is a flow chart of a method for controlling power supply to a display terminal of an ultrasound device according to one embodiment of the present invention;

[0036] Figure 3 is a flow chart of a method for controlling power supply to a display terminal of an ultrasound device according to another embodiment of the present invention;

[0037] Figure 4 This is a module diagram of a display terminal power supply control device for ultrasound equipment according to an embodiment of the present invention;

[0038] Among them, 10. Ultrasonic equipment; 20. Display terminal. DETAILED DESCRIPTION

[0039] The present invention will be described in detail below with reference to the specific embodiments shown in the accompanying drawings. However, these embodiments do not limit the present invention, and any structural, methodological, or functional changes made by those skilled in the art based on these embodiments are all within the scope of protection of the present invention.

[0040] An embodiment of the present invention provides a method and apparatus for controlling power supply of a display terminal of an ultrasound device. Application of this method enables the ultrasound device to automatically adapt to the power supply capabilities of different display terminals, fully utilize the power supply capabilities of the display terminals, and achieve higher quality ultrasound imaging.

[0041] The ultrasound device 10 of this embodiment can be a handheld ultrasound detector, which is small and easy to carry. In particular, it can only include a probe and some wires. Other smart devices can be connected through the wires, and the screen of the smart device can be used as a display. The probe can emit and receive ultrasound waves, and then form an image on the display. Figure 1 As shown, the connection between the ultrasound device 10, i.e., the probe, and the display terminal 20 is shown. The display terminal 20 and the ultrasound device 10 transmit power and data simultaneously. In this way, the ultrasound device 10 does not need a built-in power supply battery and can be more compact.

[0042] The display terminal 20 can be a computer, a mobile phone, a tablet computer, etc. These devices have their own display screens. At the same time, applications can be installed on these smart devices, such as app programs on mobile phones. By operating the app programs, the operating parameters of the ultrasound equipment 10 can be controlled.

[0043] Currently, the power supply capabilities of the ports of these display terminals 20 on the market vary. Even the weakest display terminal 20 can provide normal scanning for the ultrasound device 10. However, operating the ultrasound device 10 with the weakest power supply results in limited scanning accuracy and resolution. Increasing the power supply can improve resolution and image quality. In other words, the ultrasound device 10 is not a constant-power device; increasing the power supply capability of the display terminal 20 port can improve imaging.

[0044] The following combination Figures 2 and 3, illustrating the power supply control method for the display terminal 20 of the ultrasound device 10 provided in two embodiments of the present invention. Although the present application provides the method operation steps as shown in the following implementation manner or flowchart, based on conventional or no creative labor, the execution order of the steps in the method that do not logically have necessary causal relationships is not limited to the execution order provided in the implementation manner of the present application.

[0045] Specifically, Figure 2 For example, in the first embodiment, the power supply control method of the display terminal 20 of the ultrasound device 10 includes the following steps:

[0046] Step S10 : outputting initial operating parameters to the ultrasound device 10 .

[0047] In step S10, the initial operating parameters are parameters used to control the ultrasonic device 10 to perform scanning operations. The initial operating parameters are the minimum power supply capacity that can be provided by the power supply control, and the minimum power supply capacity can drive the ultrasonic device 10 to operate.

[0048] The initial operating parameters may include limitations on the operating voltage or power of the ultrasound device 10 , such as the minimum operating voltage of the ultrasound device 10 , where the minimum voltage also corresponds to the minimum power.

[0049] Step S20: the display terminal 20 receives the initial operation data sent by the ultrasound device 10, wherein the initial operation data is data when the ultrasound device 10 operates with the initial operation parameters.

[0050] Since the power supply capacity corresponding to the initial operation parameters can guarantee the operation of all handheld ultrasound devices 10, the initial operation data can be obtained.

[0051] After receiving the initial operation data sent by the ultrasound device 10 , the display terminal 20 may verify the initial operation data and proceed to the next step if the verification is correct. Otherwise, step S10 may be re-executed until the data verification is correct.

[0052] Step S30 : outputting current operating parameters to the ultrasound device 10 .

[0053] The power supply capacity of the current operating parameters may be greater than the power supply capacity corresponding to the initial operating parameters. For example, the initial operating parameters correspond to a voltage of 50 V, and the current operating parameters correspond to a voltage of 100 V. The operating parameters of the ultrasound device 10 are determined by the application program.

[0054] Corresponding to step S40, in the prior art, for the sake of safety, only steps S10 and S20 may be executed, that is, only working at the minimum power without looking for the possibility of increasing the power, or directly testing at the maximum voltage. If it is found that it cannot work, the display terminal 20 is directly rejected and considered unusable. Step S30 and subsequent steps further explore the working potential of the display terminal 20, so that the ultrasound device 10 operates at the optimal power.

[0055] Step S40: Detect whether the current operation data sent by the ultrasound device 10 can be received.

[0056] After step S30, there are two possibilities, one is that the ultrasonic device 10 operates with the current operating parameters, and the other is that it cannot operate. If it can operate, the current operating data under the current operating parameters and working conditions can be received. If it cannot operate, it cannot be received.

[0057] If the result of step S40 is yes, execute step S60: update the current operating parameters in step S30, and execute steps S30 and S40 in a loop, wherein the power of the ultrasonic device 10 when operating with the updated current operating parameters is greater than the power when operating with the current operating parameters before the update.

[0058] In this embodiment, updating the current operating parameters in step S30 is to increase the voltage in the current operating parameters. Increasing the voltage means an increase in power supply capacity, an increase in resolution, and a better ultrasonic imaging effect.

[0059] In addition, each time step S30 and step S40 are cycled, the voltage increases by the same amount, which facilitates voltage regulation and determines a suitable voltage.

[0060] Furthermore, this embodiment further includes the steps of:

[0061] If the display terminal 20 can receive the current operating data sent by the ultrasound device 10, verify the current operating data;

[0062] If the current operating data is verified to be correct, the current operating parameters in step S30 are updated, and steps S30 and S40 are executed cyclically;

[0063] If the current running data verification is incorrect, step S30 and step S40 are re-executed until the current running data verification is correct.

[0064] Even if the data is verified to be incorrect, the data can be received, indicating that the ultrasonic device 10 can operate at this voltage. The data error may be caused by other interference factors, so the ultrasonic device 10 is driven with this voltage again until the data is verified to be correct.

[0065] If the result of step S40 is no, step S71 is executed: the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal 20.

[0066] For example, the ultrasonic device 10 is required to receive data when operating at 95V; and is required not to receive data when operating at 100V. Then the previous operating parameters of 100V correspond to 95V, and the operating parameters corresponding to 95V are set as the configuration parameters of the display terminal 20.

[0067] In addition, if the ultrasound device 10 is connected to the display terminal 20 for the first time, the power supply control method of the display terminal 20 of the ultrasound device 10 is executed;

[0068] If it is not the first time that the ultrasound device 10 is connected to the display terminal 20 , the configuration parameters are obtained.

[0069] Different display terminals 20 and different ultrasound devices 10 may have different maximum voltages. Each time a new device is connected, it is necessary to start running from step S10. If it is detected that the ultrasound device 10 has been connected, the configuration parameters corresponding to the ultrasound device 10 are directly obtained and run at the maximum voltage.

[0070] In Example 2, Figure 3 As shown, after executing step S40 and obtaining a yes result, the following steps are further included:

[0071] Step S50: If the display terminal 20 can receive the current operating data sent by the ultrasound device 10 and the current operating parameters correspond to the rated power range of the ultrasound device 10, the following steps are executed:

[0072] Step S72 : setting the current operating parameters corresponding to the rated power interval as configuration parameters of the display terminal 20 .

[0073] If the result of step S50 is that the display terminal 20 can receive the current operating data sent by the ultrasonic device 10, but the power corresponding to the current operating parameters has not reached the rated power range of the ultrasonic device 10, then step S60 in embodiment 1 is continued.

[0074] During the execution of Example 2, if the result of step S40 in Example 1 is negative, the execution continues with step S71.

[0075] This embodiment differs from Embodiment 1 in that, in addition to receiving the current operating data from the ultrasound device 10, the display terminal 20 also determines the current power supply status. If the maximum power requirement of the ultrasound device 10 has been reached, there is no need to increase the voltage further; it can simply be maintained at that voltage. In Embodiment 2, the power supply capacity of the display terminal 20 is sufficiently strong to meet the maximum power requirement of the ultrasound device 10.

[0076] The following describes the working process:

[0077] After the ultrasound device 10 is connected to a display terminal 20 for the first time, the display terminal 20 determines that the ultrasound device 10 is a new device and starts a process of voltage adaptive adjustment.

[0078] When the user selects the connection debugging with the ultrasound device 10 on the application of the display terminal 20, data initialization begins. Assume that the voltage of the initial operating parameters during initialization is 50V. 50V is the minimum voltage that the display terminal 20 can provide for driving the ultrasound device 10, and this minimum voltage can ensure that the ultrasound device 10 completes the scanning work.

[0079] The ultrasound device 10 is driven and operated at a voltage of 50V, and transmits the scanned data back to the display terminal 20 .

[0080] The display terminal 20 receives the data and verifies the data. After confirming that the data is correct, it sends the new current operating parameters to the ultrasound device 10. The operating voltage corresponding to the new current operating parameters may be 55V.

[0081] The ultrasonic device 10 is driven to operate at a voltage of 55V and the above steps are repeated, followed by 60V, 65V, ...

[0082] Until the new current operating parameters are sent to the ultrasonic device 10, the operating voltage corresponding to the new current operating parameters is 100V. At this time, the display terminal 20 can no longer detect the data sent back by the ultrasonic device 10, that is, the display terminal 20 cannot supply a voltage of 100V, and the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal 20, that is, 95V is determined as the configuration parameters of the display terminal 20. The next time it is run, the display terminal 20 can directly drive the ultrasonic device 10 to run at 95V.

[0083] In addition, in Example 2, if it is detected that the scanning of the ultrasound device 10 corresponding to 90V is at the voltage corresponding to the best imaging when the voltage reaches 90V, the voltage can be stopped from being increased, and the voltage is operated at 90V in the future.

[0084] Compared with the prior art, this embodiment has the following beneficial effects:

[0085] The power supply control method for the display terminal 20 of the ultrasound device 10 can give full play to the advantage of the wide applicability of the handheld ultrasound detector in connecting to various display terminals 20, while avoiding the problem of insufficient power supply capacity of some display terminals 20 causing the ultrasound device 10 to directly shut down. At the same time, it does not need to operate at the lowest power supply capacity, and automatically adapts to the power supply capacity of different display terminals 20, ensuring the normal operation and scanning of the ultrasound device 10, and can be achieved without adding additional hardware design, resulting in better imaging effects.

[0086] In one embodiment, a power supply control device for the display terminal 20 of the ultrasound device 10 is provided. Figure 4 The power supply control device of the display terminal 20 of the ultrasound device 10 includes modules, and the specific functions of each module are as follows:

[0087] An operating parameter setting module, configured to output current operating parameters to the ultrasound device 10, wherein the current operating parameters are parameters used to control the ultrasound device 10 to perform scanning operations;

[0088] A detection module, configured to detect whether the display terminal 20 can receive the current operation data sent by the ultrasound device 10;

[0089] If yes, the operating parameter setting module updates the current operating parameters and cyclically executes the steps in the operating parameter setting module and the detection module, wherein the power of the ultrasound device 10 when operating with the updated current operating parameters is greater than the power when operating with the current operating parameters before the update;

[0090] If not, the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal 20 .

[0091] It should be noted that for details not disclosed in the power supply control device for the display terminal 20 of the ultrasound equipment 10 according to the embodiment of the present invention, please refer to the details disclosed in the power supply control method for the display terminal 20 of the ultrasound equipment 10 according to the embodiment of the present invention.

[0092] Those skilled in the art will understand that the module schematic diagram is merely an example of the power supply control device of the display terminal 20 of the ultrasound device 10, and does not constitute a limitation on the terminal device of the power supply control device of the display terminal 20 of the ultrasound device 10. It may include more or fewer components than shown in the figure, or a combination of certain components, or different components. For example, the power supply control device of the display terminal 20 of the ultrasound device 10 may also include input and output devices, network access devices, buses, etc.

[0093] The display terminal 20 can be just a display that requires an external control device with a processor, or the display terminal 20 can have its own processor, such as a mobile phone or computer. In this case, the display terminal 20 and the display terminal 20 power supply control device of the ultrasound device 10 can be the same device.

[0094] The following description will be continued by taking the example that the display terminal 20 and the power supply control device of the display terminal 20 of the ultrasound device 10 are the same device.

[0095] The display terminal 20 may also include a computing device such as a computer, a notebook, a PDA, and a cloud server, and includes but is not limited to a processing module, a storage module, and a computer program stored in the storage module and executable on the processing module, such as the above-mentioned power supply control method program for the display terminal 20 of the ultrasound device 10. When the processing module executes the computer program, the steps of the above-mentioned power supply control method for the display terminal 20 of the ultrasound device 10 are implemented, such as Figure 2 and 3 Steps shown.

[0096] The display terminal 20 may also include a data line connecting the display terminal 20 and the ultrasound device 10, which is used for both power supply and data transmission. The display terminal 20 has a built-in communication bus. The data line is used to transmit data from the ultrasound device 10 to the processing module or server, and the communication bus is used to establish a connection between the processing module and the storage module. The communication bus may include a path for transmitting information between the data line, the processing module, and the storage module.

[0097] In addition, the present invention also proposes an electronic device, which includes a storage module and a processing module. When the processing module executes the computer program, it can implement the steps in the above-mentioned power supply control method of the display terminal 20 of the ultrasound equipment 10, that is, implement the steps in any one of the technical solutions in the above-mentioned power supply control method of the display terminal 20 of the ultrasound equipment 10.

[0098] The electronic device may be a part of a power supply control device integrated into the display terminal 20 of the ultrasound device 10, or a local terminal device, or a part of a cloud server.

[0099] The processing module can be a central processing unit (CPU), other general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASIC), field-programmable gate arrays (FPGA), other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. A general-purpose processor can be a microprocessor or any conventional processor. The processing module is the control center of the power supply control device for the display terminal 20 of the ultrasound device 10, and uses various interfaces and lines to connect the various parts of the power supply control device for the display terminal 20 of the ultrasound device 10.

[0100] The storage module can be used to store the computer programs and / or modules. The processing module implements the various functions of the power supply control device of the display terminal 20 of the ultrasound device 10 by running or executing the computer programs and / or modules stored in the storage module and calling the data stored in the storage module. The storage module can mainly include a program storage area and a data storage area, wherein the program storage area can store an operating system, at least one application required for a function, etc. In addition, the storage module can include high-speed random access memory and non-volatile memory, such as a hard disk, internal memory, a plug-in hard disk, a smart media card (SMC), a secure digital (SD) card, a flash card, at least one disk storage device, a flash memory device, or other volatile solid-state storage device.

[0101] For example, the computer program may be divided into one or more modules / units, which are stored in a storage module and executed by a processing module to implement the present invention. The one or more modules / units may be a series of computer program instruction segments capable of performing specific functions, and the instruction segments are used to describe the execution process of the computer program in the power supply control device of the display terminal 20 of the ultrasound device 10.

[0102] Furthermore, an embodiment of the present invention provides a readable storage medium storing a computer program, which, when executed by a processing module, can implement the steps in the above-mentioned method for controlling the power supply of the display terminal 20 of the ultrasound device 10, that is, implement the steps in any one of the technical solutions in the above-mentioned method for controlling the power supply of the display terminal 20 of the ultrasound device 10.

[0103] If the module integrated with the power supply control method for the display terminal 20 of the ultrasound device 10 is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the present invention can also implement all or part of the processes in the above-mentioned method embodiments by instructing the relevant hardware through a computer program. The computer program can be stored in a computer-readable storage medium. When executed by the processing module, the computer program can implement the steps of each of the above-mentioned method embodiments.

[0104] The computer program includes computer program code, which may be in source code form, object code form, executable file, or some intermediate form. The computer-readable medium may include any entity or device capable of carrying the computer program code, a recording medium, a disk, a mobile hard disk, a magnetic disk, an optical disk, a computer memory, a read-only memory (ROM), a random access memory (RAM), an electric carrier signal, a telecommunication signal, and a software distribution medium. It should be noted that the content of the computer-readable medium may be appropriately increased or decreased according to the requirements of legislation and patent practice in the jurisdiction. For example, in some jurisdictions, according to legislation and patent practice, computer-readable media do not include electric carrier signals and telecommunication signals.

[0105] It should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each implementation method can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

[0106] The series of detailed descriptions listed above are only specific descriptions of feasible implementation methods of the present invention. They are not intended to limit the scope of protection of the present invention. Any equivalent implementation methods or changes that do not deviate from the technical spirit of the present invention should be included in the scope of protection of the present invention.

Claims

1. A method for controlling power supply of a display terminal of an ultrasound device, characterized in that: The steps include: S1: Outputting current operating parameters to the ultrasound device, wherein the current operating parameters are parameters used to control the ultrasound device to perform scanning operations; S2: Detecting whether the current operation data sent by the ultrasonic device can be received; If yes, update the current operating parameters in step S1, and execute steps S1 and S2 cyclically, wherein the power of the ultrasound device when operating with the updated current operating parameters is greater than the power when operating with the current operating parameters before the update; If not, the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal.

2. The method for controlling power supply of a display terminal of an ultrasound device according to claim 1, wherein: Before step S1, the method further includes the following steps: Outputting initial operating parameters to the ultrasound device, wherein the initial operating parameters are minimum power supply capacity that can be provided by the power supply control, and the minimum power supply capacity can drive the ultrasound device to operate; The display terminal receives initial operation data sent by the ultrasound device, wherein the initial operation data is data of the ultrasound device operating with the initial operation parameters.

3. The method for controlling power supply of a display terminal of an ultrasound device according to claim 1, wherein: If the display terminal can receive the current operating data sent by the ultrasound device, verify the current operating data; If the current operating data is verified to be correct, the current operating parameters in step S1 are updated, and steps S1 and S2 are executed cyclically; If the current running data verification is incorrect, step S1 and step S2 are re-executed until the current running data verification is correct.

4. The method for controlling power supply of a display terminal of an ultrasound device according to claim 1, wherein: The updating of the current operating parameters in step S1 is to increase the voltage in the current operating parameters.

5. The method for controlling power supply of a display terminal of an ultrasound device according to claim 4, wherein: Each time step S1 and step S2 are cycled, the voltage increases by the same amount.

6. The method for controlling power supply of a display terminal of an ultrasound device according to claim 1, wherein: Also includes the steps: If the display terminal can receive the current operating data sent by the ultrasound device, and the current operating parameters correspond to the rated power range of the ultrasound device, the current operating parameters corresponding to the rated power range are set as configuration parameters of the display terminal.

7. The method for controlling power supply of a display terminal of an ultrasound device according to claim 1, wherein: Also includes the steps: If the ultrasound device is connected to the display terminal for the first time, executing the display terminal power supply control method of the ultrasound device; If it is not the first time that the ultrasound device is connected to the display terminal, the configuration parameters are obtained.

8. A display terminal power supply control device for ultrasound equipment, characterized in that: include: An operating parameter setting module, configured to output current operating parameters to the ultrasound device, wherein the current operating parameters are parameters used to control the ultrasound device to perform scanning operations; A detection module, configured to detect whether the display terminal can receive the current operation data sent by the ultrasound device; If yes, the operating parameter setting module updates the current operating parameters and cyclically executes the steps in the operating parameter setting module and the detection module, wherein the power of the ultrasound device when operating with the updated current operating parameters is greater than the power when operating with the current operating parameters before the update; If not, the operating parameters before the current operating parameters are set as the configuration parameters of the display terminal.

9. An electronic device, characterized in that: include: a storage module storing a computer program; The processing module can implement the steps of the display terminal power supply control method of the ultrasound equipment according to any one of claims 1 to 8 when executing the computer program.

10. A readable storage medium storing a computer program, characterized in that: When the computer program is executed by the processing module, the steps in the display terminal power supply control method of the ultrasound device according to any one of claims 1 to 8 can be implemented.

Citation Information

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