Ultrasonic treatment structure and ultrasonic treatment instrument

By using a magnet inside the hanger of the ultrasound therapy device in conjunction with a return detection submodule inside the handle, the problem of the handle remaining active when not in use is solved, achieving energy saving and extending the handle's lifespan.

CN224070989UActive Publication Date: 2026-04-03SHENZHEN PENINSULA MEDICAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-09
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The handpiece of existing ultrasound therapy equipment remains active even when not in use, resulting in high energy consumption and short lifespan.

Method used

The magnet inside the bracket works in conjunction with the return detection submodule inside the handle. The magnet acts on the return detection submodule to output a signal, thereby turning off the handle's active state, achieving the return of the handle and saving energy.

Benefits of technology

It effectively reduces the energy consumption of the handle and extends its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model discloses an ultrasonic treatment structure and an ultrasonic treatment instrument, which are used for reducing energy consumption. The ultrasonic treatment structure comprises a treatment head, a handle, a power control module and a hanger, wherein the handle comprises a homing detection sub-module and a first processing sub-module; the handle is electrically connected with the treatment head and the power control module, the treatment head is used for emitting ultrasonic energy, and the power control module is used for providing a power supply; the hanging frame is provided with a homing structure, the homing structure forms a homing space so as to bear the handle when the handle is placed in the homing space, and a magnet is arranged in the homing structure; the first processing sub-module is electrically connected with the homing detection sub-module, the homing detection sub-module is used for outputting a homing signal, and the first processing sub-module is used for controlling the working state of the handle according to the homing signal.
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Description

Technical Field

[0001] This application relates to the field of medical devices, and more particularly to an ultrasound therapy structure and an ultrasound therapy device. Background Technology

[0002] In the field of medical aesthetics, devices for ultrasound focused treatment of the skin are generally equipped with multiple handles to match different treatment areas and meet the needs of different operation methods such as stamping and sliding.

[0003] In practical applications, some controllers remain active (i.e., powered on) even when they are not in use, which consumes more energy and shortens their lifespan. Utility Model Content

[0004] This application provides an ultrasound therapy structure and an ultrasound therapy device for reducing energy consumption.

[0005] The first aspect of this application provides an ultrasound therapy structure, including: a treatment head, a handle, a power control module, and a hanger, wherein the handle includes a return detection submodule and a first processing submodule;

[0006] The handle is electrically connected to the treatment head and the power control module respectively. The treatment head is used to emit ultrasonic energy, and the power control module is used to provide power.

[0007] The hanger is provided with a return structure, which forms a return space to support the handle when the handle is placed in the return space. A magnet is provided inside the return structure.

[0008] The first processing submodule is electrically connected to the return detection submodule. The return detection submodule is used to output a return signal, and the first processing submodule is used to control the working state of the handle according to the return signal.

[0009] Optionally, the outer surface of the handle is provided with a recess;

[0010] The repositioning detection submodule is located inside the handle corresponding to the recessed position;

[0011] The return structure of the bracket is a protrusion, and the return space formed by the protrusion is adapted to the recess. The protrusion is arc-shaped to clamp the handle when the handle is placed in the return space.

[0012] Optionally, the relocation detection submodule includes: at least one detection unit;

[0013] The output of each detection unit is connected to a port of the first processing submodule, and the outputs of each detection unit are not connected to each other.

[0014] Optionally, the number of magnets is not less than the number of detection units.

[0015] Optionally, the ultrasound treatment structure further includes: a posture sensor;

[0016] The posture sensor is disposed inside the treatment head or inside the handle. The posture sensor is used to detect the orientation of the acoustic window of the treatment head so that when the acoustic window of the treatment head is facing upward or to the side and the handle is placed in the return space, the handle stops working.

[0017] Optionally, the posture sensor is also used to detect the movement state of the handle so that the handle stops working when the acoustic window of the treatment head is facing upward or to the side, the movement speed of the handle is less than a preset threshold, and the handle is placed in the return space.

[0018] Optionally, the treatment head includes a transducer control submodule, a matching submodule, and a second processing submodule, and the handle further includes an energy control submodule;

[0019] The power control module, the energy control submodule, the matching submodule, and the transducer control submodule are electrically connected in sequence. The second processing submodule is connected to the transducer control submodule, and the first processing submodule is connected to the energy control submodule.

[0020] Optionally, the treatment head further includes: a storage submodule;

[0021] The storage submodule is connected to the second processing submodule.

[0022] Optionally, the treatment head further includes an identification submodule, and the handle further includes a reference submodule;

[0023] The reference submodule is connected to the identification submodule and the first processing submodule respectively to identify the model of the treatment head.

[0024] The second aspect of this application provides an ultrasonic therapy device, including the ultrasonic therapy structure as described above. The ultrasonic therapy structure includes a power control module, a treatment head, and a handle. The power control module, the handle, and the treatment head are connected in sequence. The ultrasonic therapy device further includes a switching power supply module, a display control module, a display module, and a communication conversion module.

[0025] The display control module is connected to the power control module, the switching power supply module, the display module, and the communication adapter module, respectively, and the power control module is connected to the switching power supply module.

[0026] As can be seen from the above technical solutions, the embodiments of this application have the following advantages:

[0027] The ultrasound treatment structure of this application is equipped with a hanger containing a magnet, and a return detection submodule is located within the handle. When the handle approaches and hangs on the hanger, the magnet acts on the return detection submodule, which outputs a return signal, causing the handle to stop working. This allows the handle to be hung up when not in use, deactivating it, reducing energy consumption, and extending the handle's lifespan compared to existing solutions. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments recorded in this application. For those skilled in the art, other drawings can be obtained based on these drawings.

[0029] Figure 1 This is a schematic diagram of an embodiment of an ultrasound therapy structure disclosed in this application;

[0030] Figure 2 This is a schematic diagram of another embodiment of an ultrasound therapy structure disclosed in this application;

[0031] Figure 3 This is a schematic diagram of an ultrasound therapy structure disclosed in this application;

[0032] Figure 4 This is a cross-sectional schematic diagram of an ultrasound therapy structure disclosed in this application;

[0033] Figure 5 This is a schematic diagram of one implementation of the relocation detection submodule disclosed in this application;

[0034] Figure 6 This is a schematic diagram of another implementation of the relocation detection submodule disclosed in this application;

[0035] Figure 7 This is a schematic diagram of the posture sensor disclosed in this application;

[0036] Figure 8 This is a schematic diagram of an embodiment of an ultrasound therapy device disclosed in this application;

[0037] Figure 9 This is a schematic diagram of the structure of an ultrasound therapy device disclosed in this application. Detailed Implementation

[0038] The present application will be further described in detail below with reference to the accompanying drawings.

[0039] This application provides an ultrasound therapy structure and an ultrasound therapy device for reducing energy consumption.

[0040] Ultrasound therapy converts electrical energy into ultrasound waves to treat specific tissues in the human body. Existing solutions utilize multiple handpieces to improve efficiency. However, some handpieces remain active even when not in use, leading to higher energy consumption and a shorter lifespan. To address these issues, this application provides an ultrasound therapy structure and instrument that uses magnets on the hanger to activate a return detection submodule, thereby shutting off the power to the handpieces. This reduces energy consumption and extends the lifespan of the handpieces.

[0041] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.

[0042] The terms "first," "second," "third," "fourth," etc., used in the specification, claims, and accompanying drawings of this utility model are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.

[0043] The following describes an ultrasound therapy structure according to this application. Please refer to... Figure 1 One embodiment of an ultrasound therapy structure according to this application includes: a treatment head, a handle, a power control module, and a hanger. The handle includes a return detection submodule and a first processing submodule.

[0044] The handle is electrically connected to both the treatment head and the power control module. The treatment head emits ultrasonic energy, and the power control module provides power. Specifically, the power control module transmits electrical energy to the handle and the treatment head, enabling the treatment head to emit ultrasonic energy.

[0045] The hanger is equipped with a return structure, which forms a return space to support the handle when it is placed in the return space. A magnet is installed inside the return structure.

[0046] The first processing submodule is electrically connected to the homing detection submodule. The homing detection submodule is used to output a homing signal, and the first processing submodule is used to control the working state of the handle according to the homing signal.

[0047] The working principle of this embodiment will now be explained. When the handle is in the active state, if the handle is not attached to the hanger, the magnet of the hanger cannot act on the handle's return detection submodule, and the output return signal cannot stop the handle from working; the handle remains in the active state. When the handle is attached to the hanger, the magnet acts on the return detection submodule, and the return signal output by the return detection submodule causes the first processing submodule to activate. The first processing submodule controls the handle to deactivate and stop working based on the return signal.

[0048] In this embodiment, the ultrasound treatment structure is equipped with a hanger containing a magnet, and the handle contains a return detection submodule. When the handle approaches and hangs on the hanger, the magnet acts on the return detection submodule, which outputs a corresponding return signal, causing the handle to stop working. This allows the handle to be hung up when not in use to deactivate, reducing energy consumption and extending its lifespan compared to existing solutions.

[0049] The ultrasound therapy structure of this application utilizes a magnet and a repositioning detection submodule. When the two are brought close enough to a certain distance, the magnet causes the repositioning detection submodule to activate. There are various possible placements for these components, which are not limited here. In one embodiment, the repositioning detection submodule is placed inside the hanger, and the magnet is placed in the handle. In another embodiment, the repositioning detection submodule is in the handle, and the magnet is placed inside the hanger. The following embodiments will describe the latter embodiment. Please refer to [link / reference]. Figures 2 to 7 Another embodiment of an ultrasound therapy structure according to this application includes: a treatment head, a handle, a power control module, and a hanger, wherein the handle includes a return detection submodule and a first processing submodule;

[0050] The handle is electrically connected to the treatment head and the power control module, respectively. The treatment head is used to emit ultrasonic energy, and the power control module is used to provide power.

[0051] The hanger is equipped with a return mechanism that forms a return space to support the handle when it is placed in the return space. A magnet is installed within the return mechanism. The magnet can be circular or semi-circular in shape; the specific shape is not limited.

[0052] The first processing submodule is electrically connected to the homing detection submodule. The homing detection submodule is used to output a homing signal, and the first processing submodule is used to control the working state of the handle according to the homing signal.

[0053] There are various types of hanging brackets, and correspondingly, various types of handles, to ensure that the handles can be securely hung on the hanging bracket. No specific limitations are specified here; two implementation methods are described below:

[0054] 1. The outer surface of the handle has a recess, and the return detection submodule is located inside the handle corresponding to the recess. The return structure of the bracket is a protrusion. The return space formed by the protrusion matches the recess, and a magnet is placed inside the protrusion. The protrusion is arc-shaped to clamp the handle when it is placed in the return space. Simply put, the handle is shaped like "thick at both ends and thin in the middle," and the protrusion can clamp the thinner part of the handle to fix and support it.

[0055] 2. The outer surface of the rack is equipped with hooks, and the return structure is a hook. The outer surface of the handle is equipped with hook holes corresponding to the hooks. The hook holes and hooks cooperate to hang the handle on the rack.

[0056] This embodiment uses the first case as an example for illustration.

[0057] The return detection submodule has several possible scenarios, which are not limited here. The following describes two implementation methods: one is that all detection devices must detect that the handle is in place before the handle can stop working; the other is that the handle can stop working as long as one detection device detects that the handle is in place.

[0058] The positioning detection submodule includes at least one detection unit; the output of each detection unit is connected to a port of the first processing submodule, and the outputs of each detection unit are not interconnected. The detection unit includes a detection device, a first resistor, a second resistor, and a first capacitor. The output of the detection device is connected to one end of the first resistor, one end of the second resistor, and one end of the first capacitor, respectively. The other end of the first resistor is connected to a power supply, the other end of the first capacitor is grounded, and the other end of the second resistor serves as the output of the detection unit and is connected to the first processing submodule. This embodiment uses three detection units as an example; for details, please refer to [link to specific documentation]. Figure 5 In the first detection unit, the first resistor is resistor R1, the second resistor is resistor R2, and the first capacitor is capacitor C1. In the second detection unit, the first resistor is resistor R3, the second resistor is resistor R4, and the first capacitor is capacitor C2. In the third detection unit, the first resistor is resistor R5, the second resistor is resistor R6, and the first capacitor is capacitor C3. Each detection unit has its own independently connected IO port. Only when all three detection devices detect the magnet will the first processing submodule close the handle.

[0059] II. The repositioning detection submodule includes: at least one detection unit, a third resistor, a fourth resistor, and a second capacitor. One end of the third resistor is connected to a power supply, and the other end of the third resistor is connected to the output terminal of at least one detection unit and one end of the fourth resistor. The other end of the fourth resistor is connected to one end of the second capacitor and the first processing submodule. The other end of the second capacitor is grounded. The detection unit includes: a detection device, a fifth resistor, a sixth resistor, a third capacitor, and a diode. The output terminal of the detection device is connected to one end of the fifth resistor, one end of the sixth resistor, and one end of the third capacitor. The other end of the fifth resistor is connected to a power supply, the other end of the third capacitor is grounded, and the other end of the sixth resistor is connected to the cathode of the diode. The anode of the diode serves as the output terminal of the detection unit and is connected to the other end of the third resistor. This embodiment uses three detection units as an example; for details, please refer to [link to specific documentation]. Figure 6 The third resistor is R7, the fourth resistor is R8, and the second capacitor is C4. In the first detection unit, the fifth resistor is R9, the sixth resistor is R10, the third capacitor is C5, and the diode is D1. In the second detection unit, the fifth resistor is R11, the sixth resistor is R12, the third capacitor is C6, and the diode is D2. In the third detection unit, the fifth resistor is R13, the sixth resistor is R14, the third capacitor is C7, and the diode is D3. All three detection units share a single output port. If any one of the detection devices detects a magnet, the first processing submodule can stop the handle from working.

[0060] This embodiment uses the second scenario as an example.

[0061] The detection device is either a reed switch or a Hall switch; this embodiment uses a reed switch for illustration. The number of magnets is not less than the number of detection units; in this embodiment, the number of magnets is greater than three.

[0062] The treatment head contains a sealed cavity filled with a liquid sound-conducting medium. An acoustic window is located on the treatment side of the cavity, with an acoustic membrane enclosing the sound-conducting medium. When the acoustic window faces downwards for an extended period, the membrane deforms under the pressure of the sound-conducting medium, and prolonged immersion in the medium accelerates its aging, affecting treatment effectiveness and lifespan. To avoid these problems, the ultrasound treatment structure also includes a posture sensor. This sensor is located within the treatment head or the handle. It detects the orientation of the acoustic window and stops the handle when the window is facing upwards or to the side and the handle is in its return position. Specifically, the posture sensor may be a gravity sensor, accelerometer, gyroscope, inertial measurement unit, or optical sensor, and is not limited here. The posture sensor also detects the movement of the handle and stops it when the acoustic window is facing upwards or to the side, the handle's movement speed is less than a preset threshold, and the handle is in its return position. This embodiment illustrates the use of a posture sensor installed inside the handle. The posture sensor can detect whether the handle is facing upwards and whether it is stationary. These two can serve as additional conditions for return-to-position detection. In one implementation, only return-to-position, where the handle is facing upwards and stationary, results in the handle being closed. In both of the above implementations, the acoustic window of the treatment head is positioned so that it faces upwards or to the side for an extended period, preventing the acoustic membrane from being deformed by the pressure of the sound-conducting medium over a long period. This effectively alleviates the aging of the acoustic membrane and minimizes its impact on treatment effectiveness and lifespan.

[0063] To achieve the function of emitting ultrasonic energy, the treatment head includes a transducer control submodule, a matching submodule, and a second processing submodule. The handle also includes an energy control submodule. The power control module, energy control submodule, matching submodule, and transducer control submodule are electrically connected in sequence. The second processing submodule is connected to the transducer control submodule, and the first processing submodule is connected to the energy control submodule.

[0064] To facilitate communication, the treatment head further includes a second communication submodule, and the handle further includes a first communication submodule. The second communication submodule is connected to the second processing submodule, the first communication submodule is connected to the first processing submodule, and the second communication submodule is network-connected to the first communication submodule.

[0065] To prevent data loss, the treatment head also includes a storage submodule. This storage submodule is connected to the second processing submodule.

[0066] To ensure the legitimacy of the treatment head, the treatment head also includes an identification submodule, and the handle also includes a reference submodule. The reference submodule is connected to both the identification submodule and the first processing submodule to identify the model of the treatment head.

[0067] The working principle of this embodiment will now be explained. When the handle is in use and in the active state, it is not near the hanger, all the reeds in the handle are not affected by the magnet, the level of resistor R8 is high, and the first processing submodule does not turn off the power of the handle. When the handle is not in use but is still in the active state, it is hung on the hanger. The magnet in the hanger acts on at least one reed in the handle (assuming it acts on the reed of the third detection unit). The reed closes, and the level of resistor R8 is pulled low. After the first processing submodule detects the low level, it controls the handle to stop working, thereby causing the treatment head to stop working as well.

[0068] In this embodiment, the ultrasound treatment structure is equipped with a hanger containing a magnet, and the handle contains a return detection submodule. When the handle approaches and hangs on the hanger, the magnet acts on the return detection submodule, which outputs a corresponding return signal, causing the handle to stop working. This allows the handle to be hung up when not in use, deactivating it, reducing energy consumption, and extending the handle's lifespan compared to existing solutions.

[0069] The above describes an ultrasound therapy structure according to an embodiment of this application. The following describes an ultrasound therapy device according to an embodiment of this application. Please refer to... Figures 8 to 9 One embodiment of an ultrasonic therapy device in this application includes the ultrasonic therapy structure as described above. The ultrasonic therapy structure includes a power control module, a treatment head, a handle, and a hanger. The power control module, the handle, and the treatment head are connected in sequence. The ultrasonic therapy device also includes a switching power supply module, a display control module, a display module, and a communication adapter module.

[0070] The display control module is connected to the power control module, switching power supply module, display module, and communication adapter module, respectively. The power control module is connected to the switching power supply module. The display control module is responsible for human-computer interaction, display, and internal / external communication scheduling. The switching power supply module provides the power source. The display module displays relevant data. The communication adapter module enables network communication.

[0071] The working principle of this embodiment will now be explained. After the user confirms the situation through the display module, they turn on the switching power supply module, and the power control module operates, causing the handle and treatment head to work and emit ultrasonic energy to specific tissues in the human body.

[0072] In this embodiment, electrical energy can be converted into ultrasonic energy, which can be used to treat specific tissues in the human body. When the handle is not in use, it can be hung up and stop working, thus saving energy.

[0073] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the foregoing embodiments, and will not be repeated here.

[0074] In the several embodiments provided in this application, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces, or indirect coupling or communication connection between apparatuses or units, and may be electrical, mechanical, or other forms.

[0075] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0076] In addition, in the various embodiments of this utility model, each functional unit can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.

[0077] The above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit it. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. An ultrasonic treatment structure, characterized by, The ultrasonic treatment structure comprises a treatment head, a handle, a power control module and a hanger, the handle comprises a homing detection sub-module and a first processing sub-module; The handle is electrically connected with the treatment head and the power control module respectively, the treatment head is used for emitting ultrasonic energy, and the power control module is used for providing a power supply; The hanger is provided with a homing structure, the homing structure forms a homing space to carry the handle when the handle is placed in the homing space, and a magnet is arranged in the homing structure; The first processing sub-module is electrically connected with the homing detection sub-module, the homing detection sub-module is used for outputting a homing signal, and the first processing sub-module is used for controlling the working state of the handle according to the homing signal. An outer surface of the handle is provided with a recess; 2. The ultrasonic treatment structure of claim 1, wherein, The homing detection sub-module is arranged in the handle corresponding to the position of the recess; The homing structure of the hanger is a protruding portion, the homing space formed by the protruding portion is matched with the recess, and the protruding portion is an arc-shaped body to clamp the handle when the handle is placed in the homing space. The homing detection sub-module comprises at least one detection unit; 3. The ultrasonic treatment structure of claim 1, wherein, The output end of each detection unit is connected to one port of the first processing sub-module, and the output ends of the detection units are not connected to each other. The number of the magnets is not less than the number of the detection units.

4. The ultrasonic treatment structure of claim 3, wherein, The ultrasonic treatment structure further comprises a posture sensor; 5. The ultrasonic treatment structure of claim 1, wherein, The posture sensor is arranged in the treatment head or the handle, and is used for detecting the direction of the acoustic window of the treatment head, so that the handle stops working when the acoustic window of the treatment head faces upward or a side surface and the handle is placed in the homing space. The posture sensor is also used for detecting the motion state of the handle, so that the handle stops working when the acoustic window of the treatment head faces upward or a side surface, the motion speed of the handle is less than a preset threshold, and the handle is placed in the homing space.

6. The ultrasonic treatment structure of claim 5, wherein, The treatment head comprises a transduction control sub-module, a matching sub-module and a second processing sub-module, and the handle further comprises an energy control sub-module; 7. The ultrasonic treatment structure of claim 1, wherein, The power control module, the energy control sub-module, the matching sub-module and the transduction control sub-module are electrically connected in sequence, the second processing sub-module is connected with the transduction control sub-module, and the first processing sub-module is connected with the energy control sub-module. The treatment head further comprises a storage sub-module; 8. The ultrasonic treatment structure of claim 7, wherein, The storage sub-module is connected with the second processing sub-module. The treatment head further comprises an identification sub-module, and the handle further comprises a reference sub-module; 9. The ultrasonic treatment structure of claim 7, wherein, The reference sub-module is connected with the identification sub-module and the first processing sub-module respectively to identify the model of the treatment head. The ultrasonic treatment structure comprises a power control module, a treatment head and a handle, the power control module, the handle and the treatment head are connected in sequence, and the ultrasonic treatment instrument further comprises a switching power supply module, a display control module, a display module and a communication switching module.

10. An ultrasonic therapy apparatus, characterized by ​ The display control module is connected with the power control module, the switching power supply module, the display module and the communication switching module respectively, and the power control module is connected with the switching power supply module.