Therapeutic system
The luminous film and sensing components in the treatment system ensure that the treatment device evenly treats every position on the treatment surface, solving the problem that existing treatment devices cannot move accurately and improving the treatment effect.
Patent Information
- Application Number
- CN202422334804.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-09-24
AI Technical Summary
Existing therapeutic devices cannot move precisely on the treatment surface, resulting in repeated treatment of the treatment surface or omission of treatment areas, affecting the treatment effect.
A treatment system is used, including a treatment device, a luminous film and a control device. The luminous areas on the luminous film emit light in sequence, the sensing component receives the light signal, and the control device records the position information to ensure that the treatment device evenly treats each position on the treatment surface.
The therapeutic apparatus can evenly treat each position of the treatment surface, thus avoiding repeated treatment and improving the treatment effect.
Smart Images

Figure CN223403946U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical devices, in particular to a treatment system. Background Art
[0002] In the medical field, treatments are often provided through various therapeutic devices, such as laser therapy devices, ultrasound therapy devices, and radiofrequency therapy devices. These devices often utilize a single-point output mode, requiring them to be continuously moved across the treatment area to complete the entire treatment. The movement path or area of these devices is typically determined visually by the physician, and there's no guarantee that the device will fully pass through every location on the treatment surface. This can also result in repeated, over-the-counter treatments at the same location, leading to poor treatment results or damage to the surface. Utility Model Content
[0003] The main purpose of the utility model is to propose a treatment system, which aims to record the position information of the treatment device on the treatment surface so that the treatment device can treat every position of the treatment surface, avoid repeated excessive treatment of the same position, and thus improve the treatment effect.
[0004] To achieve the above objectives, the present invention provides a treatment system, which includes:
[0005] A therapeutic apparatus, comprising a control device and a therapeutic handle, wherein the therapeutic handle is provided with a therapeutic component and a sensing component, wherein both the therapeutic component and the sensing component are electrically connected to the control device; and
[0006] A luminescent film, the luminescent film having a plurality of luminescent regions that can emit light in a time sequence and electrically connected to the control device, the luminescent film being adapted to fit the treatment surface;
[0007] The treatment handle is used to attach its treatment end to the side of the luminous film away from the treatment surface, the control device is used to control the multiple luminous areas to emit light in sequence, and the sensing component is used to receive the light emitted by the luminous area and be triggered.
[0008] In one embodiment, the light-emitting film includes a flexible substrate, a light-emitting layer, and a packaging layer that are sequentially stacked and connected. The flexible substrate is electrically connected to the control device, and the flexible substrate is used to adhere to the treatment surface.
[0009] In one embodiment, the light-emitting layer includes a plurality of light-emitting units, and the plurality of light-emitting units are arranged in an array on the flexible substrate, and each of the light-emitting units is electrically connected to the control device.
[0010] In one embodiment, the treatment handle includes a shell, which encloses a mounting cavity and an output port connected to the mounting cavity. The treatment component includes an ultrasonic transducer and an ultrasonic controller arranged in the mounting cavity. The output end of the ultrasonic transducer is arranged corresponding to the output port. The ultrasonic transducer is electrically connected to the ultrasonic controller, and the ultrasonic controller is electrically connected to the control device.
[0011] In one embodiment, the sensing component includes a light guide column, a photosensitive diode and a signal identifier arranged in the mounting cavity, the light guide column is connected to the output end of the ultrasonic transducer and encloses a detection channel to form a detection channel, the photosensitive diode is arranged in the detection channel, and the signal identifier is electrically connected to the photosensitive diode and the control device.
[0012] In one embodiment, the control device includes a main control unit and a light-emitting controller, wherein the light-emitting controller is electrically connected to each of the light-emitting units and the main control unit, and the main control unit is electrically connected to the sensing component and the treatment component.
[0013] In one embodiment, the main control unit is provided with a signal processing circuit, and the light-emitting controller is provided with a timing module. The timing module and the signal identifier are both connected to the input end of the signal processing circuit. The signal processing circuit is used to receive the trigger signal of the signal identifier and receive the time information of the timing module according to the trigger signal to obtain the position information of the light-emitting unit that triggers the sensing component.
[0014] In one embodiment, the ultrasonic controller is provided with a control switch circuit, the output end of the control switch circuit is electrically connected to the input end of the ultrasonic transducer, the control switch circuit is used to control the operation or stop of the ultrasonic transducer, the output end of the signal processing circuit is electrically connected to the input end of the control switch circuit, the signal processing circuit is used to receive the trigger signal of the signal identifier and send a run signal or a stop signal to the ultrasonic controller to control the operation or stop of the ultrasonic transducer.
[0015] In one embodiment, the control device further includes a display, which is electrically connected to the main control unit, and is used to display that the light-emitting unit of the therapeutic apparatus has been triggered.
[0016] In one embodiment, the light-emitting film is a flexible OLED film;
[0017] And / or, the time required for the light-emitting film to complete one light emission is no more than 1 ms.
[0018] The technical solution of the present invention includes a therapeutic device and a luminous film. During treatment, the luminous film is attached to the treatment surface to be treated. The luminous film is provided with multiple luminous areas. The treatment end of the therapeutic device is attached to the surface of the luminous film and slides along the surface of the luminous film for treatment. At this time, the control device controls the multiple luminous areas on the luminous film to emit light in sequence until the luminous area corresponding to the therapeutic device emits light and triggers the sensing component in the treatment handle. Then, the sensing component sends a trigger signal to the control device, and the control device obtains the position of the luminous area corresponding to the treatment handle at this time. The control device is preset with a position information corresponding to each luminous area. When a certain luminous area triggers the sensing component, the control device records the position information corresponding to the luminous area and indirectly obtains the position information of the therapeutic device at this time. The control device can judge the treatment trajectory of the therapeutic device based on the continuous position information of the therapeutic device, so that the therapeutic device can complete a treatment for all treatment positions of the treatment surface, avoid repeated treatment of the same position of the treatment surface and cause damage, and improve the treatment effect on the treatment surface. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.
[0020] Figure 1 A schematic diagram of a treatment system in one embodiment of the present invention is provided;
[0021] Figure 2 The present invention provides a structural schematic diagram of a control device, a sensing component and a light-emitting film in an embodiment.
[0022] Description of Figure Numbers:
[0023] 100. Treatment system; 1. Control device; 11. Main control unit; 12. Light-emitting controller; 13. Display; 2. Treatment component; 21. Ultrasonic controller; 22. Ultrasonic transducer; 3. Sensing component; 31. Light guide column; 32. Photosensitive diode; 33. Signal identifier; 4. Light-emitting film; 41. Light-emitting unit.
[0024] The realization of the purpose, functional features and advantages of the present invention will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION
[0025] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention.
[0026] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back, etc.), such directional indications are only used to explain the relative position relationship, movement status, etc. between the various components in a certain specific posture. If the specific posture changes, the directional indication will also change accordingly.
[0027] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features limited to "first" and "second" may explicitly or implicitly include at least one of such features. In addition, if "and / or" or "and / or" appears in the full text, its meaning includes three parallel schemes. Taking "A and / or B" as an example, it includes scheme A, or scheme B, or a scheme in which A and B are satisfied at the same time. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of ordinary technicians in this field to implement. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.
[0028] The present invention provides a treatment system 100, such as Figure 1 and Figure 2 As shown, the treatment system 100 includes a treatment device and a light-emitting film 4. The treatment device includes a control device 1 and a treatment handle. The treatment handle is provided with a treatment component 2 and a sensing component 3. The treatment component 2 and the sensing component 3 are both electrically connected to the control device 1. The light-emitting film 4 is provided with a plurality of light-emitting areas that can emit light in a time sequence and is electrically connected to the control device 1. The light-emitting film 4 is used to fit the treatment surface. The treatment handle is used to fit its treatment end to the side of the light-emitting film away from the treatment surface. The control device 1 is used to control the plurality of light-emitting areas to emit light in sequence. The sensing component 3 is used to receive light emitted by the light-emitting area and be triggered.
[0029] When the therapeutic device is performing treatment, the control device 1 controls multiple luminous areas of the luminous film 4 to emit light in sequence. The sensing component 3 is triggered by a luminous area at any time and sends a signal to the control device 1. The control device 1 controls the operation of the therapeutic component 2 according to the position of the luminous area that triggers the sensing component 3.
[0030] In this embodiment, during treatment, a luminous film 4 is applied to the treatment surface to be treated. The luminous film 4 has multiple luminous regions. The treatment end of the therapeutic device is applied to the surface of the luminous film 4 and slides along the surface of the luminous film 4 for treatment. At this point, the control device 1 controls the multiple luminous regions on the luminous film 4 to illuminate sequentially until the luminous region corresponding to the therapeutic device illuminates and triggers the sensor component 3 in the treatment handle. The sensor component 3 then sends a trigger signal to the control device 1. After receiving the signal, the control device 1 obtains the position of the luminous region corresponding to the treatment handle at that time. The control device 1 presets position information for each luminous region. When a luminous region triggers the sensor component 3, the control device 1 records the position information corresponding to the luminous region, indirectly obtaining the position information of the therapeutic device at that time. The control device 1 can determine the therapeutic device's treatment trajectory based on the continuous position information of the therapeutic device, so that the therapeutic device can complete treatment for all treatment regions of the treatment surface, avoiding repeated treatment of the same area of the treatment surface and causing damage, thereby improving the treatment effect on the treatment surface.
[0031] It can be understood that the method for the control device 1 to obtain the position of the light-emitting area that triggers the sensing component 3 can be: the position of the light-emitting area on the light-emitting film 4 corresponds to the light-emitting order of the light-emitting area on the light-emitting film 4, and the control device 1 can determine the position of the light-emitting area by the light-emitting order of the light-emitting area, and the light-emitting order of the light-emitting area can be calibrated by the time when the light-emitting film 4 starts to emit light. Specifically, the light-emitting time of each light-emitting area is certain, and the control device 1 can obtain the light-emitting order of the light-emitting area by the difference between the time when any light-emitting area starts to emit light and the time when the first light-emitting area on the light-emitting film 4 starts to emit light. When a light-emitting area triggers the sensing component 3, the control device 1 determines the position information of the light-emitting area by the light-emitting order of the light-emitting area, and records the position information of the light-emitting area, wherein the light-emitting time of multiple light-emitting areas can be set to be the same, which is not specifically limited here.
[0032] In actual implementation, the types of therapeutic devices include, but are not limited to, laser therapeutic devices, radiofrequency therapeutic devices, and cryotherapy devices, and the control device 1 can be a treatment host. The therapeutic device is preferably an ultrasonic therapeutic device, as ultrasonic energy is transmitted in the form of mechanical waves and is almost unimpeded by the luminescent film.
[0033] In one embodiment of the present invention, Figure 1 and Figure 2 As shown, the luminescent film 4 includes a flexible substrate, a luminescent layer and a packaging layer stacked in sequence. The flexible substrate is electrically connected to the control device 1. The luminescent layer has multiple luminescent areas. The flexible substrate is used to fit the treatment surface.
[0034] In this embodiment, the flexible substrate has a certain degree of deformability, allowing the light-emitting film 4 to conform more closely to the treatment surface, preventing a large gap between the light-emitting film 4 and the treatment surface, which could reduce the therapeutic effect of the therapeutic device. The light-emitting layer is electrically connected to the control device 1 via the flexible substrate. The encapsulation layer protects the light-emitting layer and the flexible substrate, while also increasing the strength of the light-emitting film 4 and reducing the risk of damage.
[0035] In actual implementation, the light-emitting area of the light-emitting layer can be divided by the control device 1 to adapt to therapeutic devices with different single-point treatment areas. The flexible substrate can be polyimide, etc., to ensure the deformation ability of the light-emitting film 4, which is not specifically limited here.
[0036] In one embodiment of the present invention, Figure 1 and Figure 2 As shown, the light-emitting layer includes a plurality of light-emitting units 41 , which are arranged in an array on the flexible substrate, and each light-emitting unit 41 is electrically connected to the control device 1 .
[0037] In this embodiment, a plurality of light-emitting units 41 are arranged in an array on a flexible substrate, and the spacing between adjacent light-emitting units 41 can be set according to the area of a single-point treatment of the therapeutic device to avoid the area of a single light-emitting area not matching the single-point treatment area. If the area of a single light-emitting area is smaller than the single-point treatment area, the therapeutic device will cause overlapping treatment areas of the treatment surface, causing the therapeutic device to repeatedly treat the overlapping parts of the treatment area, thereby damaging the treatment surface. If the area of a single light-emitting area is larger than the single-point treatment area, gaps will form between the treatment areas of the treatment surface of the therapeutic device, reducing the therapeutic effect of the therapeutic device.
[0038] In actual implementation, each light-emitting unit 41 can form a light-emitting area, and two or more adjacent light-emitting units 41 can form a light-emitting area. The control device 1 changes the size of the light-emitting area by controlling the number of light-emitting units 41 that emit light at the same time, thereby adapting to different types of therapeutic devices.
[0039] A plurality of light-emitting units 41 are arranged in an array in the light-emitting film 4 based on the coordinate plane, and are distributed in sequence in the X-axis direction and the Y-axis direction. Each light-emitting unit 41 forms a light-emitting area. When the light-emitting areas on the light-emitting film 4 emit light in sequence, the control device 1 controls the light-emitting units 41 to light up in sequence once along the X-axis direction. After the plurality of light-emitting units 41 at the same Y-axis coordinate are lit up, the control device 1 controls the plurality of light-emitting units 41 at the next Y-axis coordinate to light up in sequence along the X-axis direction until all the light-emitting units 41 are lit up once.
[0040] In one embodiment of the present invention, Figure 1 and Figure 2As shown, the treatment handle includes a shell, which encloses a mounting cavity and an output port connected to the mounting cavity. The treatment component 2 includes an ultrasonic transducer 22 and an ultrasonic controller 21 arranged in the mounting cavity. The output end of the ultrasonic transducer 22 is arranged corresponding to the output port. The ultrasonic transducer 22 is electrically connected to the ultrasonic controller 21, and the ultrasonic controller 21 is electrically connected to the control device 1.
[0041] In this embodiment, the control device 1 is electrically connected to the ultrasonic transducer 22 via the ultrasonic controller 21. The control device 1 controls the ultrasonic transducer 22 to start or stop operation via the ultrasonic controller 21. The housing encloses a mounting cavity and an output port connected to the mounting cavity. The ultrasonic controller 21 and ultrasonic transducer 22 are disposed within the mounting cavity. The housing protects the ultrasonic controller 21 and ultrasonic transducer 22 from damage. During treatment, the outer wall of the housing's output port abuts the luminous film 4, and the ultrasonic transducer 22 transmits ultrasonic waves toward the treatment surface. Through the mechanical vibration and thermal efficiency of the ultrasonic waves, the treatment surface is deeply stimulated and treated.
[0042] As will be understood, the ultrasonic transducer 22 is a device that converts electromagnetic energy into acoustic energy. The ultrasonic transducer may include a piezoelectric ceramic and a backing layer. By applying a high-frequency alternating voltage to the piezoelectric ceramic, the piezoelectric ceramic can generate high-frequency vibrations through the reverse piezoelectric effect (conversion of electrical energy into mechanical energy). When the vibration frequency is greater than 20 kHz, ultrasonic vibrations are generated. The treatment handle is provided with a liquid reservoir structure, which is filled with a sound-conducting medium. A sound-transmitting opening is provided at one end of the liquid reservoir structure. The ultrasonic transducer 22 is mounted within the liquid reservoir structure, and the ultrasonic energy generated by the ultrasonic transducer 22 is suitable for emission through the sound-transmitting opening. As will be understood, the ultrasonic transducer 22 located in the liquid reservoir structure generates ultrasonic waves, which are transmitted through the sound-conducting medium as an intermediate medium and ultimately reach the outside of the treatment handle through the sound-transmitting opening, thereby allowing the therapeutic device to transmit ultrasonic waves to the outside world to achieve a therapeutic effect.
[0043] In one embodiment of the present invention, Figure 1 and Figure 2 As shown, the sensing component 3 includes a light guide column 31, a photosensitive diode 32 and a signal identifier 33 arranged in the installation cavity. The light guide column 31 is connected to the output end of the ultrasonic transducer 22 and encloses a detection channel to form a detection channel. The photosensitive diode 32 is arranged in the detection channel. The signal identifier 33 is electrically connected to the photosensitive diode 32 and the control device 1.
[0044] In this embodiment, a light guide 31 is connected to the output end of the ultrasonic transducer 22 and forms a detection channel. The detection channel can extend in the same direction as the output of the ultrasonic transducer 22. A photodiode 32 is connected to the light guide 31 and located within the detection channel of the light guide 31. The arrangement of the light guide 31 can block light emitted from other light-emitting areas, thereby preventing the photodiode 32 from being falsely triggered. The photodiode 32 is positioned perpendicular to the inner wall of the detection channel to ensure the accuracy of the light signal detected by the photodiode 32.
[0045] It can be understood that the position of the photodiode 32 is set corresponding to the position of the ultrasonic transducer 22. When the therapeutic device performs treatment, the photodiode 32 is triggered by a luminous area at any time, and the signal identifier 33 sends a signal to the control device 1. The control device 1 determines the position of the ultrasonic transducer 22 based on the position of the luminous area that triggers the photodiode 32.
[0046] During treatment, the control device 1 controls the light-emitting areas on the light-emitting film 4 to light up in sequence until the light-emitting area aligned with the output end of the ultrasonic transducer 22 lights up. The photodiode 32 located in the detection channel detects the light signal, and the signal identifier 33 recognizes the light signal and sends a trigger signal to the control device 1. The control device 1 determines the position of the light-emitting area corresponding to the ultrasonic transducer 22 on the light-emitting film 4 and records the position information to avoid excessive treatment of the same area.
[0047] In actual implementation, the output end of the ultrasonic transducer 22 is set corresponding to the output port of the shell, and the light guide column 31 can be partially passed through the output port of the shell to ensure the stability of the installation of the light guide column 31. The end face of the light guide column 31 and the outer wall of the output port are both in contact with the light-emitting film 4, further avoiding the photosensitive diode 32 from being mistakenly triggered when other light-emitting areas are emitting light. No specific limitation is made here.
[0048] In one embodiment of the present invention, Figure 1 and Figure 2 As shown, the control device 1 includes a main control unit 11 and a light controller 12 . The light controller 12 is electrically connected to each light unit 41 and the main control unit 11 , and the main control unit 11 is electrically connected to the sensing component 3 and the treatment component 2 .
[0049] It can be understood that the main control unit 11 controls multiple light-emitting units 41 to emit light in sequence through the light-emitting controller 12. The sensing component 3 is triggered by a light-emitting unit 41 at any time, and the main control unit 11 obtains the position of the light-emitting unit 41 that triggers the sensing component 3 through the light-emitting controller 12.
[0050] When the sensing component 3 sends a trigger signal to the main control unit 11 , the main control unit 11 receives and records the position information of the corresponding light-emitting area through the light-emitting controller 12 to avoid over-treatment of the same area.
[0051] Optionally, the control device 1 further includes a display 13 , which is electrically connected to the main control unit 11 , and is used to display the light-emitting unit 41 of the therapeutic apparatus that has been triggered.
[0052] In this embodiment, a corresponding matrix graphic can be displayed on the display 13 corresponding to the luminous area of the luminous film 4. When a luminous area of the luminous film 4 triggers the sensing component 3, the main control unit 11 records the position information of the luminous area. Accordingly, the matrix graphic corresponding to the luminous area is marked and displayed on the display 13. In this way, the doctor can obtain the treatment trajectory of the treatment device and move the treatment handle according to the corresponding unmarked matrix graphic to treat different treatment areas of the treatment surface.
[0053] In actual implementation, the doctor can pre-select the number and range of luminous areas on the display 13 to set the area requiring treatment to meet different treatment needs. The luminous film 2 can be an OLED film, and the luminous controller can be an OLED matrix controller. No specific limitations are given here.
[0054] In one embodiment of the present invention, Figure 1 and Figure 2 As shown, the main control unit 11 is provided with a signal processing circuit, and the light-emitting controller 12 is provided with a timing module. The timing module and the signal identifier 33 are both connected to the input end of the signal processing circuit. The signal processing circuit is used to receive the trigger signal of the signal identifier 33 and receive the time information of the timing module according to the trigger signal to obtain the position information of the light-emitting unit 41 of the trigger sensing component 3.
[0055] In this embodiment, the light-emitting controller 12 can obtain the time information of each light-emitting unit 41 through the timing module, and the main control unit 11 can obtain real-time information through the timing module. When the signal processing circuit obtains the trigger signal of the signal identifier 33, it can actively obtain the time information of the timing module at this time, so as to further determine the order of the light-emitting units 41 of the trigger sensing component 3, and then obtain the position information of the light-emitting unit 41 on the entire light-emitting film 4, so that the control device 1 can determine the treatment position of the treatment component 2 at this time.
[0056] In one embodiment of the present invention, Figure 1 and Figure 2As shown, the ultrasonic controller 21 is provided with a control switch circuit, the output end of the control switch circuit is electrically connected to the input end of the ultrasonic transducer 22, and the control switch circuit is used to control the operation or stop of the ultrasonic transducer 22. The output end of the signal processing circuit is electrically connected to the input end of the control switch circuit, and the signal processing circuit is used to receive the trigger signal of the signal identifier 33 and send a run signal or a stop signal to the ultrasonic controller 21 to control the operation or stop of the ultrasonic transducer 22.
[0057] In this embodiment, after the main control unit 11 obtains the treatment position of the treatment component 2, it can send a start or stop signal to the ultrasonic controller 21 based on the number of triggers or the total trigger time of the light-emitting unit 41 corresponding to this position. The threshold of the number of triggers or the total trigger time can be set according to the treatment needs. When the main control unit 11 obtains that the number of triggers or the total trigger time of the light-emitting unit 41 corresponding to this treatment position does not exceed the threshold, the signal processing circuit sends a start signal to the ultrasonic controller 21, and the ultrasonic controller 21 controls the ultrasonic transducer 22 to continue operating. When the main control unit 11 obtains that the number of triggers or the total trigger time of the light-emitting unit 41 corresponding to this treatment position exceeds the threshold, the signal processing circuit sends a stop signal to the ultrasonic controller 21, and the ultrasonic controller 21 controls the ultrasonic transducer 22 to stop operating to avoid repeated excessive treatment of the same treatment area.
[0058] In one embodiment of the present invention, Figure 1 and Figure 2 As shown, the light-emitting film 4 is a flexible OLED film, allowing it to better conform to the treatment surface. The light-emitting film 4 can be formed into different shapes according to different conformation locations. Optionally, the light-emitting film 4 takes no longer than 1ms to complete a single light emission cycle. That is, the entire cycle in which all light-emitting units sequentially emit light once takes no longer than 1ms. This improves the efficiency of detecting the therapeutic device's position information, reduces the impact of the treatment handle's movement on detection accuracy, and minimizes damage to the human eye caused by the light-emitting film 4.
[0059] In one embodiment of the present invention, the light-emitting film 4 is provided with a light-emitting surface and an abutting surface which are opposite to each other. The abutting surface is used to abut against the treatment surface. The light-emitting surface and / or the abutting surface are coated with a coupling agent.
[0060] In this embodiment, a coupling agent is applied to the luminous surface of the luminous film 4 that abuts the therapeutic device, and a coupling agent is also applied to the abutting surface of the luminous film 4 that abuts the treatment surface. The coupling agent sterilizes the treatment surface and also acts as a lubricant, facilitating the sliding of the therapeutic device over the luminous surface. Furthermore, the coupling agent conducts sound, thereby enhancing the therapeutic effect of the ultrasonic therapeutic device on the treatment surface.
[0061] The above description is merely an exemplary embodiment of the present invention and does not limit the patent scope of the present invention. All equivalent structural transformations made using the contents of the present invention specification and drawings under the technical concept of the present invention, or direct / indirect application in other related technical fields are included in the patent protection scope of the present invention.
Claims
1. A treatment system, characterized in that The treatment system comprises: A therapeutic apparatus, comprising a control device and a therapeutic handle, wherein the therapeutic handle is provided with a therapeutic component and a sensing component, wherein both the therapeutic component and the sensing component are electrically connected to the control device; and A luminescent film, the luminescent film having a plurality of luminescent regions that can emit light in a time sequence and electrically connected to the control device, the luminescent film being adapted to fit the treatment surface; The treatment handle is used to attach its treatment end to the side of the luminous film away from the treatment surface, the control device is used to control the multiple luminous areas to emit light in sequence, and the sensing component is used to receive the light emitted by the luminous area and be triggered.
2. The treatment system according to claim 1, wherein The light-emitting film includes a flexible substrate, a light-emitting layer and a packaging layer which are sequentially stacked and connected. The flexible substrate is electrically connected to the control device and is used to adhere to the treatment surface.
3. The treatment system according to claim 2, wherein The light-emitting layer includes a plurality of light-emitting units, which are arranged in an array on the flexible substrate, and each of the light-emitting units is electrically connected to the control device.
4. The treatment system according to claim 3, wherein The treatment handle includes a shell, which encloses an installation cavity and an output port connected to the installation cavity. The treatment component includes an ultrasonic transducer and an ultrasonic controller arranged in the installation cavity. The output end of the ultrasonic transducer is arranged corresponding to the output port. The ultrasonic transducer is electrically connected to the ultrasonic controller, and the ultrasonic controller is electrically connected to the control device.
5. The treatment system according to claim 4, characterized in that The sensing component includes a light guide column, a photosensitive diode and a signal identifier arranged in the installation cavity. The light guide column is connected to the output end of the ultrasonic transducer and encloses a detection channel. The photosensitive diode is arranged in the detection channel. The signal identifier is electrically connected to the photosensitive diode and the control device.
6. The treatment system according to claim 5, characterized in that The control device includes a main control unit and a light-emitting controller. The light-emitting controller is electrically connected to each of the light-emitting units and the main control unit respectively. The main control unit is electrically connected to the sensing component and the treatment component.
7. The treatment system according to claim 6, characterized in that The main control unit is provided with a signal processing circuit, and the light-emitting controller is provided with a timing module. The timing module and the signal identifier are both connected to the input end of the signal processing circuit. The signal processing circuit is used to receive the trigger signal of the signal identifier and receive the time information of the timing module according to the trigger signal to obtain the position information of the light-emitting unit that triggers the sensing component.
8. The treatment system according to claim 7, wherein The ultrasonic controller is provided with a control switch circuit, the output end of the control switch circuit is electrically connected to the input end of the ultrasonic transducer, and the control switch circuit is used to control the operation or stop of the ultrasonic transducer. The output end of the signal processing circuit is electrically connected to the input end of the control switch circuit, and the signal processing circuit is used to receive the trigger signal of the signal identifier and send a run signal or a stop signal to the ultrasonic controller to control the operation or stop of the ultrasonic transducer.
9. The treatment system according to claim 7, wherein The control device further includes a display, which is electrically connected to the main control unit and is used to display the light-emitting unit of the therapeutic apparatus that has been triggered.
10. The treatment system according to any one of claims 1 to 9, characterized in that The light-emitting film is a flexible OLED film; And / or, the time required for the light-emitting film to complete one light emission is no more than 1 ms.