Long-distance adjusting type intermediate frequency therapeutic apparatus
By introducing remote control technology and a variety of driving components into the intermediate frequency therapy instrument, the long-distance precise adjustment of the treatment instrument parameters is achieved, the complex and inconvenient problems of traditional operation methods are solved, and the user experience and treatment effect are improved.
Patent Information
- Application Number
- CN202421313469.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-11
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-06-11
AI Technical Summary
When adjusting current frequency and intensity parameters, existing intermediate frequency therapy instruments require users to manually press the physical buttons, which leads to difficulty in operation. Especially for patients with limited mobility, it affects the treatment experience and treatment effect.
A long-distance adjustable intermediate frequency therapy instrument is designed, and the remote pressing operation of the adjustment button on the treatment instrument is realized by introducing a horizontal drive assembly, a rotating assembly and a vertical pressing assembly, combined with the control assembly.
It realizes accurate long-distance adjustment of the parameters of the intermediate frequency therapy instrument, improves user convenience and comfort, reduces operation complexity and time, and enhances treatment effect and user experience.
Smart Images

Figure CN223009642U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical devices, in particular to a remotely adjustable medium-frequency therapeutic apparatus. Background Art
[0002] A medium-frequency therapeutic apparatus, fully known as "low-frequency modulated medium-frequency therapeutic apparatus", is an instrument that uses medium-frequency current modulated by low-frequency current to treat diseases. The characteristic of this current is that its amplitude and frequency change with the amplitude and frequency of the low-frequency current. In the past 20-odd years, the low- and medium-frequency therapeutic apparatus widely used in China is based on the original low-frequency therapeutic apparatus (electro-acupuncture apparatus), and appropriately introduces some medium-frequency components. The medium-frequency therapeutic apparatus uses modulated medium-frequency current, which contains 1-150 Hz low-frequency current and 2-8 KHz medium-frequency current. Due to the large dynamic change of the current, the modulated medium-frequency current has the characteristics and therapeutic effects of both low-frequency current and medium-frequency current.
[0003] When adjusting parameters such as current frequency and intensity of the existing medium-frequency therapeutic apparatus, it mainly relies on the way of manually pressing physical buttons. However, this traditional operation method brings some significant inconveniences. Since users must directly press the physical buttons on the device, they must be near the device, which undoubtedly increases the operation difficulty. Especially for patients with inconvenient mobility or those who need long-term treatment, this limitation not only affects their use experience, but may also cause unnecessary troubles to their treatment process. Content of the Utility Model
[0004] (I) Technical Problems to be Solved
[0005] The purpose of the utility model is to propose a remotely adjustable medium-frequency therapeutic apparatus by introducing remote control technology, allowing users to operate and control the therapeutic apparatus through mobile devices, touch screens or other remote devices, so as to remotely adjust parameters such as current frequency and intensity.
[0006] (II) Technical Solutions
[0007] The technical solutions of the utility model for solving the above technical problems are as follows:
[0008] A remotely adjustable medium-frequency therapeutic apparatus includes a therapeutic apparatus body, and adjustment buttons are arranged on the therapeutic apparatus body.
[0009] A support is arranged on the therapeutic apparatus body, and a transverse driving component is arranged on the support.
[0010] A base is arranged on the moving end of the transverse driving component, and it can be transversely displaced under the drive of the transverse driving component. A rotating component is arranged on the base.
[0011] The connecting arm is arranged on the mobile end of the rotating component and can axially rotate and displace under the drive of the rotating component;
[0012] The vertical pressing component is arranged at the end of the connecting arm and is directly above the adjusting button;
[0013] The control component is arranged on the support and is electrically connected to the lateral driving component, the rotating component and the vertical pressing component. The control component is used to control the lateral driving component, the rotating component and the vertical pressing component to press the adjusting button according to the current needs of the user.
[0014] On the basis of the above technical solutions, the present utility model can also be improved as follows.
[0015] Furthermore, the support is composed of a vertical support base and a horizontal support base. One end of the vertical support base is connected to the treatment instrument body through a fastener, and the vertical support base and the treatment instrument body are arranged perpendicular to each other. The horizontal support base is fixedly installed on the surface of the vertical support base, and the horizontal support base and the treatment instrument body are arranged parallel to each other.
[0016] Furthermore, the lateral driving component includes:
[0017] The driving motor is fixedly installed on one side surface of the horizontal support base, and its output end penetrates and extends to the other side surface;
[0018] The driving wheel is fixedly installed on the output end of the driving motor and can axially rotate under the drive of the driving motor;
[0019] The driven wheel is rotatably arranged on the other side surface of the horizontal support base; and
[0020] The synchronous belt is arranged outside the driving wheel and the driven wheel.
[0021] Furthermore, a connecting buckle seat is fixedly installed on one side surface of the base close to the synchronous belt, and the connecting buckle seat and the synchronous belt are fixedly connected to each other. A slide rail is fixedly installed on one side surface of the horizontal support base close to the synchronous belt, and the slide rail and the synchronous belt are arranged parallel to each other. A sliding part adapted to the slide rail is fixedly installed on one side surface of the base close to the slide rail, and the sliding part is slidably connected to the outside of the slide rail.
[0022] Furthermore, the vertical pressing component includes:
[0023] The small electric push rod is fixedly installed on the other end of the connecting arm;
[0024] The mounting plate is fixedly installed on the output end of the small electric push rod and vertically displaces under the drive of the small electric push rod; and
[0025] The push rod is fixedly installed on the other surface of the mounting plate. A groove is machined at the other end of the push rod, and an infrared sensor is fixedly installed in the groove.
[0026] Furthermore, a guiding seat is fixedly installed at one end of the connecting arm away from the rotating assembly. A guiding rod is fixedly installed at one end of the mounting plate away from the push rod. A sliding hole is machined in the guiding seat, and the guiding rod is located inside the sliding hole.
[0027] Furthermore, the control assembly includes:
[0028] A controller, which is fixedly installed on the vertical support seat and is electrically connected to the lateral driving assembly, the rotating assembly, and the vertical pressing assembly;
[0029] A remote controller, which is placed on the therapeutic apparatus body and is connected to the controller for wireless signal transmission.
[0030] (III) Advantageous Effects
[0031] Compared with the prior art, the technical solution of the present application has the following advantageous technical effects:
[0032] Aiming at the problem of limited operation distance of traditional devices, the long-distance adjustable intermediate frequency therapeutic apparatus realizes the remote pressing operation of the adjustment buttons on the therapeutic apparatus through the ingenious combination of the lateral driving assembly, the rotating assembly, and the vertical pressing assembly. This innovative design enables users to easily adjust the treatment parameters even if they have limited mobility or need to receive treatment for a long time, greatly improving the convenience and comfort of use. At the same time, the device intelligently controls the linkage of each component through the control assembly, simplifies the operation process, reduces cumbersome manual steps, thereby improving the accuracy and efficiency of operation. In addition, the remote control function allows users to operate in a comfortable position without having to maintain a fixed posture for a long time, significantly enhancing the user experience. More importantly, users can adjust the treatment parameters in real time according to their own reactions and treatment effects to ensure the best treatment effect and improve patient satisfaction. This device is not only suitable for personal home use but also for places such as medical institutions and rehabilitation centers. Through remote control, medical staff can conveniently remotely monitor and adjust the treatment parameters of patients, expanding the application scenarios of the therapeutic apparatus and bringing greater convenience and efficiency to the medical field. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 It is a schematic connection structure diagram of the whole of the present utility model;
[0034] Figure 2 It is a schematic connection structure diagram of the support and the lateral driving assembly of the present utility model;
[0035] Figure 3Schematic diagram of the connection structure of the rotating component and the connecting arm of the present utility model;
[0036] Figure 4 Schematic diagram of the connection structure of the pressing rod and the infrared sensor of the present utility model.
[0037] In the figure: 1, therapeutic instrument body; 2, adjustment button; 3, support; 4, lateral driving component; 41, driving motor; 42, driving wheel; 43, driven wheel; 44, synchronous belt; 5, base; 6, rotating component; 7, connecting arm; 8, vertical pressing component; 81, small electric push rod; 82, mounting plate; 83, pressing rod; 84, infrared sensor; 9, control component; 91, controller; 92, remote control. Specific embodiments
[0038] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0039] Combined with Figures 1-4 As shown, a long-distance adjustable intermediate frequency therapeutic instrument of the present utility model includes a therapeutic instrument body 1, and an adjustment button 2 is arranged on the therapeutic instrument body 1.
[0040] A support 3 is arranged on the therapeutic instrument body 1, and a lateral driving component 4 is arranged on the support 3;
[0041] A base 5 is arranged on the moving end of the lateral driving component 4, and it can be displaced laterally under the drive of the lateral driving component 4. A rotating component 6 is arranged on the base 5. The rotating component 6 is a reduction motor. A reduction motor is fixedly installed on the surface of the base 5, and a connecting arm 7 is fixedly installed at the output end of the reduction motor;
[0042] A connecting arm 7 is arranged on the moving end of the rotating component 6, and it can rotate axially and displace under the drive of the rotating component 6;
[0043] A vertical pressing component 8 is arranged at the end of the connecting arm 7, and it is located directly above the adjustment button 2;
[0044] A control component 9 is arranged on the support 3 and is electrically connected to the lateral driving component 4, the rotating component 6 and the vertical pressing component 8. The control component 9 is used to control the lateral driving component 4, the rotating component 6 and the vertical pressing component 8 to press the adjustment button 2 according to the current needs of the user.
[0045] The therapeutic instrument mainly consists of a therapeutic instrument body 1 and a series of adjusting mechanisms. Adjusting buttons 2 are provided on the therapeutic instrument body 1. These buttons are used to control various treatment parameters of the medium-frequency therapeutic instrument, such as current frequency, intensity, etc. In order to achieve remote adjustment of the adjusting buttons 2, the following key components are introduced in the therapeutic instrument: a support 3 and a lateral driving assembly 4. The support 3 is fixed on the therapeutic instrument body 1, providing a stable foundation. The lateral driving assembly 4 is installed on the support 3. It can generate a lateral driving force according to control instructions. A base 5 is arranged on the mobile end of the lateral driving assembly 4. Therefore, when the lateral driving assembly 4 operates, the base 5 will undergo a lateral displacement accordingly. A rotating assembly 6 is installed on the base 5 and can rotate according to control instructions, thereby adjusting the direction of the components connected thereto. A connecting arm 7 is connected to the mobile end of the rotating assembly 6. When the rotating assembly 6 rotates, the connecting arm 7 will undergo an axial rotational displacement. A vertical pressing assembly 8 is located at the end of the connecting arm 7 and directly above the adjusting button 2. This assembly can undergo a vertical displacement according to control instructions, simulating the action of a finger pressing the adjusting button 2. A control assembly 9 is installed on the support 3 and is electrically connected to the lateral driving assembly 4, the rotating assembly 6, and the vertical pressing assembly 8. The user inputs adjustment instructions through the control assembly 9. The control assembly 9 calculates corresponding driving parameters according to these instructions and then sends them to the lateral driving assembly 4, the rotating assembly 6, and the vertical pressing assembly 8 respectively, controlling them to work together to achieve precise pressing of the adjusting button 2. Through such a working principle, the user can adjust the treatment parameters in a remote control manner without directly contacting the adjusting buttons 2 on the therapeutic instrument body 1, greatly improving the convenience and comfort of use.
[0046] In a preferred embodiment of the present utility model, it can be further configured as follows: As Figures 1 to 4As shown in the figure; the support 3 is composed of a vertical support base and a horizontal support base. One end of the vertical support base is connected to the treatment instrument body 1 through fasteners. The vertical support base and the treatment instrument body 1 are perpendicular to each other. The horizontal support base is fixedly installed on the surface of the vertical support base. The horizontal support base and the treatment instrument body 1 are parallel to each other. The support 3 is composed of a vertical support base and a horizontal support base. These two parts together constitute a stable support structure for installing and supporting the subsequent adjustment mechanism. One end of the vertical support base is connected to the treatment instrument body 1 through fasteners such as screws and bolts to ensure that the support 3 can be firmly fixed on the treatment instrument. The vertical support base and the treatment instrument body 1 are perpendicular to each other. This perpendicular setting not only helps to provide stable support, but also enables the subsequent horizontal driving component 4 and the base 5 to move horizontally, facilitating the adjustment operation. The horizontal support base is fixedly installed on the surface of the vertical support base, usually using welding, screw fixation and other methods to ensure the firm connection between the two. The horizontal support base and the treatment instrument body 1 are parallel to each other. This parallel setting helps to maintain the stability of the entire adjustment mechanism and prevent tilting or shaking during the adjustment process. Through the support 3 designed in this way, not only a stable support foundation is provided for the subsequent adjustment mechanism, but also it is ensured that the adjustment mechanism can move and adjust precisely along the predetermined direction. When the user sends an instruction through the control component 9, after receiving the instruction, the horizontal driving component 4 will drive the base 5 to move horizontally on the horizontal support base, thereby realizing the remote adjustment of the adjustment button 2. During the whole process, the stability and parallelism settings of the support 3 play a crucial role.
[0047] In a preferred embodiment of the present utility model, it can be further configured as: as Figures 1 to 4 shown; the horizontal driving component 4 includes:
[0048] A driving motor 41, fixedly installed on one side surface of the horizontal support base, and its output end penetrates and extends to the other side surface;
[0049] A driving wheel 42, fixedly installed on the output end of the driving motor 41, and can rotate axially under the drive of the driving motor 41;
[0050] A driven wheel 43, rotatably arranged on the other side surface of the horizontal support base; and
[0051] The synchronous belt 44 is arranged on the outer sides of the driving wheel 42 and the driven wheel 43. The driving assembly 4 mainly consists of components such as the driving motor 41, the driving wheel 42, the driven wheel 43, and the synchronous belt 44. These components cooperate together to achieve the function of horizontally driving the base 5. The driving motor 41 is fixedly installed on one side surface of the horizontal support base and serves as the power source of the entire horizontal driving assembly 4. When the driving motor 41 receives an instruction from the control assembly 9, it will start to work and output rotational power. The output end of the driving motor 41 penetrates and extends to the other side surface of the horizontal support base to ensure that it can directly drive the driving wheel 42 to rotate. The driving wheel 42 is fixedly installed on the output end of the driving motor 41 and rotates coaxially with the output shaft of the driving motor 41. When the driving motor 41 works, the driving wheel 42 will rotate axially under its drive. The driven wheel 43 is rotatably arranged on the other side surface of the horizontal support base, located on both sides of the horizontal support base with the driving wheel 42, forming a certain distance. The driven wheel 43 can rotate freely, but under the action of the synchronous belt 44, its rotation speed is consistent with that of the driving wheel 42. The synchronous belt 44 is arranged on the outer sides of the driving wheel 42 and the driven wheel 43 and forms a tight meshing relationship with both of them respectively. When the driving wheel 42 rotates under the drive of the driving motor 41, the synchronous belt 44 will drive the driven wheel 43 to rotate synchronously. Therefore, when the synchronous belt 44 moves, it will drive the base 5 to move horizontally on the horizontal support base. Through such a design, the horizontal driving assembly 4 can achieve precise control of the base 5, enabling it to move horizontally in a predetermined direction and speed, which provides a more flexible and convenient operation method for users and makes it easier and more intuitive to adjust the treatment parameters.
[0052] In a preferred embodiment of the present utility model, it can be further configured as follows: As Figures 1 to 4As shown in the figure; on one side surface of the base 5 close to the synchronous belt 44, a connecting buckle seat is fixedly installed, and the connecting buckle seat is fixedly connected to the synchronous belt 44. On one side surface of the transverse support seat close to the synchronous belt 44, a slide rail is fixedly installed, and the slide rail is arranged parallel to the synchronous belt 44. On one side surface of the base 5 close to the slide rail, a sliding part adapted to the slide rail is fixedly installed, and the sliding part is slidably connected to the outside of the slide rail. The base 5 is the basic structure for installing the rotating assembly 6 and the connecting arm 7, and its movement stability and precision are crucial for the performance of the entire adjustment system. Therefore, the base 5 is connected to the transverse driving assembly 4 through a series of delicate mechanisms, realizing stable and precise transverse movement. On one side surface of the base 5 close to the synchronous belt 44, a connecting buckle seat is fixedly installed, and this connecting buckle seat plays a bridging role, tightly connecting the base 5 and the synchronous belt 44. The connecting buckle seat and the synchronous belt 44 are fixedly connected to each other through fixed connection methods such as screws and buckles, ensuring that the base 5 can move along with the movement of the synchronous belt 44. On one side surface of the transverse support seat close to the synchronous belt 44, a slide rail is fixedly installed, and the slide rail provides a stable guide and support for the transverse movement of the base 5. The slide rail is arranged parallel to the synchronous belt 44, ensuring that the base 5 maintains the same direction and speed as the synchronous belt 44 during the movement. On one side surface of the base 5 close to the slide rail, a sliding part adapted to the slide rail is fixedly installed. The sliding part is usually one or more structures such as rollers and sliders, which can slide smoothly on the slide rail. The sliding part is slidably connected to the outside of the slide rail, enabling the base 5 to perform transverse movement along the direction of the slide rail. This sliding connection not only ensures the stability of the base 5 but also reduces the friction and resistance during the movement. When the driving motor 41 works, the driving wheel 42 starts to rotate, driving the driven wheel 43 to rotate synchronously through the synchronous belt 44. Since the connecting buckle seat fixedly connects the base 5 and the synchronous belt 44, the base 5 will move along with the movement of the synchronous belt 44. At the same time, the sliding part on the base 5 moves smoothly horizontally along the slide rail under the guidance and support of the slide rail. This design ensures the stability and precision of the base 5 during the movement, providing an accurate movement basis for the subsequent rotating assembly 6 and connecting arm 7. Through this design, the base 5 can realize stable and precise transverse movement, providing a solid foundation for the adjustment function of the entire long-distance adjustable intermediate frequency therapeutic apparatus.
[0053] In a preferred embodiment of the present utility model, it can be further configured as: as Figures 1 to 4 shown; the vertical pressing component 8 includes:
[0054] A small electric push rod 81, fixedly installed on the other end of the connecting arm 7;
[0055] A mounting plate 82, fixedly installed on the output end of the small electric push rod 81, and it vertically displaces under the drive of the small electric push rod 81; and
[0056] The pressing rod 83 is fixedly installed on the other surface of the mounting plate 82. A groove is machined on the other end of the pressing rod 83, and an infrared sensor 84 is fixedly installed in the groove. The vertical pressing assembly 8 is a key part of the remote adjustable medium-frequency therapeutic apparatus, and is used to simulate the action of pressing the adjustment button 2 on the therapeutic apparatus body 1 with fingers. This assembly mainly consists of a small electric push rod 81, a mounting plate 82, a pressing rod 83 and an infrared sensor 84. The small electric push rod 81 is fixedly installed on the other end of the connecting arm 7 and serves as the power source of the vertical pressing assembly 8. When the control assembly 9 receives the pressing instruction issued by the user, it will send a corresponding control signal to the small electric push rod 81. After receiving the signal, the small electric push rod 81 will start to work according to the preset parameters and push its output end to perform vertical displacement. The mounting plate 82 is fixedly installed on the output end of the small electric push rod 81 and moves along with the vertical displacement of the small electric push rod 81. The mounting plate 82 serves as the fixed base of the pressing rod 83, ensuring the stability and accuracy of the pressing rod 83 during the pressing process. The pressing rod 83 is fixedly installed on the other surface of the mounting plate 82 and is used to directly simulate the action of pressing the adjustment button 2 with fingers. The length and shape of the pressing rod 83 are carefully designed to ensure that it can accurately press the adjustment button 2 on the therapeutic apparatus body 1. A groove is machined on the other end of the pressing rod 83. This groove not only provides an installation position for the infrared sensor 84, but also ensures that the sensor can accurately align with the adjustment button 2. The infrared sensor 84 is fixedly installed in the groove of the pressing rod 83 and is used to detect whether the pressing rod 83 successfully presses the adjustment button 2. When the pressing rod 83 moves downward and successfully presses the adjustment button 2, the infrared sensor 84 will receive the infrared signal reflected by the button and feedback this signal to the control assembly 9. The control assembly 9 judges whether the pressing action is successfully completed according to the feedback signal of the infrared sensor 84 and adjusts the subsequent action of the small electric push rod 81 accordingly. Through the above working principle, the vertical pressing assembly 8 can accurately simulate the action of pressing the adjustment button 2 with fingers and make real-time adjustment according to the feedback signal of the infrared sensor 84, ensuring the accuracy and reliability of the pressing action. This design greatly improves the usability and intelligent level of the remote adjustable medium-frequency therapeutic apparatus. The infrared sensor 84 is based on an integrated infrared emitter and infrared receiver, and it can both emit signals and receive signals.
[0057] In a preferred embodiment of the present utility model, it can be further configured as: As Figures 1 to 4As shown in the figure; a guide seat is fixedly installed at one end of the connecting arm 7 away from the rotating assembly 6, and a guide rod is fixedly installed at one end of the mounting plate 82 away from the pressing rod 83. A sliding hole is machined in the guide seat, and the guide rod is located inside the sliding hole. In the long-distance adjustable medium-frequency therapeutic apparatus, the connecting arm 7 serves as a connecting bridge between the rotating assembly 6 and the vertical pressing assembly 8. It not only has to bear the vertical pressure during pressing but also needs to maintain stability and accuracy during movement. Therefore, a guiding mechanism is added between the connecting arm 7 and the vertical pressing assembly 8 to ensure the stability and accuracy of both during movement. A guide seat is fixedly installed at one end of the connecting arm 7 away from the rotating assembly 6. The guide seat is a component with a specific structure, and a sliding hole is machined inside it for receiving and fixing the guide rod. The function of the guide seat is to provide a stable sliding track for the guide rod to ensure that the vertical pressing assembly 8 does not deviate from the predetermined path during movement. A guide rod is fixedly installed at one end of the mounting plate 82 in the vertical pressing assembly 8 away from the pressing rod 83. The guide rod is a slender and rigid component, and its diameter matches the sliding hole in the guide seat. The function of the guide rod is to slide along the sliding hole of the guide seat, thereby restricting the movement trajectory of the vertical pressing assembly 8 and preventing it from shifting or shaking during movement. When the lateral driving assembly 4 drives the base 5 to move laterally, the connecting arm 7 will also move accordingly. Since the guide rod is fixedly installed on the mounting plate 82, the vertical pressing assembly 8 will also move with the connecting arm 7. During movement, the guide rod will always be located inside the sliding hole of the guide seat and slide along the sliding hole. This design ensures the stability and accuracy of the vertical pressing assembly 8 during movement, preventing it from shifting or shaking. At the same time, the cooperation between the guide seat and the guide rod also plays a certain vibration damping role, which can reduce the influence of the vibration generated during movement on the vertical pressing assembly 8 and further improve its working accuracy and stability. By adding the guiding mechanism of the guide seat and the guide rod, the long-distance adjustable medium-frequency therapeutic apparatus can maintain higher stability and accuracy during adjustment, providing a more reliable and comfortable treatment experience for users.
[0058] In a preferred embodiment of the present invention, it can be further configured as: As Figures 1 to 4 shown; the control assembly 9 includes:
[0059] A controller 91, fixedly installed on the vertical support seat and electrically connected to the lateral driving assembly 4, the rotating assembly 6, and the vertical pressing assembly 8;
[0060] The remote controller 92 is placed on the therapeutic instrument body 1 and is connected to the controller 91 for wireless signal transmission. The control component 9, as the core control part of the entire long-distance adjustable medium-frequency therapeutic instrument, is responsible for receiving user instructions and controlling the operations of the lateral driving component 4, the rotating component 6, and the vertical pressing component 8. The control component 9 mainly consists of two parts: the controller 91 and the remote controller 92. The controller 91 is fixedly installed on the vertical support base and serves as the "brain" of the entire control system. It receives wireless signals from the remote controller 92 and controls the work of each component according to the signal content. The controller 91 is electrically connected to the lateral driving component 4, the rotating component 6, and the vertical pressing component 8, and drives these components to perform corresponding actions by sending electrical signals. A variety of control programs are preset inside the controller 91, which can be selected and adjusted according to different user needs. For example, the user can select and adjust parameters such as the parameters, position, or pressing times of the therapeutic instrument through the remote controller 92. The controller 91 will control the corresponding components to work according to these instructions. The remote controller 92 is placed on the therapeutic instrument body 1, facilitating the user to operate at any time and place. It transmits signals wirelessly with the controller 91 to achieve remote control. Multiple buttons or a touch screen are provided on the remote controller 92, and the user can input instructions through these buttons or the touch screen. For example, the user can select parameters such as the lateral movement distance, rotation angle, and pressing times and send these instructions to the controller 91. The remote controller 92 also has some auxiliary functions, such as displaying the current state of the therapeutic instrument and setting timing tasks, providing a more convenient and intelligent operation experience for the user. When the user needs to adjust the therapeutic instrument, first input corresponding instructions through the remote controller 92. The remote controller 92 sends these instructions to the controller 91 in the form of wireless signals. After receiving the instructions, the controller 91 will control the lateral driving component 4, the rotating component 6, and the vertical pressing component 8 to perform corresponding actions according to the instruction content. These actions can be the lateral movement of the base 5, the rotation of the connecting arm 7, or the pressing of the pressing rod 83, etc. Through this remote control method, the user can easily adjust and control the therapeutic instrument without directly contacting the therapeutic instrument body 1, greatly improving the convenience and safety of use.
[0061] The specific working principle of a long-distance adjustable medium-frequency therapeutic instrument of the present utility model is as follows:
[0062] This long-distance adjustable medium-frequency therapeutic instrument realizes remote and precise control of the adjustment buttons 2 on the therapeutic instrument body 1 by integrating multiple functional components. Its core components include the therapeutic instrument body 1, the support 3, the lateral driving component 4, the base 5, the rotating component 6, the connecting arm 7, the vertical pressing component 8, and the control component 9;
[0063] First, the treatment instrument body 1 is provided with adjustment buttons 2, which are used to adjust various parameters of the treatment instrument, such as intensity, frequency, etc. The support 3 serves as the support foundation of the entire adjustment system and is composed of a vertical support and a horizontal support, ensuring the stable installation of subsequent components. The vertical support is vertically connected to the treatment instrument body 1 through fasteners, while the horizontal support is parallelly installed on the vertical support, providing support for the lateral driving component 4. The driving motor 41 drives the synchronous belt 44 to move through the driving pulley 42, and then, with the assistance of the driven pulley 43, realizes the lateral movement of the synchronous belt 44. The base 5 is fixedly connected to the synchronous belt 44 through the connecting buckle seat, thereby realizing lateral displacement under the drive of the synchronous belt 44. At the same time, the sliding member on the base 5 slides along the slide rail on the horizontal support, ensuring the smoothness and accuracy of the movement of the base 5. The rotating component 6 is installed on the base 5, and through its drive, the connecting arm 7 can achieve axial rotational displacement. This rotational function enables the connecting arm 7 to point to any position on the treatment instrument body 1, providing accurate pointing for subsequent button pressing. The vertical pressing component 8 is the part that actually executes the button pressing. The small electric push rod 81 drives the mounting plate 82 to perform vertical displacement, thereby driving the pressing rod 83 to press the adjustment button 2 on the treatment instrument body 1. The infrared sensor 84 is used to detect whether the pressing rod 83 successfully presses the adjustment button 2 and feedbacks the signal to the control component 9. The control component 9 is the "brain" of the entire system. The controller 91 is electrically connected to the lateral driving component 4, the rotating component 6, and the vertical pressing component 8, responsible for receiving the wireless signal sent by the remote controller 92 and sending instructions to the corresponding components to execute operations according to the signal content. The user can conveniently send instructions through the remote controller 92 to control the lateral displacement, rotation angle, button pressing, etc. of the treatment instrument, thereby realizing the remote adjustment of the parameters of the treatment instrument. In addition, in order to ensure the stability and accuracy of the vertical pressing component 8 during movement, a guiding mechanism is realized between the connecting arm 7 and the mounting plate 82 through the guiding seat and the guiding rod. In summary, this remotely adjustable medium-frequency treatment instrument realizes the remote and precise adjustment of the parameters of the treatment instrument through an integrated design and intelligent control, improving the convenience and safety of use.
[0064] It should be noted that, in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising said element.
[0065] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A remote adjustable medium frequency therapeutic apparatus, comprising a therapeutic apparatus body (1), wherein the therapeutic apparatus body (1) is provided with an adjustment button (2), characterized in that: A support (3) is arranged on the therapeutic device body (1), wherein a lateral driving component (4) is arranged on the support (3); A base (5) is arranged on the movable end of the transverse driving component (4) and can be laterally displaced under the drive of the transverse driving component (4), wherein a rotating component (6) is arranged on the base (5); A connecting arm (7) is arranged on the moving end of the rotating assembly (6) and can be axially rotated and displaced under the driving of the rotating assembly (6); A vertical pressing assembly (8) is arranged at the end of the connecting arm (7) and is located directly above the adjusting button (2); A control component (9) is arranged on the support (3) and is electrically connected to the lateral drive component (4), the rotation component (6) and the vertical pressing component (8). The control component (9) is used to control the lateral drive component (4), the rotation component (6) and the vertical pressing component (8) to press the adjustment button (2) according to the current needs of the user.
2. A remote adjustable medium frequency therapeutic apparatus according to claim 1, characterized in that: The support (3) is composed of a vertical support seat and a transverse support seat, wherein one end of the vertical support seat is connected to the therapeutic device body (1) by a fastener, and the vertical support seat and the therapeutic device body (1) are arranged perpendicular to each other, and the transverse support seat is fixedly installed on the surface of the vertical support seat, and the transverse support seat and the therapeutic device body (1) are arranged parallel to each other.
3. A remote adjustable medium frequency therapeutic apparatus according to claim 2, characterized in that: The lateral driving assembly (4) comprises: A driving motor (41) is fixedly mounted on one side surface of the transverse support seat, and an output end thereof penetrates and extends to the other side surface; A driving wheel (42) is fixedly mounted on the output end of the driving motor (41) and can rotate axially when driven by the driving motor (41); A driven wheel (43) is rotatably disposed on the other side surface of the lateral support seat; and The synchronous belt (44) is arranged on the outer sides of the driving wheel (42) and the driven wheel (43).
4. A remote adjustable medium frequency therapeutic apparatus according to claim 3, characterized in that: A connecting buckle seat is fixedly installed on the surface of one side of the base (5) close to the synchronous belt (44), wherein the connecting buckle seat and the synchronous belt (44) are fixedly connected to each other; a slide rail is fixedly installed on the surface of one side of the transverse support seat close to the synchronous belt (44), the slide rail and the synchronous belt (44) are arranged parallel to each other; a sliding member adapted to the slide rail is fixedly installed on the surface of one side of the base (5) close to the slide rail, and the sliding member is slidably connected to the outer side of the slide rail.
5. A remote adjustable medium frequency therapeutic apparatus according to claim 1, characterized in that: The vertical pressing assembly (8) comprises: A small electric push rod (81) is fixedly mounted on the other end of the connecting arm (7); A mounting plate (82) is fixedly mounted on the output end of the small electric push rod (81) and is vertically displaced under the driving of the small electric push rod (81); and The push rod (83) is fixedly mounted on the other side surface of the mounting plate (82). A groove is processed on the other side end of the push rod (83), and an infrared sensor (84) is fixedly mounted in the groove.
6. A remote adjustable medium frequency therapeutic apparatus according to claim 5, characterized in that: A guide seat is fixedly mounted on one end of the connecting arm (7) away from the rotating assembly (6), and a guide rod is fixedly mounted on one end of the mounting plate (82) away from the pressing rod (83). A sliding hole is machined in the guide seat, and the guide rod is located on the inner side of the sliding hole.
7. A remote adjustable medium frequency therapeutic apparatus according to claim 2, characterized in that: The control component (9) comprises: A controller (91) is fixedly mounted on the vertical support seat and is electrically connected to the lateral driving assembly (4), the rotating assembly (6) and the vertical pressing assembly (8); The remote controller (92) is placed on the therapeutic device body (1) and is connected to the controller (91) to perform wireless signal transmission.