In-vitro short wave rehabilitation treatment device

Through the combined structure of the slide chute, threaded rod and electric rotary shaft, the rotation and angle adjustment of the bed plate are achieved, which solves the problem of insufficient treatment flexibility of the existing device and improves the operability of the device and the patient experience.

CN120393295AActive Publication Date: 2025-08-01ANYANG XIANGYU MEDICAL EQUIP
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Patent Information

Application Number
CN202510476735.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2025-08-01
Estimated Expiration
2045-04-16

AI Technical Summary

Technical Problem

The existing in vitro shortwave rehabilitation treatment devices lack rotating components, resulting in insufficient treatment flexibility and operability, which cannot meet the usage needs of different patients, especially for patients with limited mobility, it is difficult to get on and off the bed.

Method used

The combined structure of slide chute, threaded rod, motor and electric rotary shaft is adopted. The control assembly controls the rotation and angle adjustment of the bed head assembly to achieve horizontal and vertical movement of the bed plate, improving the exposure and operating flexibility of the treatment area.

Benefits of technology

It improves the flexibility and operability of the in vitro shortwave rehabilitation treatment device, meets the use needs of different patients, and reduces the difficulty of getting on and off the bed for patients with mobility difficulties.

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Abstract

The invention discloses an in-vitro short wave rehabilitation treatment device, and relates to the technical field of medical instruments. The device comprises an equipment cabinet, an operation host arranged at the top of the equipment cabinet, two mounting tables symmetrically arranged on the front side of the equipment cabinet, first electric rotating shafts vertically arranged on the inner sides of the mounting tables, sliding grooves connected with the inner sides of the first electric rotating shafts, threaded rods movably arranged in the sliding grooves, and motors arranged at one ends of the threaded rods. The sliding block is arranged on the periphery of the threaded rod in a sleeving mode, the second electric rotating shaft is arranged on the inner side of the sliding block, and the operation host is used for generating short wave signals penetrating through and treating a patient; the bed head assembly comprises a bed plate arranged between the two second electric rotating shafts; and the equipment cabinet, the operation host, the first electric rotating shaft, the motor and the second electric rotating shaft are all connected with the control assembly. The device can effectively improve the flexibility and operability of the in-vitro short wave rehabilitation treatment device, and can meet the use requirements of different patients.
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Description

Technical Field

[0001] The present invention relates to the technical field of medical devices, and more specifically, to an extracorporeal short-wave rehabilitation treatment device. Background Art

[0002] In the prior art, an extracorporeal short-wave rehabilitation treatment device is a medical device integrating modern physical therapy concepts. It generates a short-wave electromagnetic field with a specific frequency by means of the electromagnetic induction principle. When the extracorporeal short-wave rehabilitation treatment device operates, the short-wave electromagnetic field causes charged particles in human tissues, such as ions, water molecules, etc., to oscillate at high speed, thereby triggering a series of beneficial biological effects for treatment, providing comprehensive rehabilitation services for various injured and sick patients. As one of the conventional rehabilitation means, the extracorporeal short-wave rehabilitation treatment device is often used in combination with other rehabilitation techniques, such as exercise therapy, other methods in physical factor therapy, etc., to help patients recover their physical functions and improve their self-care ability.

[0003] However, most of the existing extracorporeal short-wave rehabilitation treatment devices are not equipped with components for driving the bed body to rotate horizontally. When it is necessary to treat the side of the patient's body or some parts at special angles, the bed body cannot rotate outward by a certain angle, and the treatment part cannot be easily exposed, that is, the flexibility and operability of the treatment cannot be improved. Moreover, for patients with inconvenient mobility, the existing extracorporeal short-wave rehabilitation treatment devices cannot adjust the bed position to reduce the difficulty of the patient getting on and off the bed.

[0004] In summary, how to effectively improve the flexibility and operability of the extracorporeal short-wave rehabilitation treatment device to meet the usage needs of different patients is an urgent problem to be solved by those skilled in the art at present. Summary of the Invention

[0005] In view of this, the purpose of the present invention is to provide an extracorporeal short-wave rehabilitation treatment device, which can effectively improve the flexibility and operability of the extracorporeal short-wave rehabilitation treatment device and meet the usage needs of different patients.

[0006] To achieve the above purpose, the present invention provides the following technical solutions:

[0007] An extracorporeal short-wave rehabilitation treatment device, comprising:

[0008] A main unit assembly, which includes an equipment cabinet, an operating host arranged on the top of the equipment cabinet, two mounting platforms symmetrically arranged on the front side of the equipment cabinet, a first electric rotating shaft vertically arranged inside the mounting platform, a sliding groove connected to the inside of the first electric rotating shaft, a threaded rod movably arranged inside the sliding groove, a motor arranged at one end of the threaded rod, a slider sleeved on the outer peripheral part of the threaded rod, and a second electric rotating shaft arranged inside the slider. The operating host is used for generating short-wave signals that penetrate and treat patients;

[0009] A headboard assembly, which includes a bed board disposed between two of the second electric rotating shafts;

[0010] A control assembly, to which the equipment cabinet, the operation host, the first electric rotating shaft, the motor, and the second electric rotating shaft are all connected.

[0011] In one embodiment, a reinforcement frame is provided at the end of the second electric rotating shaft, and the bed board is disposed between the two reinforcement frames.

[0012] In one embodiment, folding guardrails are movably provided on opposite sides of the bed board, a pillow is provided at one end of the upper surface of the bed board, and a quilt protector is provided in the middle of the upper surface of the bed board.

[0013] In one embodiment, an electrode plate is provided on the lower surface of the operation host, a signal generator and a signal amplifier are provided inside the operation host, the signal generator is used to generate a short-wave signal of a preset frequency, the signal amplifier is used to amplify the generated short-wave signal, and the electrode plate is used to transmit the short-wave signal to the patient.

[0014] In one embodiment, at least one maintenance door is hingedly provided on the outer surface of the rear side of the equipment cabinet, and a movable bolt is provided on the outer surface of the maintenance door.

[0015] In one embodiment, at least one ventilation fan for air intake and at least one ventilation fan for air exhaust are provided on the outer surface of the maintenance door.

[0016] In one embodiment, a cable assembly is further included. The cable assembly internally includes transmission cables. A host cable interface is provided on the outer surface of the rear side of the equipment cabinet, a console cable interface is provided on the outer surface of one side of the control assembly, and both ends of the transmission cable are plugged into the host cable interface and the console cable interface respectively.

[0017] In one embodiment, the control assembly includes a console, a keyboard and mouse operation platform provided on the front side of the upper surface of the console, and a plurality of universal wheels provided on the lower surface of the console;

[0018] The console internally includes a microprocessor, and the keyboard and mouse operation platform internally includes a keyboard and a mouse pad, so that an operator can input various instructions and parameters through the keyboard and perform menu selection and graphic operations through the mouse pad.

[0019] In one embodiment, a button console is provided at the rear side of the upper surface of the console. A main display screen is provided on the upper surface of the button console. The button console is provided with a plurality of function buttons, enabling an operator to directly press the function buttons to quickly execute corresponding operations. The main display screen is used for treatment parameters, device operation status, operation menus, and treatment progress.

[0020] In one embodiment, a power connector is provided on the outer surface of the rear side of the console. The power connector is used to connect to an external power supply.

[0021] When using the extracorporeal short-wave rehabilitation treatment device provided by the present invention, the control assembly can control the first electric rotating shaft to rotate, so as to drive other components inside the first electric rotating shaft and the headstock assembly as a whole to rotate outward, so that the headstock assembly is far from the inner side of the main machine assembly, which is more convenient for the rotation operation of the headstock assembly. The chute can support the structure inside the chute. By adopting the combination of a threaded rod, a motor, and a slider, when the threaded rod is driven by the motor to rotate circumferentially, the slider can reciprocate along the threaded rod in the chute.

[0022] For example, when the control assembly controls the first electric rotating shaft to drive the chute to rotate, so that the chute rotates from a horizontal state to a vertical state, the control assembly can control the servo motor to operate to drive the threaded rod to rotate. When the threaded rod rotates, the slider moves along the threaded rod in the chute to change the vertical distance between the patient and the operating main machine of the main machine assembly, thereby controlling the propagation distance of the short-wave signal. When the control assembly controls the first electric rotating shaft to drive the chute to rotate in the reverse direction, so that the chute rotates from a vertical state to a horizontal state, by performing the same operation as above, the horizontal distance between the patient and the operating main machine can be changed, so as to facilitate the patient to enter and exit the upper surface of the headstock assembly. Moreover, the bed board is arranged between two second electric rotating shafts. When the control assembly controls the second electric rotating shafts to rotate, the two second electric rotating shafts can change the horizontal angle of the headstock assembly.

[0023] Furthermore, when the chute changes from a vertical state to a horizontal state driven by the first electric rotating shaft, the control assembly can control the second electric rotating shafts to rotate, so that the bed board rotates in the reverse direction following the rotation angle of the first electric rotating shaft, so as to keep the bed board in a horizontal state and prevent the patient from falling off the bed board. Among them, the bed board can provide a stable and solid plane for the patient to bear the body weight of the patient. That is to say, during the rotation of the chute, the second electric rotating shafts installed at both ends of the bed board can drive the bed board to rotate horizontally to prevent the patient from falling off the bed board.

[0024] In addition, when the sliding groove is in a certain state (vertical state or horizontal state), if it is necessary to treat the side of the patient's body or some parts at special angles, the bed board can be rotated outward by a certain angle under the drive of the second electric rotating shaft, so that the treatment part is more easily exposed, improving the flexibility and operability of the treatment. Moreover, for patients with limited mobility, the difficulty of getting on and off the bed can be reduced.

[0025] In summary, the extracorporeal short-wave rehabilitation treatment device provided by the present invention can effectively improve the flexibility and operability of the extracorporeal short-wave rehabilitation treatment device and meet the usage requirements of different patients. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on the provided drawings.

[0027] Figure 1 It is a schematic structural diagram of the extracorporeal short-wave rehabilitation treatment device provided by the present invention when the sliding groove is in a vertical state;

[0028] Figure 2 It is a schematic structural diagram of the extracorporeal short-wave rehabilitation treatment device when the sliding groove is in a horizontal state;

[0029] Figure 3 It is a schematic structural diagram of the headstock assembly;

[0030] Figure 4 It is a schematic structural diagram of the rear side of the main unit assembly;

[0031] Figure 5 It is a schematic structural diagram of the front side of the control assembly;

[0032] Figure 6 It is a schematic structural diagram of the rear side of the control assembly.

[0033] Figures 1-6 Wherein:

[0034] 1 is the mainframe assembly, 11 is the equipment cabinet, 12 is the first electric rotating shaft, 13 is the sliding groove, 14 is the threaded rod, 15 is the motor, 16 is the slider, 17 is the second electric rotating shaft, 18 is the reinforcing frame, 19 is the operating mainframe, 110 is the electrode plate, 111 is the maintenance door, 112 is the movable bolt, 113 is the ventilation fan, 114 is the mainframe cable interface, 2 is the headboard assembly, 21 is the bed board, 22 is the folding guardrail, 23 is the pillow, 24 is the quilt cover, 3 is the cable assembly, 31 is the transmission cable, 4 is the control assembly, 41 is the console, 42 is the universal wheel, 43 is the keyboard and mouse operating table, 44 is the button console, 45 is the main display screen, 46 is the power connector, 47 is the console cable interface. Detailed implementation manner

[0035] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0036] The core of the present invention is to provide an extracorporeal short-wave rehabilitation treatment device, which can effectively improve the flexibility and operability of the extracorporeal short-wave rehabilitation treatment device and meet the usage requirements of different patients.

[0037] This specific embodiment provides an extracorporeal short-wave rehabilitation treatment device, including:

[0038] The mainframe assembly 1, which includes the equipment cabinet 11, the operating mainframe 19 provided on the top of the equipment cabinet 11, two mounting tables symmetrically provided on the front side of the equipment cabinet 11, the first electric rotating shaft 12 vertically provided inside the mounting table, the sliding groove 13 connected to the inner side of the first electric rotating shaft 12, the threaded rod 14 movably provided in the sliding groove 13, the motor 15 provided at one end of the threaded rod 14, the slider 16 sleeved on the outer peripheral part of the threaded rod 14, and the second electric rotating shaft 17 provided inside the slider 16. The operating mainframe 19 is used to generate short-wave signals that penetrate and treat patients, and the structure is as Figure 1 shown;

[0039] The headboard assembly 2, which includes the bed board 21 provided between the two second electric rotating shafts 17;

[0040] The control assembly 4, and the equipment cabinet 11, the operating mainframe 19, the first electric rotating shaft 12, the motor 15, and the second electric rotating shaft 17 are all connected to the control assembly 4.

[0041] It should be noted that the main unit assembly 1, as the core component of the extracorporeal shortwave rehabilitation therapy device, is responsible for generating shortwave signals, enabling the shortwave electromagnetic field to penetrate human tissue, triggering a series of biological effects. These effects vibrate ions and molecules within the tissue, producing both thermal and non-thermal effects, thereby achieving the therapeutic goal. The bedside assembly 2 primarily provides comfortable therapeutic positioning for the patient. The control assembly 4 is the operational hub of the entire extracorporeal shortwave rehabilitation therapy device, responsible for receiving operator input and converting these commands into control signals for the main unit assembly 1.

[0042] It should also be noted that the equipment cabinet 11 contains a power supply and circuit breaker to ensure the normal operation of the main unit assembly 1. The chute 13 can be configured as a concave groove to limit the range of motion of the headstock assembly 2 within the chute 13. Furthermore, the drive motors for the first and second electric shafts 12, 17 both utilize hollow-shaft motors, meaning they are mounted on the outer surface of the shaft axis, making the device more compact.

[0043] During actual use, the shape, structure, type, position, size, etc. of the main assembly 1, the bedside assembly 2 and the control assembly 4 can be determined according to actual conditions and actual needs.

[0044] When using the extracorporeal shortwave rehabilitation therapy device provided by the present invention, the control assembly 4 can control the rotation of the first electric shaft 12, thereby driving the other components inside the first electric shaft 12 and the entire headboard assembly 2 to rotate outward, thereby moving the headboard assembly 2 away from the inside of the main assembly 1, making it easier to rotate the headboard assembly 2. The slide 13 can support the structure within the slide 13. By adopting the combination of the threaded rod 14, the motor 15, and the slider 16, when the threaded rod 14 is driven by the motor 15 to rotate circumferentially, the slider 16 can reciprocate along the threaded rod 14 within the slide 13.

[0045] For example, when the control assembly 4 controls the first electric rotating shaft 12 to drive the sliding groove 13 to rotate, so that the sliding groove 13 rotates from the horizontal state to the vertical state, the control assembly 4 can control the servo motor 15 to operate to drive the threaded rod 14 to rotate. When the threaded rod 14 rotates, the slider 16 moves along the threaded rod 14 in the sliding groove 13 to change the vertical distance between the patient and the operation host 19 of the host assembly 1, thereby controlling the propagation distance of the short-wave signal. When the control assembly 4 controls the first electric rotating shaft 12 to drive the sliding groove 13 to rotate in the reverse direction, so that the sliding groove 13 rotates from the vertical state to the horizontal state, the same operation as above is performed to change the horizontal distance between the patient and the operation host 19, so as to facilitate the patient to enter and exit the upper surface of the headstock assembly 2. Moreover, the bed board 21 is arranged between the two second electric rotating shafts 17. When the control assembly 4 controls the second electric rotating shafts 17 to rotate, the two second electric rotating shafts 17 can change the horizontal angle of the headstock assembly 2.

[0046] Furthermore, when the sliding groove 13 changes from the vertical state to the horizontal state driven by the first electric rotating shaft 12, the control assembly 4 can control the second electric rotating shafts 17 to rotate, so that the bed board 21 rotates in the reverse direction following the rotation angle of the first electric rotating shaft 12, thereby keeping the bed board 21 in a horizontal state and preventing the patient from falling off the bed board 21. The bed board 21 can provide a stable and firm plane for the patient to bear the body weight of the patient. That is to say, during the rotation of the sliding groove 13, the second electric rotating shafts 17 installed at both ends of the bed board 21 can drive the bed board 21 to rotate horizontally to prevent the patient from falling off the bed board 21.

[0047] In addition, when the sliding groove 13 is in a certain state (vertical state or horizontal state), if it is necessary to treat the side of the patient's body or some parts at special angles, the bed board 21 can rotate outward by a certain angle driven by the second electric rotating shafts 17, so that the treatment part is more easily exposed, improving the flexibility and operability of the treatment. And for patients with inconvenient movement, the difficulty of getting on and off the bed for the patient can be reduced.

[0048] In summary, the extracorporeal short-wave rehabilitation treatment device provided by the present invention can effectively improve the flexibility and operability of the extracorporeal short-wave rehabilitation treatment device and can meet the use requirements of different patients.

[0049] In one embodiment, as Figure 1 shown, a reinforcing frame 18 is provided at the end of the second electric rotating shaft 17, and the bed board 21 is arranged between the two reinforcing frames 18. That is to say, the reinforcing frame 18 can be fixedly installed on the outer surface of the second electric rotating shaft 17, and the bed board 21 is fixedly installed on the outer surfaces of the second electric rotating shaft 17 and the reinforcing frame 18. By adopting the combination of the second electric rotating shaft 17 and the reinforcing frame 18, the horizontal direction of the headstock assembly 2 can be changed by controlling the rotation of the second electric rotating shaft 17.

[0050] In one embodiment, as Figure 2 and Figure 3 shown, folding guardrails 22 are movably provided on opposite sides of the bed board 21. A pillow 23 is provided at one end of the upper surface of the bed board 21, and a quilt protector 24 is provided in the middle of the upper surface of the bed board 21.

[0051] It should be noted that the folding guardrails 22 are movably installed on the outer surface of the bed board 21. The folding guardrails 22 can prevent the patient from accidentally rolling off the bed board 21 during the treatment process. Especially for patients who are unconscious, have inconvenient mobility or may have body movements during the treatment process, it can play an effective protective role. The pillow 23 is fitted and installed at one end of the upper surface of the bed board 21. The pillow 23 supports the patient's head, keeping the patient's head at a suitable height and angle and maintaining a natural physiological curve with the spine of the patient's body. The quilt protector 24 is fitted and installed in the middle of the upper surface of the bed board 21. The quilt protector 24 covers the patient's body, preventing the patient from getting cold due to body exposure during the treatment process and keeping the patient's body temperature.

[0052] In one embodiment, as Figure 2 shown, an electrode plate 110 is provided on the lower surface of the operation host 19. A signal generator and a signal amplifier are provided inside the operation host 19. The signal generator is used to generate a short-wave signal with a preset frequency, the signal amplifier is used to amplify the generated short-wave signal, and the electrode plate 110 is used to transmit the short-wave signal to the patient.

[0053] It should be noted that the operation host 19 can be fixedly installed on the upper surface of the equipment cabinet 11, the electrode plate 110 is fixedly installed on the lower surface of the operation host 19. The inside of the operation host 19 contains a signal generator and a signal amplifier. The signal generator can generate a short-wave signal with accurate frequency. The signal amplifier amplifies the generated low-power short-wave signal to reach the energy intensity required for treatment. The electrode plate 110 is used to transmit the short-wave electromagnetic field generated by the operation host 19 to the patient's body. The electrode plate 110 contacts the patient, forming an electric field distribution area, so that the short-wave energy can effectively penetrate the human tissue and generate a series of physiological effects inside the tissue, such as thermal effect and non-thermal effect, so as to achieve the purpose of treating diseases.

[0054] In one embodiment, as Figure 4 shown, at least one maintenance door 111 is hingedly provided on the rear outer surface of the equipment cabinet 11, and a movable bolt 112 is provided on the outer surface of the maintenance door 111. Opening the maintenance door 111 can perform maintenance on the equipment inside the equipment cabinet 11, and the movable bolt 112 can prevent the maintenance door 111 from being accidentally touched and opened, avoiding the influence of the external environment on the operation of the equipment in the equipment cabinet 11.

[0055] In one embodiment, as Figure 4As shown in the figure, at least one ventilation fan 113 for intake air and at least one ventilation fan 113 for exhaust air are provided on the outer surface of the maintenance door 111. For example, four ventilation fans 113 can be provided and arranged as two for intake and two for exhaust, so as to form air convection, which is beneficial to dissipating heat from the equipment inside the equipment cabinet 11.

[0056] In one embodiment, as Figure 4 shown, it further includes a cable assembly 3. The cable assembly 3 internally contains transmission cables 31. A main machine cable interface 114 is provided on the outer surface of the rear side of the equipment cabinet 11, and a console cable interface 47 is provided on the outer surface of one side of the control assembly 4. The two ends of the transmission cable 31 are respectively plugged into the main machine cable interface 114 and the console cable interface 47 to realize the transmission of electrical signals and control instructions between the main machine assembly 1 and the control assembly 4 through the transmission cable 31. That is, the cable assembly 3 can connect the headstock assembly 2 and the control assembly 4, facilitating the accurate transmission of commands between the headstock assembly 2 and the control assembly 4.

[0057] In one embodiment, as Figure 5 shown, the control assembly 4 includes a console 41, a keyboard and mouse operation table 43 provided on the front side of the upper surface of the console 41, and a plurality of universal wheels 42 provided on the lower surface of the console 41; the console 41 internally contains a microprocessor, and the keyboard and mouse operation table 43 internally contains a keyboard and a mouse pad, enabling the operator to input various instructions and parameters through the keyboard and perform menu selection and graphic operations through the mouse pad. Among them, the console 41 is the core part of the entire control assembly 4. The console 41 internally contains a microprocessor, integrating various control functions of the extracorporeal short-wave rehabilitation treatment device, coordinating the work of each component, and realizing the overall control of the treatment process. The universal wheels 42 can make the console 41 move flexibly, facilitating the operator to move the console 41 to a suitable position according to the treatment needs.

[0058] In one embodiment, as Figure 6 shown, a button console 44 is provided on the rear side of the upper surface of the console 41. A main display screen 45 is provided on the upper surface of the button console 44. The button console 44 is provided with a plurality of function buttons, enabling the operator to directly press the function buttons to quickly execute corresponding operations and realize the quick control of the treatment process. The main display screen 45 is used for treatment parameters, equipment operation status, operation menu, and treatment progress, and presents them to the operator in an intuitive graphic and text interface, enabling the operator to understand the treatment situation in real time.

[0059] In one embodiment, as Figure 6 shown, a power supply connector 46 is provided on the outer surface of the rear side of the console 41. The power supply connector 46 is used to connect to an external power supply, thereby providing power supply for the control assembly 4 and ensuring the normal operation of the control assembly 4.

[0060] It should be noted that for the first electric rotating shaft 12 and the second electric rotating shaft 17 mentioned in the present application document, the first and the second are only used to distinguish different positions and there is no order of precedence between them.

[0061] In addition, it should also be noted that the orientation or positional relationship indicated by "horizontal", "vertical", etc. in the present application is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of simplifying the description and understanding, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation on the present invention.

[0062] The various embodiments in this specification are described in a progressive manner. Each embodiment focuses on the differences from other embodiments. The same or similar parts among the various embodiments can be referred to each other. Any combination of all the embodiments provided by the present invention falls within the protection scope of this invention and will not be elaborated here.

[0063] The above has introduced in detail the extracorporeal short-wave rehabilitation treatment device provided by the present invention. Specific examples are used herein to elaborate on the principle and implementation manner of the present invention. The description of the above embodiments is only used to help understand the method and its core idea of the present invention. It should be pointed out that for those of ordinary skill in the art in this technical field, without departing from the principle of the present invention, several improvements and modifications can be made to the present invention, and these improvements and modifications also fall within the protection scope of the claims of the present invention.

Claims

1. An extracorporeal short-wave rehabilitation treatment device, characterized in that, Including: A main unit assembly (1), which includes an equipment cabinet (11), an operating mainframe (19) provided on the top of the equipment cabinet (11), two mounting platforms symmetrically provided on the front side of the equipment cabinet (11), a first electric rotating shaft (12) vertically provided inside the mounting platform, a chute (13) connected to the inside of the first electric rotating shaft (12), a threaded rod (14) movably provided inside the chute (13), a motor (15) provided at one end of the threaded rod (14), a slider (16) sleeved on the outer peripheral part of the threaded rod (14), and a second electric rotating shaft (17) provided inside the slider (16). The operating mainframe (19) is used to generate short-wave signals that penetrate and treat patients. A headboard assembly (2), which includes a bed board (21) provided between the two second electric rotating shafts (17). A control assembly (4), and the equipment cabinet (11), the operating mainframe (19), the first electric rotating shaft (12), the motor (15), and the second electric rotating shaft (17) are all connected to the control assembly (4).

2. The extracorporeal short-wave rehabilitation treatment device according to claim 1, characterized in that Reinforcing frames (18) are provided at the ends of the second electric rotating shafts (17), and the bed board (21) is provided between the two reinforcing frames (18).

3. The extracorporeal short-wave rehabilitation treatment device according to claim 1, wherein Folding guardrails (22) are movably provided on the opposite sides of the bed board (21), a pillow (23) is provided at one end of the upper surface of the bed board (21), and a quilt protector (24) is provided in the middle of the upper surface of the bed board (21).

4. The extracorporeal short-wave rehabilitation treatment device according to any one of claims 1 to 3, characterized in that, An electrode plate (110) is provided on the lower surface of the operating mainframe (19). A signal generator and a signal amplifier are provided inside the operating mainframe (19). The signal generator is used to generate short-wave signals of a preset frequency, the signal amplifier is used to amplify the generated short-wave signals, and the electrode plate (110) is used to transmit the short-wave signals to the patient.

5. The extracorporeal short-wave rehabilitation treatment device according to any one of claims 1 to 3, characterized in that At least one maintenance door (111) is hinged on the outer surface of the rear side of the equipment cabinet (11), and a movable bolt (112) is provided on the outer surface of the maintenance door (111).

6. The extracorporeal short-wave rehabilitation treatment device according to claim 5, wherein, At least one ventilation fan (113) for air intake and at least one ventilation fan (113) for air exhaust are provided on the outer surface of the maintenance door (111).

7. The extracorporeal short-wave rehabilitation treatment device according to any one of claims 1 to 3, characterized in that, A cable assembly (3) is further included. The cable assembly (3) internally includes a transmission cable (31). A mainframe cable interface (114) is provided on the outer surface of the rear side of the equipment cabinet (11), and a console cable interface (47) is provided on the outer surface of one side of the control assembly (4). The two ends of the transmission cable (31) are respectively plugged into the mainframe cable interface (114) and the console cable interface (47).

8. The extracorporeal short-wave rehabilitation treatment device according to any one of claims 1 to 3, characterized in that, The control assembly (4) includes a console (41), a keyboard and mouse operation platform (43) provided on the front side of the upper surface of the console (41), and a plurality of universal wheels (42) provided on the lower surface of the console (41). A microprocessor is included inside the console (41), and a keyboard and a mouse pad are included inside the keyboard and mouse operation platform (43), so that an operator can input various instructions and parameters through the keyboard and perform menu selection and graphic operations through the mouse pad.

9. The extracorporeal short-wave rehabilitation treatment device according to claim 8, characterized in that, A key console (44) is provided at the rear side of the upper surface of the console (41). A main display screen (45) is provided on the upper surface of the key console (44). The key console (44) is provided with a plurality of function keys, so that an operator can directly press the function keys to quickly execute corresponding operations. The main display screen (45) is used for treatment parameters, device operation status, operation menus, and treatment progress.

10. The extracorporeal short-wave rehabilitation treatment device according to claim 8, characterized in that, A power supply connector (46) is provided on the outer surface of the rear side of the console (41). The power supply connector (46) is used to connect to an external power supply.

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