Transcranial spin magnetization bed for treating insomnia
By incorporating a rotating motor and transmission mechanism into the transcranial magnetic stimulation bed, the treatment area for magnetic field stimulation is increased, solving the problem of unsatisfactory treatment effects of existing instruments and achieving better insomnia treatment results.
Patent Information
- Application Number
- CN202211001961.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-20
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2042-08-20
AI Technical Summary
Current transcranial magnetic stimulation (TMS) devices are not ideal for stimulating the treatment area for insomnia, as the magnetic field stimulation area is insufficient.
A transcranial magnetic stimulation bed for treating insomnia is designed. By setting a rotary motor on the bed to drive the downward rotating magnet to rotate, and through the transmission mechanism and linkage mechanism, the magnetic field stimulation treatment area is increased, the position control of the magnetic field and the position adjustment of the coil are realized, and the magnetic field stimulation effect is enhanced.
It improved the effectiveness and area of magnetic field stimulation therapy, enhanced the applicability and therapeutic effect of the device, and improved the sleep quality of patients.
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Figure CN115364379B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of magnetic therapy devices, and in particular to a transcranial magnetic rotating bed for treating insomnia. Background Technology
[0002] Transcranial magnetic stimulation (TMS), first established in 1985, is a cortical stimulation therapy method with advantages such as being painless, non-invasive, easy to operate, and safe and reliable, and was quickly adopted in clinical practice. The term "transcranial" indicates that magnetic signals can penetrate the skull without attenuation to stimulate the cerebral cortex. Low-frequency rTMS can inhibit cortical excitation and promote the release of serotonin, thereby improving sleep quality. Furthermore, the combination of transcranial magnetic stimulation and rotating magnetic fields results in even better therapeutic effects.
[0003] Currently, it is known that rotating magnetic fields can promote the secretion of β-endorphins, affect blood pressure and heart rate, and improve heat distribution on the human body surface; they also have sedative and sleep-improving effects; effectively improving sleep, prolonging sleep time, and increasing sleep depth. Through the superimposed stimulation of rotating magnetic fields and transcranial magnetic fields, it helps alleviate patients' general discomfort, inhibits the excitability of the cerebral cortex, and improves patients' sleep quality.
[0004] Regarding the aforementioned technologies, the inventor believes that current transcranial magnetic stimulation (TMS) devices are not ideal for treating insomnia, as they only provide localized stimulation to brain regions. Summary of the Invention
[0005] In order to improve the therapeutic effect of transcranial magnetic stimulation (TMS) instruments and increase the area of magnetic field stimulation, this application provides a transcranial magnetic bed for treating insomnia.
[0006] This application provides a transcranial magnetic stimulation bed for treating insomnia, employing the following technical solution:
[0007] A transcranial magnetic rotating bed for treating insomnia includes a device support, the device support including a support beam, two symmetrically arranged support vertical beams fixedly connected to both ends of the support beam, a bed body installed between the ends of the two support vertical beams away from the support beam, a rotary motor fixedly installed on the bed body, and a downward rotating magnet fixedly installed on the rotary motor;
[0008] Two symmetrically arranged fixed supports are fixedly installed on the end of the support beam away from the lower rotating magnet. A guide rail is fixedly installed on one of the two fixed supports. A sliding plate is slidably connected to the guide rail. A central shaft is fixedly connected to the sliding plate. The central shaft is disposed through the bottom of the support beam. An upper rotating magnet is rotatably sleeved on the end of the central shaft away from the fixed support.
[0009] Another fixed support is equipped with a transmission mechanism for driving the central shaft to rotate;
[0010] A linkage mechanism is also sleeved on the central axis, and two transcranial coil taps are symmetrically installed at both ends of the linkage mechanism.
[0011] By adopting the above technical solution, a rotary motor is installed on the bed. The rotary motor drives the lower rotating magnet to rotate, which in turn drives the upper rotating magnet to rotate, thereby realizing the rotation of the magnetic field. The rotation of the magnetic field improves the treatment effect. At the same time, the transmission mechanism drives the central axis and the upper rotating magnet to move closer to the lower rotating magnet, thereby improving the magnetic field stimulation effect. By installing transcranial coils at both ends of the linkage mechanism, the magnetic field stimulation treatment area is increased.
[0012] Optionally, the transmission mechanism includes a transmission motor, which is fixedly mounted on one of the fixed supports. A first spur gear is fixedly connected to the transmission motor, and a second spur gear is meshed with one side of the first spur gear. Both the first spur gear and the second spur gear are rotatably connected to the fixed support.
[0013] The second spur gear is meshed with a third spur gear on the side away from the first spur gear, and the third spur gear is sleeved on the central shaft;
[0014] A fixing plate is fixedly installed on the crossbeam of the support. A threaded sleeve is rotatably connected through the fixing plate. The threaded sleeve is engaged with the central shaft. A third spur gear is fixedly connected to one end of the threaded sleeve near the sliding plate.
[0015] By adopting the above technical solution, the drive motor drives the first spur gear to rotate, which in turn drives the second spur gear to rotate, which in turn drives the third spur gear to rotate. The rotation of the third spur gear drives the threaded sleeve to rotate, which in turn causes the central shaft to move along its axial direction. This, in turn, causes the upper rotating magnet to move vertically, achieving positional control of the magnetic field and bringing it closer to the human body for optimal therapeutic effect and improved applicability of the device. Simultaneously, the rotation of the threaded sleeve drives the linkage mechanism to operate, ensuring the normal operation of the device structure.
[0016] Optionally, the linkage mechanism includes a first linkage component, which is mounted on a central axis. Second linkage components are symmetrically mounted on both sides of the first linkage component. The second linkage components are mounted on a device bracket, and a transcranial coil is ball-hinged to the second linkage component.
[0017] By adopting the above technical solution, the first linkage component is installed on the central shaft and connected to the threaded sleeve. The rotation of the threaded sleeve drives the first linkage component to work, the work of the first linkage component drives the second linkage component to work, and the work of the second linkage component drives the transcranial coil to reciprocate and adjust, so that it can be closer to the patient's head and increase the effect of magnetic field stimulation.
[0018] Optionally, the first linkage component includes a rotating plate, which is rotatably sleeved on the end of the central shaft near the lower rotating magnet. A threaded sleeve is fixedly connected to the rotating plate. The rotating plate has several evenly distributed sliding grooves, and sliding rods are slidably connected in each of the several sliding grooves. The several sliding rods are respectively fixedly installed on several toothed fan plates. The ends of the several toothed fan plates away from the sliding rods are rotatably connected to a mounting frame. The mounting frame is rotatably connected to a connecting frame, and the connecting frame is fixedly installed on the device bracket.
[0019] By adopting the above technical solution, the rotation of the threaded sleeve drives the rotation of the rotating plate, and the rotation of the rotating plate drives the sliding rod in the slide groove to slide. The sliding rod drives the toothed sector plate to rotate away from the central axis. When the sliding plate stops sliding in the slot, the rotation of the rotating plate drives the mounting frame to rotate, so that several toothed sector plates rotate around the central axis. The rotation of the toothed sector plates drives the second linkage component to rotate, ensuring the normal operation of the device structure.
[0020] Optionally, the second linkage assembly includes two symmetrically arranged rotating shafts, which are symmetrically rotatably connected to both ends of the connecting frame near the support vertical beam. A first linkage spur gear is fixedly sleeved on one end of the two rotating shafts near the connecting frame, and a second linkage spur gear is fixedly sleeved on one end of the two rotating shafts away from the first linkage spur gear. The second linkage spur gear is meshed with a transmission chain, and two third linkage spur gears are symmetrically meshed with both ends of the transmission chain.
[0021] The end of the transmission chain away from the rotating shaft is fixedly connected to a guide rod, and the end of the guide rod away from the transmission chain is slidably connected to a telescopic connecting plate.
[0022] By adopting the above technical solution, the rotation of the toothed fan plate drives the first linkage spur gear to rotate, the rotation of the first linkage spur gear drives the rotating shaft to rotate, the rotation of the rotating shaft drives the second linkage spur gear to rotate, the rotation of the second linkage spur gear drives the transmission chain to rotate, which in turn drives the guide rod to move in the horizontal direction. The movement of the guide rod drives the telescopic connecting plate to move. The third linkage spur gear provides support for the transmission chain, ensuring that the transmission chain can operate normally.
[0023] Optionally, guide grooves are provided on both of the two symmetrically arranged telescopic connecting plates, and the guide rod is slidably connected in the guide grooves;
[0024] The two symmetrically arranged telescopic connecting plates are slidably connected to the slide rail at their far ends, and the slide rail is fixedly installed on the vertical beam of the support.
[0025] The two symmetrically arranged telescopic connecting plates are spherically hinged at one end to a transcranial coil.
[0026] By adopting the above technical solution, a guide groove is opened on the telescopic connecting plate. The movement of the guide rod in the guide groove drives the telescopic connecting plate to move in the slide rail. The movement of the telescopic connecting plate drives the transcranial coil to adjust the position of the coil according to the position of the patient's head, thereby closely adhering to the head and increasing the intensity of magnetic field stimulation.
[0027] Optionally, the two symmetrically arranged transmission chains have rollers abutting against each other on their adjacent sides, and the rollers are rotatably connected to the connecting frame.
[0028] By adopting the above technical solution, rollers are set to ensure that the chain and the second linkage spur gear are always meshed with the transmission chain, thus ensuring the normal operation of the device.
[0029] Optionally, the upper and lower rotating magnets can generate a uniformly stable rotating magnetic field when they rotate, and the rotating magnetic field is used for stimulation therapy;
[0030] A stable and uniform pulsed magnetic field can be generated between the two transcranial coil beats, and the pulsed magnetic field is used for stimulation therapy.
[0031] By adopting the above technical solution, a superimposed magnetic field for stimulation therapy is generated between the upper and lower rotating magnets and the two transcranial coils, ensuring the therapeutic effect of the magnetic field on the patient and improving the functionality and practicality of the device.
[0032] Optionally, the bottom of the support beam and the bottom of the bed frame are provided with several evenly distributed support pads.
[0033] By adopting the above technical solution and setting support feet, the stability of the support beam and bed frame is improved, ensuring the stability of the device operation.
[0034] Optionally, the bed frame includes a support base, which is fixedly installed between two symmetrically arranged support beams. A rotary motor is fixedly installed on the support base, and a bed support frame is slidably installed on the support base.
[0035] By adopting the above technical solution, the bed support frame is slidably installed on the support base, which facilitates the adjustment of the patient's magnetic therapy area and improves the applicability of the device.
[0036] In summary, this application includes at least one of the following beneficial technical effects:
[0037] 1. A rotary motor is installed on the bed. The rotary motor drives the lower rotating magnet to rotate, which in turn drives the upper rotating magnet to rotate, thereby realizing the rotation of the magnetic field. The rotation of the magnetic field improves the treatment effect. At the same time, the transmission mechanism drives the central axis and the upper rotating magnet to move closer to the lower rotating magnet, thereby improving the magnetic field stimulation effect. By installing transcranial coils at both ends of the linkage mechanism, the magnetic field stimulation treatment area is increased.
[0038] 2. The drive motor rotates the first spur gear, which in turn rotates the second spur gear, which in turn rotates the third spur gear, which in turn rotates the threaded sleeve. The rotation of the threaded sleeve causes the central shaft to move along its axis, which in turn causes the upper rotating magnet to move vertically, thus controlling the magnitude of the magnetic field and improving the applicability of the device. Simultaneously, the rotation of the threaded sleeve drives the linkage mechanism, ensuring the normal operation of the device structure.
[0039] 3. The first linkage component is installed on the central shaft and connected to the threaded sleeve. The rotation of the threaded sleeve drives the first linkage component to work. The work of the first linkage component drives the second linkage component to work. The work of the second linkage component drives the transcranial coil to reciprocate, ensuring the stability of the device connection structure, realizing the adjustment of the coil position, and increasing the magnetic field stimulation treatment area. Attached Figure Description
[0040] Figure 1 This is a schematic diagram of the structure from the frontal view of an embodiment of this application;
[0041] Figure 2 This is a rear-view structural diagram of an embodiment of this application;
[0042] Figure 3 This is a cross-sectional view of the transmission mechanism in an embodiment of this application;
[0043] Figure 4 This is a top-view structural diagram of the linkage mechanism according to an embodiment of this application;
[0044] Figure 5 This is a schematic diagram of the linkage mechanism from a bottom-view perspective according to an embodiment of this application;
[0045] Figure 6 This is an enlarged view of section A in an embodiment of this application.
[0046] Explanation of reference numerals in the attached drawings: 1. Device support; 11. Support beam; 12. Support vertical beam; 2. Bed frame; 21. Support base; 22. Bed support frame; 23. Rotary motor; 24. Downward-spinning magnet; 3. Fixed support; 4. Guide rail; 41. Sliding plate; 5. Central shaft; 51. Upward-spinning magnet; 6. Transmission mechanism; 61. Transmission motor; 62. First spur gear; 63. Second spur gear; 64. Third spur gear; 65. Fixed plate; 66. Threaded sleeve; 7. Linkage mechanism; 71. First linkage... Moving component; 711, rotating plate; 712, slide groove; 713, sliding rod; 714, toothed fan plate; 715, connecting frame; 716, mounting frame; 72, second linkage component; 721, rotating shaft; 722, first linkage spur gear; 723, second linkage spur gear; 724, transmission chain; 725, third linkage spur gear; 726, guide rod; 727, telescopic connecting plate; 728, guide groove; 729, slide rail; 7210, roller; 8, transcranial coil tap; 9, supporting foot pad. Detailed Implementation
[0047] The following is in conjunction with the appendix Figure 1-6 This application will be described in further detail.
[0048] This application discloses a transcranial magnetic stimulation bed for treating insomnia.
[0049] Reference Figure 1 and Figure 2The transcranial magnetic stimulation bed for treating insomnia includes a device support 1, which includes a crossbeam 11. Two symmetrically arranged vertical beams 12 are fixedly connected to both ends of the crossbeam 11. Both the crossbeam 11 and the vertical beams 12 are made of steel and are fixedly connected by welding. A bed frame 2 is installed between the ends of the two vertical beams 12 furthest from the crossbeam 11. The bed frame 2 includes a support base 21, which is fixedly installed between the ends of the two vertical beams 12 furthest from the crossbeam 11. A bed support frame 22 is slidably mounted on the support base 21. A rotary motor 23 is also fixedly mounted on the support base 21, and a downward-rotating magnet 24 is fixedly mounted at the output end of the rotary motor 23. Several evenly distributed support pads 9 are fixedly installed at the bottom of both the vertical beams 12 and the support base 21, ensuring stable installation of the vertical beams 12 and the support base 21. Two symmetrically arranged fixed supports 3 are fixedly installed on the support beam 11, and the support beam 11 and the fixed supports 3 are fixedly connected by welding. A guide rail 4 is fixedly installed on one of the fixed supports 3, and a sliding plate 41 is slidably installed on the guide rail 4. The sliding plate 41 is an L-shaped steel plate, with one end slidably mounted on the guide rail 4. A central shaft 5 is fixedly connected to the end of the sliding plate 41 away from the guide rail 4. The central shaft 5 has threads on its circumference, and the end of the central shaft 5 away from the sliding plate 41 passes through the end of the support beam away from the fixed support 3. An upward-rotating magnet 51 is rotatably sleeved at the end of the central shaft 5 away from the sliding plate 41. A transmission mechanism 6 is installed on the other fixed support 3. A linkage mechanism 7 is installed on the transmission mechanism 6 and mounted on the central shaft 5. Two symmetrically arranged transcranial coil taps 8 are connected to the linkage mechanism 7. The transcranial coil taps 8 are quarter-spherical in shape. A uniform and stable magnetic field can be generated between the upper rotating magnet 51 and the lower rotating magnet 24, and between the two transcranial coil beaters 8. The magnetic field is used to stimulate the treatment site of the patient.
[0050] When using the transcranial magnetic stimulation bed for treating insomnia, the patient first lies on the bed 2 and the position of the bed support frame 22 is adjusted so that the patient's treatment area is placed on the lower rotating magnet 24. Then, the transmission mechanism 6 is activated, which drives the central shaft 5 to move closer to the lower rotating magnet 24. The sliding plate 41 slides on the guide rail 4, which limits the movement of the central shaft 5. At the same time, the transmission mechanism 6 drives the linkage mechanism 7 to work, improving the treatment effect and increasing the magnetic field stimulation treatment area. Simultaneously, the rotary motor 23 drives the lower rotating magnet 24 to rotate. The rotation of the lower rotating magnet 24, under the action of magnetic force, drives the upper rotating magnet 51 to rotate, realizing the rotation of the magnetic field and improving the stimulation treatment effect.
[0051] Reference Figure 2 and Figure 3The transmission mechanism 6 includes a transmission motor 61, which is fixedly mounted on one of the two fixed supports 3. The output end of the transmission motor 61 is fixedly connected to a first spur gear 62, which is rotatably connected to the fixed support 3. A second spur gear 63 is meshed with one side of the first spur gear 62, which is rotatably connected to the fixed support 3. A third spur gear 64 is meshed with the side of the second spur gear 63 away from the first spur gear 62. The third spur gear 64 is rotatably sleeved on the central shaft 5. A threaded sleeve 66 is fixedly connected to the third spur gear 64, which is threaded onto the central shaft 5. The threaded sleeve 66 is rotatably connected to a fixed plate 65, which is fixedly mounted on the support beam 11. A linkage mechanism 7 is installed at the end of the threaded sleeve 66 away from the third spur gear 64.
[0052] When the transmission mechanism 6 is working, the transmission motor 61 drives the first spur gear 62 to rotate clockwise. The clockwise rotation of the first spur gear 62 drives the second spur gear 63 to rotate counterclockwise. The counterclockwise rotation of the second spur gear 63 drives the third spur gear 64 to rotate clockwise. The clockwise rotation of the third spur gear 64 drives the threaded sleeve 66 to rotate clockwise. The clockwise rotation of the threaded sleeve 66 moves the central shaft 5 along its axial direction towards the lower-spinning magnet 24, thereby improving the stimulation and therapeutic effect. After treatment, the transmission motor 61 drives the first spur gear 62 to rotate counterclockwise. The counterclockwise rotation of the first spur gear 62 drives the second spur gear 63 to rotate clockwise. The clockwise rotation of the second spur gear 63 drives the third spur gear 64 to rotate counterclockwise. The counterclockwise rotation of the third spur gear 64 drives the threaded sleeve 66 to rotate counterclockwise. The counterclockwise rotation of the threaded sleeve 66 moves the central shaft 5 away from the lower-spinning magnet 24 along its axial direction, reducing the magnetic field stimulation or ending the treatment.
[0053] Reference Figure 4 , Figure 5 and Figure 6The linkage mechanism 7 includes a first linkage component 71, to which a second linkage component 72 is connected. The first linkage component 71 includes a rotating plate 711, which is fixedly connected to the end of the threaded sleeve 66 away from the third spur gear 64. The rotating plate 711 is provided with a plurality of evenly distributed sliding grooves 712, and a sliding rod 713 is slidably connected in each of the plurality of sliding grooves 712. A toothed sector plate 714 is fixedly connected to the end of the sliding rod 713 away from the sliding groove 712. The end of the toothed sector plate 714 away from the sliding rod 713 is rotatably connected to the mounting bracket 716. The plurality of toothed sector plates 714 can together form a complete gear. The mounting bracket 716 is rotatably connected to the connecting bracket 715, which is fixedly mounted on the device bracket 1. A second linkage assembly 72 is installed on the connecting frame 715. The second linkage assembly 72 includes two symmetrically arranged first linkage spur gears 722. The two first linkage spur gears 722 are respectively meshed on both sides of a gear composed of several toothed sector plates 714. The two first linkage spur gears 722 are respectively fixedly sleeved on the rotating shaft 721. A second linkage spur gear 723 is fixedly sleeved at the end of the rotating shaft 721 away from the first linkage spur gears 722. A transmission chain 724 is meshed on the second linkage spur gear 723. Two symmetrically arranged third transmission spur gears are meshed on both ends of the transmission chain 724. The symmetrically arranged third transmission spur gears are rotatably connected to the rotating plate 711. Rollers 7210 abut against the sides of the two symmetrically arranged transmission chains 724 that are close to each other. The rollers 7210 are rotatably connected to the rotating plate 711. Guide rods 726 are fixedly installed on two symmetrically arranged transmission chains 724. The guide rods 726 are slidably connected in guide grooves 728, which are formed on telescopic connecting plates 727. One end of the telescopic connecting plate 727 is slidably connected to a slide rail 729, which is fixedly installed on the support vertical beam 12. A transcranial coil tap 8 is ball-jointed to the end of the telescopic connecting plate 727 away from the slide rail 729.
[0054] When the linkage mechanism 7 is working, the threaded sleeve 66 rotates, causing the rotating plate 711 to rotate. The rotation of the rotating plate 711 causes the sliding rod 713 to slide within the slide groove 712. The sliding rod 713 causes the toothed sector plate 714 to rotate. Several toothed sector plates 714 rotate together to form a gear and mesh with the first linkage spur gear 722. The first linkage spur gear 722 rotates under the drive of the toothed sector plate 714. The rotation of the first linkage spur gear 722 causes the rotating shaft 721 to rotate. The rotation of the rotating shaft 721 causes the second linkage spur gear 723 to rotate. The rotation of the second linkage spur gear 723 causes the transmission chain 724 to rotate. The rotation of the transmission chain 724 causes the guide rod 726 to move horizontally. The movement of the guide rod 726 causes the telescopic connecting plate 727 to move within the slide rail 729. The movement of the telescopic connecting plate 727 causes the transcranial coil tapping 8 to reciprocate and adjust, increasing the intensity of the magnetic field stimulation treatment.
[0055] The implementation principle of a transcranial magnetic stimulation (TMS) bed for treating insomnia according to an embodiment of this application is as follows: When treating a patient with the TMS bed, the patient first lies on the bed 2 with the treatment area placed on the lower magnetic magnet 24. Then, the transmission mechanism 6 is activated, which drives the upper magnetic magnet 51 to move closer to the lower magnetic magnet 24. Simultaneously, the transmission mechanism 6 drives the linkage mechanism 7, causing the transcranial coil tapping 8 to reciprocate, improving the treatment effect and increasing the magnetic field stimulation treatment area. At the same time, the rotary motor 23 drives the lower magnetic magnet 24 to rotate, and the rotation of the lower magnetic magnet 24, under the action of magnetic force, drives the upper magnetic magnet 51 to rotate, realizing the rotation of the magnetic field and improving the stimulation treatment effect.
[0056] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A transcranial magnetic stimulation bed for treating insomnia, characterized in that: The device includes a support frame (1), which includes a support beam (11). Two symmetrically arranged support beams (12) are fixedly connected to both ends of the support beam (11). A bed (2) is installed between the ends of the two support beams (12) away from the support beam (11). A rotary motor (23) is fixedly installed on the bed (2), and a downward rotating magnet (24) is fixedly installed on the rotary motor (23). Two symmetrically arranged fixed supports (3) are fixedly installed on the end of the support beam (11) away from the lower rotating magnet (24). A guide rail (4) is fixedly installed on one of the two fixed supports (3). A sliding plate (41) is slidably connected on the guide rail (4). A central shaft (5) is fixedly connected on the sliding plate (41). The central shaft (5) is disposed through the bottom of the support beam (11). An upper rotating magnet (51) is rotatably sleeved on the end of the central shaft (5) away from the fixed support (3). Another fixed support (3) is equipped with a transmission mechanism (6) for driving the central shaft (5) to rotate; A linkage mechanism (7) is also sleeved on the central axis (5), and two transcranial coil taps (8) are symmetrically installed at both ends of the linkage mechanism (7); The linkage mechanism (7) includes a first linkage component (71), which is mounted on the central axis (5). A second linkage component (72) is symmetrically mounted on both sides of the first linkage component (71). The second linkage component (72) is mounted on the device bracket (1). A transcranial coil flap (8) is ball-hinged on the second linkage component (72). The first linkage assembly (71) includes a rotating plate (711), which is rotatably sleeved on one end of the central shaft (5) near the lower rotating magnet (24). A threaded sleeve (66) is fixedly connected to the rotating plate (711). Several evenly distributed sliding grooves (712) are provided on the rotating plate (711). Sliding rods (713) are slidably connected in each of the several sliding grooves (712). The several sliding rods (713) are respectively fixedly installed on several toothed fan plates (714). The ends of the several toothed fan plates (714) away from the sliding rods (713) are rotatably connected to the mounting frame (716). The mounting frame (716) is rotatably connected to the connecting frame (715). The connecting frame (715) is fixedly installed on the device bracket (1). The second linkage assembly (72) includes two symmetrically arranged rotating shafts (721). The two rotating shafts (721) are symmetrically rotatably connected to both ends of the connecting frame (715) near the support vertical beam (12). A first linkage spur gear (722) is fixedly sleeved on one end of the two rotating shafts (721) near the connecting frame (715). A second linkage spur gear (723) is fixedly sleeved on one end of the two rotating shafts (721) away from the first linkage spur gear (722). The second linkage spur gear (723) is meshed and sleeved on the transmission chain (724). Two third linkage spur gears (725) are symmetrically meshed and sleeved at both ends of the transmission chain (724). The transmission chain (724) is fixedly connected to a guide rod (726) at one end away from the rotating shaft (721), and a telescopic connecting plate (727) is slidably connected to the other end of the guide rod (726) away from the transmission chain (724). The two symmetrically arranged telescopic connecting plates (727) are each provided with guide grooves (728), and the guide rod (726) is slidably connected in the guide grooves (728); The two symmetrically arranged telescopic connecting plates (727) are slidably connected at opposite ends to the slide rail (729), which is fixedly installed on the support vertical beam (12); Two symmetrically arranged telescopic connecting plates (727) are spherically hinged at one end to a transcranial coil tap (8).
2. The transcranial magnetic stimulation bed for treating insomnia according to claim 1, characterized in that: The transmission mechanism (6) includes a transmission motor (61), which is fixedly mounted on one of the fixed supports (3). A first spur gear (62) is fixedly connected to the transmission motor (61), and a second spur gear (63) is meshed on one side of the first spur gear (62). Both the first spur gear (62) and the second spur gear (63) are rotatably connected to the fixed support (3). The second spur gear (63) is meshed with a third spur gear (64) on the side away from the first spur gear (62), and the third spur gear (64) is sleeved on the central shaft (5); A fixing plate (65) is fixedly installed on the crossbeam (11) of the support. A threaded sleeve (66) is rotatably connected through the fixing plate (65). The threaded sleeve (66) is engaged with the central shaft (5). A third spur gear (64) is fixedly connected to one end of the threaded sleeve (66) near the sliding plate (41).
3. The transcranial magnetic stimulation bed for treating insomnia according to claim 1, characterized in that: The two symmetrically arranged transmission chains (724) abut against a roller (7210) on their side, and the roller (7210) is rotatably connected to the connecting frame (715).
4. The transcranial magnetic stimulation bed for treating insomnia according to claim 1, characterized in that: When the upper rotating magnet (51) and the lower rotating magnet (24) rotate, they can generate a uniformly stable rotating magnetic field, which is used for stimulation therapy; A stable and uniform pulsed magnetic field can be generated between the two transcranial coil beats (8), and the pulsed magnetic field is used for stimulation therapy.
5. The transcranial magnetic stimulation bed for treating insomnia according to claim 1, characterized in that: The bottom of the support beam (12) and the bottom of the bed (2) are provided with several evenly distributed support pads (9).
6. The transcranial magnetic stimulation bed for treating insomnia according to claim 1, characterized in that: The bed frame (2) includes a support base (21), which is fixedly installed between two symmetrically arranged support beams (12). A downward-spinning magnet (24) is fixedly installed on the support base (21), and a bed support frame (22) is slidably installed on the support base (21).
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