Low-intensity deep vibration source pressure reduction glowing instrument
By designing a low-intensity deep vibration source decompression and gas discharge of leg airbags, the problems of head collision and leg clamping during use by the elderly are solved, and safety is improved.
Patent Information
- Application Number
- CN202510356391.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2025-06-27
AI Technical Summary
When using a low-intensity deep vibration source decompression regeneration device, if you need to get up during the treatment, it is easy to ignore closing the device and lifting the hood, which will lead to head collisions or clamping of the airbags on the legs, increasing the risk of falling.
A low-intensity deep vibration source pressure-reducing regeneration instrument is designed, which has the functions of automatic hood lifting and gas discharge of the airbag in the legs. Through the elderly's subconscious action of holding the movable plate, the movable column moves, changes the connection state of the connecting tube, and realizes automatic hood lifting and gas discharge of the airbag.
It effectively prevents the head of the elderly from colliding with the hood when they get up, and avoids falling down caused by clamping the airbags on their legs, improving the safety of the elderly when using the rejuvenation device.
Smart Images

Figure CN120203988A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of massage sleep-promoting devices, and particularly to a low-intensity deep vibration source decompression and energy rejuvenation instrument. Background Art
[0002] The low-intensity deep vibration source decompression and energy rejuvenation instrument is a multifunctional health device integrating rotary magnetic therapy, light source therapy and vibration massage, and realizes deep decompression and rejuvenation effects through the synergistic action of physical energies. Its core functions include: functions such as rotary magnetic therapy, light source therapy and vibration massage. It is equipped with a rotary magnetic field generator inside, and penetrates human tissues through a low-frequency alternating magnetic field (5-30 Hz) to promote local blood circulation and cell metabolism, relieve joint stiffness and neuropathic pain. It is equipped with a light-shielding cover. After the direction of the light-shielding cover, there are LEDs inside as the light source, a multi-band LED light therapy module, which uses 630 nm red light to promote collagen regeneration and 480 nm blue light to soothe inflammation, combines the vibration rhythm to intelligently adjust the light frequency, and assists in adjusting the circadian rhythm. At the same time, by adopting a non-linear elastic conduction structure, it outputs a 5-50 Hz low-frequency mechanical vibration wave, which acts on the muscle fascia layer to loosen deep adhesions and improve lactic acid metabolism. Moreover, airbags are provided on the legs for massage, which is especially suitable for elderly users. The synergistic action of rotary magnetism and low-frequency vibration can penetrate to the articular cartilage and deep muscles, relieve common geriatric diseases such as osteoarthritis and lumbar muscle strain, avoid drug dependence, improve microcirculation and sleep: magnetic field and light therapy stimulate microvascular dilation, improve the oxygen supply of peripheral blood oxygen, and cooperate with the soothing light frequency to synchronously regulate the secretion of melatonin, improving insomnia and limb numbness.
[0003] However, when the elderly use the energy rejuvenation instrument, if they need to get up midway through the treatment course, they often neglect to turn off the device and lift the upper light-shielding cover. When the elderly user gets up, it is easy for their head to collide with the light-shielding cover. Moreover, when getting up during the normal operation of the energy rejuvenation instrument, the airbag used for leg massage is still working. When the elderly get up, the leg airbag just clamps tightly, hindering leg movement and easily causing the elderly to fall and other situations. Summary of the Invention
[0004] The purpose of the present invention is to provide a low-intensity deep vibration source decompression and energy rejuvenation instrument, which has the advantage of automatically lifting the light-shielding cover during the process of the elderly getting up.
[0005] To achieve the above object, the present invention provides the following technical solution: A low-intensity deep vibration source decompression and energy rejuvenation instrument, comprising a chair body, a chair surface, a fixed cover, a light-shielding cover body, a control module, and a leg airbag body. Inside the chair body, there is a rotating magnetic massage component for implementing magnetic therapy. The rotating magnetic massage component includes a driving motor, a turntable, and magnets. The driving motor is bolted inside the chair body. The turntable is fixed to the output shaft of the driving motor. The number of magnets is several and they are distributed in an annular array on the surface of the turntable. An elastic material is also provided at the rear side of the chair surface. A fixed plate is also bolted inside the chair body, and a vibration motor is bolted to the surface of the fixed plate;
[0006] On both sides of the chair body, armrest side plates are bolted. At the bottom of the inner wall of the chair body, a storage box and an air pump are bolted. On both sides of the light-shielding cover body, rotating columns are bolted. The rotating columns are rotatably connected to the fixed cover. An auxiliary pad is also provided on the surface of the chair surface.
[0007] Preferably, it further includes a first control component. The first control component includes a first connecting pipe, a transverse cylinder, and a second connecting pipe. The conversion component includes a through groove opened inside the armrest side plate, and the through groove extends to the surface of the armrest side plate. The transverse cylinder is bolted inside the through groove. The number of transverse cylinders is two groups. A vertical pipe is connected to the top of the storage box in a communicating manner. A fourth solenoid valve is installed on the surface of the vertical pipe. The top end of the vertical pipe is connected to the first connecting pipe through a three-way interface. The number of first connecting pipes is two groups. One end of the first connecting pipe away from the vertical pipe is communicated with the transverse cylinder. One end of the second connecting pipe is communicated with the transverse cylinder. The other end of the second connecting pipe away from the transverse cylinder is connected to an inclined pipe through a three-way interface. An activity column is slidably connected to the inner wall of the transverse cylinder. A through hole is opened on one side of the surface of the activity column. The top end of the inclined pipe is connected to a third connecting pipe through a three-way interface. The third connecting pipe is located inside the fixed cover and is connected to a cylinder body in a communicating manner. On both sides above the surface of the chair body, round sleeves are bolted. The rotating column is rotatably connected to the inner wall of the round sleeve. A fixed sleeve is also bolted to one side of the round sleeve. A transmission gear is also bolted to the surface of the rotating column and inside the round sleeve. A rack is engaged with the top of the transmission gear. A first piston is slidably connected to the inner wall of the cylinder body. A first activity rod is bolted to one side of the first piston. The first activity rod extends to the outer end of the cylinder body and is bolted to a round plate, and the round plate is slidably connected to the inner wall of the fixed sleeve. The round plate and the rack are fixed to each other through a connecting rod. A first spring is fixed to one side of the round plate, and the other end of the first spring is fixed to the inner wall of the fixed sleeve.
[0008] Preferably, a groove for the rack to pass through is opened on the surface of the round sleeve.
[0009] Preferably, a round hole connecting to the inside of the through groove is also opened on the surface of the armrest side plate.
[0010] Preferably, it further includes a conversion component, which further includes a movable plate, a second spring, and a first transverse groove. The movable plate is slidably connected to the inner wall of the through groove. One end of the second spring is fixedly connected to the movable plate, and the other end of the second spring is fixedly connected to the inner wall of the through groove. The first transverse groove is formed on the surface of the movable column. A second transverse groove is also formed on the side of the movable column away from the first transverse groove. A connecting plate is also bolted to the bottom of the movable plate, and one side of the connecting plate is bolted to the movable column.
[0011] Preferably, a limiting block for cooperating with the movable plate is also bolted above the inside of the through groove.
[0012] Preferably, a pressure sensor is also bolted below the limiting block inside the through groove.
[0013] Preferably, it further includes an airbag control component, which includes a long tube, a second solenoid valve, and a discharge tube. One end of the long tube is communicated with the bottom of the cylinder body, and the other end of the long tube is communicated with the inlet end of the leg airbag body. The second solenoid valve is installed on the surface of the long tube. The discharge tube is communicated with the outlet end of the leg airbag body, and a third solenoid valve is installed on the surface of the discharge tube.
[0014] Preferably, it further includes a thrust component, which includes a communicating pipe, an inclined cylinder, a second movable rod, and a discharge pipe. The inclined cylinder is fixed inside the chair body. One end of the communicating pipe is communicated with the transverse cylinder, and the other end of the communicating pipe is also communicated with the inclined cylinder through a tee joint. The discharge pipe is also communicated with the inclined cylinder through a tee joint. A second piston is slidably connected to the inner wall of the inclined cylinder. One end of the second movable rod is bolted to the second piston, and the other end of the second movable rod is bolted to the back of the auxiliary pad.
[0015] Preferably, a first solenoid valve is also installed on the surface of the discharge pipe.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] 1. In the process of the elderly user getting up, by the action of subconsciously holding the movable plate with the hand as a stress point, the movable plate drives the movable column to move, changing the positions of the first transverse groove, the second transverse groove, and the through hole, so that the first connecting pipe and the second connecting pipe are no longer connected, but are connected to the communicating pipe, so that the first piston inside the cylinder body is no longer affected by air pressure. Combined with the cooperation of the first spring, the round plate, the rack, and the first movable rod move towards the cylinder body. The remaining air in the third connecting pipe, the inclined pipe, and the second connecting pipe can be discharged through the second transverse groove and will not become a resistance when the first piston returns to its original position. The rack drives the transmission gear and the rotating column to rotate, so that the light-shielding cover body is lifted together, preventing the head of the elderly user from colliding with the light-shielding cover body during the getting-up process.
[0018] 2. By opening the second solenoid valve and the third solenoid valve, and combining with the state where the first connecting pipe and the second connecting pipe are no longer connected, the present invention stops supplying gas to the leg airbag body, thereby discharging the remaining gas inside the leg airbag body, preventing the situation that the leg airbag body bulges and clamps the legs during the process of the elderly getting up, causing obstruction or even falling.
[0019] 3. By changing the position of the first transverse groove following the movement of the movable column, the present invention enables the first connecting pipe and the communicating pipe to communicate with each other. The gas supplied by the air pump and the storage tank then changes its path and enters the interior of the inclined cylinder, and pushes the second piston, the second movable rod and the auxiliary pad to move. The auxiliary pad pushes the back of the elderly user as a boost when getting up, facilitating the elderly to get up from the instrument. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 is a schematic structural diagram of the present invention;
[0021] Figure 2 is a schematic diagram of the present invention after removing the seat surface;
[0022] Figure 3 is a schematic internal structural diagram of the present invention;
[0023] Figure 4 is a schematic structural diagram of the rotary magnetic massage component of the present invention;
[0024] Figure 5 is a schematic diagram of the back of the seat surface of the present invention;
[0025] Figure 6 is a schematic diagram of the fixing cover and the light-shielding cover body of the present invention;
[0026] Figure 7 is a schematic partial structural diagram of the first control component of the present invention;
[0027] Figure 8 is a schematic diagram of the light-shielding cover body of the present invention;
[0028] Figure 9 is a sectional view of the cylinder body, the circular sleeve and the fixing sleeve of the present invention;
[0029] Figure 10 is a schematic diagram of the circular sleeve and the fixing sleeve of the present invention;
[0030] Figure 11 is a schematic diagram of the airbag control component of the present invention;
[0031] Figure 12 is a sectional view of the armrest side plate of the present invention;
[0032] Figure 13 For the present invention Figure 12 the enlarged schematic structural diagram at A;
[0033] Figure 14 This is the sectional view of the inclined cylinder in the present invention;
[0034] Figure 15 This is the partial structural schematic diagram of the conversion component and the first control component in the present invention;
[0035] Figure 16 This is the sectional view of the horizontal cylinder in the present invention;
[0036] Figure 17 This is the sectional view of the movable column in the present invention.
[0037] In the figure: 1, chair body; 2, chair surface; 3, fixed cover; 4, light-shielding cover body; 5, rotary magnetic massage component; 51, drive motor; 52, turntable; 53, magnet; 6, leg airbag body; 7, armrest side plate; 8, auxiliary pad; 9, elastic material; 10, fixing plate; 11, vibration motor; 12, storage box; 13, air pump; 14, control module; 15, rotating column; 16, first control component; 161, first connecting pipe; 162, horizontal cylinder; 163, second connecting pipe; 164, inclined pipe; 165, movable column; 166, through hole; 167, first piston; 168, first movable rod; 169, third connecting pipe; 1610, cylinder body; 1611, fixed sleeve; 1612, round sleeve; 1613, transmission gear; 1614, rack; 1615, first spring; 1616, round plate; 17, conversion component; 171, through groove; 172, movable plate; 173, second spring; 174, first horizontal groove; 175, second horizontal groove; 176, connecting plate; 177, limiting block; 178, pressure sensor; 179, round hole; 18, thrust component; 181, communicating pipe; 182, inclined cylinder; 183, second movable rod; 184, second piston; 185, discharge pipe; 186, first solenoid valve; 19, airbag control component; 191, long pipe; 192, second solenoid valve; 193, discharge pipe; 194, third solenoid valve; 20, vertical pipe; 21, fourth solenoid valve. Detailed implementation manners
[0038] 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 of 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.
[0039] Please refer to Figures 1 - 17, A low-intensity deep vibration source decompression and energy rejuvenation instrument, including a chair body 1, a chair surface 2, a fixed cover 3, a light-shielding cover body 4, a control module 14 and a leg airbag body 6. Inside the chair body 1, there is a rotary magnetic massage component 5 for implementing magnetic therapy. The rotary magnetic massage component 5 includes a drive motor 51, a turntable 52 and magnets 53. The drive motor 51 is bolted inside the chair body 1 to fix the motor. The turntable 52 is fixed to the output shaft of the drive motor 51. The number of magnets 53 is several and they are distributed in a circular array on the surface of the turntable 52. By turning on the drive motor 51 to drive the turntable 52 to rotate, the turntable 52 drives the magnets 53 on its surface to rotate, and magnetic therapy is implemented on the user through the rotating magnetic field. The control module 14 is the intelligent center in the energy rejuvenation instrument and plays a role in controlling the energy rejuvenation instrument itself. The control module 14 is used to control all electrical components inside the device. The control module 14 changes the frequency of the magnetic field change by controlling the rotation speed of the drive motor 51 to achieve different curative effects. There is also an elastic material 9 at the rear side of the chair surface 2. There is also a fixed plate 10 bolted inside the chair body 1. A vibration motor 11 is bolted to the surface of the fixed plate 10. The vibration motor 11 serves as the vibration source. The fixed plate 10 is adhesively bonded to the elastic material 9. The material of the elastic material 9 is a silicone composite layer material. The non-linearly arranged elastic materials such as the silicone composite layer are used to achieve non-linear attenuation and directional diffusion of vibration energy. The material of the fixed plate 10 is glass fiber-reinforced nylon, and its elastic modulus is 8 - 10 GPa, which is between that of metal and rubber, balancing fixation and vibration transmission, and having excellent fatigue resistance. Injection molding can design a snap structure and open holes for fixing the vibration motor 11 and fixing it to the chair body 1 through bolts. By turning on the vibration motor 11, the generated vibration is transmitted to the chair surface 2 through the fixed plate 10 and the elastic material 9 and then transmitted to the human body for contact to implement vibration. At the same time, the control module 14 is electrically connected to the vibration motor 11 to adjust the frequency of the vibration motor 11. Through the vibration and magnetic field of a specific frequency, the cell vitality in the human body is stimulated, thereby promoting the overall energy balance and self-healing ability of the body. The fixed cover 3 is fixed to the chair body 1. This energy rejuvenation instrument also includes a first control component 16, a thrust component 18 and a conversion component 17. Armrest side plates 7 are bolted to both sides of the chair body 1. A storage box 12 and an air pump 13 are bolted to the bottom of the inner wall of the chair body 1. The outlet end of the air pump 13 is connected to the storage box 12 through a pipeline. Rotating columns 15 are bolted to both sides of the light-shielding cover body 4, and the rotating columns 15 are rotatably connected to the fixed cover 3, enabling the light-shielding cover body 4 to rotate. A light source is provided inside the light-shielding cover body 4 during actual use. Irradiation therapy for pressure relief and sleep assistance is carried out through the amber spectrum with a specific wavelength of 590 - 620 nanometers. Biological clock regulation induction and mood calming are carried out through the blue spectrum irradiation with a wavelength of 400 - 460 nanometers. The generation of the light source is an existing technology and will not be described in detail here. There is also an auxiliary pad 8 on the surface of the chair surface 2 to help the user get up. The front surface of the auxiliary pad 8 and the chair surface 2 are both made of the same soft leather material.While the inner side closer to the chair body 1 is made of a metal plate material, a groove for accommodating the recycling of the auxiliary cushion 8 is also provided on the surface of the seat surface 2. In the non-moving state of the auxiliary cushion 8, the auxiliary cushion 8 can be integrated with the seat surface 2.,
[0040] The first control component 16 includes a first connecting pipe 161, a transverse cylinder 162 and a second connecting pipe 163. A through groove 171 is formed inside the armrest side plate 7 and extends to the surface of the armrest side plate 7. The transverse cylinder 162 is bolted to the inner side of the through groove 171. The number of transverse cylinders 162 is two groups, and one transverse cylinder 162 is arranged inside each group of armrest side plates 7. A vertical pipe 20 is connected and communicated with the top of the storage box 12. A fourth electromagnetic valve 21 is installed on the surface of the vertical pipe 20. The top end of the vertical pipe 20 is connected and communicated with the first connecting pipe 161 through a three-way interface. The number of the first connecting pipes 161 is two groups. One end of the first connecting pipe 161 far from the vertical pipe 20 is communicated with the transverse cylinder 162. One end of the second connecting pipe 163 is communicated with the transverse cylinder 162, and the other end of the second connecting pipe 163 far from the transverse cylinder 162 is connected and communicated with an inclined pipe 164 through a three-way interface. An activity column 165 is slidably connected to the inner wall of the transverse cylinder 162. The activity column 165 is in close fit with the inner wall of the transverse cylinder 162. A through hole 166 is formed on one side of the surface of the activity column 165. The top end of the inclined pipe 164 is connected and communicated with a third connecting pipe 169 through a three-way interface. The third connecting pipe 169 is located inside the fixed cover 3 and is connected and communicated with a cylinder body 1610. Circular sleeves 1612 are bolted on both sides above the surface of the chair body 1. The rotating column 15 is rotatably connected to the inner wall of the circular sleeve 1612. A fixed sleeve 1611 is also bolted on one side of the circular sleeve 1612. A transmission gear 1613 is bolted on the surface of the rotating column 15 and inside the circular sleeve 1612. A rack 1614 is engaged with the top of the transmission gear 1613. A groove for the rack 1614 to pass through is formed on the surface of the circular sleeve 1612 for the rack 1614 to move. A first piston 167 is slidably connected to the inner wall of the cylinder body 1610. A first movable rod 168 is bolted to one side of the first piston 167. The first movable rod 168 extends to the outer end of the cylinder body 1610 and is bolted with a circular plate 1616. The circular plate 1616 is slidably connected to the inner wall of the fixed sleeve 1611. The circular plate 1616 and the rack 1614 are fixed to each other through a connecting rod. A groove is formed on the surface of the fixed sleeve 1611 for the connection part of the circular plate 1616 and the rack 1614 to move. A first spring 1615 is fixed on one side of the circular plate 1616, and the other end of the first spring 1615 is fixed to the inner wall of the fixed sleeve 1611. When the inside of the cylinder body 1610 is in a non-ventilated state, the first spring 1615 is a compression spring. The reaction force of the first spring 1615 acts on the surface of the circular plate 1616. The circular plate 1616 drives the first movable rod 168 and the first piston 167 to move, so that the first piston 167 is located on the side of the cylinder body 1610 close to the third connecting pipe 169 inside the cylinder body 1610. At the same time, the rack 1614 is driven to move. The rack 1614 moves towards the side of the fixed sleeve 1611 close to the cylinder body 1610, which drives the transmission gear 1613 to rotate, thereby driving the rotating column 15 to rotate and making the light-shielding cover body 4 rotate upwards. When the device is idle, the light-shielding cover body 4 is in an open state, and the first spring 1615 is selected as a spring with a relatively large elastic force.The light-shielding cover body 4 is also made of lightweight plastic material so that the first spring 1615 can push the light-shielding cover body 4 to lift.
[0041] The conversion assembly 17 further includes a movable plate 172, a second spring 173 and a first transverse groove 174. The movable plate 172 is slidably connected to the inner wall of the through groove 171. One end of the second spring 173 is fixedly connected to the movable plate 172, and the other end of the second spring 173 is fixedly connected to the inner wall of the through groove 171. The first transverse groove 174 is formed on the surface of the movable column 165. A second transverse groove 175 is further formed on the side of the movable column 165 away from the first transverse groove 174. A connecting plate 176 is bolted to the bottom of the movable plate 172. One side of the connecting plate 176 is bolted to the movable column 165. The second spring 173 is a compression spring. In the non-working state, the reaction force of the second spring 173 acts on the surface of the movable plate 172 to make the movable plate 172 fit against the inner wall surface on the other side of the through groove 171. The movable plate 172 can drive the movable column 165 to move synchronously through the connecting plate 176, so that the through holes 166 of the movable column 165 are respectively aligned with the joints of the first connecting pipe 161 and the second connecting pipe 163 with the transverse cylinder 162, so that the first connecting pipe 161 and the second connecting pipe 163 are communicated with each other. At this time, a part of the second transverse groove 175 is located outside the transverse cylinder 162, while a part is located inside the transverse cylinder 162. During the experience of elderly users, first, they sit or lie on the seat of the energy conversion device, and then the control module 14 can control the air pump 13 to start. The outlet end of the air pump 13 is communicated with the storage tank 12 through a pipeline. The air pump 13 generates pressurized gas and enters the interior of the storage tank 12. Then, the fourth solenoid valve 21 is opened, and the gas enters the interior of the transverse cylinder 162 after passing through the vertical pipe 20 and the first connecting pipe 161, and then enters the interior of the cylinder body 1610 after passing through the through hole 166, the second connecting pipe 163, the inclined pipe 164 and the third connecting pipe 169, and pushes the first piston 167 and the first movable rod 168 to overcome the acting force from the first spring 1615, so that the first movable rod 168 drives the circular plate 1616 and the rack 1614 to move together. The rack 1614 moves away from the cylinder body 1610 and drives the transmission gear 1613 and the rotating column 15 to rotate, so that the light-shielding cover body 4 rotates downward to block the user's head.
[0042] The airbag control assembly 19 includes a long tube 191, a second solenoid valve 192, and a discharge pipe 193. One end of the long tube 191 communicates with the bottom of the cylinder body 1610, and the other end of the long tube 191 communicates with the inlet end of the leg airbag body 6. The second solenoid valve 192 is installed on the surface of the long tube 191. The discharge pipe 193 communicates with the outlet end of the leg airbag body 6, and a third solenoid valve 194 is installed on the surface of the discharge pipe 193. During the process of gas entering the interior of the cylinder body 1610 and pushing the first piston 167, previously the first piston 167 separated the two sides inside the cylinder body 1610, preventing the gas from directly entering the long tube 191. After the light shield body 4 is lowered, the first piston 167 is at one end of the interior of the cylinder body 1610 close to the fixed sleeve 1611. At this time, the gas can enter the interior of the long tube 191. Meanwhile, the control module 14 controls the second solenoid valve 192 to open, and the gas enters the interior of the leg airbag body 6 through the long tube 191, causing the leg airbag body 6 to bulge. Then the control module 14 controls the third solenoid valve 194 to open and the second solenoid valve 192 to close, and the gas is discharged after passing through the discharge pipe 193, and the leg airbag body 6 contracts. Then the second solenoid valve 192 opens and the third solenoid valve 194 closes, and the leg airbag body 6 bulges again. The leg airbag body 6 expands and contracts repeatedly to massage the user's legs. The operating principle of the leg airbag body 6 is only briefly summarized here. In the actual use process, it is also necessary to be equipped with a pressure sensor, etc. to implement a more comfortable and intelligent massage effect; at the same time, the drive motor 51 is turned on to drive the magnet 53 to rotate for magnetic therapy on the user, and the turning on of the vibration motor 11 can transmit vibration to the user's back to achieve decompression and sleep conditioning, balance the body's autonomic nerves, improve endocrine disorders and the efficiency of the internal circulation system, achieve the effects of physical and mental decompression and promoting sleep health, rejuvenate the body's functions, assist in achieving the user's physical and mental decompression, emotion regulation, sleep conditioning and physical and mental rehabilitation.
[0043] The thrust assembly 18 includes a connecting pipe 181, an inclined cylinder 182, a second movable rod 183, and a drain pipe 185. The inclined cylinder 182 is fixed inside the chair body 1. One end of the connecting pipe 181 communicates with the transverse cylinder 162. The connection between the connecting pipe 181 and the transverse cylinder 162 and the connection between the first connecting pipe 161 and the transverse cylinder 162 are on the same side. The other end of the connecting pipe 181 also communicates with the inclined cylinder 182 through a three-way interface. The drain pipe 185 also communicates with the inclined cylinder 182 through the same three-way interface. A second piston 184 is slidably connected to the inner wall of the inclined cylinder 182. One end of the second movable rod 183 is bolted to the second piston 184, and the other end of the second movable rod 183 is bolted to the back of the auxiliary pad 8. The back of the auxiliary pad 8 is a metal plate. A first solenoid valve 186 is also installed on the surface of the drain pipe 185. During the user's experience of the energy conversion device, when getting up without turning off the device itself, for example, some forgetful elderly people, when getting up, the first thing they subconsciously do is to grab or hold the stress point with their hands. The movable plate 172 exposed on the side of the armrest side plate 7 is the only option. When holding the movable plate 172 with the hand, the movable plate 172 will contract into the inside of the through groove 171, and then the second spring 173 is in a compressed state. A limit block 177 is also bolted above the inside of the through groove 171. Then the movable plate 172 contacts the limit block 177 and stops moving. The elderly person's hand holds the movable plate 172 and pulls the body to get up. A pressure sensor 178 is also bolted below the limit block 177 inside the through groove 171. The movable plate 172 contacts the pressure sensor 178 at the same time and transmits the detected signal to the control module 14. At the same time, when the movable plate 172 moves into the inside of the through groove 171, it can drive the connecting plate 176 and the movable column 165 to move together, so that the movable column 165 contracts into the inside of the transverse cylinder 162. At the same time, the through hole 166 moves away from the connection part between the first connecting pipe 161 and the second connecting pipe 163, so that the middle of the first connecting pipe 161 and the second connecting pipe 163 is disconnected, and the supply of air to the second connecting pipe 163, the inclined pipe 164, and the cylinder body 1610 is stopped. At the same time, the second transverse groove 175 contacts the end of the second connecting pipe 163 located in the transverse cylinder 162. At the same time, the length of the second transverse groove 175 is greater than the length of the first transverse groove 174, and the second transverse groove 175 is different from the first transverse groove 174. Part of the second transverse groove 175 is also located outside the transverse cylinder 162. At this time, the remaining air inside the second connecting pipe 163, the inclined pipe 164, the third connecting pipe 169, and the cylinder body 1610 passes through the third connecting pipe 169, the inclined pipe 164, the second connecting pipe 163, and then is discharged through the second transverse groove 175, preventing the remaining air inside the cylinder body 1610 from hindering the reset of the first piston 167. And at this time, the control module 14 controls the second solenoid valve 192 and the third solenoid valve 194 to be opened synchronously, and the remaining air inside the leg airbag body 6 and the long pipe 191 is discharged.The pressures on both sides inside the cylinder body 1610 are both normal pressures at this time. Under the action of the first spring 1615, the circular plate 1616, the first movable rod 168, and the first piston 167 are pushed to reset. At the same time, the rack 1614 moves towards the cylinder body 1610, thereby driving the transmission gear 1613 and the rotating column 15 to rotate, causing the upper light-shielding cover body 4 to rotate and lift upwards at the same time, preventing the head of the elderly from colliding with the light-shielding cover body 4 during the process of getting up. Moreover, after the gas in the leg airbag body 6 is discharged, it no longer bulges, preventing the leg airbag body 6 from bulging and clamping during the process of the elderly getting up and hindering the leg movement, resulting in the elderly falling or being injured and other situations.
[0044] When the head end of the second connecting pipe 163 is communicated with the outside of the transverse cylinder 162 through the second transverse groove 175, the remaining gas is discharged to the outside of the transverse cylinder 162 through the second transverse groove 175 and enters the through groove 171. A round hole 179 connecting the inside of the through groove 171 is also provided on the surface of the armrest side plate 7. The remaining gas is discharged through the round hole 179. The first transverse groove 174 on the other side of the movable column 165 approaches the head end of the first connecting pipe 161 due to the movement of the movable column 165, and connects the first connecting pipe 161 with the connecting pipe 181. Previously, the first connecting pipe 161 and the second connecting pipe 163 were communicated with each other through the through hole 166. At this time, the subsequent air supply inside the storage tank 12 enters the inside of the connecting pipe 181 after passing through the vertical pipe 20, the first connecting pipe 161, and the first transverse groove 174, and then enters the inside of the inclined cylinder 182, pushing the second piston 184 and the second movable rod 183 to move. The second movable rod 183 drives the auxiliary pad 8 to move, pushing the back of the elderly as the resistance to getting up. During the whole process, when the elderly get up, by holding the movable plate 172 as the force-bearing point of the hand, the movable plate 172 is driven to move, and the movable column 165 is moved, so that the first transverse groove 174, the second transverse groove 175, and the through hole 166 on its surface change positions, causing the first connecting pipe 161 and the second connecting pipe 163 to no longer be connected, but to be connected with the connecting pipe 181, serving as the power to assist in pushing the elderly to get up. Moreover, the light-shielding cover body 4 can also reset due to no longer supplying air, preventing the elderly from hitting their heads after getting up. At the same time, the leg airbag body 6 also stops working, preventing it from hindering the leg movement of the elderly; after the elderly get up, the movable plate 172 is no longer under pressure and resets. At the same time, the pressure sensor 178 is no longer in contact with the movable plate 172. After the control module 14 senses it, it stops driving the driving motor 51 and the vibration motor 11, and at the same time closes the fourth electromagnet 53 to stop supplying air, preventing the situation that the first connecting pipe 161 and the second connecting pipe 163 are reconnected due to the movable plate 172 resetting again and the gas pushing the light-shielding cover to descend again. The control module 14 can also synchronously control the first solenoid valve 186 to open, so that the pressurized gas inside the inclined cylinder 182 and the connecting pipe 181 is discharged through the discharge pipe 185, causing the second piston 184, the second movable rod 183, and the auxiliary pad 8 to reset under the action of gravity.
[0045] It should be noted that, in this document, 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, such 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 phrase "comprising a..." does not exclude the presence of additional identical elements in the process, method, article or device comprising said element.
[0046] 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 low-intensity deep vibration source decompression and energy-rejuvenation device, comprising a chair body (1), a chair seat (2), a fixed cover (3), a light shield body (4), a control module (14) and a leg airbag body (6), characterized in that: The chair body (1) is provided with a rotary magnetic massage component (5) for implementing magnetic therapy, and the rotary magnetic massage component (5) comprises a driving motor (51), a rotating disk (52) and a magnet (53). The driving motor (51) is bolted to the inside of the chair body (1), the rotating disk (52) and the output shaft of the driving motor (51) are fixed to each other, the number of the magnets (53) is several and they are distributed in a circular array on the surface of the rotating disk (52), the rear side of the chair surface (2) is also provided with an elastic material (9), the interior of the chair body (1) is also bolted with a fixing plate (10), and the surface of the fixing plate (10) is bolted with a vibration motor (11); The chair body (1) is bolted with armrest side panels (7) on both sides, the bottom of the inner wall of the chair body (1) is bolted with a storage box (12) and an air pump (13), the sunshade body (4) is bolted with a rotating column (15) on both sides, the rotating column (15) is rotatably connected to the fixed cover (3), and the surface of the chair surface (2) is also provided with an auxiliary pad (8).
2. A low-intensity deep vibration source decompression energy recovery device according to claim 1, characterized in that: The invention also includes a first control assembly (16), wherein the first control assembly (16) includes a first connecting pipe (161), a transverse tube (162) and a second connecting pipe (163); the conversion assembly (17) includes a through groove (171) opened inside the armrest side plate (7), wherein the through groove (171) extends to the surface of the armrest side plate (7); the transverse tube (162) is bolted to the inner side of the through groove (171); the number of the transverse tubes (162) is two groups; a vertical pipe (20) is connected to the top of the storage box (12); a fourth solenoid valve (21) is installed on the surface of the vertical pipe (20); and the vertical pipe (2 0) is connected to a first connecting pipe (161) at the top end thereof through a three-way interface. The number of the first connecting pipes (161) is two groups. One end of the first connecting pipe (161) away from the vertical pipe (20) is connected to a horizontal tube (162). One end of the second connecting pipe (163) is connected to the horizontal tube (162). The other end of the second connecting pipe (163) away from the horizontal tube (162) is connected to an inclined tube (164) through a three-way interface. A movable column (165) is slidably connected to the inner wall of the horizontal tube (162). A head through hole (166) is provided on one side of the surface of the movable column (165). The inclined tube (164) is connected to the inner wall of the horizontal tube (162). The top of the seat body (164) is connected to a third connecting pipe (169) through a three-way interface. The third connecting pipe (169) is located inside the fixed cover (3) and is connected to a cylinder (1610). Both sides above the surface of the chair body (1) are bolted with round sleeves (1612). The rotating column (15) is rotatably connected to the inner wall of the round sleeve (1612). A fixed sleeve (1611) is also bolted to one side of the round sleeve (1612). A transmission gear (1613) is also bolted to the surface of the rotating column (15) and located inside the round sleeve (1612). The top of the transmission gear (1613) is meshed with a rack (1614). ), the inner wall of the cylinder (1610) is slidably connected to a first piston (167), one side of the first piston (167) is bolted to a first movable rod (168), the first movable rod (168) extends to the outer end of the cylinder (1610) and is bolted to a circular plate (1616), and the circular plate (1616) is slidably connected to the inner wall of the fixed sleeve (1611), the circular plate (1616) and the rack (1614) are fixed to each other through a connecting rod, one side of the circular plate (1616) is fixed to a first spring (1615), and the other end of the first spring (1615) is fixed to the inner wall of the fixed sleeve (1611).
3. A low-intensity deep vibration source decompression energy recovery device according to claim 2, characterized in that: The surface of the circular sleeve (1612) is provided with a groove for the rack (1614) to pass through.
4. A low-intensity deep vibration source decompression energy recovery device according to claim 2, characterized in that: A circular hole (179) connected to the interior of the through groove (171) is also provided on the surface of the armrest side plate (7).
5. A low-intensity deep vibration source decompression energy recovery device according to claim 2, characterized in that: The invention also includes a conversion assembly (17), wherein the conversion assembly (17) further includes a movable plate (172), a second spring (173) and a first transverse groove (174); the movable plate (172) is slidably connected to the inner wall of the through groove (171); one end of the second spring (173) is fixed to the movable plate (172); the other end of the second spring (173) is fixed to the inner wall of the through groove (171); the first transverse groove (174) is formed on the surface of the movable column (165); a second transverse groove (175) is formed on a side of the movable column (165) away from the first transverse groove (174); a connecting plate (176) is bolted to the bottom of the movable plate (172); one side of the connecting plate (176) is bolted to the movable column (165).
6. A low-intensity deep vibration source decompression energy recovery device according to claim 5, characterized in that: A limiting block (177) for use with the movable plate (172) is bolted to the upper portion of the through slot (171).
7. A low-intensity deep vibration source decompression energy recovery device according to claim 6, characterized in that: A pressure sensor (178) is also bolted inside the through slot (171) and below the limit block (177).
8. The low-intensity deep vibration source decompression energy recovery device according to claim 2, characterized in that: It also includes an airbag control component (19), which includes a long tube (191), a second solenoid valve (192) and a discharge pipe (193). One end of the long tube (191) is interconnected with the bottom of the cylinder (1610), and the other end of the long tube (191) is interconnected with the inlet end of the leg airbag body (6). The second solenoid valve (192) is installed on the surface of the long tube (191), and the discharge pipe (193) is interconnected with the outlet end of the leg airbag body (6). A third solenoid valve (194) is installed on the surface of the discharge pipe (193).
9. A low-intensity deep vibration source decompression energy recovery device according to claim 2, characterized in that: The chair body (1) further comprises a thrust assembly (18), wherein the thrust assembly (18) comprises a connecting pipe (181), an inclined cylinder (182), a second movable rod (183) and a row pipe (185). The inclined cylinder (182) is fixed inside the chair body (1). One end of the connecting pipe (181) is in communication with the transverse cylinder (162). The other end of the connecting pipe (181) is in communication with the inclined cylinder (182) via a three-way interface. The row pipe (185) is in communication with the inclined cylinder (182) via a three-way interface. The inner wall of the inclined cylinder (182) is also slidably connected with a second piston (184). One end of the second movable rod (183) is bolted to the second piston (184). The other end of the second movable rod (183) is bolted to the back of the auxiliary pad (8).
10. A low-intensity deep vibration source decompression energy recovery device according to claim 9, characterized in that: A first solenoid valve (186) is also installed on the surface of the row pipe (185).
Citation Information
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