Lung function rehabilitation training device

By designing a pulmonary rehabilitation trainer with storage chambers, ventilation components and regulation mechanisms, the problem of insufficient regulation of existing equipment is solved, convenient delivery of gas and drugs and scientific regulation of training intensity is achieved, and the effect of rehabilitation training is improved.

CN223248719UActive Publication Date: 2025-08-22HANDAN SECOND HOSPITAL
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Patent Information

Application Number
CN202422367653.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2025-08-22
Estimated Expiration
2034-09-27

AI Technical Summary

Technical Problem

The existing lung function rehabilitation trainer has a fixed structure and is poorly regulated, which cannot adapt to the needs of different exercise intensity.

Method used

A pulmonary function rehabilitation training device including a storage box, ventilation assembly, training mechanism and regulation mechanism is designed. The ventilation mechanism facilitates the input and discharge of gas and drugs, the training mechanism facilitates observation of training conditions, and the regulation mechanism can adjust the training intensity.

Benefits of technology

It realizes convenient delivery of gas and drugs, reduces hypoxia and discomfort, and patients can undergo rehabilitation training rhythmically and scientifically adjust the training intensity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a lung function rehabilitation training device. The lung function rehabilitation training device comprises a storage box, a ventilation assembly, a training mechanism and an adjusting mechanism, the storage box comprises a shell, a carrying plate, a partition plate, a storage cavity, a storage cavity and a carrying plate, the partition plate is fixedly installed in the shell, and the partition plate divides the shell into the storage cavity and the storage cavity which are distributed up and down; and a carrying plate is fixedly mounted on the outer wall of the shell. According to the lung function rehabilitation training device, gas input and discharge and medicine conveying are facilitated, so that the possibility that a patient feels uncomfortable due to oxygen deficit in the using process is reduced, the patient can observe the training condition of himself or herself in the training process conveniently, and therefore the patient can conduct rehabilitation training rhythmically and regularly; and the strength of the patient during air blowing is changed, so that the training strength can be scientifically adjusted when the patient is trained.
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Description

Technical Field

[0001] The utility model relates to the field of medical rehabilitation products, in particular to a lung function rehabilitation training device. Background Art

[0002] The lungs are divided into five lobes, two on the left and three on the right. The lung meridian and lung system are connected to the throat and nose. A decline in lung function will affect a person's lifespan. Under normal circumstances, we can feel the disease in many organs of our body, but the lungs are a relatively silent organ. Generally, it is not easy to be discovered when the disease occurs. By the time it is discovered, the condition is usually already quite serious.

[0003] Pulmonary function rehabilitation can control inflammation, promote blood circulation and blood stasis, and promote the absorption of inflammatory factors through passive exercise. This approach is low-risk and easily accepted by patients. Active exercise can improve patients' ability to carry out daily activities, while muscle strength training, which mainly includes resistance training and respiratory function exercises, can enhance patients' physical fitness and promote recovery. However, existing pulmonary function rehabilitation trainers have a relatively fixed structure and poor adjustability, making it difficult to effectively set different exercise intensities.

[0004] Therefore, it is necessary to provide a clothes hanger for a pulmonary function rehabilitation trainer to solve the above technical problems. Utility Model Content

[0005] In order to solve the above technical problems, the utility model provides a lung function rehabilitation training device.

[0006] The pulmonary function rehabilitation training device provided by the present invention comprises: a storage box, a ventilation component, a training mechanism and an adjustment mechanism, the storage box comprises a shell, a partition plate, a storage cavity, a receiving cavity and a loading plate, the shell is fixedly installed with a partition plate, and the partition plate divides the shell into a storage cavity and a receiving cavity distributed up and down, the outer wall of the shell is fixedly installed with a loading plate, the ventilation component is installed on the shell, the training mechanism is installed in the shell, and the training mechanism comprises an input bottle, a cork, a compression spring, a piston, an injection tube, a liquid storage bottle, an L-shaped tube and a scale plate, the input bottle It is fixedly mounted on the upper surface of the partition plate, and two slidingly connected and symmetrically distributed wooden plugs are inserted into the top wall of the input bottle. The two wooden plugs are elastically connected to the upper surface of the piston through two compression springs, and the piston is mounted in the input bottle and slidingly connected to the inner bottle wall of the input bottle. The output port of the input bottle is communicated with the bottle mouth of the liquid storage bottle through the injection tube, and the liquid storage bottle is fixedly mounted on the inner bottom wall of the storage cavity. An L-shaped tube is fixedly connected to the outer side wall of the liquid storage bottle, and the L-shaped tube extends to the outside of the shell and is fixedly mounted with a scale plate. The adjustment mechanism is mounted on the shell.

[0007] Preferably, the ventilation assembly includes a blowing nozzle, an air inlet pipe and an exhaust pipe, the air inlet pipe is fixedly mounted on the top wall of the shell, and one end of the air inlet pipe extends to the interior of the input bottle, the air inlet end of the air inlet pipe is fixedly mounted with a blowing nozzle, and the exhaust pipe is fixedly mounted on the air inlet pipe and is interconnected with the air inlet pipe.

[0008] Preferably, the pulmonary function rehabilitation trainer according to the claim is characterized in that a ventilation mechanism is installed at the connection between the intake pipe and the exhaust pipe, and the ventilation mechanism includes a ventilation valve, a tension spring and a rotating pin, the ventilation valve is rotatably installed on the inner tube wall of the intake pipe through the rotating pin, and the outer wall of the ventilation valve is elastically connected to the inner tube wall of the intake pipe through a tension spring, and the tension spring is arranged at an angle.

[0009] Preferably, the adjustment mechanism includes a fixing plate, a limiting rod, an L-shaped plate, a sleeve rod, an adjusting nut, a support rod and a limiting slot, the L-shaped plate is fixedly mounted on two groups of wooden plugs, and the L-shaped plate passes through the limiting slot provided on the outer wall of the shell and extends to the outside of the shell, a circular through hole is provided on the L-shaped plate, the air intake pipe passes through the circular through hole, a sleeve rod is fixedly mounted on the upper surface of the L-shaped plate, and an adjusting nut is threadedly sleeved on the sleeve rod, the fixing plate is fixedly mounted on the outer wall of the shell, and a support rod is fixedly mounted on the bottom wall of the fixing plate, the support rod is inserted in the sleeve rod and is slidably connected to the sleeve rod, two groups of identical limiting rods are symmetrically distributed on both sides of the support rod, and two groups of limiting rods are fixedly mounted on the bottom wall of the fixing plate, the limiting rod is inserted in the L-shaped plate and is slidably connected to the L-shaped plate.

[0010] Preferably, the input bottle, liquid storage bottle and injection tube are all filled with compressed liquid.

[0011] Preferably, a floating ball is placed on the compressed liquid in the L-shaped tube.

[0012] Preferably, an atomizer is fixedly mounted on the upper surface of the carrier plate, and the ventilation pipe of the atomizer is connected to the air inlet pipe.

[0013] Compared with related technologies, the pulmonary function rehabilitation training device provided by the present invention has the following beneficial effects:

[0014] The utility model facilitates the input and discharge of gas and the delivery of medicine through the ventilation mechanism and the atomizer, thereby reducing the possibility of physical discomfort caused by lack of oxygen during use of the patient.

[0015] 2. The present invention facilitates patients to observe their own training status during training through the training mechanism, so that they can conduct rehabilitation training more rhythmically and regularly. The present invention enables patients to change the intensity of their blowing through the adjustment mechanism, so that patients can scientifically adjust the intensity of their training. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a structural schematic diagram of a preferred embodiment of a lung function rehabilitation training device provided by the utility model.

[0017] Figure 2 for Figure 1 Schematic diagram of the cross-sectional structure of the storage box shown.

[0018] Figure 3 for Figure 2 Schematic diagram of the enlarged structure at point A shown.

[0019] Figure 4 for Figure 2 Schematic diagram of the enlarged structure at point B shown.

[0020] Numbers in the figure: 1. Storage box, 11. Shell, 12. Partition plate, 13. Storage chamber, 14. Storage chamber, 15. Loading plate, 2. Ventilation assembly, 21. Blowing nozzle, 22. Inlet pipe, 23. Exhaust pipe, 3. Training mechanism, 31. Input bottle, 32. Cork, 33. Compression spring, 34. Piston, 35. Injection tube, 36. Liquid storage bottle, 37. L-shaped tube, 38. Scale plate, 4. Adjustment mechanism, 41. Fixed plate, 42. Limit rod, 43. L-shaped plate, 44. Sleeve rod, 45. Adjustment nut, 46. Support rod, 47. Limit groove, 5. Floating ball, 6. Compressed liquid, 7. Ventilation mechanism, 71. Vent valve, 72. Tension spring, 73. Rotating pin, 8. Atomizer. DETAILED DESCRIPTION

[0021] The present invention will be further described below with reference to the accompanying drawings and implementation examples.

[0022] Please refer to Figure 1 、 Figure 2 、 Figure 3 and Figure 4 ,in, Figure 1 This is a structural schematic diagram of a preferred embodiment of a pulmonary function rehabilitation training device provided by the present invention; Figure 2 for Figure 1 A schematic cross-sectional view of the storage box shown; Figure 3 for Figure 2 An enlarged structural diagram of point A is shown; Figure 4 for Figure 2 Schematic diagram of the enlarged structure at point B shown.

[0023] In the specific implementation process, Figure 1 and Figure 2As shown, the storage box 1 includes a shell 11, a partition plate 12, a storage cavity 13, a receiving cavity 14 and a loading plate 15. The partition plate 12 is fixedly installed in the shell 11, and the partition plate 12 divides the shell 11 into a storage cavity 13 and a receiving cavity 14 distributed upper and lower. The loading plate 15 is fixedly installed on the outer wall of the shell 11.

[0024] refer to Figure 2 and Figure 4 As shown, the ventilation assembly 2 is mounted on the shell 11, and the ventilation assembly 2 includes a blowing nozzle 21, an air inlet pipe 22 and an exhaust pipe 23. The air inlet pipe 22 is fixedly mounted on the top wall of the shell 11, and one end of the air inlet pipe 22 extends to the interior of the input bottle 31. The air inlet end of the air inlet pipe 22 is fixedly mounted with the blowing nozzle 21, and the exhaust pipe 23 is fixedly mounted on the air inlet pipe 22 and communicates with the air inlet pipe 22. A ventilation mechanism 7 is installed at the connection between the air inlet pipe 22 and the exhaust pipe 23, and the ventilation mechanism 7 includes a ventilation valve 71, a tension spring 72 and a rotating pin 73. The ventilation valve 71 is rotatably mounted on the inner tube wall of the air inlet pipe 22 through the rotating pin 73, and the outer wall of the ventilation valve 71 is elastically connected to the inner tube wall of the air inlet pipe 22 through the tension spring 72. The tension spring 72 is tilted. An atomizer 8 is fixedly mounted on the upper surface of the carrier plate 15, and the ventilation pipe of the atomizer 8 is communicated with the air inlet pipe 22.

[0025] It should be noted that: when the patient is undergoing pulmonary function rehabilitation training, he blows air into the blowing nozzle 21, so that the gas follows the inlet pipe 22 to the ventilation valve 71, and the ventilation valve 71 is stretched open due to the pressure of the blown gas. At this time, the ventilation valve 71 rotates to the mouth of the exhaust pipe 23 with the rotating pin 73 as the center of the circle and closes the exhaust pipe 23, and the tension spring 72 is in a stretched state. The blown gas enters the input bottle 31 along the inlet pipe 22. When the blowing stops and the inhalation is started, the tension spring 72 is recovered, driving the ventilation valve 71 to close the inlet pipe 22 again. At this time, the medicine and oxygen stored in the nebulizer 8 enter the inlet pipe 22 along the ventilation pipe and are inhaled into the respiratory tract by the patient, thereby facilitating the input and discharge of gas and the delivery of medicine, thereby reducing the possibility of the patient suffering from physical discomfort due to lack of oxygen during use.

[0026] refer to Figure 2As shown, the training mechanism 3 is installed in the housing 11, and the training mechanism 3 includes an input bottle 31, a wooden plug 32, a compression spring 33, a piston 34, an injection tube 35, a liquid storage bottle 36, an L-shaped tube 37 and a scale plate 38. The input bottle 31 is fixedly installed on the upper surface of the partition plate 12, and two slidingly connected and symmetrically distributed wooden plugs 32 are inserted into the top wall of the input bottle 31. The two wooden plugs 32 are elastically connected to the upper surface of the piston 34 through two compression springs 33, and the piston 34 is installed on the input bottle 31. The liquid storage bottle 36 is fixedly mounted on the inner bottom wall of the storage chamber 14. An L-shaped tube 37 is fixedly connected to the outer wall of the storage bottle 36. The L-shaped tube 37 extends to the outside of the shell 11 and is fixedly mounted with a scale plate 38. The input bottle 31, the liquid storage bottle 36 and the injection tube 35 are all filled with compressed liquid 6, and a floating ball 5 is placed on the compressed liquid 6.

[0027] It should be noted that: when the patient is undergoing rehabilitation training, the gas blown in along the air inlet pipe 22 enters the input bottle 31. As more gas is blown in, the gas pushes the piston 34 to move. At this time, the compression spring 33 is in a stretched state, and the piston 34 pushes the compressed liquid 6 in the input bottle 31 to move into the liquid storage bottle 36, thereby causing the compressed liquid 6 in the L-shaped tube 37 to rise. At this time, the floating ball 5 in the L-shaped tube 37 rises as the compressed liquid 6 in the L-shaped tube 37 rises, making it convenient for the patient to observe his or her training status during training, so that he or she can perform rehabilitation training more rhythmically and regularly. After the blowing is completed, the compression spring 33 begins to contract, pulling the piston 34 upward. At this time, the blown gas is discharged along the exhaust pipe 23, and the compressed liquid 6 in the L-shaped tube 37 drops and returns to the starting position.

[0028] refer to Figure 2 and Figure 3As shown, the adjustment mechanism 4 is mounted on the housing 11, and the adjustment mechanism 4 includes a fixing plate 41, a limiting rod 42, an L-shaped plate 43, a sleeve rod 44, an adjusting nut 45, a support rod 46 and a limiting groove 47. The L-shaped plate 43 is fixedly mounted on the two sets of wooden plugs 32, and the L-shaped plate 43 passes through the limiting groove 47 provided on the outer wall of the housing 11 and extends to the outside of the housing 11. A circular through hole is provided on the L-shaped plate 43, and the air intake pipe 22 passes through the circular through hole. A sleeve is fixedly mounted on the upper surface of the L-shaped plate 43. The sleeve rod 44 is provided with a threaded adjustment nut 45, the fixed plate 41 is fixedly mounted on the outer wall of the shell 11, and a support rod 46 is fixedly mounted on the bottom wall of the fixed plate 41, the support rod 46 is inserted into the sleeve rod 44 and is slidably connected to the sleeve rod 44, two groups of identical limit rods 42 are symmetrically distributed on both sides of the support rod 46, and two groups of limit rods 42 are fixedly mounted on the bottom wall of the fixed plate 41, the limit rods 42 are inserted into the L-shaped plate 43 and are slidably connected to the L-shaped plate 43.

[0029] It should be noted that: when the patient is undergoing rehabilitation training, the adjusting nut 45 is loosened and the depth of the support rod 46 inserted into the sleeve rod 44 is adjusted, thereby driving the L-shaped plate 43 to slide on the limit groove 47. By adjusting the height of the L-shaped plate 43, the height of the two sets of wooden plugs 32 is changed, so that the compression spring 33 drives the piston 34 to move, and the height of the piston 34 from the compression liquid 6 changes, thereby changing the strength of the patient's blowing, so that it is convenient for the patient to scientifically adjust the intensity of the training during training.

[0030] The working principle of the pulmonary function rehabilitation training device provided by the utility model is as follows:

[0031] When the patient is doing lung function rehabilitation training, he blows air toward the blowing nozzle 21, so that the air flows along the air inlet pipe 22 to the vent valve 71. The vent valve 71 is stretched open by the pressure of the blown air. At this time, the vent valve 71 rotates to the mouth of the exhaust pipe 23 with the rotating pin 73 as the center of the circle, and the exhaust pipe 23 is closed. The tension spring 72 is in a stretched state, and the blown air flows along the air inlet pipe 22 into the input bottle 31. When the blowing stops and the patient inhales, the tension spring 72 is retracted, driving the vent valve 71 to close the air inlet pipe 22 again. At this time, the medicine and oxygen stored in the nebulizer 8 enter the airway pipe 22 along the ventilation tube and are inhaled into the respiratory tract by the patient, thereby facilitating the input and discharge of gas and the delivery of medicine, thereby reducing the possibility of physical discomfort caused by lack of oxygen when the patient is in use. When the patient is undergoing rehabilitation training, the gas blown in along the airway pipe 22 enters the input bottle 31. As more gas is blown in, the gas pushes the piston 34 to move. At this time, the compression spring 33 is in a stretched state, and the piston 34 pushes the compression spring 33 in the input bottle 31. The compressed liquid 6 moves into the liquid storage bottle 36, thereby causing the compressed liquid 6 in the L-shaped tube 37 to rise. At this time, the floating ball 5 in the L-shaped tube 37 rises with the compressed liquid 6 in the L-shaped tube 37, so that it is convenient for the patient to observe his or her training status during training, so that he or she can perform rehabilitation training more rhythmically and regularly. After the blowing is completed, the compression spring 33 begins to contract, pulling the piston 34 to move upward. At this time, the blown gas is discharged along the exhaust pipe 23, and the compressed liquid 6 in the L-shaped tube 37 drops and returns to the starting position. When the patient performs rehabilitation training, the adjusting nut 45 is loosened and the depth of the support rod 46 inserted into the sleeve rod 44 is adjusted, thereby driving the L-shaped plate 43 to slide on the limit groove 47. By adjusting the height of the L-shaped plate 43, the height of the two sets of wooden plugs 32 is changed, so that the compression spring 33 drives the piston 34 to move, so that the height of the piston 34 from the compressed liquid 6 changes, thereby changing the strength of the patient's blowing, so that it is convenient for the patient to scientifically adjust the intensity of the training during training.

[0032] The above description is merely an embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made by using the contents of the description and drawings of the present invention, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.

Claims

1. A pulmonary function rehabilitation training device, characterized in that: include: A storage box (1), the storage box (1) comprising a shell (11), a partition plate (12), a storage cavity (13), a receiving cavity (14) and a loading plate (15), the shell (11) being fixedly mounted with the partition plate (12), and the partition plate (12) dividing the shell (11) into the storage cavity (13) and the receiving cavity (14) distributed in an upper and lower direction, and the loading plate (15) being fixedly mounted on the outer wall of the shell (11); A vent assembly (2), the vent assembly (2) being mounted on the housing (11); A training mechanism (3) is installed in a housing (11), and the training mechanism (3) includes an input bottle (31), a wooden plug (32), a compression spring (33), a piston (34), an injection tube (35), a liquid storage bottle (36), an L-shaped tube (37) and a scale plate (38), wherein the input bottle (31) is fixedly installed on the upper surface of the partition plate (12), and two slidingly connected and symmetrically distributed wooden plugs (32) are inserted into the top wall of the input bottle (31), and the two wooden plugs (32) are connected by two compression springs ( 33) is elastically connected to the upper surface of the piston (34), and the piston (34) is installed in the input bottle (31) and is slidably connected to the inner bottle wall of the input bottle (31), the output port of the input bottle (31) is communicated with the bottle mouth of the liquid storage bottle (36) through the injection tube (35), and the liquid storage bottle (36) is fixedly installed on the inner bottom wall of the storage cavity (14), and an L-shaped tube (37) is fixedly connected to the outer side wall of the liquid storage bottle (36), and the L-shaped tube (37) extends to the outside of the shell (11) and is fixedly installed with a scale plate (38); An adjusting mechanism (4), wherein the adjusting mechanism (4) is mounted on the housing (11).

2. The pulmonary function rehabilitation training device according to claim 1, characterized in that: The ventilation assembly (2) comprises a blowing nozzle (21), an air inlet pipe (22) and an exhaust pipe (23); the air inlet pipe (22) is fixedly mounted on the top wall of the housing (11), and one end of the air inlet pipe (22) extends into the interior of the input bottle (31); the air inlet end of the air inlet pipe (22) is fixedly mounted with the blowing nozzle (21); and the exhaust pipe (23) is fixedly mounted on the air inlet pipe (22) and is in communication with the air inlet pipe (22).

3. The pulmonary function rehabilitation training device according to claim 2, characterized in that: A ventilation mechanism (7) is installed at the connection between the intake pipe (22) and the exhaust pipe (23), and the ventilation mechanism (7) includes a ventilation valve (71), a tension spring (72) and a rotating pin (73). The ventilation valve (71) is rotatably installed on the inner tube wall of the intake pipe (22) through the rotating pin (73), and the outer wall of the ventilation valve (71) is elastically connected to the inner tube wall of the intake pipe (22) through the tension spring (72), and the tension spring (72) is arranged obliquely.

4. The pulmonary function rehabilitation training device according to claim 3, characterized in that: The regulating mechanism (4) comprises a fixing plate (41), a limiting rod (42), an L-shaped plate (43), a sleeve rod (44), an adjusting nut (45), a support rod (46) and a limiting groove (47), wherein the L-shaped plate (43) is fixedly mounted on the two sets of wooden plugs (32), and the L-shaped plate (43) passes through the limiting groove (47) provided on the outer wall of the shell (11) and extends to the outside of the shell (11), a circular through hole is provided on the L-shaped plate (43), and the air intake pipe (22) passes through the circular through hole, and a sleeve rod (44) is fixedly mounted on the upper surface of the L-shaped plate (43), and the sleeve The sleeve rod (44) is sleeved with an adjusting nut (45) connected by a thread, the fixing plate (41) is fixedly mounted on the outer wall of the housing (11), and a support rod (46) is fixedly mounted on the bottom wall of the fixing plate (41), the support rod (46) is inserted into the sleeve rod (44) and is slidably connected to the sleeve rod (44), two groups of identical limit rods (42) are symmetrically distributed on both sides of the support rod (46), and the two groups of limit rods (42) are fixedly mounted on the bottom wall of the fixing plate (41), and the limit rods (42) are inserted into the L-shaped plate (43) and are slidably connected to the L-shaped plate (43).

5. The pulmonary function rehabilitation training device according to claim 1, characterized in that: The input bottle (31), the liquid storage bottle (36) and the injection tube (35) are all filled with compressed liquid (6).

6. The pulmonary function rehabilitation training device according to claim 5, characterized in that: A floating ball (5) is placed on the compressed liquid (6) in the L-shaped tube (37).

7. The pulmonary function rehabilitation training device according to claim 1, characterized in that: An atomizer (8) is fixedly mounted on the upper surface of the carrier plate (15), and the ventilation pipe of the atomizer (8) is in communication with the air inlet pipe (22).