Oxygen supply intervention system for assisting hyperxia movement

By designing limiting holes, pipe clamps, and alarm components, the problem of oxygen pipe interference during exercise in oxygen supply equipment has been solved, enabling users to have a safe and stable high-oxygen exercise experience.

CN224113133UActive Publication Date: 2026-04-14POLYSHENGKANG (BEIJING) BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing oxygen supply equipment can easily interfere with the user's movements during exercise, causing the frame to tilt and affecting exercise safety.

Method used

The bellows is limited by the limiting hole, the first pipe clamp, and the guide pipe. Combined with the sliding plate and alarm component, the position of the sliding plate is detected. When the sliding distance is too large, an alarm is triggered to prevent the frame from tipping over.

Benefits of technology

It effectively avoids the oxygen tube interfering with the user's exercise, ensures the stability of the frame, improves exercise safety, and the height of the corrugated tube can be adjusted to accommodate different heights.

✦ Generated by Eureka AI based on patent content.

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Abstract

The oxygen supply intervention system comprises a rack, an oxygen bottle, an airflow control valve, a corrugated pipe, an oxygen mask, a first square pipe, a limiting plate, a limiting hole, a second square pipe and a sliding assembly, a mounting table is arranged at the top of the second square pipe, a rotating plate is rotatably arranged on the mounting table, and a sliding plate is horizontally and slidably arranged on the rotating plate; an alarm assembly is arranged on the sliding plate, an opening is formed in the sliding plate, a first pipe clamp is arranged in the opening, a mounting rod is horizontally arranged on one side of the rotating plate, and a guide pipe is arranged at the end, away from the rotating plate, of the mounting rod. The corrugated pipe is limited through the limiting hole, the first pipe clamp and the guide pipe, so that the corrugated pipe droops from the upper portion of the front side of the user to be connected with the oxygen mask, the situation that when the corrugated pipe is accidentally pulled by interfering with movement actions of the user, the first pipe clamp and the sliding plate move is avoided, and when the alarm assembly detects that the sliding distance of the sliding plate is large, the alarm assembly reminds the user.
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Description

Technical Field

[0001] This utility model relates to the field of oxygen supply equipment technology, and more specifically, to an oxygen supply intervention system that assists in hyperoxia exercise. Background Technology

[0002] Oxygen supply equipment refers to devices used to provide oxygen, widely used in medical, high-altitude acclimatization, and sports and fitness fields. During exercise, some users utilize oxygen supply equipment to inhale oxygen to meet the muscles' oxygen demands. During exercise, muscles require a large amount of oxygen to produce energy, and oxygen supply equipment can increase the oxygen content in the blood, thereby delaying muscle fatigue and improving endurance. Furthermore, in high-intensity exercise, a sufficient oxygen supply can help muscles recover faster and maintain high-intensity output.

[0003] Currently, when using oxygen supply equipment for oxygen inhalation, the device is usually placed next to the exercise equipment, and the user inhales oxygen by wearing an oxygen mask. However, the oxygen tubing is often quite long and not fixed in place, extending upwards from the side to connect to the oxygen mask. This can easily interfere with the user's movements or cause pulling during exercise. When pulling occurs, it can easily cause the machine frame to tilt, affecting the safety of the exercise. Utility Model Content

[0004] To address the aforementioned issues, this invention provides an oxygen supply intervention system to assist in hyperoxia exercise. The system uses a limiting hole, a first clamp, and a guide tube to limit the corrugated pipe, allowing it to hang down from above the user's front side and connect to the oxygen mask. This prevents interference with the user's movement. If the corrugated pipe is accidentally pulled, the first clamp and sliding plate move. When the alarm component detects a large sliding distance of the sliding plate, it alerts the user.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] An oxygen supply intervention system for assisting hyperoxia exercise includes a frame, an oxygen cylinder housed within the frame, an airflow control valve connected to the oxygen cylinder on the frame, a bellows connected to the output end of the airflow control valve, an oxygen mask connected to the end of the bellows away from the airflow control valve, a first square tube vertically mounted on the top of the frame, a plurality of limiting plates vertically spaced on the outer wall of the first square tube, limiting holes for the bellows to pass through on the limiting plates, a second square tube vertically slidably mounted inside the first square tube, a sliding assembly for driving the second square tube to slide inside the first square tube, a mounting platform on the top of the second square tube, a rotating plate rotatably mounted on the mounting platform, a sliding plate horizontally slidably mounted on the rotating plate, an alarm assembly for detecting the position of the sliding plate on the sliding plate, an opening on the sliding plate, a first pipe clamp for fixing the bellows within the opening, a mounting rod horizontally mounted on one side of the rotating plate, a guide tube mounted on the end of the mounting rod away from the rotating plate.

[0007] By adopting the above technical solution, a first square tube, a second square tube, a sliding assembly, a sliding plate, and an alarm assembly are installed. When oxygen inhalation is needed, the frame is placed in front of the exercise equipment, and an oxygen mask is worn. The corrugated tube is limited by the limiting hole, the first tube clamp, and the guide tube, allowing it to hang down from above the user's front and connect to the oxygen mask, avoiding interference with the user's movements. During exercise, if the corrugated tube is accidentally pulled, it will move the first tube clamp and the sliding plate. The alarm assembly detects the position of the sliding plate. When the sliding plate slides a large distance, the alarm assembly alerts the user, preventing excessive pulling that could cause the frame to tilt and tip over, ensuring the user's safety. The sliding assembly adjusts the position of the second square tube and the rotating plate, allowing the height of the corrugated tube to be adjusted according to the user's height.

[0008] In one embodiment of this utility model, two upright plates are spaced apart on the rotating plate. Each upright plate has a circular hole. Four sliding rods are arranged between the two upright plates in a rectangular array. Four sliding holes are formed on the sliding plate, and these holes are slidably connected to the corresponding sliding rods. The upright plates and sliding rods are provided to further ensure the stability of the sliding plate.

[0009] In one embodiment of this utility model, a compression spring is sleeved on the slide rod located between the sliding plate and the upright plate adjacent to the mounting rod.

[0010] By adopting the above technical solution, a compression spring is fitted on the slide rod. When the user moves, the bellows is pulled, causing the slide plate to slide. After the user stops pulling, the compression spring pushes the slide plate back to its original position under the action of elasticity.

[0011] In one embodiment of the present invention, the alarm component includes a mounting base disposed on a rotating plate, an infrared distance sensor disposed on the side of the mounting base adjacent to the sliding plate, and a controller and an alarm light disposed on the rotating plate.

[0012] The system consists of a mounting base, an infrared distance sensor, a controller, and an alarm light. The infrared distance sensor detects the distance between the sliding plate and the sensor and transmits this data to the controller. When the sliding plate moves too far, causing the distance detected by the infrared distance sensor to be equal to or less than a set danger value, the controller illuminates the alarm light to alert the user.

[0013] In one embodiment of the present invention, the sliding assembly includes a threaded rod vertically rotatably disposed inside a first square tube, the lower end of the threaded rod being rotatably connected to the frame, and a connecting block being disposed at the bottom of the second square tube, the connecting block being helically connected to the threaded rod through a threaded hole.

[0014] By setting up a threaded rod and a connecting block, when the threaded rod rotates, it drives the connecting block to move along the length of the threaded rod, thereby causing the second square tube to slide.

[0015] In one embodiment of this utility model, a worm gear is fixedly sleeved at the lower end of the threaded rod, and a worm is rotatably disposed inside the first square tube. The worm cooperates with the worm gear, and one end of the worm passes through the first square tube and is provided with a crank handle.

[0016] This invention incorporates a worm gear, a worm, and a crank handle. Turning the crank handle causes the worm to rotate, which in turn causes the worm gear to rotate, thus rotating the threaded rod.

[0017] In one embodiment of this utility model, the length of the threaded rod is less than the length of the first square tube, and a baffle is provided at the upper end of the threaded rod.

[0018] In one embodiment of this utility model, a second pipe clamp is provided on the side of the rotating plate away from the mounting rod, and the second pipe clamp has the same shape as the first pipe clamp. The second pipe clamp can further limit the movement of the corrugated pipe.

[0019] In one embodiment of the present invention, the first pipe clamp includes a lower clamp seat, on which an upward-opening U-shaped groove is provided. An upper clamp seat is hinged to the lower clamp seat. A slot is provided on one side of the lower clamp seat. A buckle is provided on the upper clamp seat corresponding to the slot. A retaining plate is provided in both the U-shaped groove and the bottom of the upper clamp seat.

[0020] By setting up the lower clamp, upper clamp, slot, and buckle, when it is necessary to adjust the length of the corrugated tube reserved between the sliding plate and the oxygen mask, move the buckle to separate it from the slot, then rotate the upper clamp, and then slide the corrugated tube upward from the U-shaped groove to adjust the corrugated tube.

[0021] In one embodiment of this utility model, the bottom of the frame is provided with four rectangular array of universal wheels equipped with brakes.

[0022] The beneficial effects of this utility model are:

[0023] This invention, by incorporating a first square tube, a second square tube, a sliding assembly, a sliding plate, and an alarm assembly, allows the frame to be placed in front of the exercise equipment when oxygen inhalation is needed. With an oxygen mask worn, the corrugated tube is positioned via a limiting hole, a first tube clamp, and a guide tube, allowing it to hang down from above the user's front and connect to the oxygen mask, thus avoiding interference with the user's movements. During exercise, if the corrugated tube is accidentally pulled, it causes the first tube clamp and the sliding plate to move. The alarm assembly detects the position of the sliding plate; if the sliding plate slides too far, the alarm alerts the user, preventing excessive pulling that could cause the frame to tilt and tip over, ensuring user safety. The sliding assembly adjusts the position of the second square tube and the rotating plate, allowing the height of the corrugated tube to be adjusted according to the user's height. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0025] Figure 2 This is a schematic diagram of the internal structure of the second square tube of this utility model;

[0026] Figure 3 This is a structural schematic diagram of the mounting platform and sliding plate of this utility model;

[0027] Figure 4 This is a structural schematic diagram of the first pipe clamp of this utility model.

[0028] Reference numerals: 10-Frame; 11-Oxygen cylinder; 12-Airflow control valve; 13-Bellwall; 14-Oxygen mask; 15-Wheel caster; 20-First square tube; 21-Limiting plate; 22-Limiting hole; 23-Second square tube; 24-Mounting platform; 30-Sliding assembly; 31-Threaded rod; 32-Connecting block; 33-Worm gear; 34-Worm; 35-Crank handle; 36-Baffle; 40-Rotating plate; 41-Sliding... Plate; 42-Opening; 43-First pipe clamp; 431-Lower clamp; 432-U-shaped groove; 433-Upper clamp; 434-Slot; 435-Snap; 436-Clamping plate; 44-Mounting rod; 45-Guide tube; 46-Upright plate; 47-Round hole; 48-Slide rod; 49-Compression spring; 50-Alarm assembly; 51-Mounting base; 52-Infrared distance sensor; 53-Controller; 54-Alarm light; 60-Second pipe clamp. Detailed Implementation

[0029] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0030] like Figure 1-4 As shown, an oxygen supply intervention system for assisting hyperoxia exercise includes a frame 10, a first square tube 20, a second square tube 23, a sliding assembly 30, and an alarm assembly 50. An oxygen cylinder 11 is housed within the frame 10. An airflow control valve 12 connected to the oxygen cylinder 11 is mounted on the frame 10. A bellows 13 is connected to the output end of the airflow control valve 12, and an oxygen mask 14 is connected to the end of the bellows 13 furthest from the airflow control valve 12. When oxygen inhalation is required, the frame 10 is placed in front of the exercise equipment, and the oxygen mask 14 is worn. The first square tube 20 is vertically positioned at the top of the frame 10. Several limiting plates 21 are vertically spaced on the outer wall of the first square tube 20, with limiting holes 22 for the bellows 13 to pass through and for limiting its movement. The second square tube 23 is vertically slidably positioned within the first square tube 20. The sliding assembly 30 is located within the first square tube 20 and is used to drive the second square tube 23 to slide.

[0031] A mounting platform 24 is provided on the top of the second square tube 23. A rotating plate 40 is rotatably mounted on the mounting platform 24, and a sliding plate 41 is horizontally slidably mounted on the rotating plate 40. An alarm component 50 is mounted on the sliding plate 41 to detect the position of the sliding plate 41. An opening 42 is provided on the sliding plate 41, and a first pipe clamp 43 is provided in the opening 42 to fix the corrugated tube 13. A mounting rod 44 is horizontally mounted on one side of the rotating plate 40, and a guide tube 45 is provided at the end of the mounting rod 44 away from the rotating plate 40. The limiting hole 22, the first pipe clamp 43, and the guide tube 45 limit the corrugated tube 13, so that the corrugated tube 13 hangs down from the upper front of the user and connects to the oxygen mask 14, avoiding interference with the user's movement.

[0032] According to this invention, when the corrugated pipe 13 is accidentally pulled during movement, it causes the first pipe clamp 43 and the sliding plate 41 to move. The position of the sliding plate 41 is detected by the alarm component 50. When the sliding distance of the sliding plate 41 is large, the alarm component 50 reminds the user to avoid excessive pulling that could cause the frame 10 to tilt and fall, thus ensuring the user's safe movement. The sliding component 30 adjusts the position of the second square pipe 23 and the rotating plate 40, so that the height restriction of the corrugated pipe 13 can be adjusted according to the user's height. To facilitate the movement of the frame 10, four rectangular arrayed casters 15 with brakes are provided at the bottom of the frame 10.

[0033] Specifically, the sliding assembly 30 includes a threaded rod 31 and a connecting block 32. The threaded rod 31 is vertically rotatably disposed within the first square tube 20, and its lower end is rotatably connected to the frame 10. The connecting block 32 is disposed at the bottom of the second square tube 23 and is helically connected to the threaded rod 31 through a threaded hole. When the threaded rod 31 rotates, it drives the connecting block 32 to move along the length of the threaded rod 31, thereby driving the second square tube 23 to slide. A worm gear 33 is fixedly sleeved at the lower end of the threaded rod 31. A worm 34 is rotatably disposed within the first square tube 20, and the worm 34 cooperates with the worm gear 33. One end of the worm 34 is rotatably connected to the inner wall of the first square tube 20, and the other end passes through the first square tube 20 and is provided with a crank handle 35. Rotating the crank handle 35 drives the worm 34 to rotate, causing the worm gear 33 to rotate and driving the threaded rod 31 to rotate. The length of the threaded rod 31 is less than the length of the first square tube 20. A baffle 36 is provided at the upper end of the threaded rod 31. When the second square tube 23 rises and the connecting block 32 contacts the baffle 36, the baffle 36 limits the maximum height of the second square tube 23.

[0034] During setup, two upright plates 46 are spaced apart on the rotating plate 40. Each upright plate 46 has a circular hole 47. Four sliding rods 48 are arranged in a rectangular array between the two upright plates 46. Four sliding holes are formed on the sliding plate 41, and these holes are slidably connected to the corresponding sliding rods 48 to ensure the stability of the sliding plate 41. A compression spring 49 is fitted onto the sliding rod 48 located between the sliding plate 41 and the upright plate 46 adjacent to the mounting rod 44. One end of the compression spring 49 is connected to the sliding plate 41, and the other end is connected to the upright plate 46 adjacent to the mounting rod 44. When the user moves and pulls on the bellows 13, causing the sliding plate 41 to slide, the user stops pulling, and the compression spring 49 pushes the sliding plate 41 back to its original position under its elastic force.

[0035] Specifically, the alarm component 50 includes a mounting base 51 disposed on the rotating plate 40, specifically located on the plate body between the sliding plate 41 and the upright plate 46 adjacent to the mounting rod 44. An infrared distance sensor 52 is disposed on the side of the mounting base 51 adjacent to the sliding plate 41. A controller 53 and an alarm light 54 are also disposed on the rotating plate 40. The infrared distance sensor 52 detects the distance data between the sliding plate 41 and the infrared distance sensor 52 and transmits it to the controller 53. When the sliding plate 41 slides a large distance, causing the distance data detected by the infrared distance sensor 52 to be equal to or less than the set danger value, the controller 53 illuminates the alarm light 54 to alert the user.

[0036] In a specific configuration, a second pipe clamp 60 is provided on the side of the rotating plate 40 away from the mounting rod 44. The second pipe clamp 60 has the same shape as the first pipe clamp 43, further limiting the corrugated pipe 13. The first pipe clamp 43 includes a lower clamp seat 431, on which a U-shaped groove 432 with an opening 42 facing upwards is provided. An upper clamp seat 433 is hinged to the lower clamp seat 431. A slot 434 is provided on one side of the lower clamp seat 431. A buckle 435 is provided on the upper clamp seat 433 corresponding to the slot 434. A retaining plate 436 is provided in both the U-shaped groove 432 and the bottom of the upper clamp seat 433. When it is necessary to adjust the length of the corrugated pipe 13 reserved between the sliding plate 41 and the oxygen mask 14, the buckle 435 is moved to separate the buckle 435 from the slot 434. Then, the upper clamp seat 433 is rotated, and the corrugated pipe 13 is slid upwards from the U-shaped groove 432 to adjust the corrugated pipe 13.

[0037] During installation, the bellows 13 is first connected to the output end of the airflow control valve 12, and then the other end is sequentially passed through the limiting hole 22, the second clamp 60, the first clamp 43, and the guide tube 45 before being connected to the oxygen mask 14. The second clamp 60 and the first clamp 43 secure the bellows 13. The bellows 13 between the output end of the airflow control valve 12 and the second clamp 60 is in a contracted state. When the second square tube 23 rises, this section of the bellows 13 is stretched. The bellows 13 between the second clamp 60 and the first clamp 43 is also in a contracted state. When the sliding plate 41 slides, this section of the bellows 13 is stretched.

[0038] The working principle of this invention's oxygen supply intervention system for assisting hyperoxia exercise is as follows:

[0039] When oxygen inhalation is needed, place the frame 10 in front of the exercise equipment. Then, turn the crank handle 35 to rotate the worm gear 34, causing the worm wheel 33 to rotate and drive the threaded rod 31 to rotate. This causes the connecting block 32, the second square tube 23, and the rotating plate 40 to rise, adjusting the height of the guide tube 45 relative to the bellows 13 according to the user's height. Next, put on the oxygen mask 14. The bellows 13 hangs down from above the user's front and connects to the oxygen mask 14 to avoid interfering with the user's movements. During exercise, if the bellows 13 is accidentally pulled, it will cause the first tube clamp 43 and the sliding plate 41 to move. When the distance data detected by the infrared distance sensor 52 is equal to or less than the set danger value, the controller 53 will illuminate the alarm light 54 to alert the user.

[0040] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.

Claims

1. An oxygen supply intervention system for assisting hyperoxia exercise, comprising a frame (10), wherein an oxygen cylinder (11) is disposed within the frame (10), an airflow control valve (12) connected to the oxygen cylinder (11) is disposed on the frame (10), a bellows (13) is connected to the output end of the airflow control valve (12), and an oxygen mask (14) is connected to the end of the bellows (13) away from the airflow control valve (12), characterized in that, The frame (10) has a first square tube (20) vertically arranged at the top. Several limiting plates (21) are vertically spaced on the outer wall of the first square tube (20). Each limiting plate (21) has a limiting hole (22) for the corrugated pipe (13) to pass through. A second square tube (23) is vertically slidably arranged inside the first square tube (20). A sliding assembly (30) for driving the second square tube (23) to slide is arranged inside the first square tube (20). A mounting platform (24) is provided at the top of the second square tube (23). 4) A rotating plate (40) is rotatably mounted on the rotating plate (40), and a sliding plate (41) is horizontally slidably mounted on the rotating plate (40). An alarm component (50) for detecting the position of the sliding plate (41) is mounted on the sliding plate (41). An opening (42) is opened on the sliding plate (41), and a first pipe clamp (43) for fixing the corrugated pipe (13) is provided in the opening (42). An installation rod (44) is horizontally mounted on one side of the rotating plate (40), and a guide tube (45) is provided at the end of the installation rod (44) away from the rotating plate (40).

2. The oxygen supply intervention system according to claim 1, characterized in that, The rotating plate (40) is provided with two upright plates (46) spaced apart. The upright plates (46) are provided with round holes (47). Four sliding rods (48) are provided between the two upright plates (46). The four sliding rods (48) are arranged in a rectangular array. The sliding plate (41) is provided with four sliding holes. The sliding holes are slidably connected to the corresponding sliding rods (48).

3. The oxygen supply intervention system according to claim 2, characterized in that, The slide bar (48) is located between the sliding plate (41) and the upright plate (46) adjacent to the mounting rod (44), and a compression spring (49) is sleeved on the rod body.

4. The oxygen supply intervention system according to claim 2, characterized in that, The alarm assembly (50) includes a mounting base (51) disposed on the rotating plate (40), an infrared distance sensor (52) is disposed on the side of the mounting base (51) near the sliding plate (41), and a controller (53) and an alarm light (54) are also disposed on the rotating plate (40).

5. The oxygen supply intervention system according to claim 1, characterized in that, The sliding assembly (30) includes a threaded rod (31) that is vertically rotatably disposed in the first square tube (20). The lower end of the threaded rod (31) is rotatably connected to the frame (10). A connecting block (32) is provided at the bottom of the second square tube (23). The connecting block (32) is helically connected to the threaded rod (31) through a threaded hole.

6. The oxygen supply intervention system according to claim 5, characterized in that, The lower end of the threaded rod (31) is fixedly fitted with a worm gear (33), and a worm (34) is rotatably installed inside the first square tube (20). The worm (34) cooperates with the worm gear (33), and one end of the worm (34) passes through the first square tube (20) and is provided with a crank handle (35).

7. The oxygen supply intervention system according to claim 5, characterized in that, The length of the threaded rod (31) is less than the length of the first square tube (20), and a baffle (36) is provided at the upper end of the threaded rod (31).

8. The oxygen supply intervention system according to claim 1, characterized in that, A second pipe clamp (60) is provided on the side of the rotating plate (40) away from the mounting rod (44), and the second pipe clamp (60) has the same shape as the first pipe clamp (43).

9. The oxygen supply intervention system according to claim 8, characterized in that, The first pipe clamp (43) includes a lower clamp seat (431), the lower clamp seat (431) has an upward-facing U-shaped groove (432) on the lower clamp seat (431), an upper clamp seat (433) is hinged to the lower clamp seat (431), a slot (434) is provided on one side of the lower clamp seat (431), and a buckle (435) is provided on the upper clamp seat (433) corresponding to the slot (434). A retaining plate (436) is provided in both the U-shaped groove (432) and the bottom of the upper clamp seat (433).

10. The oxygen supply intervention system according to claim 1, characterized in that, The bottom of the frame (10) is provided with four rectangular array of casters (15) with brakes.