A micro-pressure oxygen chamber internal environment monitoring device

By introducing mobile components, rotating components and adjustment components into the micro-pressure oxygen chamber, the problem of fixed monitor position is solved, and flexible monitoring of the internal environmental parameters of the micro-pressure oxygen chamber is achieved, and data accuracy is improved.

CN119618459BActive Publication Date: 2025-08-12SHANDONG DIDESHANGYE LIFE SCI CO LTD
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Patent Information

Application Number
CN202411727539.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-28
Publication Date
2025-08-12
Estimated Expiration
2044-11-28

AI Technical Summary

Technical Problem

The installation location of the monitor in the existing micro-pressure oxygen chamber is fixed, resulting in limited monitoring areas and affecting the accuracy of data monitoring.

Method used

Design an internal environmental monitoring device for micro-pressure oxygen chambers. Through the coordination of mobile components, rotating components and adjustment components, the position of the monitor is flexibly adjusted to ensure the accurate monitoring of parameters such as pressure, oxygen concentration, humidity and gas flow inside the micro-pressure oxygen chamber.

Benefits of technology

The flexible position adjustment of the monitor inside the micro-pressure oxygen chamber is realized, and the accuracy of data monitoring is improved.

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Abstract

The present invention discloses a microcompression oxygen chamber internal environment monitoring device, which relates to the technical field of microcompression oxygen chamber internal environment monitoring, including multiple groups of monitors arranged inside the microcompression oxygen chamber body, a base fixed to the bottom of the microcompression oxygen chamber body, support pads fixed at the four corners of the lower end of the base, and a front hinge of the microcompression oxygen chamber body with a sealing door for covering the microcompression oxygen chamber body. During use of the microcompression oxygen chamber of the present invention, the internal pressure, oxygen concentration, humidity and gas flow of the microcompression oxygen chamber body are respectively monitored in real time by multiple groups of monitors. During the monitoring process, the monitoring position of the monitor is adjusted by the mutual cooperation of the moving component, the rotating component and the adjusting component, so that the position of each group of monitors when monitoring the pressure, oxygen concentration, humidity and gas flow inside the microcompression oxygen chamber body is relatively flexible, thereby ensuring the accuracy of the monitoring of each group of data inside the microcompression oxygen chamber.
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Description

Technical Field

[0001] The present invention relates to the technical field of micro-compression oxygen chamber internal environment monitoring, in particular to a micro-compression oxygen chamber internal environment monitoring device. Background Art

[0002] A micro-pressure oxygen chamber, also known as a micro-hyperbaric oxygen chamber, is a health device that simulates a specific oxygen concentration and atmospheric pressure within a sealed space. Its working principle is to increase the body's blood oxygen content and partial pressure, thereby increasing blood oxygen diffusion and effectively improving the body's hypoxic state.

[0003] In order to improve the effect of the microcompression oxygen chamber during use, multiple sets of monitors are needed to monitor the pressure, oxygen concentration, humidity and gas flow inside the microcompression oxygen chamber respectively. However, during the monitoring process, the installation position of each set of monitors is relatively fixed, resulting in a relatively limited monitoring area, which affects the accuracy of monitoring of each set of data inside the microcompression oxygen chamber. Therefore, we propose a microcompression oxygen chamber internal environment monitoring device. Summary of the Invention

[0004] The purpose of the present invention is to provide a micro-pressure oxygen chamber internal environment monitoring device to solve the problems raised in the above background technology.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a microcompression oxygen chamber internal environment monitoring device, comprising a plurality of monitors arranged inside a microcompression oxygen chamber body, a base fixed to the bottom of the microcompression oxygen chamber body, support pads fixed to the four corners of the lower end of the base, a front hinge of the microcompression oxygen chamber body having a sealed door for closing the microcompression oxygen chamber body, a reclining chair for a user to lie down provided inside the microcompression oxygen chamber body, and further comprising:

[0006] A movable plate is arranged inside the micro-compression oxygen chamber body, and a sliding component for assisting the sliding of the movable plate is arranged inside the micro-compression oxygen chamber body, and a movable component for assisting the movement of the movable plate is arranged between the movable plate and the interior of the micro-compression oxygen chamber body, the front side of the movable plate is connected to the mounting plate through multiple groups of connecting rods, the front side of the mounting plate is provided with a mounting disk, and the mounting plate is provided with a rotating component for rotating the mounting disk, and multiple groups of U-shaped frames are evenly distributed around the mounting disk, and each group of monitors is respectively arranged in a one-to-one correspondence with each group of U-shaped frames, and a mounting component for installing the monitor is provided on the U-shaped frame, and an adjustment component for adjusting the position of each group of U-shaped frames is provided on the mounting disk.

[0007] Preferably, the adjustment component includes an installation cavity opened inside the installation plate, multiple groups of skateboards are slidably connected to the installation plate, the U-shaped frame is fixed on one side of the skateboard, and the installation cavity is provided with a transmission component for transmitting each group of skateboards and a first guide component for guiding the skateboard during the transmission process.

[0008] Preferably, the transmission assembly includes a transmission disk rotatably connected to the inside of the mounting cavity, a plurality of groups of inclined grooves are provided on the transmission disk, each group of the inclined grooves is slidably connected to a group of transmission pins, one end of each group of transmission pins is fixed to each group of slides, a mounting shaft is rotatably connected to the mounting disk, the transmission disk is centrally fixed on the mounting shaft, and an installation motor for rotating the mounting shaft is installed on the outer side of the mounting disk.

[0009] Preferably, the first guide assembly includes fixed blocks fixed on both sides of the slide, and the two groups of fixed blocks are slidably connected with a first T-shaped rod, and one end of the first T-shaped rod is fixed to the inner wall of the installation cavity.

[0010] Preferably, the mounting assembly includes a pressure plate arranged on a U-shaped frame, a second guide assembly for guiding the pressure plate is provided on the U-shaped frame, a threaded sleeve is fixed on the U-shaped frame, a threaded rod is threadedly engaged with the threaded sleeve, one end of the threaded rod is rotatably connected to the pressure plate, and a drive pin is fixed to the other end of the threaded rod.

[0011] Preferably, the second guide assembly includes a plurality of guide holes provided on the U-shaped frame, a plurality of second T-shaped rods are slidably connected to the guide holes, and one end of each group of the second T-shaped rods is fixed to the pressure plate.

[0012] Preferably, the sliding assembly includes multiple groups of sliding grooves opened on the inner wall of the micro-compression oxygen chamber, each group of the sliding grooves is slidably connected to a sliding block, the cross-sections of the sliding grooves and the sliding blocks are both T-shaped, and the sliding blocks are fixed to the movable plate.

[0013] Preferably, the moving assembly includes a slot provided on a moving plate, a support frame is fixed on the moving plate, a rotating shaft is rotatably connected to the support frame, a gear is fixed on the rotating shaft, the gear is located on the inner side of the slot, an arc-shaped rack is fixed inside the micro-compression oxygen chamber body, the gear and the arc-shaped rack are meshed with each other, and an operating motor for driving the rotating shaft is installed on the support frame.

[0014] Preferably, the rotating assembly is rotatably connected to a connecting shaft on the mounting plate, one end of the connecting shaft is fixed to the mounting plate, a worm gear is fixed to the other end of the connecting shaft, a mounting bracket is fixed to the mounting plate, an operating shaft is rotatably connected to the mounting bracket, a worm is fixed to the operating shaft, the worm gear and the worm are meshed with each other, and the operating shaft and the rotating shaft are connected for transmission via a linkage assembly.

[0015] Preferably, the linkage assembly includes pulleys respectively fixed on the operating shaft and the rotating shaft, and the two groups of pulleys are connected and driven by belts.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] During use of the microcompression oxygen chamber of the present invention, multiple groups of monitors are used to monitor the internal pressure, oxygen concentration, humidity, gas flow, etc. of the microcompression oxygen chamber in real time. During the monitoring process, the monitoring positions of the monitors are adjusted by the mutual cooperation of the moving component, the rotating component, and the adjusting component, so that the positions of the various groups of monitors when monitoring the pressure, oxygen concentration, humidity, gas flow, etc. inside the microcompression oxygen chamber are relatively flexible, thereby ensuring the accuracy of the monitoring of various groups of data inside the microcompression oxygen chamber. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic diagram of the overall appearance structure of the present invention;

[0019] Figure 2 Schematic diagram of the internal structure of the micro-compression oxygen chamber of the present invention;

[0020] Figure 3 It is a schematic structural diagram of the sliding assembly of the present invention;

[0021] Figure 4 It is a schematic diagram of the structure of the mobile component of the present invention;

[0022] Figure 5 It is a schematic structural diagram of the rotating assembly and linkage assembly of the present invention;

[0023] Figure 6 It is a schematic structural diagram of the mounting assembly and the second guide assembly of the present invention;

[0024] Figure 7 It is a schematic structural diagram of the adjustment assembly and the first guide assembly of the present invention;

[0025] Figure 8 It is a schematic diagram of the transmission assembly structure of the present invention.

[0026] In the figure: 101, microbaric oxygen chamber body; 102, base; 103, support pad; 104, sealing door; 105, reclining chair; 106, monitor; 2, moving plate; 301, sliding groove; 302, sliding block; 401, slot; 402, support frame; 403, rotating shaft; 404, gear; 405, arc-shaped rack; 406, operating motor; 5, mounting plate; 6, connecting rod; 7, mounting plate; 801, connecting shaft; 802, worm gear; 803, mounting frame; 804, operating Assembling shaft; 805, worm; 901, pulley; 902, belt; 10, U-shaped frame; 1101, mounting cavity; 1102, slide plate; 1201, fixing block; 1202, first T-bar; 1301, transmission plate; 1302, inclined groove; 1303, transmission pin; 1304, mounting shaft; 1305, mounting motor; 1401, pressure plate; 1402, threaded sleeve; 1403, threaded rod; 1404, driving pin; 1501, guide hole; 1502, second T-bar. DETAILED DESCRIPTION

[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0028] Example 1

[0029] See also Figures 1-8 , a micro-compression oxygen chamber internal environment monitoring device shown in the figure includes multiple groups of monitors 106 arranged inside the micro-compression oxygen chamber body 101;

[0030] It is worth noting here that there are various types of monitors 106, which are used to monitor the internal pressure, oxygen concentration, humidity and gas flow of the micro-pressure oxygen chamber 101 in real time;

[0031] A base 102 is fixed to the bottom of the microcompression oxygen chamber body 101, and support pads 103 are fixed to the four corners of the lower end of the base 102. The front hinge of the microcompression oxygen chamber body 101 is used to cover the microcompression oxygen chamber body 101 with a sealed door 104. The interior of the microcompression oxygen chamber body 101 is provided with a recliner 105 for the user to lie down, and also includes:

[0032] A movable plate 2 is arranged inside the micro-compression oxygen chamber body 101, and a sliding component for assisting the sliding of the movable plate 2 is provided inside the micro-compression oxygen chamber body 101. A movable component for assisting the movement of the movable plate 2 is provided between the movable plate 2 and the interior of the micro-compression oxygen chamber body 101. The front side of the movable plate 2 is connected to the mounting plate 5 by multiple groups of connecting rods 6. The front side of the mounting plate 5 is provided with a mounting disk 7. The mounting plate 5 is provided with a rotating component for rotating the mounting disk 7. Multiple groups of U-shaped frames 10 are evenly distributed around the mounting disk 7. Each group of monitors 106 is respectively arranged in a one-to-one correspondence with each group of U-shaped frames 10. A mounting component for installing the monitor 106 is provided on the U-shaped frame 10, and an adjusting component for adjusting the position of each group of U-shaped frames 10 is provided on the mounting disk 7;

[0033] It should be noted here that: during the use of the microcompression oxygen chamber, the internal pressure, oxygen concentration, humidity and gas flow of the microcompression oxygen chamber body 101 are monitored in real time through multiple groups of monitors 106. During the monitoring process, the monitoring position of the monitors 106 is adjusted through the mutual cooperation of the moving components, the rotating components and the adjusting components, so that the position of each group of monitors 106 when monitoring the pressure, oxygen concentration, humidity and gas flow inside the microcompression oxygen chamber body 101 is relatively flexible, thereby ensuring the accuracy of the monitoring of each group of data inside the microcompression oxygen chamber.

[0034] Preferably, the adjustment assembly includes a mounting cavity 1101 provided inside the mounting disk 7, multiple groups of slides 1102 are slidably connected to the mounting disk 7, the U-shaped frame 10 is fixed to one side of the slide 1102, and the mounting cavity 1101 is provided with a transmission assembly for transmitting each group of slides 1102 and a first guide assembly for guiding the slide 1102 during transmission; the transmission assembly includes a transmission disk 1301 rotatably connected to the inside of the mounting cavity 1101, multiple groups of inclined grooves 1302 are provided on the transmission disk 1301, each group of inclined grooves 1302 is slidably connected to each group of transmission pins 1303, one end of each group of transmission pins 1303 is respectively fixed to each group of slides 1102, a mounting shaft 1304 is rotatably connected to the mounting disk 7, the transmission disk 1301 is centrally fixed on the mounting shaft 1304, and an installation motor 1305 for rotating the mounting shaft 1304 is installed on the outer side of the mounting disk 7;

[0035] It should be noted here that: by installing the motor 1305, the installation shaft 1304 is driven to rotate, and during the rotation of the installation shaft 1304, the transmission disk 1301 is driven to rotate. During the rotation of the transmission disk 1301, each group of inclined grooves 1302 interacts with each group of transmission pins 1303 to drive each slide plate 1102 to move. During the movement of the slide plate 1102, the sliding guiding effect of the fixed block 1201 and the first T-bar 1202 causes the slide plates 1102 to move closer to or away from each other after being subjected to force. Through the movement of each group of slide plates 1102, the monitors 106 installed on each group of U-shaped frames 10 are driven to move synchronously, and the monitoring position of the monitor 106 is further adjusted.

[0036] Preferably, the first guide assembly includes fixed blocks 1201 fixed on both sides of the slide 1102, and the two sets of fixed blocks 1201 are slidably connected to the first T-shaped rod 1202, and one end of the first T-shaped rod 1202 is fixed to the inner wall of the installation cavity 1101;

[0037] It should be noted here that the fixed block 1201 and the first T-shaped rod 1202 can be used to guide the movement of the slide plate 1102 after it is subjected to force.

[0038] Preferably, the mounting assembly includes a pressing plate 1401 provided on the U-shaped frame 10, a second guide assembly for guiding the pressing plate 1401 is provided on the U-shaped frame 10, a threaded sleeve 1402 is fixed on the U-shaped frame 10, a threaded rod 1403 is threadedly engaged with the threaded sleeve 1402, one end of the threaded rod 1403 is rotatably connected to the pressing plate 1401, and a driving pin 1404 is fixed to the other end of the threaded rod 1403;

[0039] It should be noted here that: the monitor 106 is placed on the U-shaped frame 10 and is against the inner side of the U-shaped frame 10. After the monitor 106 is placed against the inner side, the threaded rod 1403 is driven to rotate by the driving pin 1404. During the rotation of the threaded rod 1403, the mutual engagement transmission between the threaded rod 1403 and the threaded sleeve 1402 causes the pressure plate 1401 to move. During the movement of the pressure plate 1401, the sliding guiding effect of the guide hole 1501 and the second T-shaped rod 1502 causes the pressure plate 1401 to move toward the monitor 106 placed against the inner side and against the monitor 106, thereby completing the installation and fixation of the monitor 106.

[0040] Preferably, the second guide assembly includes a plurality of guide holes 1501 formed on the U-shaped frame 10, wherein a plurality of second T-shaped rods 1502 are slidably connected to the guide holes 1501, and one end of each second T-shaped rod 1502 is fixed to the pressing plate 1401;

[0041] It should be noted here that the guide hole 1501 cooperates with the second T-shaped rod 1502 to facilitate sliding guidance of the pressure plate 1401 after it is subjected to force.

[0042] Preferably, the sliding assembly includes a plurality of groups of sliding grooves 301 provided on the inner wall of the micro-compression oxygen chamber body 101, and a sliding block 302 is slidably connected to each group of sliding grooves 301, and the cross-sections of the sliding grooves 301 and the sliding block 302 are both T-shaped, and the sliding block 302 is fixed to the movable plate 2; the movable assembly includes a slot 401 provided on the movable plate 2, a support frame 402 is fixed on the movable plate 2, a rotating shaft 403 is rotatably connected to the support frame 402, a gear 404 is fixed on the rotating shaft 403, the gear 404 is located inside the slot 401, an arc-shaped rack 405 is fixed inside the micro-compression oxygen chamber body 101, the gear 404 and the arc-shaped rack 405 are meshed with each other, and an operating motor 406 for driving the rotating shaft 403 is installed on the support frame 402;

[0043] It should be noted here that: the rotating shaft 403 is driven to rotate by operating the motor 406. During the rotation of the rotating shaft 403, the mutual meshing transmission between the gear 404 and the arc-shaped rack 405 and the sliding guiding effect of the sliding block 302 and the sliding groove 301 are used to move the movable plate 2 after being subjected to force. During the movement of the movable plate 2, the connection transmission effect between the connecting rod 6 and the mounting plate 5 drives the mounting plate 7 and the monitor 106 fixed on the four sides of the mounting plate 7 to move inside the micro-compression oxygen chamber body 101, so as to facilitate flexible monitoring of different positions inside the micro-compression oxygen chamber body 101.

[0044] Preferably, the rotating assembly is rotatably connected to a connecting shaft 801 on the mounting plate 5, one end of the connecting shaft 801 is fixed to the mounting plate 7, a worm gear 802 is fixed to the other end of the connecting shaft 801, a mounting bracket 803 is fixed to the mounting plate 5, an operating shaft 804 is rotatably connected to the mounting bracket 803, a worm 805 is fixed to the operating shaft 804, the worm gear 802 and the worm 805 are meshed with each other, and the operating shaft 804 is connected to the rotating shaft 403 through a linkage assembly for transmission;

[0045] It should be noted here that: during the movement of the movable plate 2, the connection transmission between the belt 902 and the two sets of pulleys 901 drives the operating shaft 804 to rotate, and during the rotation of the operating shaft 804, the worm 805 is driven to rotate. During the rotation of the worm 805, the mutual engagement transmission between the worm 805 and the worm wheel 802 drives the connecting shaft 801 and the mounting disk 7 at one end of the connecting shaft 801 to rotate. Through the rotation of the mounting disk 7, each group of monitors 106 can adjust the monitoring position during the monitoring process.

[0046] Preferably, the linkage assembly includes pulleys 901 fixed on the operating shaft 804 and the rotating shaft 403 respectively, and the two sets of pulleys 901 are connected and transmitted via a belt 902;

[0047] It should be noted here that: during the movement of the movable plate 2 , the operating shaft 804 is driven to rotate through the connection transmission between the belt 902 and the two sets of pulleys 901 .

[0048] In this solution: A micro-pressure oxygen chamber internal environment monitoring device includes the following steps:

[0049] During the use of the microbaric oxygen chamber, multiple groups of monitors 106 are respectively installed on each group of U-shaped frames 10 through the installation components. During the installation of the monitors 106, the monitors 106 are placed on the U-shaped frame 10 and abutted against the inner side of the U-shaped frame 10. After the abutment is placed, the threaded rod 1403 is driven to rotate by the driving pin 1404. During the rotation of the threaded rod 1403, the mutual engagement transmission between the threaded rod 1403 and the threaded sleeve 1402 causes the pressing plate 1401 to move. During the movement of the pressing plate 1401, the sliding guide effect of the guide hole 1501 and the second T-shaped rod 1502 causes the pressed plate 1401 to move toward the abutted monitor 106 and abut against the monitor 106, thereby completing the installation and fixation of the monitor 106.

[0050] After the monitors 106 are installed and fixed, the internal pressure, oxygen concentration, humidity and gas flow of the micro-compression oxygen chamber body 101 are respectively monitored in real time by multiple groups of monitors 106. During the monitoring process, the rotating shaft 403 is driven to rotate by operating the motor 406. During the rotation of the rotating shaft 403, the mutual meshing transmission between the gear 404 and the arc-shaped rack 405 and the sliding guiding effect of the sliding block 302 and the sliding groove 301 are used to move the movable plate 2 after being subjected to force. During the movement of the movable plate 2, the connection and transmission effect between the connecting rod 6 and the mounting plate 5 drive the mounting plate 7 and the monitors 106 fixed on the four sides of the mounting plate 7 to move inside the micro-compression oxygen chamber body 101, so as to flexibly monitor different positions inside the micro-compression oxygen chamber body 101.

[0051] In the process of movement of the movable plate 2, the connection transmission between the belt 902 and the two sets of pulleys 901 drives the operating shaft 804 to rotate. In the process of rotation of the operating shaft 804, the worm 805 is driven to rotate. In the process of rotation of the worm 805, the mutual meshing transmission between the worm 805 and the worm wheel 802 drives the connecting shaft 801 and the mounting disk 7 at one end of the connecting shaft 801 to rotate. The rotation of the mounting disk 7 facilitates the adjustment of the monitoring position of each group of monitors 106 during the monitoring process. In the process of the monitor 106 monitoring the internal environment of the micro-pressure oxygen chamber body 101, the mounting shaft 1304 is driven to rotate by the mounting motor 1305. In the process of rotation of the mounting shaft 1304, the transmission disk 1301 is driven to rotate. During the rotation of the transmission disk 1301, each group of inclined slots 1302 interacts with each group of transmission pins 1303 to drive each slide plate 1102 to move. During the movement of the slide plate 1102, the sliding guide function of the fixed block 1201 and the first T-bar 1202 causes the slide plates 1102 to move towards or away from each other after being subjected to force. Through the movement of each group of slide plates 1102, the monitors 106 installed on each group of U-shaped frames 10 are driven to move synchronously, and the monitoring position of the monitors 106 is further adjusted, so that the position of each group of monitors 106 when monitoring the pressure, oxygen concentration, humidity and gas flow inside the micro-compression oxygen chamber body 101 is relatively flexible, thereby ensuring the accuracy of monitoring each group of data inside the micro-compression oxygen chamber.

[0052] It should be noted that, in this document, relational terms such as first and second, etc., are used only 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 "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0053] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A micro-pressure oxygen chamber internal environment monitoring device, comprising: A plurality of monitors (106) are arranged inside a microcompression oxygen chamber body (101); a base (102) is fixed to the bottom of the microcompression oxygen chamber body (101); support pads (103) are fixed at the four corners of the lower end of the base (102); a front hinge of the microcompression oxygen chamber body (101) is provided with a sealing door (104) for covering the microcompression oxygen chamber body (101); and a reclining chair (105) for a user to lie down is provided inside the microcompression oxygen chamber body (101); It is characterized by further comprising: A movable plate (2) is arranged inside a micro-compression oxygen chamber body (101), a sliding assembly for assisting the movable plate (2) in sliding is arranged inside the micro-compression oxygen chamber body (101), a movable assembly for assisting the movable plate (2) in moving is arranged between the movable plate (2) and the inside of the micro-compression oxygen chamber body (101), the front side of the movable plate (2) is connected to a mounting plate (5) through multiple groups of connecting rods (6), a mounting disk (7) is arranged on the front side of the mounting plate (5), a rotating assembly for rotating the mounting disk (7) is arranged on the mounting plate (5), multiple groups of U-shaped frames (10) are uniformly distributed around the mounting disk (7), each group of the monitors (106) is respectively arranged in a one-to-one correspondence with each group of U-shaped frames (10), a mounting assembly for installing the monitors (106) is arranged on the U-shaped frames (10), and an adjusting assembly for adjusting the position of each group of U-shaped frames (10) is arranged on the mounting disk (7); The sliding assembly comprises a plurality of groups of sliding grooves (301) provided on the inner wall of the micro-pressure oxygen chamber body (101), each group of the sliding grooves (301) being slidably connected to a sliding block (302), the cross-sections of the sliding grooves (301) and the sliding block (302) both being T-shaped, and the sliding block (302) being fixed to the movable plate (2); The moving assembly includes a slot (401) formed on a moving plate (2), a support frame (402) being fixed on the moving plate (2), a rotating shaft (403) being rotatably connected to the support frame (402), a gear (404) being fixed on the rotating shaft (403), the gear (404) being located inside the slot (401), an arc-shaped rack (405) being fixed inside the micro-compression oxygen chamber body (101), the gear (404) and the arc-shaped rack (405) being meshed with each other, and an operating motor (406) for driving the rotating shaft (403) being installed on the support frame (402); The rotating assembly is rotatably connected to a connecting shaft (801) on the mounting plate (5), one end of the connecting shaft (801) is fixed to the mounting plate (7), a worm gear (802) is fixed to the other end of the connecting shaft (801), a mounting frame (803) is fixed to the mounting plate (5), an operating shaft (804) is rotatably connected to the mounting frame (803), a worm gear (805) is fixed to the operating shaft (804), the worm gear (802) and the worm gear (805) are meshed with each other, and the operating shaft (804) and the rotating shaft (403) are connected and driven via a linkage assembly; The linkage assembly comprises pulleys (901) respectively fixed on the operating shaft (804) and the rotating shaft (403), and the two groups of pulleys (901) are connected and driven via a belt (902).

2. The microbaric oxygen chamber internal environment monitoring device according to claim 1, characterized in that: The adjustment component comprises an installation cavity (1101) provided inside the installation disk (7), a plurality of groups of slide plates (1102) are slidably connected to the installation disk (7), the U-shaped frame (10) is fixed to one side of the slide plates (1102), and a transmission component for transmitting each group of slide plates (1102) and a first guide component for guiding the slide plates (1102) during transmission are provided on the installation cavity (1101).

3. The microbaric oxygen chamber internal environment monitoring device according to claim 2, characterized in that: The transmission assembly includes a transmission disk (1301) rotatably connected to the interior of the installation cavity (1101), a plurality of groups of inclined slots (1302) are provided on the transmission disk (1301), and each group of the inclined slots (1302) is slidably connected to a group of transmission pins (1303), and one end of each group of the transmission pins (1303) is fixed to each group of slides (1102), and a mounting shaft (1304) is rotatably connected to the installation disk (7), and the transmission disk (1301) is centrally fixed on the installation shaft (1304). An installation motor (1305) for rotating the installation shaft (1304) is installed on the outer side of the installation disk (7).

4. The microbaric oxygen chamber internal environment monitoring device according to claim 3, characterized in that: The first guide assembly comprises fixed blocks (1201) fixed on both sides of the slide (1102), and the two groups of fixed blocks (1201) are slidably connected to a first T-shaped rod (1202), and one end of the first T-shaped rod (1202) is fixed to the inner wall of the installation cavity (1101).

5. The microbaric oxygen chamber internal environment monitoring device according to claim 1, characterized in that: The mounting assembly comprises a pressing plate (1401) arranged on a U-shaped frame (10), a second guide assembly for guiding the pressing plate (1401) being arranged on the U-shaped frame (10), a threaded sleeve (1402) being fixed on the U-shaped frame (10), a threaded rod (1403) being threadedly engaged with the threaded sleeve (1402), one end of the threaded rod (1403) being rotatably connected to the pressing plate (1401), and a driving pin (1404) being fixed to the other end of the threaded rod (1403).

6. The microbaric oxygen chamber internal environment monitoring device according to claim 5, characterized in that: The second guide assembly comprises a plurality of guide holes (1501) provided on the U-shaped frame (10), wherein a plurality of second T-shaped rods (1502) are slidably connected to the guide holes (1501), and one end of each group of the second T-shaped rods (1502) is fixed to the pressing plate (1401).

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