Intelligent ventilation and exhaust assembly type recuperating cabin
By introducing negative ion generators and filter elements into the ventilation and exhaust systems of the recuperation chamber, the problem of poor recuperation effect of the existing system is solved, the air purification and treatment effects are improved, and maintenance and assembly are convenient.
Patent Information
- Application Number
- CN202510889976.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-30
- Publication Date
- 2025-09-16
AI Technical Summary
The existing ventilation and exhaust systems in the recuperation chambers fail to effectively combine treatment methods, resulting in poor recuperation effects.
A negative ion generator and a filter device are introduced into the ventilation and exhaust system. Negative ions are sprayed into the air through a fan, and the air is filtered and treated using a filter element to form pure air carried by negative ions to assist in convalescence treatment.
The air cleanliness and negative ion concentration in the recuperation chamber are improved, the treatment effect is enhanced, and the device maintenance and assembly are convenient.
Smart Images

Figure CN120643392A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical care facilities, and in particular to an assembled convalescent warehouse with intelligent ventilation and exhaust. Background Art
[0002] Studies have shown that the main causes of disease are excessive positive ion content, acidification and oxidation of organisms, and the effects of reactive oxygen species. The acidification of human tissues causes disturbances in the stability of the organism, leading to the occurrence of various diseases such as cancer. Natural negative ions can remove harmful stimuli from drugs or external invading foreign bodies, and can also inhibit the side effects of drugs.
[0003] The convalescent chamber is a new type of therapy that has emerged in modern society. It is an institution that provides short-term accommodation and related services for laid-off workers, people with chronic diseases or those who need convalescence. The significance of the convalescent chamber is to provide a warm environment for people who need treatment or rehabilitation, so that they can relax and recover physically and mentally. The convalescent chamber has a relaxed and comfortable atmosphere for those who need short-term quiet and worry-free time, and can provide them with spiritual support.
[0004] While providing patients with convalescent accommodation, the sanatorium will also be equipped with a corresponding ventilation and exhaust system to provide fresh air to the sanatorium and create a clear and clean air environment for the sanatorium. However, the existing ventilation and exhaust systems can only ventilate the sanatorium and are not combined with the treatment methods of the sanatorium. Therefore, they are not very helpful for treating diseases.
[0005] Therefore, it is very necessary to introduce negative ions into the ventilation system of the convalescent chamber to assist the treatment equipment, drugs or chemicals in the convalescent chamber and improve the treatment effect. Therefore, an assembled convalescent chamber with intelligent ventilation and exhaust is proposed to solve the above problems. Summary of the Invention
[0006] In view of the shortcomings of the existing technology, the present invention provides an assembled recuperation warehouse with intelligent ventilation and exhaust, which has the advantages of improving the recuperation effect and solves the problem of poor recuperation effect.
[0007] To achieve the above objectives, the present invention provides the following technical solutions: an assembled convalescent chamber with intelligent ventilation and exhaust, comprising a chamber body and a chamber door hinged to the front side of the chamber body, a support plate placed on one side of the chamber body, a ventilation chamber fixedly connected to the support plate, and an atomizer fixedly mounted on the inner bottom wall of the ventilation chamber;
[0008] The inner wall of the ventilation bin is fixedly connected with a mounting cylinder, and a fan for ventilating the bin body is fixedly installed in the mounting hole;
[0009] An air inlet for air purification is provided on the back of the ventilation chamber;
[0010] The air inlet member includes an air inlet pipe connected to the back of the ventilation bin, the air inlet end of the air inlet pipe is sleeved with a mounting ring, a plurality of annular equidistantly distributed duct-type negative ion generators are fixedly mounted on the mounting ring, the outer side of the mounting ring is fixedly connected to a baffle covering the outer side of the duct-type negative ion generator, the inner side of the mounting ring is fixedly connected to a mounting pipe with one end fitted with the air inlet pipe, a plurality of connecting pipes are connected between the mounting pipe and the baffle, a filter screen, a partition and a filter element are fixedly mounted on the inner wall of the mounting pipe in sequence, the filter element is located in front of the filter screen, and the partition is located between the filter element and the filter screen, a plurality of annular equidistantly distributed air inlet holes are opened on the inner wall of the mounting pipe, and the air inlet holes are located between the partition and the filter screen;
[0011] A connecting assembly for assembling the mounting ring and the mounting pipe is provided between the air inlet pipe and the mounting pipe;
[0012] An assembly part for assembling the ventilation bin is provided between the ventilation bin and the bin body;
[0013] An air outlet is provided on the other side of the bin body, and a dustproof net is installed in the air outlet.
[0014] Furthermore, the filter is an activated carbon filter impregnated with metal oxide (manganese oxide MnO2), and the filter element is a HEPA filter element.
[0015] Furthermore, the connecting assembly includes two groups of support rods that are symmetrically fixedly connected to the air inlet pipe and the mounting pipe. A connecting rod is inserted between each group of support rods. Each connecting rod is fixedly connected to a group of limiting rings, and each connecting rod is rotatably connected to a group of connecting tubes.
[0016] Furthermore, an annular groove corresponding to the limiting ring is formed on the inner wall of each connecting tube, and the connecting tube and the limiting ring on each connecting rod are symmetrically distributed.
[0017] Furthermore, a slot for the connecting rod to be inserted is provided at the connection between the support rod and the connecting rod, and the connection between the connecting rod and the support rod is in a convex shape.
[0018] Furthermore, an inner thread is provided on the outer surface of the connection between the support rod and the connecting rod, and an inner thread is provided on the inner peripheral wall of the connection between the connecting tube and the support rod, and the inner thread is adapted to the outer thread.
[0019] Furthermore, the assembly includes a docking tube fixedly connected to the ventilation bin on the side close to the bin body, the docking tube is communicated with the mounting tube, and the end of the docking tube away from the ventilation bin passes through the bin body, the connection between the docking tube and the ventilation bin is rotatably connected with a rotating ring, the inner wall of the rotating ring is embedded with a rack, and the outer surface of the docking tube is provided with a plurality of annular equidistant mounting grooves, each of the mounting grooves is rotatably connected to a threaded rod, the connection between each threaded rod and the mounting groove is fixedly connected with a gear, and a plurality of gears are meshed with the rack, the outer side of each threaded rod is threadedly connected to a push block, each mounting groove is rotatably connected with a resist block, and the resist block is located on the side of the mounting groove away from the gear, and the outer surface of the docking tube is fixedly connected with a resist ring located between the rotating ring and the resist block.
[0020] Furthermore, a thread groove is provided at the connection between the push block and the threaded rod, and the thread groove is adapted to the thread on the outside of the threaded rod. A sliding groove connected to the mounting groove is provided on the butt joint. A slider with one end extending into the sliding groove is fixedly connected to the push block, and the slider is slidably connected to the sliding groove.
[0021] Furthermore, each of the retaining blocks is rotatably connected to each mounting slot via a rotating shaft, and a torsion spring sleeved on the outside of the rotating shaft is provided between each retaining block and each mounting slot.
[0022] Furthermore, two sets of moving wheels are rotatably mounted on the lower surface of the support plate, the water injection point of the atomizer is connected to a water injection port that passes through the ventilation chamber, and a handrail is fixedly mounted on the support plate.
[0023] Compared with the existing technology, the technical solution of this application has the following beneficial effects:
[0024] 1. This assembled convalescent chamber with intelligent ventilation and exhaust has several duct-type negative ion generators located on the mounting ring and a started fan. The negative ions generated can be directly injected into the flowing air at the air inlet end of the entire ventilation and exhaust system. With the pumping of the fan, the negative ions are then transported to the entire chamber through the docking parts and diffused. The filter element in the mounting tube can filter the incoming air at the air inlet end to maintain the cleanliness of the air, making the air blown into the chamber purer and carrying negative ions, which can be used to assist the chamber in treating patients during convalescence, thereby improving the treatment effect.
[0025] 2. The intelligent ventilation and exhaust assembled convalescent chamber has a connecting rod and a connecting tube that are tightened by threaded rotation between the mounting tube and the air inlet pipe. Therefore, the mounting tube can be removed from the air inlet pipe by rotating and removing the connecting tubes at the ends of the support rods on both sides. The duct-type negative ion generator and filter element on the mounting tube and the mounting ring can be maintained and replaced, as well as the subsequent assembly, to improve the convenience of assembly.
[0026] 3. The intelligent ventilation and exhaust assembled convalescent chamber can drive the resistance block to pass through the chamber body due to the docking tube passing through the chamber body. Therefore, the threaded rod is driven by rotating the rotating ring to drive the push block, which pushes the resistance block to contact the inner wall of the chamber body, making it convenient for the operator to dock and assemble the ventilation chamber and the chamber body, further improving the convenience of assembly. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 It is a three-dimensional diagram of the overall structure of the present invention;
[0028] Figure 2 This is a side sectional view of the ventilation chamber structure of the present invention;
[0029] Figure 3 This is a three-dimensional cross-sectional view of the air inlet structure of the present invention;
[0030] Figure 4 This is a three-dimensional cross-sectional view of the assembly structure of the present invention;
[0031] Figure 5 For the present invention Figure 4 Enlarged view of point A in the middle.
[0032] In the figure: 1. Warehouse body; 2. Warehouse door; 3. Support plate; 4. Ventilation chamber; 5. Air inlet part; 51. Air inlet pipe; 52. Mounting ring; 53. Mounting pipe; 54. Duct-type negative ion generator; 55. Shield; 56. Air inlet hole; 57. Connecting pipe; 58. Filter; 59. Partition; 510. Filter element; 511. Support rod; 512. Connecting rod; 513. Limiting ring; 514. Connecting cylinder; 6. Exhaust outlet; 7. Dust screen; 8. Assembly part; 81. Docking pipe; 82. Retaining ring; 83. Push block; 84. Retaining block; 85. Rotating ring; 86. Mounting groove; 87. Gear; 88. Rack; 89. Threaded rod; 810. Slide groove; 9. Mounting cylinder; 10. Fan; 11. Atomizer; 12. Water inlet; 13. Moving wheel. DETAILED DESCRIPTION
[0033] 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.
[0034] See also Figure 1-2 In this embodiment, an assembled convalescent chamber with intelligent ventilation and exhaust comprises a chamber body 1 and a chamber door 2 hinged to the front side of the chamber body 1. A support plate 3 is placed on one side of the chamber body 1, a ventilation chamber 4 is fixedly connected to the support plate 3, and an atomizer 11 is fixedly mounted on the inner bottom wall of the ventilation chamber 4.
[0035] The inner wall of the ventilation bin 4 is fixedly connected with a mounting cylinder 9, and a fan 10 for ventilating the bin body 1 is fixedly installed in the mounting hole 9;
[0036] An air inlet 5 for air purification is provided on the back of the ventilation chamber 4;
[0037] An assembly part 8 for assembling the ventilation bin 1 is provided between the ventilation bin 4 and the bin body 1;
[0038] An air outlet 6 is provided on the other side of the bin body 1 , and a dustproof net 7 is installed in the air outlet 6 .
[0039] In this embodiment, air is drawn by the fan 10, and the air filtered by the air inlet 5 and carrying negative ions is drawn and transported into the warehouse body 1 through the assembly part 8, so that the negative ions carried in the purified air are used to assist the treatment in the convalescent warehouse to improve the therapeutic effect.
[0040] It should be noted that two sets of moving wheels 13 are rotatably installed on the lower surface of the support plate 3, the water injection point of the atomizer 11 is connected to the water injection port 12 that passes through the ventilation bin 4, and a handrail is fixedly installed on the support plate 3. The handrail cooperates with the moving wheels 13 under the support plate 3 to facilitate the operator to push the ventilation bin 4 for movement and assembly.
[0041] See also Figure 2-3 In this embodiment, the air inlet member 5 includes an air inlet pipe 51 connected to the back of the ventilation bin 4, and the air inlet end of the air inlet pipe 51 is sleeved with a mounting ring 52, and a plurality of annular duct-type negative ion generators 54 distributed at equal intervals are fixedly mounted on the mounting ring 52. The outer side of the mounting ring 52 is fixedly connected to a baffle 55 covering the outer side of the duct-type negative ion generator 54, and the inner side of the mounting ring 52 is fixedly connected to a mounting pipe 53 with one end fitted with the air inlet pipe 51. Several connecting pipes 57 are connected between the mounting pipe 53 and the baffle 55. A filter screen 58, a partition 59 and a filter element 510 are fixedly mounted on the inner wall of the mounting pipe 53 in sequence. The filter element 510 is located on the front side of the filter screen 58, and the partition 59 is located between the filter element 510 and the filter screen 58. A plurality of annular equidistantly distributed air inlet holes 56 are opened on the inner wall of the mounting pipe 53, and the air inlet holes 56 are located between the baffle 59 and the filter screen 58;
[0042] A connecting assembly for assembling the mounting ring 52 and the mounting tube 53 is provided between the air inlet pipe 51 and the mounting tube 53 .
[0043] In this embodiment, several duct-type negative ion generators 54 located on the mounting ring 52 cooperate with the started fan 10 to directly spray the generated negative ions into the flowing air at the air inlet end of the entire ventilation and exhaust system. With the pumping of the fan 10, the negative ions are then transported to the entire warehouse body 1 through the docking piece 8 for diffusion, and the filter element 510 in the mounting tube 53 can filter the incoming air at the air inlet end to maintain the cleanliness of the air, so that the air blown into the warehouse body 1 is purer and carries negative ions, which is used to assist the warehouse body 1 in treating patients during convalescence, thereby improving the treatment effect.
[0044] It should be noted that the filter 58 is an activated carbon filter impregnated with metal oxide manganese oxide MnO2. The filter 58 is used to filter the ozone generated by the duct-type negative ion generator 54 at one end inside the shield 55. The filter element 510 is a HEPA filter element, so that the filter element 510 can filter out most dust particles and bacterial carriers at the air inlet end.
[0045] See also Figure 3 In this embodiment, the connecting assembly includes two groups of support rods 511 that are symmetrically fixedly connected to the air inlet pipe 51 and the mounting pipe 53. A connecting rod 512 is inserted between each group of support rods 511. Each connecting rod 512 is fixedly connected to a group of limiting rings 513, and each connecting rod 512 is rotatably connected to a group of connecting tubes 514.
[0046] In this embodiment, since the mounting tube 53 and the air inlet tube 51 are tightened by threaded rotation through the connecting rod 512 and the connecting tube 514, the mounting tube 53 can be removed from the air inlet tube 51 by rotating and removing the connecting tubes 514 at the ends of the support rods 511 on both sides, and the duct-type negative ion generator 54 and the filter element 510 on the mounting tube 53 and the mounting ring 52 can be maintained and replaced, as well as subsequently assembled, to improve the convenience of assembly.
[0047] It should be noted that the inner wall of each connecting tube 514 is provided with an annular groove corresponding to the limiting ring 513, and the connecting tube 514 and the limiting ring 513 on each connecting rod 512 are symmetrically distributed, so that the two connecting tubes 514 on each connecting rod 512 can rotate stably through the limitation of the limiting ring 513.
[0048] Among them, the connection between the support rod 511 and the connecting rod 512 is provided with a slot for the connecting rod 512 to be inserted, and the connection between the connecting rod 512 and the support rod 511 is in a convex shape, so that the convex end of the connecting rod 512 can be inserted into the slot of the support rod 511, thereby increasing the connection stability.
[0049] In addition, an internal thread is provided on the outer surface of the connection between the support rod 511 and the connecting rod 512, and an internal thread is provided on the inner wall of the connection between the connecting tube 514 and the support rod 511, and the internal thread is adapted to the external thread, so that the connecting tube 514 on the connecting rod 512 can be rotated and tightened to the end of the support rod 511 for connecting and assembling the mounting ring 52 and the mounting tube 53.
[0050] See also Figure 4-5 In this embodiment, the assembly part 8 includes a docking tube 81 fixedly connected to the ventilation bin 4 on the side close to the bin body 1, the docking tube 81 is connected to the mounting tube 9, and the end of the docking tube 81 away from the ventilation bin 4 passes through the bin body 1, and the connection between the docking tube 81 and the ventilation bin 4 is rotatably connected with a rotating ring 85, and the inner wall of the rotating ring 85 is embedded with a rack 88. The outer surface of the docking tube 81 is provided with a plurality of annular equidistantly distributed mounting grooves 86, and the inner side of each mounting groove 86 is rotatably connected with a threaded rod 89, and the connection between each threaded rod 89 and the mounting groove 86 is fixedly connected with a gear 87, and several gears 87 are meshed with the rack 88. The outer side of each threaded rod 89 is threadedly connected with a push block 83, and each mounting groove 86 is rotatably connected with a stop block 84, and the stop block 84 is located on the side of the mounting groove 86 away from the gear 87. The outer surface of the docking tube 81 is fixedly connected with a stop ring 82 located between the rotating ring 85 and the stop block 84.
[0051] In this embodiment, since the docking tube 81 passing through the warehouse body 1 can drive the block 84 to pass through the warehouse body 1 together, the threaded rod 89 is driven by rotating the rotating ring 85 to drive the push block 83, pushing the block 84 to contact the inner wall of the warehouse body 1, making it convenient for the operator to dock and assemble the ventilation warehouse 4 with the warehouse body 1, further improving the convenience of assembly.
[0052] It should be noted that a threaded groove is provided at the connection between the push block 83 and the threaded rod 89, and the threaded groove is adapted to the thread on the outer side of the threaded rod 89. A slide groove 810 connected to the mounting groove 86 is provided on the docking tube 81. A slider with one end extending into the slide groove 810 is fixedly connected to the push block 83, and the slider is slidably connected to the slide groove 810, so that the rotating threaded rod 89 can drive each push block 83 to be stably adjusted horizontally in the corresponding mounting groove 86.
[0053] Among them, each block 84 is connected to each mounting slot 86 through a rotating shaft, and a torsion spring is provided between each block 84 and each mounting slot 86 and is sleeved on the outside of the rotating shaft, so that the block 84 can be rotated by the rotating shaft and reset by the torsion spring when it is in the mounting slot 86 and is not interfered by the push block 83.
[0054] The working principle of the above embodiment is:
[0055] After the butt joint 81 on one side of the moving ventilation bin 4 passes through one side of the bin body 1, since the block 84 is not resisted by the push block 83, it can be rotated by the rotating shaft and reset by the torsion spring. Therefore, when the butt joint 81 passes through the bin body 1, it can drive the block 84 to extend into the bin body 1 together. After the butt ring 82 on the butt joint 81 contacts the outer surface of the bin body 1, the rotating ring 85 can be rotated to drive the deer nest rod 89 to rotate through the meshing gear 87 and rack 88, so as to push the push block 83 to move toward the side close to the block 84 until it fits the block 84, and the ventilation bin 4 and the bin body 1 are connected and assembled.
[0056] After the ventilation chamber 4 is connected, the fan 10 and the duct-type negative ion generator 54 can be started in sequence, so that the end of the duct-type negative ion generator 54 located on the inner side of the mounting ring 52 cooperates with the started fan 10, and the generated negative ions can be directly ejected into the flowing air at the air inlet end of the entire ventilation and exhaust system. With the pumping of the fan 10, the generated negative ions are then transported to the entire chamber body 1 through the docking piece 8 for diffusion, and the filter element 510 in the mounting tube 53 can filter the incoming air at the air inlet end to maintain the cleanliness of the air, so that the air blown into the chamber body 1 is purer and carries negative ions, which are used to assist the chamber body 1 in treating the patient during convalescence, thereby improving the treatment effect;
[0057] The connecting pipe 57 can guide the ozone generated by the duct-type negative ion generator 54 during operation to between the partition 59 and the filter 58, and be filtered and discharged by the filter 58 to reduce environmental pollution. At the same time, the filter element 510 in the installation pipe 53 can filter out most dust particles and bacterial carriers at the air inlet end, making the air sent into the chamber 1 cleaner.
[0058] Since the mounting tube 53 and the air inlet tube 51 are tightened by threaded rotation through the connecting rod 512 and the connecting tube 514, the mounting tube 53 can be removed from the air inlet tube 51 by rotating and removing the connecting tubes 514 at the ends of the support rods 511 on both sides, and the duct-type negative ion generator 54 and the filter element 510 on the mounting tube 53 and the mounting ring 52 can be maintained and replaced, as well as subsequently assembled, to improve assembly convenience.
[0059] The electrical components mentioned in this article are all electrically connected to the main controller and the power supply. The main controller can be a conventional known device that controls a computer, etc., and the existing public power connection technology is not described in detail in this article.
[0060] 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 device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article, or device comprising the element.
[0061] 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. An assembled convalescent chamber with intelligent ventilation and exhaust, comprising a chamber body (1) and a chamber door (2) hinged to the front side of the chamber body (1), characterized in that: A support plate (3) is placed on one side of the bin body (1), a ventilation bin (4) is fixedly connected to the support plate (3), and an atomizer (11) is fixedly mounted on the inner bottom wall of the ventilation bin (4); The inner wall of the ventilation bin (4) is fixedly connected to a mounting cylinder (9), and a fan (10) for ventilating the bin body (1) is fixedly installed in the mounting hole (9); An air inlet (5) for air purification is provided on the back of the ventilation chamber (4); The air inlet member (5) includes an air inlet pipe (51) connected to the back of the ventilation chamber (4), the air inlet end of the air inlet pipe (51) is provided with a mounting ring (52), a plurality of annular duct-type negative ion generators (54) are fixedly mounted on the mounting ring (52) and are evenly distributed, the outer side of the mounting ring (52) is fixedly connected to a shield (55) covering the outer side of the duct-type negative ion generator (54), the inner side of the mounting ring (52) is fixedly connected to a mounting pipe (53) whose end is in contact with the air inlet pipe (51), and the mounting ring (52) is fixedly connected to the mounting pipe (53) whose end is in contact with the air inlet pipe (51). A plurality of connecting pipes (57) are connected between the mounting pipe (53) and the shield (55); a filter screen (58), a partition (59) and a filter element (510) are fixedly mounted on the inner wall of the mounting pipe (53) in sequence; the filter element (510) is located in front of the filter screen (58), and the partition (59) is located between the filter element (510) and the filter screen (58); a plurality of annular air inlet holes (56) are opened on the inner wall of the mounting pipe (53) and are evenly distributed, and the air inlet holes (56) are located between the partition (59) and the filter screen (58); A connecting assembly for assembling the mounting ring (52) and the mounting tube (53) is provided between the air inlet tube (51) and the mounting tube (53); An assembly part (8) for assembling the ventilation bin (1) is provided between the ventilation bin (4) and the bin body (1); An air outlet (6) is provided on the other side of the bin body (1), and a dustproof net (7) is installed in the air outlet (6).
2. The intelligent ventilation and exhaust assembled convalescent chamber according to claim 1, characterized in that: The filter (58) is an activated carbon filter impregnated with metal oxide (manganese oxide MnO2), and the filter element (510) is a HEPA filter element.
3. The intelligent ventilation and exhaust assembled convalescent chamber according to claim 1 is characterized by: The connecting assembly comprises two groups of support rods (511) symmetrically fixedly connected to the air inlet pipe (51) and the mounting pipe (53); a connecting rod (512) is inserted between each group of support rods (511); each connecting rod (512) is fixedly connected to a group of limiting rings (513); and each connecting rod (512) is rotatably connected to a group of connecting cylinders (514).
4. The intelligent ventilation and exhaust assembled convalescent chamber according to claim 1 is characterized by: An annular groove corresponding to the limiting ring (513) is provided on the inner wall of each connecting tube (514), and the connecting tube (514) and the limiting ring (513) on each connecting rod (512) are symmetrically distributed.
5. The intelligent ventilation and exhaust assembled convalescent chamber according to claim 1 is characterized by: A slot for the connecting rod (512) to be inserted is provided at the connection point between the support rod (511) and the connecting rod (512), and the insertion point between the connecting rod (512) and the support rod (511) is in a convex shape.
6. The intelligent ventilation and exhaust assembled recuperation chamber according to claim 1, characterized in that: An internal thread is provided on the outer surface of the connection between the support rod (511) and the connecting rod (512), and an internal thread is provided on the inner peripheral wall of the connection between the connecting tube (514) and the support rod (511), and the internal thread is adapted to the external thread.
7. The intelligent ventilation and exhaust assembled convalescent chamber according to claim 1, characterized in that: The assembly part (8) includes a butt joint (81) fixedly connected to the ventilation bin (4) on the side close to the bin body (1), the butt joint (81) is connected to the mounting tube (9), and the end of the butt joint (81) away from the ventilation bin (4) passes through the bin body (1), the connection between the butt joint (81) and the ventilation bin (4) is rotatably connected with a rotating ring (85), the inner wall of the rotating ring (85) is embedded with a rack (88), the outer surface of the butt joint (81) is provided with a plurality of annular equidistantly distributed mounting grooves (86), the inner side of each mounting groove (86) is rotated. A threaded rod (89) is rotatably connected, and a gear (87) is fixedly connected to the connection between each threaded rod (89) and the mounting groove (86), and a plurality of gears (87) are meshed with the rack (88). The outer side of each threaded rod (89) is threadedly connected to a push block (83), and each mounting groove (86) is rotatably connected to a stop block (84), and the stop block (84) is located on a side of the mounting groove (86) away from the gear (87). The outer surface of the butt joint (81) is fixedly connected to a stop ring (82) located between the rotating ring (85) and the stop block (84).
8. The intelligent ventilation and exhaust assembled recuperation chamber according to claim 7, characterized in that: A threaded groove is provided at the connection between the push block (83) and the threaded rod (89), and the threaded groove is adapted to the thread on the outer side of the threaded rod (89). A sliding groove (810) communicating with the mounting groove (86) is provided on the butt joint (81). A slider having one end extending into the sliding groove (810) is fixedly connected to the push block (83), and the slider is slidably connected to the sliding groove (810).
9. The intelligent ventilation and exhaust assembled recuperation chamber according to claim 8, characterized in that: Each of the retaining blocks (84) is rotatably connected to each mounting slot (86) via a rotating shaft, and a torsion spring sleeved outside the rotating shaft is provided between each retaining block (84) and each mounting slot (86).
10. The intelligent ventilation and exhaust assembled recuperation chamber according to claim 1, characterized in that: Two sets of moving wheels (13) are rotatably mounted on the lower surface of the support plate (3); the water injection point of the atomizer (11) is connected to a water injection port (12) that penetrates the ventilation chamber (4); and a handrail is fixedly mounted on the support plate (3).