Assembly tool for house type aluminum alloy oxygen cabin

By designing an assembly tool for room-type aluminum alloy oxygen chambers, the problem of insufficient sealing during installation of traditional oxygen chambers is solved, and higher installation accuracy and sealing are achieved, ensuring the effective use of oxygen chambers.

CN120206443APending Publication Date: 2025-06-27SHANDONG QINOXYGEN HEALTH TECH CO LTD +1
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Patent Information

Application Number
CN202510454945.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2025-06-27

AI Technical Summary

Technical Problem

There is a problem of insufficient sealing during the installation of traditional room-type micro-pressurized oxygen chambers, especially when assembling columns and beams, which affects the sealing and use effect of the oxygen chambers.

Method used

A room-type aluminum alloy oxygen chamber assembly tooling is designed, including bottom beams, columns, support frames, beam brackets, bracket moving bodies and roller components. Through the combination and synergy of these components, stable connection and precise installation of bottom beams, columns and beams are achieved.

Benefits of technology

Through this assembly tooling, the installation accuracy and sealing of the oxygen chamber can be significantly improved, ensuring that the oxygen chamber can effectively provide a high-pressure oxygen environment during use, achieving the purpose of health care and treatment.

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Abstract

The room type aluminum alloy oxygen cabin assembly tool comprises a first bottom beam, a second bottom beam and stand columns, and a first stand column positioning boot is arranged at the intersection point of the first bottom beam and the second bottom beam; a second stand column positioning shoe is arranged at the top end of the stand column. A movable supporting frame is arranged on the first bottom beam or the second bottom beam, a beam bracket is installed above the supporting frame, and the cross beam is placed on the top of the beam bracket. A bracket moving body is arranged at the bottom end of the supporting frame and at least used for linearly moving along the first bottom beam or the second bottom beam. Roller assemblies are arranged on the two sides of the supporting frame and at least used for tightly attaching the supporting frame to the two sides of the first bottom beam or the two sides of the second bottom beam. The first stand column positioning shoe is adopted, stable connection of the first bottom beam, the second bottom beam and the stand column is achieved, meanwhile, the first stand column positioning shoe can be used for leveling the first bottom beam, the second bottom beam and the stand column, and the installation precision of the first bottom beam, the second bottom beam and the stand column is guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of oxygen chambers, and particularly to an assembly tooling for room-type aluminum alloy oxygen chambers. Background Art

[0002] The oxygen chamber creates an atmospheric environment of 0.3 - 0.5 kg / cm2. When a person is inside, due to the increase in pressure, a large amount of oxygen dissolves in the blood, the dissolved oxygen content in the human body increases significantly, and the partial pressure of blood oxygen and the oxygen diffusion ability are improved, making the effective diffusion radius of oxygen larger. People inhale oxygen for treatment and health care inside the chamber, providing effective and sufficient oxygen to the hypoxic body, increasing the oxygen content and storage amount in tissues, thereby achieving the health care and treatment effect.

[0003] Traditional room-type micro-pressure oxygen chambers are designed in a prefabricated structure considering the need to enter and exit the home; using the extrusion process of aluminum alloy profiles, the beams, columns, door frames, vertical ribs, and bearing plates are designed to meet the requirements of pressure resistance, sealing, and assembly. However, the installation accuracy is the prerequisite for ensuring the sealing of the room-type oxygen chamber. Especially for the assembly of columns and crossbeams, the tooling of the present invention meets the installation conditions of the oxygen chamber factory building and the customer's home. Therefore, it is urgent to design an assembly tooling for room-type aluminum alloy oxygen chambers to solve the above problems. Summary of the Invention

[0004] The purpose of the present invention is to provide an assembly tooling for room-type aluminum alloy oxygen chambers to solve the above deficiencies in the prior art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions:

[0006] The assembly tooling for room-type aluminum alloy oxygen chambers includes a bottom beam one, a bottom beam two, and columns. A column positioning boot one is provided at the intersection of the bottom beam one and the bottom beam two;

[0007] A column positioning boot two is provided at the top of the column;

[0008] A movable support frame is provided on the bottom beam one or the bottom beam two. A beam bracket is installed above the support frame, and the crossbeam is placed on the top of the beam bracket;

[0009] A bracket moving body is provided at the bottom end of the support frame, and the bracket moving body is at least used to move linearly along the bottom beam one or the bottom beam two;

[0010] Roller assemblies are provided on both sides of the support frame, and the roller assemblies are at least used to press the support frame tightly against both sides of the bottom beam one or the bottom beam two.

[0011] As a preferred embodiment of the present invention, the bottom beam one, the bottom beam two, and the columns are distributed perpendicular to each other in pairs.

[0012] As a preferred embodiment of the present invention, the structures of the bottom beam one and the bottom beam two are the same;

[0013] Guide ribs are provided on both sides of the first bottom beam, and a threaded sleeve is provided at the end of the first bottom beam.

[0014] In a preferred embodiment of the present invention, the first column positioning boot is of a right-angle structure, and a first process hole and a second process hole are respectively provided on two side surfaces of the first column positioning boot;

[0015] A support base is provided on the outer wall at the bottom of the first column positioning boot;

[0016] Threaded holes are provided on the outer walls on both sides of the first column positioning boot.

[0017] In a preferred embodiment of the present invention, the support frame includes two support arms symmetrically distributed with respect to the first bottom beam, and a plurality of cross bars are fixedly provided between the two support arms.

[0018] In a preferred embodiment of the present invention, the beam bracket includes a top rod, and a support plate is fixedly installed at the top of the top rod;

[0019] The support plate is of a right-angle structure;

[0020] A plurality of manual bolts are provided on the outer wall of one side of the support plate.

[0021] In a preferred embodiment of the present invention, the bracket moving body includes a base plate, shaft rods are provided on both sides of the bottom of the base plate, and moving wheels are provided at both ends of the shaft rods;

[0022] The base plate, the shaft rods and the moving wheels together form a moving tank structure.

[0023] In a preferred embodiment of the present invention, the roller assembly includes a mounting frame, and the mounting frame is of a C-shaped structure;

[0024] Vertically distributed rollers are provided inside the mounting frame;

[0025] The roller assembly is vertically arranged with respect to the bracket moving body.

[0026] In a preferred embodiment of the present invention, a notch is provided on the outer wall of the mounting frame, and the shaft of the roller is slidably inserted inside the notch.

[0027] In a preferred embodiment of the present invention, an adjustment frame connected to the shaft of the roller is provided inside the mounting frame, the adjustment frame moves synchronously with the roller, and a bolt rod is provided on one side of the adjustment frame.

[0028] In the above technical solution, for the room-type aluminum alloy oxygen chamber assembly tooling provided by the present invention, the first column positioning shoe is adopted to achieve the stable connection of the first bottom beam, the second bottom beam and the column. At the same time, the first column positioning shoe can level the first bottom beam, the second bottom beam and the column, ensuring the installation accuracy of the first bottom beam, the second bottom beam and the column.

[0029] Through the provided support frame and beam bracket, the reinforcement support for the upper cross beam can be realized, ensuring the stability of the cross beam. At the same time, the support frame can be adjusted in position along the bottom beam. Through the bracket moving body, it is more conducive to the horizontal position adjustment of the support frame on the bottom beam. Using the roller assembly, the contact ability between the bottom of the support frame and the side wall of the bottom beam is ensured, improving the support effect on the cross beam. Brief Description of the Drawings

[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required to be used in the embodiments. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those of ordinary skill in the art, other drawings can also be obtained based on these drawings.

[0031] Figure 1 It is a schematic structural diagram provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention.

[0032] Figure 2 It is a schematic structural diagram of the bottom beam and column provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention.

[0033] Figure 3 It is a schematic structural diagram of the bottom beam and column positioning shoe provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention.

[0034] Figure 4 It is provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention Figure 3 Partial enlarged view of the structure in.

[0035] Figure 5 It is a schematic structural diagram of the column positioning shoe provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention.

[0036] Figure 6 It is a schematic structural diagram of the bottom beam provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention.

[0037] Figure 7 It is a schematic diagram of the support frame and beam bracket provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention Figure 1 。

[0038] Figure 8 It is a schematic diagram of the support frame and beam bracket provided for an embodiment of the room-type aluminum alloy oxygen chamber assembly tooling of the present invention Figure 2。

[0039] Figure 9 For the embodiment of the assembly tooling for the aluminum alloy oxygen chamber of the house type of the present invention Figure 8 The partial enlarged view of the structure in

[0040] Explanation of reference numerals:

[0041] 1. First bottom beam; 11. Guide rib; 12. Threaded sleeve; 2. Second bottom beam; 3. Column; 4. First column positioning boot; 41. First process hole; 42. Second process hole; 43. Bracket; 44. Threaded hole; 5. Second column positioning boot; 6. Support frame; 61. Support arm; 62. Cross bar; 7. Beam bracket; 71. Jacking rod; 72. Support plate; 73. Manual bolt; 8. Bracket moving body; 81. Base plate; 82. Shaft rod; 83. Moving wheel; 9. Roller assembly; 91. Mounting frame; 92. Roller; 93. Adjusting frame; 94. Bolt rod. Detailed implementation manners

[0042] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further introduced in detail below with reference to the accompanying drawings.

[0043] Embodiment 1

[0044] As Figure 1-9 shown, the assembly tooling for the aluminum alloy oxygen chamber of the house type provided by the embodiment of the present invention includes a first bottom beam 1, a second bottom beam 2 and a column 3. A first column positioning boot 4 is arranged at the intersection of the first bottom beam 1 and the second bottom beam 2; a second column positioning boot 5 is arranged at the top of the column 3; a movable support frame 6 is arranged on the first bottom beam 1 or the second bottom beam 2, a beam bracket 7 is installed above the support frame 6, and the cross beam is placed on the top of the beam bracket 7; a bracket moving body 8 is arranged at the bottom end of the support frame 6, and the bracket moving body 8 is at least used for linearly moving along the first bottom beam 1 or the second bottom beam 2; roller assemblies 9 are arranged on both sides of the support frame 6, and the roller assemblies 9 are at least used for tightly attaching the support frame 6 to both sides of the first bottom beam 1 or the second bottom beam 2.

[0045] In this embodiment, it includes a first bottom beam 1, a second bottom beam 2 and a column 3, and the first bottom beam 1, the second bottom beam 2 and the column 3 are all aluminum alloy profiles;

[0046] Specifically, the first bottom beam 1, the second bottom beam 2 and the column 3 are distributed perpendicular to each other in pairs.

[0047] Specifically, the structures of the first bottom beam 1 and the second bottom beam 2 are the same;

[0048] Specifically, guide ribs 11 are provided on both sides of the first bottom beam 1. The guide ribs 11 are used to enable the roller assembly 9 to move horizontally along the first bottom beam 1 or the second bottom beam 2 better. And a threaded sleeve 12 is provided at the end of the first bottom beam 1. Through the threaded sleeve 12, the first bottom beam 1 or the second bottom beam 2 is fixedly connected to the first column positioning boot 4 by using bolts, forming a splicing structure.

[0049] In this embodiment, a first column positioning boot 4 is provided at the intersection of the first bottom beam 1 and the second bottom beam 2;

[0050] Specifically, the first column positioning boot 4 is of a right-angle structure. Process holes 41 and 42 are respectively provided on both side surfaces of the first column positioning boot 4. Bolts are inserted into the process holes 41 and 42, facilitating the connection and fixation of the first column positioning boot 4 to the first bottom beam 1 or the second bottom beam 2;

[0051] Specifically, a support base 43 is provided on the outer wall at the bottom of the first column positioning boot 4. A threaded hole 44 is also provided on the support base 43. A bolt is inserted into the threaded hole 44 on the support base 43, and the flatness between the first column positioning boot 4 and the horizontal plane can be adjusted;

[0052] Specifically, threaded holes 44 are provided on both outer walls of the first column positioning boot 4. Bolts are inserted into the threaded holes 44, and the flatness adjustment between the first bottom beam 1 or the second bottom beam 2 and the first column positioning boot 4 can be realized, ensuring the perpendicularity of the first bottom beam 1 or the second bottom beam 2 to the first column positioning boot 4, and enabling the first bottom beam 1 and the second bottom beam 2 to be vertically installed.

[0053] In this embodiment, a second column positioning boot 5 is provided at the top of the column 3. Through the second column positioning boot 5, the fixed connection between the cross beam and the column 3 is realized, and its connection structure is the same as that of the first column positioning boot 4;

[0054] In this embodiment, a movable support frame 6 is provided on the first bottom beam 1 or the second bottom beam 2;

[0055] Specifically, the support frame 6 includes two support arms 61 symmetrically distributed about the first bottom beam 1. A number of cross bars 62 are fixedly provided between the two support arms 61. The cross bars 62 and the support arms 61 are connected by welding. The stability between the two support arms 61 is ensured through the cross bars 62, realizing the stable support for the beam bracket 7.

[0056] In this embodiment, a beam bracket 7 is installed above the support frame 6, and the cross beam is placed on the top of the beam bracket 7;

[0057] Specifically, the beam bracket 7 includes a top rod 71. The top rod 71 can be adjusted between the cross bars 62 to realize the change of the height of the top rod 71. A support plate 72 is fixedly installed at the top of the top rod 71, and the cross beam is placed on the support plate 72;

[0058] Specifically, the pallet 72 has a right-angle structure, and the pallet 72 with the right-angle structure is just clamped outside the cross beam;

[0059] Specifically, a number of manual bolts 73 are provided on one outer wall of the pallet 72. By tightening the manual bolts 73, the fixed installation of the cross beam inside the pallet 72 can be realized.

[0060] In this embodiment, a bracket moving body 8 is provided at the bottom end of the support frame 6, and the bracket moving body 8 is at least used to linearly move along the bottom beam one 1 or the bottom beam two 2;

[0061] Specifically, the bracket moving body 8 includes a base plate 81. Shaft rods 82 are provided on both sides of the bottom of the base plate 81. Moving wheels 83 are provided at both ends of the shaft rods 82. The bottom of the moving wheels 83 is the lower plane of the bottom beam one 1 or the bottom beam two 2. As the moving wheels 83 roll, the support frame 6 and the beam bracket 7 are laterally moved;

[0062] Specifically, the base plate 81, the shaft rods 82 and the moving wheels 83 together form a moving tank structure. The formed tank structure improves the stability during movement and also has better supporting ability.

[0063] In this embodiment, roller assemblies 9 are provided on both sides of the support frame 6, and the roller assemblies 9 are at least used to press the support frame 6 against both sides of the bottom beam one 1 or the bottom beam two 2;

[0064] Specifically, the roller assembly 9 includes a mounting frame 91. The mounting frame 91 has a C-shaped structure, and the rollers 92 are vertically installed inside the mounting frame 91;

[0065] Specifically, vertically distributed rollers 92 are provided inside the mounting frame 91, and the rollers 92 roll in contact with the outer wall of the bottom beam one 1 or the bottom beam two 2;

[0066] Specifically, the roller assembly 9 and the bracket moving body 8 are vertically arranged, so that the contact ability of the roller assembly 9 and the bracket moving body 8 with the bottom beam is better.

[0067] Specifically, a notch is provided on the outer wall of the mounting frame 91, and the shaft of the roller 92 is slidably inserted inside the notch.

[0068] Specifically, an adjustment frame 93 connected to the shaft of the roller 92 is provided inside the mounting frame 91. The adjustment frame 93 moves synchronously with the roller 92. A bolt rod 94 is provided on one side of the adjustment frame 93. By adjusting the position of the bolt rod 94, the adjustment frame 93 is moved. The adjustment frame 93 can drive the roller 92 to move synchronously. At this time, the shaft of the roller 92 slides inside the notch, making the roller 92 fit more closely with the outer wall of the bottom beam one 1 or the bottom beam two 2, improving the assembly accuracy.

[0069] Installation steps:

[0070] 1. Place the first bottom beam 1 and the second bottom beam 2 at a right angle, use the first column positioning boot 4 to achieve the fixed connection between the first bottom beam 1 and the second bottom beam 2, and then place the column on the top of the first column positioning boot 4 to achieve fixation, thereby forming a pairwise perpendicular installation structure of the first bottom beam 1, the second bottom beam 2 and the column 3;

[0071] 2. Install the support frame 6 on the first bottom beam 1 and the second bottom beam 2 through the roller assembly 9 and the bracket moving body 8, then install the beam bracket 7 above the support frame 6, place the cross beam on the beam bracket 7, and through the movement of the roller assembly 9 and the bracket moving body 8 along the first bottom beam 1 and the second bottom beam 2, adjust the positions of the support frame 6 and the beam bracket 7 to achieve a stable support effect on the cross beam.

[0072] Embodiment 2

[0073] The assembly tool for the aluminum alloy oxygen chamber of the house type includes the first bottom beam 1, the second bottom beam 2 and the column 3. The first bottom beam 1, the second bottom beam 2 and the column 3 are all aluminum alloy profiles; a first column positioning boot 4 is provided at the intersection of the first bottom beam 1 and the second bottom beam 2; a second column positioning boot 5 is provided at the top of the column 3, and through the second column positioning boot 5, the fixed connection between the cross beam and the column 3 is achieved, and its connection structure is the same as that of the first column positioning boot 4; a movable support frame 6 is provided on the first bottom beam 1 or the second bottom beam 2; a beam bracket 7 is installed above the support frame 6, and the cross beam is placed on the top of the beam bracket 7; a bracket moving body 8 is provided at the bottom end of the support frame 6, and the bracket moving body 8 is at least used to move linearly along the first bottom beam 1 or the second bottom beam 2; roller assemblies 9 are provided on both sides of the support frame 6, and the roller assemblies 9 are at least used to press the support frame 6 against both sides of the first bottom beam 1 or the second bottom beam 2.

[0074] Among them, the first bottom beam 1, the second bottom beam 2 and the column 3 are distributed perpendicular to each other in pairs. The structures of the first bottom beam 1 and the second bottom beam 2 are the same. Guide ribs 11 are provided on both sides of the first bottom beam 1. The guide ribs 11 are used to enable the roller assembly 9 to move horizontally along the first bottom beam 1 or the second bottom beam 2 better. And a threaded sleeve 12 is provided at the end of the first bottom beam 1. Through the threaded sleeve 12, the first bottom beam 1 or the second bottom beam 2 is fixedly connected to the first column positioning shoe 4 by using bolts, forming a splicing structure. The first column positioning shoe 4 is a right-angle structure. A first process hole 41 and a second process hole 42 are respectively provided on the two side surfaces of the first column positioning shoe 4. Bolts are inserted into the first process hole 41 and the second process hole 42 to facilitate the connection and fixation between the first column positioning shoe 4 and the first bottom beam 1 or the second bottom beam 2. A support base 43 is provided on the outer wall of the bottom of the first column positioning shoe 4. A threaded hole 44 is also provided on the support base 43. A bolt is inserted into the threaded hole 44 on the support base 43, which can adjust the flatness of the first column positioning shoe 4 with the horizontal plane. Threaded holes 44 are provided on the outer walls of both sides of the first column positioning shoe 4. Bolts are inserted into the threaded holes 44, and the flatness adjustment between the first bottom beam 1 or the second bottom beam 2 and the first column positioning shoe 4 can be realized, ensuring the perpendicularity of the first bottom beam 1 or the second bottom beam 2 and the first column positioning shoe 4, and enabling the first bottom beam 1 and the second bottom beam 2 to be vertically installed. The support frame 6 includes two support arms 61 symmetrically distributed with respect to the first bottom beam 1. A number of cross bars 62 are fixedly provided between the two support arms 61. The cross bars 62 and the support arms 61 are connected by welding. The stability between the two support arms 61 is ensured through the cross bars 62, realizing the stable support for the beam bracket 7. The beam bracket 7 includes a top rod 71. The top rod 71 can be adjusted between the cross bars 62 to realize the change of the height of the top rod 71. A support plate 72 is fixedly installed at the top of the top rod 71. The cross beam is placed on the support plate 72. The support plate 72 is a right-angle structure. The right-angle structure of the support plate 72 just clamps the outside of the cross beam. A number of manual bolts 73 are provided on the outer wall of one side of the support plate 72. By tightening the manual bolts 73, the fixed installation of the cross beam inside the support plate 72 can be realized. The bracket moving body 8 includes a base plate 81. Shaft rods 82 are provided on both sides of the bottom of the base plate 81. Moving wheels 83 are provided at both ends of the shaft rods 82. The bottom of the moving wheels 83 is the lower plane of the first bottom beam 1 or the second bottom beam 2. As the moving wheels 83 roll, the support frame 6 and the beam bracket 7 move horizontally. The base plate 81, the shaft rods 82 and the moving wheels 83 together form a moving tank structure. The formed tank structure improves the stability during movement and also has better supporting ability.The roller assembly 9 includes a mounting bracket 91. The mounting bracket 91 is of a C-shaped structure. The roller 92 is vertically installed inside the mounting bracket 91. There are vertically distributed rollers 92 inside the mounting bracket 91. The roller 92 rolls in contact with the outer wall of the first bottom beam 1 or the second bottom beam 2. The roller assembly 9 and the carriage moving body 8 are vertically arranged, so that the contact ability between the roller assembly 9 and the carriage moving body 8 and the bottom beam is better. There is a notch on the outer wall of the mounting bracket 91, and the shaft of the roller 92 is slidably inserted into the notch. An adjusting bracket 93 connected to the shaft of the roller 92 is arranged inside the mounting bracket 91. The adjusting bracket 93 moves synchronously with the roller 92. A bolt rod 94 is arranged on one side of the adjusting bracket 93. By adjusting the position of the bolt rod 94, the adjusting bracket 93 is moved. The adjusting bracket 93 can drive the roller 92 to move synchronously. At this time, the shaft of the roller 92 slides inside the notch, making the roller 92 fit more closely with the outer wall of the first bottom beam 1 or the second bottom beam 2, improving the assembly accuracy.

[0075] Only some exemplary embodiments of the present invention have been described by way of illustration above. Undoubtedly, for those of ordinary skill in the art, without departing from the spirit and scope of the present invention, the described embodiments can be modified in various different ways. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the protection scope of the claims of the present invention.

Claims

1. A room-type aluminum alloy oxygen chamber assembly tool, comprising a bottom beam 1 (1), a bottom beam 2 (2) and a column (3), characterized in that: A column positioning shoe 1 (4) is provided at the intersection of the bottom beam 1 (1) and the bottom beam 2 (2); The top end of the column (3) is provided with a column positioning shoe 2 (5); A movable support frame (6) is arranged on the bottom beam 1 (1) or the bottom beam 2 (2), a beam bracket (7) is installed above the support frame (6), and a crossbeam is placed on the top of the beam bracket (7); A bracket moving body (8) is provided at the bottom end of the support frame (6), and the bracket moving body (8) is at least used to move linearly along the bottom beam 1 (1) or the bottom beam 2 (2); Roller assemblies (9) are provided on both sides of the support frame (6), and the roller assemblies (9) are at least used to make the support frame (6) close to both sides of the bottom beam one (1) or the bottom beam two (2).

2. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1 is characterized in that: The bottom beam one (1), the bottom beam two (2) and the columns (3) are vertically distributed in pairs.

3. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1 is characterized in that: The bottom beam 1 (1) and the bottom beam 2 (2) have the same structure; Guide ribs (11) are provided on both sides of the bottom beam (1), and a threaded sleeve (12) is provided at the end of the bottom beam (1).

4. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1, characterized in that: The column positioning shoe 1 (4) is a right-angle structure, and the two sides of the column positioning shoe 1 (4) are respectively provided with a process hole 1 (41) and a process hole 2 (42); A bracket (43) is provided on the bottom outer wall of the column positioning shoe (4); Threaded holes (44) are provided on the outer walls of both sides of the column positioning shoe (4).

5. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1, characterized in that: The support frame (6) comprises two support arms (61) symmetrically distributed about the bottom beam (1), and a plurality of cross bars (62) are fixedly arranged between the two support arms (61).

6. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1, characterized in that: The beam bracket (7) comprises a top rod (71), and a support plate (72) is fixedly mounted on the top of the top rod (71); The support plate (72) is a right-angle structure; A plurality of manual bolts (73) are arranged on an outer wall of one side of the support plate (72).

7. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1, characterized in that: The bracket moving body (8) comprises a base plate (81), and shafts (82) are arranged on both sides of the bottom of the base plate (81), and moving wheels (83) are arranged at both ends of the shafts (82); The base plate (81), the shaft rod (82) and the moving wheel (83) together form a mobile tank structure.

8. The room-type aluminum alloy oxygen chamber assembly tool according to claim 1, characterized in that: The roller assembly (9) comprises a mounting frame (91), and the mounting frame (91) is a C-shaped structure; The interior of the mounting frame (91) is provided with vertically distributed rollers (92); The roller assembly (9) and the bracket moving body (8) are arranged vertically.

9. The room-type aluminum alloy oxygen chamber assembly tool according to claim 8, characterized in that: A notch is provided on the outer wall of the mounting frame (91), and the shaft of the roller (92) is slidably inserted in the notch.

10. The room-type aluminum alloy oxygen chamber assembly tool according to claim 8, characterized in that: An adjustment frame (93) connected to the shaft of the roller (92) is arranged inside the mounting frame (91); the adjustment frame (93) moves synchronously with the roller (92); and a bolt rod (94) is arranged on one side of the adjustment frame (93).