Steel structure construction platform
By combining multiple units of the steel structure construction platform, the platform can be moved flexibly and the tool positions can be changed, which solves the problem of low construction efficiency in the existing technology and improves the flexibility and efficiency of construction.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-01
- Publication Date
- 2026-04-07
AI Technical Summary
Existing steel structure construction platforms need to be moved when the construction location changes, resulting in low construction efficiency. In addition, the platform space is limited, and the location of materials or tools needs to be moved frequently.
A steel structure construction platform was designed, comprising a base, a construction platform, a lifting unit, an angle adjustment unit, a sliding unit, an adjustment unit, a conveying unit, and a misalignment unit. The sliding, turning, rotating, sliding, and misalignment of the construction platform are achieved through the combined movement of these units, facilitating the position changes of the construction workers and tools.
It improves construction efficiency, allowing workers to freely change positions without moving the base, while tools and materials move synchronously, avoiding construction interference and enhancing the flexibility and efficiency of construction.
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Figure CN117661828B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of construction platforms, in particular to a steel structure construction platform. BACKGROUND
[0002] Steel structure is a structure composed of steel materials, which is mainly composed of steel beams, steel columns, steel trusses and other components through welding and other methods. Steel structure is increasingly used in high construction platforms during construction, such as door and window installation, decoration, decoration, glass curtain wall construction, old house maintenance and outer wall cleaning.
[0003] During the construction of the steel structure, the construction at the high position needs to be carried out by installing a construction platform to carry the construction personnel. The construction personnel need to place the required materials or tools on the construction platform for construction operation.
[0004] The existing steel structure construction platform needs to be moved when the construction position changes, and due to the limited space on the construction platform and the change of the construction position, the position of the materials or tools on the construction platform also needs to be moved at any time, so the construction efficiency is reduced. Therefore, a steel structure construction platform is needed to solve the above problems. SUMMARY
[0005] In view of the deficiencies in the prior art, the purpose of the embodiments of the present application is to provide a steel structure construction platform to solve the problems in the background art.
[0006] To achieve the above purpose, the present application provides the following technical scheme:
[0007] A steel structure construction platform comprises:
[0008] A base is provided, and a construction platform is slidably connected to the base. The construction platform has a first operation table and a second operation table installed therein, respectively.
[0009] A lifting unit is slidably connected to the base and connected to the construction platform, and is used to drive the construction platform to slide on the base.
[0010] An angle adjusting unit is installed on the base and connected to the lifting unit, and is used to drive the construction platform to turn through the lifting unit.
[0011] A sliding unit is rotatably connected to the base and connected to the lifting unit, and is used to drive the lifting unit to slide on the base.
[0012] An adjusting unit is rotatably connected to the base and connected to the sliding unit, and is used to drive the sliding unit to rotate on the base.
[0013] The conveying unit is slidably connected to the construction platform and connected to the first operation table, and is used to drive the first operation table to slide on the construction platform.
[0014] The dislocation unit is installed on the construction platform, one end of which is connected to the conveying unit and the other end is connected to the second operation table, and is used to drive the second operation table to slide on the construction platform under the driving of the conveying unit.
[0015] Compared with the prior art, the embodiment of the present application has the following advantages: the lifting unit is slidably connected to the base and connected to the construction platform, and is used to drive the construction platform to slide on the base; the angle adjusting unit is installed on the base and connected to the lifting unit, and is used to drive the construction platform to turn through the lifting unit; the sliding unit is rotatably connected to the base and connected to the lifting unit, and is used to drive the lifting unit to slide on the base; the adjusting unit is rotatably connected to the base and connected to the sliding unit, and is used to drive the sliding unit to rotate on the base; the conveying unit is slidably connected to the construction platform and connected to the first operation table, and is used to drive the first operation table to slide on the construction platform; and the dislocation unit is installed on the construction platform, one end of which is connected to the conveying unit and the other end is connected to the second operation table, and is used to drive the second operation table to slide on the construction platform under the driving of the conveying unit.
[0016] When the construction is carried out, the constructor can stand on the first operation table and place the materials or tools needed during the construction operation on the second operation table. The adjusting unit is turned on, which can drive the lifting unit to slide on the base through the connection with the sliding unit, and the lifting unit can drive the construction platform to be finely adjusted in angle through the angle adjusting unit, so as to adapt to different construction environments. When the constructor needs to move the position of the construction, the conveying unit is pulled, which can drive the first operation table to slide, so that the position of the constructor on the surface of the first operation table can be changed without moving the base. The conveying unit can drive the second operation table to slide through the dislocation unit when sliding, so that the positions of the first operation table and the second operation table can be exchanged, so that the constructor can freely change the position and conveniently construct different positions. Moreover, the materials and tools can move synchronously with the movement of the constructor, which is more convenient and prevents the materials and tools from interfering with the construction of the constructor, thereby improving the construction efficiency.
[0017] To more clearly illustrate the structural features and effects of the present application, the present application will be described in detail below with reference to the drawings and specific embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 The overall structure schematic diagram of the steel structure construction platform provided by the embodiment of the present application is shown.
[0019] Figure 2 Provided in the embodiments of the present invention Figure 1 Enlarged view of the angle adjustment unit in section A.
[0020] Figure 3 This is a schematic diagram of the construction platform provided in an embodiment of the present invention.
[0021] Figure 4 This is a schematic diagram of the structure of the adjustment unit provided in an embodiment of the present invention.
[0022] Reference numerals in the attached drawings: 1-base, 11-construction platform, 111-first operating table, 112-second operating table, 2-lifting unit, 21-sliding groove, 22-first sliding column, 23-second sliding column, 3-angle adjustment unit, 31-first arc groove, 32-second arc groove, 4-sliding unit, 41-rotating rod, 42-rotating slide, 43-sliding shaft, 44-semi-circular groove, 45-connecting rod, 5-conveying unit, 51-rotating wheel, 52-belt, 53-sliding rod, 54-sliding component, 6-misalignment unit, 61-first limiting groove, 62-second limiting groove, 63-sloping groove, 64-rotating shaft, 65-support rod, 66-sliding frame, 7-adjustment unit, 71-fixed frame, 72-driving component, 73-rotating wheel, 74-rotating cylinder, 75-transmission rod, 76-scale. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0024] The specific implementation of the present invention will be described in detail below with reference to specific embodiments.
[0025] See Figures 1-4 A steel structure construction platform, comprising:
[0026] A base 1, on which a construction platform 11 is slidably connected, and a first operating table 111 and a second operating table 112 are respectively installed in the construction platform 11;
[0027] The lifting unit 2 is slidably connected to the base 1 and connected to the construction platform 11, and is used to drive the construction platform 11 to slide on the base 1.
[0028] Angle adjustment unit 3 is installed on base 1 and connected to lifting unit 2, and is used to drive construction platform 11 to turn through lifting unit 2;
[0029] The sliding unit 4 is rotatably connected to the base 1 and connected to the lifting unit 2, and is used to drive the lifting unit 2 to slide on the base 1.
[0030] The adjustment unit 7 is rotatably connected to the base 1 and connected to the sliding unit 4, and is used to drive the sliding unit 4 to rotate on the base 1;
[0031] The conveying unit 5 is slidably connected to the construction platform 11 and connected to the first operating table 111, and is used to drive the first operating table 111 to slide on the construction platform 11.
[0032] The misalignment unit 6 is installed on the construction platform 11. One end is connected to the conveying unit 5, and the other end is connected to the second operating table 112. It is used to drive the second operating table 112 to slide misaligned on the construction platform 11 under the transmission of the conveying unit 5.
[0033] In an embodiment of the present invention, during construction, the worker can stand on the first operating platform 111 and place the materials or tools required for the construction operation on the second operating platform 112. The adjustment unit 7 is activated, and through its connection with the sliding unit 4, it drives the lifting unit 2 to slide on the base 1. The lifting unit 2 can also be adjusted by the angle adjustment unit 3 to fine-tune the angle of the construction platform 11, facilitating adaptation to different construction environments. When the worker needs to move the construction position, the conveying unit 5 is pulled, which drives the first operating platform 111 to slide, allowing the worker to change position on its surface without moving the base 1. During the sliding of the conveying unit 5, the second operating platform 112 can be offset and slid through the misalignment unit 6, allowing the positions of the first and second operating platforms 111 to be interchanged, thus enabling the worker to freely change positions and facilitating construction at different locations. Furthermore, the materials and tools can be moved synchronously with the construction worker's location, which is more convenient and prevents the materials and tools from interfering with the construction worker's work.
[0034] In one embodiment of the present invention, such as Figure 1 and Figure 2 As shown, the lifting unit 2 includes:
[0035] A sliding groove 21 is formed on the base 1;
[0036] The first sliding column 22 is fixed on the construction platform 11, and its end is slidably connected to the sliding groove 21;
[0037] The second sliding column 23 is fixed on the construction platform 11, and its end is slidably connected to the sliding groove 21.
[0038] In this embodiment, the sliding groove 21 is formed on the base 1; the first sliding column 22 is fixed on the construction platform 11, and its end is slidably connected to the sliding groove 21; the second sliding column 23 is fixed on the construction platform 11, and its end is slidably connected to the sliding groove 21.
[0039] In the construction process of steel structures, such as door and window installation, decoration, glass curtain wall construction, old building repair and exterior wall cleaning, high-altitude construction platforms are increasingly used.
[0040] During construction, the worker can stand on the first operating platform 111 and place the necessary materials or tools on the second operating platform 112. When the height of the first operating platform 111 and the second operating platform 112 needs to be adjusted, the adjustment unit 7 is activated. The adjustment unit 7, through its connection with the sliding unit 4, drives the second sliding column 23 to slide within the sliding groove 21. As the second sliding column 23 slides, it drives the first sliding column 22 to slide synchronously within the sliding groove 21 via the construction platform 11. This allows the first sliding column 22 and the second sliding column 23 to raise and lower the construction platform 11, which in turn allows the construction platform 11 to raise and lower the first operating platform 111 and the second operating platform 112 synchronously, thereby allowing for adjustment of the height of the worker, materials, or tools on the first operating platform 111 and the second operating platform 112 respectively.
[0041] Guide wheels can be installed on the surfaces of the first sliding column 22 and the second sliding column 23 in the lifting unit 2, and the guide wheels are rolled to the inner wall of the sliding groove 21, so that the first sliding column 22 and the second sliding column 23 can slide stably in the sliding groove 21 through the guide wheels.
[0042] In one embodiment of the present invention, such as Figure 2 As shown, the angle adjustment unit 3 includes:
[0043] The first arc-shaped groove 31 is formed on the base 1 and is connected to the middle of the sliding groove 21;
[0044] The second arc-shaped groove 32 is formed on the base 1 and is connected to the first arc-shaped groove 31.
[0045] In this embodiment, the first arc-shaped groove 31 is formed on the base 1 and communicates with the middle of the sliding groove 21; the second arc-shaped groove 32 is formed on the base 1 and communicates with the first arc-shaped groove 31.
[0046] When the first sliding column 22 slides to the uppermost end of the sliding groove 21, the second sliding column 23 slides to the middle of the sliding groove 21 (the connection between the sliding groove 21 and the first arc groove 31 and the second arc groove 32). At this time, the second sliding column 23 can slide into the first arc groove 31 (or the second arc groove 32) under the action of the sliding unit 4. During the process of the second sliding column 23 sliding in the second arc groove 32, the positions of the second sliding column 23, the construction platform 11 and the first sliding column 22 are constantly changing, so that the construction platform 11 can be turned, so that the construction platform 11 can drive the first operating table 111 and the second operating table 112 to adjust the angle, and then the angle of the first operating table 111 and the second operating table 112 can be finely adjusted to adapt to different construction environments.
[0047] Similarly, when the second sliding column 23 slides into the second arc-shaped groove 32, the working process is the same as described above, except that the direction of rotation of the first operating table 111 and the second operating table 112 has changed.
[0048] The first arc groove 31 and the second arc groove 32 can also be connected to the end of the sliding groove 21. In this case, after the first sliding column 22 slides to the end of the sliding groove 21, it can enter the first arc groove 31 or the second arc groove 32. The working process is the same as the above principle, and will not be described in detail here, thereby completing the angle adjustment of the first operating table 111 and the second operating table 112.
[0049] In one embodiment of the present invention, such as Figure 2 As shown, the sliding unit 4 includes:
[0050] Rotating rod 41 is rotatably connected to base 1, and rotating slide 42 is mounted on its surface;
[0051] A semi-circular groove 44 is formed on the base 1, and a sliding shaft 43 is slidably connected inside it. The surface of the sliding shaft 43 is slidably connected to the inner wall of the rotating slide 42.
[0052] The connecting rod 45 is hinged at one end to the second sliding column 23 and at the other end to the surface of the sliding shaft 43.
[0053] In this embodiment, the rotating rod 41 is rotatably connected to the base 1, and a rotating slide 42 is mounted on its surface; the semicircular groove 44 is formed on the base 1, and a sliding shaft 43 is slidably connected inside it, with the surface of the sliding shaft 43 slidably connected to the inner wall of the rotating slide 42; one end of the connecting rod 45 is hinged to the second sliding column 23, and the other end is hinged to the surface of the sliding shaft 43, wherein the rotating rod 41 is located at the center of the semicircular groove 44.
[0054] When the adjustment unit 7 is turned on, the adjustment unit 7 can drive the rotating rod 41 to rotate on the base 1 through the connection with the rotating rod 41. When the rotating rod 41 rotates, it can drive the rotating slide 42 on its surface to rotate synchronously. Since the sliding shaft 43 is slidably connected to the rotating slide 42 and the semi-circular groove 44 respectively, the sliding shaft 43 can slide in the semi-circular groove 44 under the action of the rotating slide 42.
[0055] When the sliding shaft 43 slides to the left end of the semi-circular groove 44, the sliding shaft 43 can drive the second sliding column 23 to slide in the sliding groove 21 through the connecting rod 45. When the second sliding column 23 slides, it can cause the construction platform 11 to drive the first sliding column 22 to slide synchronously in the sliding groove 21. Until the first sliding column 22 slides to the uppermost end of the sliding groove 21, the second sliding column 23 slides to the middle of the sliding groove 21. At this time, the second sliding column 23 can slide into the second arc-shaped groove 32 under the pull of the connecting rod 45. When the second sliding column 23 slides in the second arc-shaped groove 32, the positions of the second sliding column 23, the construction platform 11 and the first sliding column 22 are constantly changing, so that the construction platform 11 can be turned, so that the construction platform 11 can drive the first operating table 111 and the second operating table 112 to adjust their angles. This allows for fine-tuning of the angles of the first operating table 111 and the second operating table 112 to adapt to different construction environments.
[0056] Similarly, when the sliding shaft 43 slides to the right end of the semi-circular groove 44, the second sliding column 23 can slide into the first arc-shaped groove 31 under the pull of the connecting rod 45, thereby changing the direction of the first operating table 111 and the second operating table 112.
[0057] The rotating slide 42 in the sliding unit 4 can also be replaced by a rotating frame, which is installed on the rotating rod 41 so that the rotating frame can push the sliding shaft 43 to slide in the semi-circular groove 44 under the drive of the rotating rod 41.
[0058] In one embodiment of the present invention, such as Figure 4 As shown, the adjustment unit 7 includes:
[0059] A mounting bracket 71 is fixed to the base 1, and a drive component 72 is mounted on the side.
[0060] A rotating wheel 73 is mounted on the surface of a rotating rod 41, and a rotating cylinder 74 is rotatably connected to the surface.
[0061] The transmission rod 75 is connected at one end to the output end of the drive unit 72 and is threadedly connected to the inside of the rotating cylinder 74;
[0062] The scale 76 is mounted on the base 1.
[0063] In this embodiment, the fixing frame 71 is fixed on the base 1, and the driving component 72 is installed on the side; the rotating wheel 73 is installed on the surface of the rotating rod 41, and the rotating cylinder 74 is rotatably connected to the surface; the end of the transmission rod 75 is connected to the output end of the driving component 72, and is threadedly connected to the inside of the rotating cylinder 74; the scale 76 is installed on the base 1.
[0064] When the drive unit 72 is activated, its output end can drive the transmission rod 75 to rotate. Since the transmission rod 75 and the rotating cylinder 74 are connected by a thread, the rotating cylinder 74 can be pulled by the transmission rod 75 to drive the rotating rod 41 to rotate on the base 1 via the rotating wheel 73. The rotation angle of the rotating wheel 73 can be easily observed using the scale 76. When the rotating rod 41 rotates, it can drive the second sliding column 23 to slide in the sliding groove 21 through its connection with the sliding unit 4, thereby enabling the first sliding column 22 and the second sliding column 23 to drive the construction platform 11 to be raised, lowered, or have its angle adjusted.
[0065] The driving component 72 can be an electric motor or a pneumatic motor, which can easily drive the transmission rod 75 to rotate stably.
[0066] In one embodiment of the present invention, such as Figure 1 As shown, the conveying unit 5 includes:
[0067] Rotating wheel 51 is rotatably connected to base 1. Four sets of rotating wheels 51 are installed, and the four rotating wheels 51 are connected to each other by belt 52. The belt 52 is connected to the first operating table 111.
[0068] A slide bar 53 is mounted on the base 1, and a sliding member 54 is slidably connected to its surface. The sliding member 54 is connected to the first operating table 111.
[0069] In this embodiment, the rotating wheel 51 is rotatably connected to the base 1. Four sets of rotating wheels 51 are installed, and the four rotating wheels 51 are connected to each other by a belt 52. The belt 52 is connected to the first operating table 111. The slide rod 53 is installed on the base 1, and a sliding member 54 is slidably connected to its surface. The sliding member 54 is connected to the first operating table 111.
[0070] The operator can stand on the first operating platform 111 to perform the work. When it is necessary to move the work position, the belt 52 is pulled, causing the rotating wheel 51 to rotate on the work platform 11. When the belt 52 moves, it can drive the sliding member 54 to slide on the sliding rod 53 through the first operating platform 111. Thus, the sliding rod 53 can limit the first operating platform 111 through the sliding member 54, improving the stability of the first operating platform 111 during the sliding process. This allows the position of the first operating platform 111 to be adjusted, making it convenient for the operator to adjust the work position in a timely manner without moving the base 1 or the work platform 11.
[0071] The conveying unit 5 has two sets of slide rods 53 and sliding members 54, which facilitates the stable positioning of the first operating table 111 by the two sets of slide rods 53 through the sliding members 54. A rubber ring can also be installed inside the sliding member 54, which slides in connection with the surface of the slide rod 53. The rubber ring increases the friction between the slide rod 53 and the sliding member 54, thereby increasing the stability of the sliding member 54 after sliding on the surface of the slide rod 53, and thus improving the stability of the first operating table 111 after sliding.
[0072] In one embodiment of the present invention, such as Figure 1 As shown, the misalignment unit 6 includes:
[0073] The first limiting groove 61 is formed on the base 1;
[0074] The second limiting groove 62 is formed on the base 1, and the second limiting groove 62 is connected to the first limiting groove 61 through the inclined groove 63;
[0075] The rotating shaft 64 is slidably connected in the first limiting groove 61, the second limiting groove 62 and the inclined groove 63;
[0076] The support rod 65 is fixed on the rotating shaft 64, and its end is connected to the second operating table 112;
[0077] The sliding frame 66 is slidably connected to the surface of the support rod 65 and connected to the belt 52.
[0078] In this embodiment, the first limiting groove 61 is formed on the base 1; the second limiting groove 62 is formed on the base 1, and the second limiting groove 62 is connected to the first limiting groove 61 through the inclined groove 63; the rotating shaft 64 is slidably connected in the first limiting groove 61, the second limiting groove 62 and the inclined groove 63; the support rod 65 is fixed on the rotating shaft 64, and its end is connected to the second operating table 112; the sliding frame 66 is slidably connected to the surface of the support rod 65 and is connected to the belt 52.
[0079] When the belt 52 slides, since the side of the sliding frame 66 is connected to the belt 52, the sliding frame 66 can drive the support rod 65 to slide under the pull of the belt 52. When the support rod 65 slides, it can drive the rotating shaft 64 to slide in the second limiting groove 62 until the rotating shaft 64 slides into the inclined groove 63. Since the rotating shaft 64 and the inclined groove 63 are slidably connected, the rotating shaft 64 can drive the support rod 65 to slide downward in the sliding frame 66 under the push of the inclined groove 63. When the support rod 65 slides downward, it can drive the second operating table 112 at its end to slide downward until the rotating shaft 64 slides from the inclined groove 63 into the first limiting groove 61.
[0080] When the rotating shaft 64 slides into the first limiting groove 61, and is in the second limiting groove 62 relative to the rotating shaft 64, the position of the second operating table 112 is also lowered, thus facilitating the passage of materials or tools on the surface of the second operating table 112 through the bottom of the first operating table 111. After the second operating table 112, carrying materials or tools, passes through the bottom of the first operating table 111, the rotating shaft 64 slides into the inclined groove 63 at the other end. Similarly, the rotating shaft 64, pushed by the inclined groove 63, drives the support rod 65 to slide upward within the sliding frame 66, thereby causing the support rod 65 to lift the second operating table 112. This continues until the rotating shaft 64 slides through the inclined groove 63 to the second limiting groove 62 at the other end, causing the second operating table 112 to return to the same horizontal position as the first operating table 111.
[0081] Therefore, when the first operating platform 111 moves the worker to a different position, the second operating platform 112 will also move the materials or tools to a different position, allowing the positions of the first operating platform 111 and the second operating platform 112 to be interchangeable. This enables the worker to freely change positions, facilitating construction at different locations. Furthermore, the materials and tools can move synchronously with the worker's position, making it more convenient and preventing them from interfering with the worker's work.
[0082] The inclined groove 63 in the misalignment unit 6 can also be replaced by an arc-shaped sliding groove, which is not the only limitation here.
[0083] The working principle of this invention is as follows: During construction, the worker can stand on the first operating platform 111 and place the necessary materials or tools on the second operating platform 112. The adjustment unit 7 is activated, and through its connection with the sliding unit 4, it drives the second sliding column 23 to slide within the sliding groove 21. As the second sliding column 23 slides, it drives the first sliding column 22 to slide synchronously within the sliding groove 21 via the construction platform 11. This allows the first sliding column 22 and the second sliding column 23 to raise and lower the construction platform 11, facilitating height adjustment.
[0084] When the first sliding column 22 slides to the uppermost end of the sliding groove 21, the second sliding column 23 slides to the middle of the sliding groove 21. At this time, the second sliding column 23 can slide into the first arc-shaped groove 31 under the action of the sliding unit 4. During the process of the second sliding column 23 sliding in the second arc-shaped groove 32, the positions of the second sliding column 23, the construction platform 11 and the first sliding column 22 are constantly changing, so that the construction platform 11 can be turned, and the angles of the first operating table 111 and the second operating table 112 can be finely adjusted to adapt to different construction environments.
[0085] The operator can stand on the first operating platform 111 to perform the work. When it is necessary to move the work position, the operator pulls the belt 52, which drives the rotating wheel 51 to rotate on the work platform 11. When the belt 52 moves, it can drive the sliding member 54 to slide on the sliding rod 53 through the first operating platform 111. This allows the operator to adjust the work position of the first operating platform 111 in a timely manner without moving the base 1 or the work platform 11.
[0086] When the belt 52 slides, the sliding frame 66 can drive the support rod 65 to slide under the pull of the belt 52. When the support rod 65 slides, it can drive the rotating shaft 64 to slide in the second limiting groove 62 until the rotating shaft 64 slides into the inclined groove 63. Therefore, the rotating shaft 64 can drive the support rod 65 to slide downward in the sliding frame 66 under the push of the inclined groove 63. When the support rod 65 slides downward, it can drive the second operating table 112 at its end to slide downward until the rotating shaft 64 slides from the inclined groove 63 into the first limiting groove 61.
[0087] When the second operating table 112, carrying materials or tools, passes through the bottom of the first operating table 111, the rotating shaft 64 slides into the inclined groove 63 at the other end. Similarly, the rotating shaft 64, pushed by the inclined groove 63, drives the support rod 65 to slide upward within the sliding frame 66, thereby causing the support rod 65 to lift the second operating table 112. This continues until the rotating shaft 64 slides through the inclined groove 63 to the second limiting groove 62 at the other end, returning the second operating table 112 to the same horizontal position as the first operating table 111. This allows the positions of the first operating table 111 and the second operating table 112 to be interchanged, enabling the operator to freely change positions and facilitating construction in different locations. Furthermore, the materials and tools can move synchronously with the operator's movement, further enhancing convenience.
[0088] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection, an electrical connection, or a connection that allows for communication; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0089] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A steel structure construction platform, characterized in that, The steel structure construction platform includes: A base, on which a construction platform is slidably connected, and a first operating table and a second operating table are respectively installed in the construction platform; The lifting unit is slidably connected to the base and the construction platform, and is used to drive the construction platform to slide on the base; An angle adjustment unit, mounted on the base and connected to the lifting unit, is used to turn the construction platform via the lifting unit. The sliding unit is rotatably connected to the base and to the lifting unit, and is used to drive the lifting unit to slide on the base; The adjustment unit is rotatably connected to the base and to the sliding unit, and is used to drive the sliding unit to rotate on the base; The conveying unit is slidably connected to the construction platform and connected to the first operating table, and is used to drive the first operating table to slide on the construction platform. The misalignment unit is installed on the construction platform. One end is connected to the conveying unit, and the other end is connected to the second operating table. It is used to drive the second operating table to slide misaligned on the construction platform under the transmission of the conveying unit. The lifting unit includes: A sliding groove is formed on the base; The first sliding column is fixed on the construction platform, and its end is slidably connected to the sliding groove. The second sliding column is fixed on the construction platform, and its end is slidably connected to the sliding groove. The angle adjustment unit includes: The first arc-shaped groove is formed on the base and is connected to the middle of the sliding groove; The second arc-shaped groove is formed on the base and is connected to the first arc-shaped groove; The sliding unit includes: The rotating rod is rotatably connected to the base, and a rotating slide is mounted on its surface. A semi-circular groove is formed on the base, and a sliding shaft is slidably connected inside it. The surface of the sliding shaft is slidably connected to the inner wall of the rotating carriage. The connecting rod is hinged at one end to the second sliding column and at the other end to the surface of the sliding shaft; The adjustment unit includes: The mounting bracket is fixed to the base, and the drive unit is installed on the side; A rotating wheel is mounted on the surface of a rotating rod, and a rotating cylinder is rotatably connected to the surface. The transmission rod is connected at one end to the output end of the drive component and is threaded into the inside of the rotating cylinder; The scale is mounted on the base; The conveying unit includes: A rotating wheel is rotatably connected to the base. Four sets of rotating wheels are installed, and the four sets of rotating wheels are connected to each other by a belt. The belt is connected to the first operating table. A sliding rod is mounted on a base, and a sliding component is slidably connected to its surface. The sliding component is connected to the first operating table. The misalignment unit includes: The first limiting groove is formed on the base; The second limiting groove is formed on the base, and the second limiting groove is connected to the first limiting groove through an inclined groove; The rotating shaft is slidably connected within the first limiting groove, the second limiting groove, and the inclined groove. The support rod is fixed on the rotating shaft, and its end is connected to the second operating table; The sliding frame is slidably connected to the surface of the support rod and to the belt.
Citation Information
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