Steel supporting frame

By designing an inverted T-shaped steel support frame and utilizing high-strength I-beams and error adjustment components, the problem of messy storage of long steel sections in the workshop was solved, achieving classified support and stable storage, and improving storage efficiency and space utilization.

CN224117753UActive Publication Date: 2026-04-14SHANDONG SHUOCHENG MASCH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Long steel sections lack effective storage facilities after processing in the workshop, resulting in messy placement, taking up space, and being unable to be stored in a categorized manner.

Method used

Design a steel support frame, including support steel, lifting steel and reinforcing steel. It is made of high-strength I-beams welded into an inverted T-shaped structure and equipped with error adjustment components. The inclined arrangement of the lifting steel and the protective sleeve achieve classified support and stable storage.

Benefits of technology

This system enables the categorized storage of long steel sections, reduces space requirements, improves the load-bearing strength and stability of the support frame, prevents steel from moving or tilting, and optimizes the storage environment in the workshop.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a steel supporting frame, which relates to the field of long-section steel supporting frames and comprises supporting steel, first lifting steel, second lifting steel, first reinforcing steel, second reinforcing steel, bottom steel, third reinforcing steel and fourth reinforcing steel. According to the device, supporting and classified storage of long-section steel can be achieved through the multiple supporting frames, the steel large in size and heavy in weight is placed on the second lifting steel, and the steel small in size and light in weight is placed on the first lifting steel; meanwhile, through the first reinforcing steel, the second reinforcing steel, the bottom steel, the third reinforcing steel and the fourth reinforcing steel, the bearing strength and the placement stability of the supporting frame can be obviously optimized, so that the steel cannot be stacked on the workshop ground in disorder, and the occupied space is reduced; and meanwhile, the lifting steel is obliquely arranged, so that the supported long-section steel is not easy to move.
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Description

Technical Field

[0001] This utility model relates to the field of long steel support frames, and more specifically, to a steel support frame. Background Technology

[0002] Steel is an alloy material with iron and carbon as its main components, and the carbon content is usually controlled at 0.02%. ~ It contains between 2.11% (mass fraction) and may contain elements such as manganese, silicon, chromium, and nickel to improve its properties. It is one of the most widely used metallic materials in modern industry, and is processed into various shapes through processes such as smelting, casting, rolling, or forging.

[0003] In the field of machining, since mass production is the norm, many long steel sections need to be stored in the workshop for a certain period of time after processing. Currently, most factories do not have facilities for storing long steel sections (over 5 meters in length), but instead simply place them haphazardly on the workshop floor. This makes the steel easy to move and takes up space, and the concentrated stacking of steel sections of different sizes and weights makes effective sorting impossible. Utility Model Content

[0004] The purpose of this utility model is to solve the problems mentioned in the background art and to propose a steel support frame.

[0005] The technical solution adopted by this utility model to solve its technical problem is:

[0006] A steel support frame includes a supporting steel, a first supporting steel, a second supporting steel, a first reinforcing steel, a second reinforcing steel, a bottom steel, a third reinforcing steel, and a fourth reinforcing steel.

[0007] The supporting steel, which is mainly in the shape of an inverted T, is placed on the ground;

[0008] Both the first and second supporting steels are welded to the supporting steel at an angle and symmetrically, and are distributed vertically.

[0009] The first reinforcing steel is welded to the supporting steel and the first supporting steel at both ends, and the first reinforcing steel is symmetrically distributed about the supporting steel.

[0010] The two ends of the second reinforcing steel are welded to the supporting steel and the second supporting steel, respectively, and the second reinforcing steel is symmetrically distributed about the supporting steel;

[0011] The bottom steel is symmetrically and vertically welded to the supporting steel, and the bottom surface of the bottom steel is in contact with the ground;

[0012] The two ends of the third reinforcing steel are welded to the supporting steel and the bottom steel respectively, and the combination of the four third reinforcing steels forms a square structure;

[0013] The two ends of the fourth reinforcing steel are welded to the supporting steel and the bottom steel, respectively, and the fourth reinforcing steel is symmetrically distributed about the supporting steel.

[0014] Furthermore, protective sleeves are installed at the ends of both the first and second supporting steel.

[0015] Furthermore, the supporting steel, the first supporting steel, the second supporting steel, the first reinforcing steel, the second reinforcing steel, the bottom steel, the third reinforcing steel, and the fourth reinforcing steel are all made of high-strength I-beams.

[0016] Furthermore, the first and second supporting steel bars are respectively equipped with error adjustment components to ensure that the long steel bars are placed horizontally and stably on several support frames.

[0017] Furthermore, the error adjustment assembly includes an adjustment plate, a fixing steel, a high-strength screw, and a rotating component.

[0018] Several adjustment plates with an inverted U-shape have their inner sides tightly fitted to the upper half of the sidewalls of the first lifting steel / second lifting steel, respectively.

[0019] The fixing steel is symmetrically welded to the first supporting steel and the second supporting steel, and the fixing steel is distributed in parallel with the first supporting steel and the second supporting steel;

[0020] The high-strength screw is internally threaded to the fixed steel, and one end of the high-strength screw is rotatably connected to the adjusting plate, while the other end of the high-strength screw is connected to a rotating component.

[0021] Furthermore, several triangular reinforcing steels are provided at the connection between the fixed steel and the first supporting steel / second supporting steel.

[0022] Furthermore, the protective sleeve is made of nitrile rubber.

[0023] Compared with the prior art, the beneficial effects of this utility model are:

[0024] Compared to existing technologies, this application utilizes multiple support frames to achieve categorized storage of long steel sections. Larger and heavier steel sections are placed on the second supporting steel, while smaller and lighter steel sections are placed on the first supporting steel. Simultaneously, the first, second, bottom, third, and fourth reinforcing steels significantly optimize the load-bearing strength and placement stability of the support frames. This prevents the steel from being haphazardly piled up on the workshop floor and reduces space occupation. Furthermore, due to the inclined arrangement of the supporting steel, the long steel sections are less prone to movement after being supported. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0026] Figure 2 This is a schematic diagram showing the fit between this device and steel.

[0027] Figure 3 This is a diagram illustrating the installation of the protective sleeve;

[0028] Figure 4 This is a schematic diagram showing the fit between the adjustment plate and the first supporting steel.

[0029] Figure label:

[0030] 1. Supporting steel; 2. First supporting steel; 3. Second supporting steel; 4. First reinforcing steel; 5. Second reinforcing steel; 6. Bottom steel; 7. Third reinforcing steel; 8. Fourth reinforcing steel; 9. Protective sleeve; 10. Adjusting plate; 11. Fixing steel; 12. High-strength screw; 13. Rotating component; 14. Triangular reinforcing steel. Detailed Implementation

[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present utility model, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model. The present utility model will be further described with reference to the accompanying drawings and embodiments:

[0032] like Figure 1 and Figure 2 As shown, a steel support frame includes a supporting steel 1, a first supporting steel 2, a second supporting steel 3, a first reinforcing steel 4, a second reinforcing steel 5, a bottom steel 6, a third reinforcing steel 7, and a fourth reinforcing steel 8.

[0033] The main supporting steel 1, which is shaped like an inverted T, is placed on the ground;

[0034] The first lifting steel 2 and the second lifting steel 3 are both welded to the support steel 1 at an angle and symmetrically, and are distributed vertically.

[0035] The first reinforcing steel 4 is welded to the supporting steel 1 and the first supporting steel 2 at both ends, and the first reinforcing steel 4 is symmetrically distributed about the supporting steel 1.

[0036] The two ends of the second reinforcing steel 5 are welded to the supporting steel 1 and the second supporting steel 3 respectively, and the second reinforcing steel 5 is symmetrically distributed about the supporting steel 1;

[0037] The bottom steel 6 is symmetrically and vertically welded to the supporting steel 1, and the bottom surface of the bottom steel 6 is in contact with the ground.

[0038] The two ends of the third reinforcing steel 7 are welded to the supporting steel 1 and the bottom steel 6 respectively, and the combination of the four third reinforcing steels 7 forms a square structure.

[0039] The two ends of the fourth reinforcing steel 8 are welded to the supporting steel 1 and the bottom steel 6 respectively, and the fourth reinforcing steel 8 is symmetrically distributed about the supporting steel 1.

[0040] In a further refinement of the above embodiment, the supporting steel 1, the first supporting steel 2, the second supporting steel 3, the first reinforcing steel 4, the second reinforcing steel 5, the bottom steel 6, the third reinforcing steel 7, and the fourth reinforcing steel 8 are all made of high-strength I-beams.

[0041] To avoid safety hazards caused by contact between the tips of the first lifting steel 2 and the second lifting steel 3 and the workers, the above embodiment is further optimized by installing protective sleeves 9 at the ends of both the first lifting steel 2 and the second lifting steel 3. Specifically, the protective sleeves 9 are made of nitrile rubber.

[0042] The working process of this utility model is as follows:

[0043] First, place several support frames (at least two) on a stable ground, and then arrange them in sequence. After they are arranged, place long steel sections on the first support steel 2 or the second support steel 3 of the support frame. Classify and place the steel according to its weight and size. Place the larger and heavier steel sections on the second support steel 3, and place the smaller and lighter steel sections on the first support steel 2. Place an equal number of steel sections on the two support steel sections to make the support frame more stable.

[0044] In order to further improve the load-bearing strength and stability of the support frame on the ground, the performance of the support frame can be significantly optimized and its service life extended by adding the first reinforcing steel 4, the second reinforcing steel 5, the bottom steel 6, the third reinforcing steel 7, and the fourth reinforcing steel 8. In this way, the steel will not be piled up randomly on the workshop floor and the space occupied will be reduced. Moreover, various types of steel can be stored in the height direction of the support frame according to their weight, size, and cross-sectional shape.

[0045] To avoid tilting of long steel sections after placement due to manufacturing errors in the support frame, in some embodiments, such as... Figure 3 and Figure 4 As shown, error adjustment components are respectively provided on the first supporting steel 2 and the second supporting steel 3 to ensure that the long steel section is placed horizontally and stably on several support frames;

[0046] A further refinement of the above embodiment is that the error adjustment component includes an adjustment plate 10, a fixing steel 11, a high-strength screw 12, and a rotating component 13.

[0047] Several adjustment plates 10 with an inverted U-shape have their inner sides tightly fitted to the upper half of the sidewalls of the first lifting steel 2 / second lifting steel 3 respectively;

[0048] The fixing steel 11 is symmetrically welded to the first supporting steel 2 and the second supporting steel 3, and the fixing steel 11 is distributed in parallel with the first supporting steel 2 and the second supporting steel 3;

[0049] The high-strength screw 12 is internally threaded to the fixed steel 11, and one end of the high-strength screw 12 is rotatably connected to the adjusting plate 10. The other end of the high-strength screw 12 is connected to a rotating part 13, and several triangular reinforcing steels 14 are provided at the connection between the fixed steel 11 and the first supporting steel 2 / second supporting steel 3.

[0050] In this embodiment, if the steel is found to tilt during the process of placing long steel sections on multiple first supporting steel bars 2 / second supporting steel bars 3, the steel section is first removed, and then the support height can be finely adjusted through the error adjustment component to overcome the processing error. This makes the support height of the same long steel section on different support frames equal (specifically, the height of the adjustment plate 10 is adjusted. Since the inner side of the adjustment plate 10 is closely attached to the two sides of the supporting steel, the adjustment plate 10 can be finely adjusted by rotating the two high-strength screws 12 on both sides of the same supporting steel at the same time). Then, several long steel sections of the same type can be placed stably and in a single layer on the corresponding height supporting steels of different support frames to avoid tilting after the long steel sections are supported, thus improving the performance of the support frames.

[0051] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A steel support frame, characterized in that, It includes supporting steel (1), first supporting steel (2), second supporting steel (3), first reinforcing steel (4), second reinforcing steel (5), bottom steel (6), third reinforcing steel (7), and fourth reinforcing steel (8). A support steel (1) with an inverted T-shaped main body is placed on the ground; The first supporting steel (2) and the second supporting steel (3) are both welded to the supporting steel (1) at an incline and symmetrically and are distributed vertically. The two ends of the first reinforcing steel (4) are welded to the supporting steel (1) and the first supporting steel (2) respectively, and the first reinforcing steel (4) is symmetrically distributed about the supporting steel (1); The two ends of the second reinforcing steel (5) are welded to the supporting steel (1) and the second supporting steel (3) respectively, and the second reinforcing steel (5) is symmetrically distributed about the supporting steel (1); The bottom steel (6) is symmetrically and vertically welded to the supporting steel (1), and the bottom surface of the bottom steel (6) is in contact with the ground. The two ends of the third reinforcing steel (7) are welded to the supporting steel (1) and the bottom steel (6) respectively, and the combination of the four third reinforcing steels (7) forms a square structure; The two ends of the fourth reinforcing steel (8) are welded to the supporting steel (1) and the bottom steel (6) respectively, and the fourth reinforcing steel (8) is symmetrically distributed about the supporting steel (1).

2. The steel support frame according to claim 1, characterized in that, Protective sleeves (9) are installed at the ends of both the first lifting steel (2) and the second lifting steel (3).

3. A steel support frame according to claim 1, characterized in that, The supporting steel (1), the first supporting steel (2), the second supporting steel (3), the first reinforcing steel (4), the second reinforcing steel (5), the bottom steel (6), the third reinforcing steel (7), and the fourth reinforcing steel (8) are all made of high-strength I-beams.

4. A steel support frame according to claim 3, characterized in that, Error adjustment components are respectively provided on the first supporting steel (2) and the second supporting steel (3) to ensure that the long steel section is placed horizontally and stably on several support frames.

5. A steel support frame according to claim 4, characterized in that, The error adjustment assembly includes an adjustment plate (10), a fixed steel rod (11), a high-strength screw (12), and a rotating component (13). Several adjustment plates (10) with an inverted U-shaped main body are tightly fitted to the upper half of the sidewalls of the first lifting steel (2) / second lifting steel (3) on their two inner sides respectively; The fixing steel (11) is symmetrically welded to the first supporting steel (2) and the second supporting steel (3), and the fixing steel (11) is distributed in parallel with the first supporting steel (2) and the second supporting steel (3); The high-strength screw (12) is internally threaded to the fixed steel (11), and one end of the high-strength screw (12) is rotatably connected to the adjusting plate (10), while the other end of the high-strength screw (12) is connected to a rotating part (13).

6. A steel support frame according to claim 5, characterized in that, Several triangular reinforcing steels (14) are provided at the connection between the fixed steel (11) and the first supporting steel (2) / second supporting steel (3).

7. A steel support frame according to claim 2, characterized in that, The protective sleeve (9) is made of nitrile rubber.