A connecting component of a steel framework and a side wall of a greenhouse

By using a connecting component of diagonal bracing and steel cantilever beams in the greenhouse, the problem of unstable connection between the steel frame and the side walls was solved, and stable support for the roof was achieved.

CN224338395UActive Publication Date: 2026-06-09DEZHOU YIZEXIN AGRICULTURAL SERVICE CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DEZHOU YIZEXIN AGRICULTURAL SERVICE CO LTD
Filing Date
2025-06-11
Publication Date
2026-06-09

AI Technical Summary

Technical Problem

The existing greenhouse steel frame is not stably connected to the side walls, resulting in an unstable roof.

Method used

The ceiling frame is connected to the side walls by using a combination of diagonal bracing and steel cantilever beams. The components include L-shaped long angle steel, connecting square tubes and diagonal bracing tubes. The ceiling frame is connected to the side walls by pre-embedded bolts and welding to enhance the support.

Benefits of technology

This improves the stability and support of the roof steel frame, ensuring the stability and safety of the roof.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224338395U_ABST
    Figure CN224338395U_ABST
Patent Text Reader

Abstract

The utility model discloses a steel skeleton and side wall connecting component of greenhouse booth, it includes the L shape long angle iron no.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model belongs to the field of greenhouse technology, and in particular relates to a steel frame and side wall connection component for a greenhouse. Background Technology

[0002] When constructing the side walls of a greenhouse, pre-embedded parts are installed in the concrete foundation and other parts of the wall according to the design requirements. The pre-embedded parts are usually made of steel plates, angle steel, etc., and have bolt holes or welding points for connection. The steel frame is processed with matching connection structure at the corresponding position, and then connected to the pre-embedded parts by high-strength bolts or welding. In order to strengthen the support of the roof steel frame and the greenhouse side walls, we designed a connection component between the greenhouse steel frame and the side walls, which uses a lower connecting diagonal brace in combination with steel cantilever beams to improve the support and ensure the stability of the roof steel frame. Utility Model Content

[0003] The purpose of this utility model is to provide a connecting component between the steel frame and the side wall of a greenhouse, which has the advantages of using a lower connecting diagonal brace in conjunction with a steel cantilever beam to improve the supporting force and ensure the stability of the roof steel frame, so as to solve the above-mentioned technical problems.

[0004] The technical solution of this utility model to solve the above-mentioned technical problems is as follows: A steel frame and side wall connection component for a greenhouse includes an L-shaped long angle steel I installed on both sides of the greenhouse side wall below the roof frame by pre-embedded bolts. Below the L-shaped long angle steel I, an L-shaped long angle steel II is installed on both sides of the greenhouse side wall by pre-embedded bolts. Multiple connecting square tubes I located below the roof frame are welded between the L-shaped long angle steel I and the L-shaped long angle steel II. A diagonal bracing tube is installed between the connecting square tube I and the roof frame. Both ends of the diagonal bracing tube are welded with U-shaped sleeves. The lower U-shaped sleeve is fitted onto the surface of the connecting square tube I and fixed to the surface of the connecting square tube I by two bolts. The upper U-shaped sleeve is fitted onto the surface of the roof frame and fixed to the surface of the roof frame by two bolts. Two symmetrical cantilever square tubes are installed inside the greenhouse cavity. The cantilever square tubes abut against the lower part of multiple roof frames.

[0005] Preferably, two symmetrical angle steels are welded to the bottom of the cantilever beam square tube, and the angle steels are installed on the side wall of the greenhouse by pre-embedded bolts.

[0006] Preferably, multiple symmetrical corner brackets are welded to both sides of the cantilever beam square tube, and the top of the corner brackets is welded to the bottom of the roof frame.

[0007] Preferably, a second connecting square tube is welded to the middle of two adjacent connecting square tubes, and the second connecting square tube abuts against the side wall of the greenhouse.

[0008] Preferably, the top and bottom of the connecting square tube one are provided with grooves that fit into the L-shaped long angle steel one and the L-shaped long angle steel two.

[0009] Preferably, the roof frame has grooves on both sides, the grooves are placed on the top of the side wall of the greenhouse, and the bottom of the roof frame is welded to the top of the L-shaped long angle steel.

[0010] The beneficial effects of this utility model are:

[0011] 1. This utility model uses pre-embedded bolts to install L-shaped long angle steel one on the side wall. Then, the ceiling frame is hoisted above the two L-shaped long angle steels one. According to the measured distance, L-shaped long angle steel one is welded to the ceiling frame. L-shaped long angle steel two is installed below L-shaped long angle steel one through pre-embedded bolts. Connecting square tube one is welded between L-shaped long angle steel one and L-shaped long angle steel two and located below the ceiling frame. Diagonal bracing tube is installed between the ceiling frame and connecting square tube one through U-shaped sleeve. Then, cantilever square tube is installed below multiple ceiling frames. This achieves the purpose of using lower connecting diagonal bracing in conjunction with steel cantilever beams to improve the support force and ensure the stability of the ceiling steel frame.

[0012] 2. By setting up the groove, when the ceiling frame is placed on top of the L-shaped long angle steel, the groove on the ceiling frame will overlap the top of the side wall, sharing part of the load-bearing capacity and improving the support of the ceiling frame.

[0013] 3. By setting up the groove, this utility model can ensure that when the connecting square tube is welded between the L-shaped long angle steel one and the L-shaped long angle steel two, the connecting square tube can fit against the side wall of the greenhouse, thus ensuring the support of the connecting square tube. Attached Figure Description

[0014] The advantages of the present invention in the above and / or other aspects will become clearer and more readily understood through the following detailed description taken in conjunction with the accompanying drawings, which are merely illustrative and do not limit the present invention, wherein:

[0015] Figure 1 This is a perspective view of one embodiment of the present utility model;

[0016] Figure 2 This is a three-dimensional disassembled schematic diagram of one embodiment of the present utility model;

[0017] Figure 3 This is a three-dimensional schematic diagram of an embodiment of the present invention, showing L-shaped long angle steel one and L-shaped long angle steel two;

[0018] Figure 4 This is one embodiment of the present utility model. Figure 2 A magnified view of point A in the middle.

[0019] The attached diagram lists the components represented by each number as follows:

[0020] 1. Ceiling frame; 2. L-shaped long angle steel one; 3. L-shaped long angle steel two; 4. Connecting square tube one; 5. Diagonal bracing tube; 6. U-shaped sleeve; 7. Cantilever beam square tube; 8. Angle steel; 9. Angle bracket; 10. Connecting square tube two; 11. Trench; 12. Trenching. Detailed Implementation

[0021] In the following description, embodiments of the steel frame and side wall connection components of the greenhouse of this utility model will be described with reference to the accompanying drawings.

[0022] Figure 1-4 This invention illustrates a connection component between the steel frame and sidewalls of a greenhouse according to an embodiment of the present invention. It includes L-shaped long angle steel 12, which is installed on both sides of the greenhouse sidewalls via pre-embedded bolts below the roof frame 1. Below the L-shaped long angle steel 12, L-shaped long angle steel 23, also installed on both sides of the greenhouse sidewalls via pre-embedded bolts, is provided. Grooves 12 are provided on both sides of the roof frame 1, and the grooves 12 rest on the top of the greenhouse sidewalls. The bottom of the roof frame 1 is welded to the top of the L-shaped long angle steel 12. When the ceiling frame 1 is placed on top of the L-shaped long angle steel 2, the groove 12 on the ceiling frame 1 will rest on the top of the side wall, sharing a portion of the load-bearing capacity and improving the supporting strength of the ceiling frame 1. Multiple connecting square tubes 4 located below the ceiling frame 1 are welded between the L-shaped long angle steel 2 and the L-shaped long angle steel 3. Diagonal bracing tubes 5 are installed between the connecting square tubes 4 and the ceiling frame 1. U-shaped sleeves 6 are welded to both ends of the diagonal bracing tubes 5. A connecting square tube 2 10 is welded to the middle of two adjacent connecting square tubes 4. The connecting square tube 2 10 rests against the side wall of the greenhouse. The top and bottom of the connecting square tube 1 4 are both provided with grooves 11 that fit into the L-shaped long angle steel 1 2 and L-shaped long angle steel 2 3. The grooves 11 ensure that when the connecting square tube 1 4 is welded between the L-shaped long angle steel 1 2 and L-shaped long angle steel 2 3, it fits snugly against the side wall of the greenhouse, guaranteeing the support strength of the connecting square tube 1 4. The U-shaped sleeve 6 located below is fitted onto the surface of the connecting square tube 1 4 and fixed in place by two bolts. The surface of the connecting square tube 4 is fitted with a U-shaped sleeve 6 located on the surface of the roof frame 1 and fixed to the surface of the roof frame 1 by two bolts. Two symmetrical cantilever square tubes 7 are installed in the inner cavity of the greenhouse. Two symmetrical angle steels 8 are welded to the bottom of the cantilever square tube 7. The angle steels 8 are installed on the side wall of the greenhouse by pre-embedded bolts. The cantilever square tube 7 rests against the bottom of multiple roof frames 1. Multiple symmetrical corner brackets 9 are welded to both sides of the cantilever square tube 7. The top of the corner brackets 9 is welded to the bottom of the roof frame 1.

[0023] Working principle: When using this utility model, L-shaped long angle steel 12 is installed on the side wall using pre-embedded bolts. Then, the roof frame 1 is hoisted above the two L-shaped long angle steel 12. According to the measured distance, the L-shaped long angle steel 12 is welded to the roof frame 1. At this time, the groove 12 on the roof frame 1 rests on the top of the greenhouse side wall. L-shaped long angle steel 23 is installed below L-shaped long angle steel 12 using pre-embedded bolts. The connecting square tube 4 is welded between L-shaped long angle steel 12 and L-shaped long angle steel 23 and located below the roof frame 1. The diagonal bracing tube 5 is installed between the roof frame 1 and the connecting square tube 4 using U-shaped sleeve 6 and bolts. Then, the cantilever square tube 7 is installed below multiple roof frames 1 using angle steel 8. Then, angle brackets 9 are welded to both sides of the angle steel 8. The angle brackets 9 are then welded to the roof frame 1 to ensure the horizontal support force.

[0024] In summary: The steel frame and side wall connection components of this greenhouse are constructed by installing L-shaped long angle steel 2 on the side wall using pre-embedded bolts. Then, the roof frame 1 is hoisted above the two L-shaped long angle steel 2. Based on the measured distance, the L-shaped long angle steel 2 is welded to the roof frame 1. The L-shaped long angle steel 3 is installed below the L-shaped long angle steel 2 using pre-embedded bolts. A connecting square tube 4 is welded between the L-shaped long angle steel 2 and the L-shaped long angle steel 3, positioned below the roof frame 1. A U-shaped sleeve 6 is used to install the diagonal brace 5 between the roof frame 1 and the connecting square tube 4. Finally, a cantilever beam square tube 7 is installed below multiple roof frames 1. This achieves the goal of using lower diagonal braces in conjunction with steel cantilever beams to increase support and ensure the stability of the roof steel frame.

Claims

1. A steel frame and sidewall connection component for a greenhouse, characterized in that, The structure includes L-shaped long angle steel 1 (2) installed on both sides of the greenhouse side wall below the roof frame (1) by pre-embedded bolts. Below the L-shaped long angle steel 1 (2), L-shaped long angle steel 2 (3) is installed on both sides of the greenhouse side wall by pre-embedded bolts. Multiple connecting square tubes 1 (4) located below the roof frame (1) are welded between the L-shaped long angle steel 1 (2) and the L-shaped long angle steel 2 (3). Diagonal bracing tubes (5) are installed between the connecting square tubes 1 (4) and the roof frame (1). Both ends of the inclined support tube (5) are welded with U-shaped sleeves (6). The lower U-shaped sleeve (6) is fitted onto the surface of the connecting square tube (4) and fixed to the surface of the connecting square tube (4) by two bolts. The upper U-shaped sleeve (6) is fitted onto the surface of the roof frame (1) and fixed to the surface of the roof frame (1) by two bolts. Two symmetrical cantilever square tubes (7) are installed in the inner cavity of the greenhouse. The cantilever square tubes (7) abut against the bottom of multiple roof frames (1).

2. The steel frame and sidewall connection component of the greenhouse according to claim 1, characterized in that, The bottom of the cantilever square tube (7) has two symmetrical angle steels (8), which are installed on the side wall of the greenhouse by pre-embedded bolts.

3. The steel frame and sidewall connection component of the greenhouse according to claim 2, characterized in that, Multiple symmetrical corner brackets (9) are welded to both sides of the cantilever square tube (7), and the top of the corner brackets (9) is welded to the bottom of the roof frame (1).

4. The steel frame and sidewall connection component of the greenhouse according to claim 3, characterized in that, A connecting square tube 2 (10) is welded between the middle of two adjacent connecting square tubes 1 (4), and the connecting square tube 2 (10) abuts against the side wall of the greenhouse.

5. The steel frame and sidewall connection component of the greenhouse according to claim 4, characterized in that, The top and bottom of the connecting square tube 1 (4) are provided with grooves (11) that fit with L-shaped long angle steel 1 (2) and L-shaped long angle steel 2 (3).

6. The steel frame and sidewall connection component of the greenhouse according to claim 5, characterized in that, The roof frame (1) has grooves (12) on both sides. The grooves (12) are placed on the top of the side wall of the greenhouse. The bottom of the roof frame (1) is welded to the top of the L-shaped long angle steel (2).