Anti-deformation cold transport container K-shaped component

By using connecting components A and B, which consist of reinforcing bars A and B, in refrigerated containers, the installation difficulties caused by the dispersed connection structure are solved, achieving an efficient and stable bottom connection of the container, enhancing strength and preventing deformation.

CN224076224UActive Publication Date: 2026-04-03QINGDAO YUCAI AUTOMOBILE TECHNOLOGY CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-19
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The existing refrigerated container connection structure is scattered, making it difficult to align the threaded holes during installation, which affects installation efficiency and connection strength.

Method used

The connecting components A and B, consisting of reinforcing rods A and B, utilize a sliding groove and sliding pin design to achieve a detachable connection between the reinforcing rods and the crossbeams and longitudinal beams, ensuring alignment and fixation.

Benefits of technology

It improves the connection precision and strength of the bottom of refrigerated containers, prevents deformation, simplifies the installation process, and is suitable for containers of different sizes.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224076224U_ABST
    Figure CN224076224U_ABST
Patent Text Reader

Abstract

The utility model discloses an anti-deformation K-shaped component of a cold transport container, and belongs to the technical field of container components. Comprising a reinforcing rod A arranged on the outer side of a longitudinal beam; the connecting assemblies A are arranged at the two ends of the reinforcing rods A in a sliding adjustment mode, and the connecting assemblies A are detachably arranged on the outer side of the cross beam; the reinforcing rods B are fixedly arranged on one sides of the reinforcing rods A, and the two reinforcing rods B are arranged in a V shape; and the connecting assembly B is arranged at the end, away from the reinforcing rod A, of the reinforcing rod B in a sliding adjustment mode, and the connecting assembly B is detachably arranged on the outer side of the cross beam. During installation, errors are possibly generated among all structures, so that threaded holes cannot be aligned, and the installation is inconvenient.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of container component technology, and more specifically, to a K-type component for a deformation-resistant refrigerated container. Background Technology

[0002] Refrigerated containers are an indispensable piece of transportation equipment in modern logistics systems. They are mainly used to transport perishable goods that need to be kept at low temperatures, such as fruits, vegetables, dairy products, and meat. The various components of a refrigerated container work together to ensure the quality and safety of the goods throughout the entire transportation process.

[0003] In related technologies, in order to increase the bottom strength of containers, for example, the prior art patent with publication number CN205708172U provides a bottom frame structure for a container used in logistics transportation. This device increases the bottom strength of the container by setting up structural reinforcing rods and using right-angle connectors to install the structural reinforcing rods between the two crossbeams at the bottom of the container, so as to avoid twisting and deformation during hoisting.

[0004] Although the existing technical solutions mentioned above can achieve the effect of connecting structural reinforcement rods and increasing the strength of the container bottom by setting right-angle connectors, the connection structure at the bottom of the container is relatively scattered. It is necessary to connect the crossbeams, longitudinal beams and structural reinforcement rods with right-angle connectors and screws. During installation, errors may occur between the various structures due to the manufacturing process, resulting in misalignment of threaded holes, which is inconvenient for installation.

[0005] In view of this, we propose a deformation-resistant K-type component for refrigerated containers. Utility Model Content

[0006] The purpose of this application is to provide a K-type component for refrigerated containers that is resistant to deformation. This component effectively solves the problem in the prior art where the connection structure at the bottom of the container is relatively scattered, requiring right-angle connectors and screws to connect the crossbeams, longitudinal beams, and structural reinforcing rods. During installation, errors may occur between the various structures, resulting in misalignment of the threaded holes and making installation inconvenient.

[0007] This application provides a deformation-resistant K-type component for refrigerated containers, including:

[0008] Reinforcing rod A is installed on the outside of the longitudinal beam;

[0009] Connecting component A is slidably adjusted at both ends of reinforcing rod A, and connecting component A is detachably mounted on the outside of crossbeam;

[0010] Reinforcing rod B is fixedly installed on one side of reinforcing rod A, and the two reinforcing rods B are arranged in a V-shape;

[0011] Connecting component B is slidably adjusted at the end of reinforcing rod B away from reinforcing rod A, and connecting component B is detachably mounted on the outside of the crossbeam.

[0012] As an optional solution to the technical solution of this application, the connecting component A includes a mounting plate A, which is fixedly mounted on the outside of the crossbeam by bolts. A sliding rod A is fixedly mounted on the outside of the mounting plate A, and the sliding rod A is slidably mounted on the inside of the reinforcing rod A.

[0013] As an optional solution to the technical solution of this application, the connecting component B includes a mounting plate B, which is fixedly mounted on the outside of the crossbeam by bolts. A sliding rod B is fixedly mounted on the outside of the mounting plate B, and the sliding rod B is slidably mounted on the inside of the corresponding reinforcing rod B. The mounting plate B and the crossbeam are arranged parallel to each other.

[0014] As an optional solution to the technical solution of this application, the two ends of the reinforcing rod A are provided with sliding grooves A corresponding to the sliding rod A, and one end of the reinforcing rod B is provided with sliding groove B corresponding to the sliding rod B;

[0015] The top of each sliding groove A is provided with an opening A, and the top of each sliding groove B is provided with an opening B;

[0016] The top of the sliding rod A is fixedly provided with a sliding pin A, and the top of the sliding rod B is fixedly provided with a sliding pin B;

[0017] The sliding pin A is slidably disposed inside the opening A, and the sliding pin B is slidably disposed inside the opening B.

[0018] As an optional solution to the technical solution of this application, a connecting ring is fixedly provided on the top of the sliding pin A, and the sliding pin B is slidably disposed on the inner side of the corresponding connecting ring, for driving the sliding rod A and the sliding rod B to adjust synchronously.

[0019] As an optional solution to the technical solution of this application, a connecting plate A is fixedly provided on the top of one of the connecting rings, and a connecting plate B is fixedly provided on the outer side of the other connecting ring. The connecting plate A and the connecting plate B are fixedly provided by a fixing component.

[0020] As an optional solution to the technical solution of this application, the connecting plate A has a sliding opening on the side near the connecting plate B, the fixing component includes a fixing bolt, the fixing bolt passes through the connecting plate B and the sliding opening, and a nut is threaded on the outer side of the fixing bolt at the top of the connecting plate A.

[0021] One or more technical solutions provided in the embodiments of this application have at least the following technical effects or advantages:

[0022] (1) This application uses connecting component A and connecting component B to fix reinforcing rod A and reinforcing rod B between the crossbeam and longitudinal beam at the bottom of the refrigerated container. Therefore, it effectively solves the problem that in the prior art, the connection structure at the bottom of the container is relatively scattered, and the crossbeam, longitudinal beam and structural reinforcing rod need to be connected by right-angle connectors and screws. During installation, errors may occur between the various structures, resulting in the threaded holes not being aligned and making installation inconvenient.

[0023] (2) This application provides connecting components A and B at the ends of reinforcing rod A and reinforcing rod B, so that sliding rod A and sliding rod B can be slidably set, thereby making the K-type component suitable for refrigerated containers of different specifications. By providing reinforcing rod A and reinforcing rod B at the bottom of the refrigerated container, the strength of the bottom crossbeam and longitudinal beam of the refrigerated container is increased, which can effectively prevent the crossbeam and longitudinal beam from deforming. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of the deformation-resistant K-type component of the refrigerated container disclosed in a preferred embodiment of this application;

[0025] Figure 2 This is a schematic diagram of the assembly of connecting component A, connecting component B and connecting ring in a type K component of a deformation-resistant refrigerated container disclosed in a preferred embodiment of this application.

[0026] Figure 3 This is a structural schematic diagram of reinforcing rod A and reinforcing rod B in a K-type component of a deformation-resistant refrigerated container disclosed in a preferred embodiment of this application;

[0027] Figure 4 This is a structural schematic diagram of the assembly of a deformation-resistant K-type component of a refrigerated container with longitudinal and transverse beams, as disclosed in a preferred embodiment of this application.

[0028] The following are the labeling instructions in the diagram: 100, longitudinal beam; 200, transverse beam; 201, waist-shaped opening; 1, reinforcing rod A; 11, sliding groove A; 111, opening A; 2, connecting assembly A; 21, mounting plate A; 22, sliding rod A; 221, sliding pin A; 3, reinforcing rod B; 31, sliding groove B; 311, opening B; 4, connecting assembly B; 41, mounting plate B; 42, sliding rod B; 421, sliding pin B; 5, connecting ring; 51, connecting plate A; 511, sliding opening; 52, connecting plate B; 53, fixing assembly; 531, fixing bolt; 532, nut. Detailed Implementation

[0029] The present application will be further described in detail below with reference to the accompanying drawings.

[0030] Reference Figure 1 and Figure 4This application discloses a deformation-resistant K-type component for a refrigerated container, including a reinforcing rod A1 disposed on the outer side of a longitudinal beam 100. Connecting components A2 are slidably and adjustablely disposed at both ends of the reinforcing rod A1. Connecting components A2 are detachably disposed on the outer side of a transverse beam 200. A reinforcing rod B3 is fixedly disposed on one side of the reinforcing rod A1. The two reinforcing rods B3 are arranged in a V-shape. A connecting component B4 is slidably and adjustablely disposed at the end of the reinforcing rod B3 away from the reinforcing rod A1. Connecting components B4 are detachably disposed on the outer side of the transverse beam 200. A waist-shaped opening 201 is provided on the outer side of the transverse beam 200.

[0031] When installing reinforcing rods A1 and B3, reinforcing rod A1 is first installed to the inner side of the two crossbeams 200 through connecting component A2, so that reinforcing rod A1 is located on the outer side of the longitudinal beam 100. Then, reinforcing rod B3 is installed to one side of the corresponding crossbeam 200 through connecting component B4. When connecting component A2 and connecting component B4 are installed to the outer side of the crossbeam 200 through the waist-shaped opening 201 and bolts, the waist-shaped opening 201 is set to be waist-shaped to prevent the waist-shaped opening 201 from being misaligned with the bolt holes on connecting component A2 and connecting component B4.

[0032] In actual installation, multiple reinforcing rods A1 and B3 can be symmetrically installed on the inner side of the longitudinal beam 100 and the transverse beam 200 to strengthen the longitudinal beam 100 and the transverse beam 200 and prevent the longitudinal beam 100 and the transverse beam 200 from deforming during use.

[0033] Reference Figure 2 , Figure 3 and Figure 4 The connecting component A2 includes a mounting plate A21, which is bolted to the outside of the crossbeam 200. A sliding rod A22 is fixedly mounted on the outside of the mounting plate A21, and the sliding rod A22 is slidably mounted on the inside of the reinforcing rod A1. The connecting component B4 includes a mounting plate B41, which is bolted to the outside of the crossbeam 200. A sliding rod B42 is fixedly mounted on the outside of the mounting plate B41, and the sliding rod B42 is slidably mounted on the inside of the corresponding reinforcing rod B3. The mounting plate B41 and the crossbeam 200 are parallel to each other. Sliding grooves A11 are formed at both ends of the reinforcing rod A1 corresponding to the sliding rod A22. One end of the strong rod B3 has a sliding groove B31 corresponding to the sliding rod B42. The top of the sliding groove A11 has an opening A111, and the top of the sliding groove B31 has an opening B311. The top of the sliding rod A22 is fixedly provided with a sliding pin A221, and the top of the sliding rod B42 is fixedly provided with a sliding pin B421. The sliding pin A221 is slidably disposed inside the opening A111, and the sliding pin B421 is slidably disposed inside the opening B311. The top of the sliding pin A221 is fixedly provided with a connecting ring 5, and the sliding pin B421 is slidably disposed inside the corresponding connecting ring 5, which is used to drive the sliding rod A22 and the sliding rod B42 to adjust synchronously.

[0034] When installing reinforcing rod A1, sliding pin A221 slides inside sliding groove A11 and opening A111, making it close to crossbeam 200. Mounting plate A21 is then fixed to crossbeam 200 with bolts. Simultaneously, as sliding pin A221 slides, it drives the corresponding connecting ring 5 to move, thereby causing sliding pin B421 to slide inside sliding groove B31 and opening B311. This causes sliding rod B42 to slide inside sliding groove B31, making mounting plate B41 close to crossbeam 200. This facilitates fixing mounting plate B41 to crossbeam 200 with bolts, making it easier to install reinforcing rod A1 and reinforcing rod B3.

[0035] Reference Figure 1 and Figure 2 One of the connecting rings 5 ​​has a connecting plate A51 fixedly installed on its top, and the other connecting ring 5 has a connecting plate B52 fixedly installed on its outer side. The connecting plate A51 and the connecting plate B52 are fixedly installed by a fixing assembly 53. The connecting plate A51 has a sliding opening 511 on the side near the connecting plate B52. The fixing assembly 53 includes a fixing bolt 531, which passes through the connecting plate B52 and the sliding opening 511. The outer side of the fixing bolt 531 is threaded with a nut 532 at the top of the connecting plate A51.

[0036] After connecting components A2 and B4 are fixed, the nut 532 is rotated to engage with the fixing bolt 531, thereby fixing the connecting plate A51 and connecting plate B52, limiting the two connecting rings 5, and then fixing and locking the sliding rod A22 and sliding rod B42.

[0037] In summary, the K-type anti-deformation refrigerated container component disclosed in this application, when in use, slides the sliding pin A221 inside the sliding groove A11 and the opening A111, so that it is close to the crossbeam 200 and the mounting plate A21 is fixed to the crossbeam 200 by bolts. At the same time, when the sliding pin A221 slides, it drives the corresponding connecting ring 5 to move, thereby driving the sliding pin B421 to slide inside the sliding groove B31 and the opening B311, so that the sliding rod B42 slides inside the sliding groove B31, driving the mounting plate B41 to be close to the crossbeam 200, which facilitates the fixing of the mounting plate B41 to the crossbeam 200 by bolts. When the connecting component A2 and the connecting component B4 are installed to the outside of the crossbeam 200 through the waist-shaped opening 201 and bolts, the waist-shaped opening 201 is set to waist shape to prevent the waist-shaped opening 201 from being misaligned with the bolt holes on the connecting component A2 and the connecting component B4, which facilitates the installation of the reinforcing rod A1 and the reinforcing rod B3.

[0038] In actual installation, multiple reinforcing rods A1 and B3 can be symmetrically installed on the inner side of the longitudinal beam 100 and the transverse beam 200 to strengthen the longitudinal beam 100 and the transverse beam 200 and prevent the longitudinal beam 100 and the transverse beam 200 from deforming during use.

Claims

1. A cold-transport container K-section part against deformation, characterized by, The utility model relates to a kind of reinforced rod and connecting assembly, including: Reinforced rod A (1) is arranged on the outside of longitudinal beam (100); Connecting assembly A (2) is slidably adjusted on the both ends of reinforced rod A (1), and the connecting assembly A (2) is detachably arranged on the outside of crossbeam (200); Reinforced rod B (3) is fixedly arranged on the side of reinforced rod A (1), and two reinforced rod B (3) are arranged in V shape; Connecting assembly B (4) is slidably adjusted on the end of reinforced rod B (3) away from reinforced rod A (1), and the connecting assembly B (4) is detachably arranged on the outside of crossbeam (200).

2. A cold planter container K-part according to claim 1, characterized in that: The connecting assembly A (2) includes mounting plate A (21), and the mounting plate A (21) is fixedly arranged on the outside of crossbeam (200) by bolt, the outside of mounting plate A (21) is fixedly provided with sliding rod A (22), and the sliding rod A (22) is slidably arranged on the inside of reinforced rod A (1).

3. A cold planter container K-part according to claim 2, characterized in that: The connecting assembly B (4) includes mounting plate B (41), and the mounting plate B (41) is fixedly arranged on the outside of crossbeam (200) by bolt, the outside of mounting plate B (41) is fixedly provided with sliding rod B (42), and the sliding rod B (42) is slidably arranged on the inside of corresponding reinforced rod B (3), and the mounting plate B (41) is arranged in parallel with crossbeam (200).

4. A cold planter container K-part according to claim 3, characterized in that: The both ends of the reinforced rod A (1) are provided with sliding groove A (11) corresponding to sliding rod A (22), and one end of the reinforced rod B (3) is provided with sliding groove B (31) corresponding to sliding rod B (42); The top of the sliding groove A (11) is provided with opening A (111), and the top of the sliding groove B (31) is provided with opening B (311); The top of the sliding rod A (22) is fixedly provided with sliding pin A (221), and the top of the sliding rod B (42) is fixedly provided with sliding pin B (421); The sliding pin A (221) is slidably arranged on the inside of the opening A (111), and the sliding pin B (421) is slidably arranged on the inside of the opening B (311).

5. A cold planter K-member of claim 4, wherein: The top of the sliding pin A (221) is fixedly provided with connecting ring (5), and the sliding pin B (421) is slidably arranged on the inside of corresponding connecting ring (5), to drive the sliding rod A (22) and the sliding rod B (42) to be synchronously adjusted.

6. A cold planter K-member of claim 5, wherein: The top of one of the connecting ring (5) is fixedly provided with connecting plate A (51), and the outside of another connecting ring (5) is fixedly provided with connecting plate B (52), and the connecting plate A (51) and the connecting plate B (52) are fixedly arranged by fixed component (53).

7. A cold planer K-member anti-deformation component according to claim 6, wherein: The side of the connecting plate A (51) close to the connecting plate B (52) is provided with sliding opening (511), and the fixed component (53) includes fixed bolt (531), the fixed bolt (531) penetrates the connecting plate B (52) and the sliding opening (511), and the outside of the fixed bolt (531) is located on the top of the connecting plate A (51) and is threadedly provided with nut (532).

Citation Information

Patent Citations

  • Container under( -)chassis structure for commodity circulation transportation

    CN205708172U