Folding marine building wall structure
By designing a foldable marine building wall structure, the problems of inconvenient transportation and low construction efficiency of traditional light steel prefabricated walls are solved, and convenient construction and efficient installation process are achieved.
Patent Information
- Application Number
- CN202421868630.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-02
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-08-02
AI Technical Summary
Traditional light steel prefabricated walls cannot be folded, resulting in inconvenient transportation and low construction efficiency, which cannot meet the needs of certain special scenarios such as temporary hospitals and offshore platform buildings.
A folding marine building wall structure is designed, including bottom groove plates, load-bearing parts and connectors. The load-bearing parts can be switched between folding and working states, and the connections are kept stable, simplifying the assembly process at the construction site.
It realizes that the load-bearing parts occupy a small space in the folded state, which is convenient for transportation and storage, and is directly deployed to the working state during construction, improving construction efficiency and installation performance.
Smart Images

Figure CN223088640U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of marine construction, in particular to a folding marine building wall structure. Background Art
[0002] With the development of the economy and the progress of society, traditional buildings can no longer meet the needs of social development, and light steel prefabricated buildings have become an inevitable trend.
[0003] After the traditional light steel prefabricated wall is assembled, it cannot be folded and occupies a large volume. If the light steel wall is formed into a frame structure at the production factory, it is not convenient to transport it to the construction site. The existing traditional method is that the prefabricated wall is prefabricated and drilled in the factory first, and then transported to the construction site for assembly. This will greatly prolong the construction time at the construction site, with low construction efficiency and is not suitable for the building needs in some cases, such as mobile cabin hospitals, offshore platform buildings, etc. Summary of the Utility Model
[0004] In view of this, the purpose of the utility model is to overcome the deficiencies in the prior art and provide a folding marine building wall structure.
[0005] The utility model provides the following technical solutions:
[0006] An embodiment of the present application provides a folding marine building wall structure, including a bottom channel plate, load-bearing members and connecting members. The bottom channel plate is fixedly arranged; a first chute is opened on one side of the bottom channel plate close to the load-bearing members, and two or more load-bearing members are vertically arranged in the first chute of the bottom channel plate. One of the load-bearing members on both sides of the remaining load-bearing members is fixedly connected to one end of the bottom channel plate, and the remaining load-bearing members are slidably installed in the first chute of the bottom channel plate. The load-bearing members have a folded state and a working state. The load-bearing members move away from each other to make the load-bearing members enter the working state, and the load-bearing members move closer to each other to make the load-bearing members switch to the folded state; the connecting members are used to connect adjacent two load-bearing members, at least one connecting member is arranged between adjacent two load-bearing members, the connecting members can be folded or unfolded, the load-bearing members move away from each other to make the connecting members unfold, and the load-bearing members move closer to each other to make the connecting members fold.
[0007] In one embodiment, the bottom channel plate has two ends, one end of the bottom channel plate is the first end, the other end of the bottom channel plate is the second end, the first end is the end fixedly connected to the load-bearing members, and a limiting channel plate is hingedly arranged on the second end. The limiting channel plate can rotate around the hinge point with the second end to make the limiting channel plate perpendicular or parallel to the load-bearing members; a second chute communicating with the first chute is arranged on the limiting channel plate.
[0008] In one embodiment, the length of the bottom groove plate is equal to the sum of the thickness of the limiting groove plate and the thicknesses of all the load-bearing members.
[0009] In one embodiment, when the load-bearing member is in the folded state, the limiting groove plate is parallel to the load-bearing member, and the limiting groove plate can be locked and connected to the load-bearing member so that the load-bearing member maintains the folded state.
[0010] In one embodiment, the connecting member includes a first connecting plate and a second connecting plate. Between two adjacent load-bearing members, one end of the first connecting plate is hingedly connected to one load-bearing member, the other end of the first connecting plate is hingedly connected to one end of the second connecting plate, and the other end of the second connecting plate is hingedly connected to another adjacent load-bearing member.
[0011] In one embodiment, the first connecting plate and the second connecting plate are plate body structures having wire arranging groove bodies.
[0012] In one embodiment, an elastic member is connected between the first connecting plate and the second connecting plate. The elastic member can apply a pulling force to the first connecting plate and the second connecting plate, so that two adjacent load-bearing members approach each other or tend to approach each other.
[0013] In one embodiment, wire arranging through holes are provided at positions on the load-bearing member close to the connecting member, and the wire arranging through holes communicate with the wire arranging groove bodies.
[0014] In one embodiment, the connecting member includes a first end portion and a second end portion that are slidably telescoped with each other. Between two adjacent load-bearing members, one end of the first end portion is hinged to one load-bearing member, the other end of the first end portion is slidably telescoped with one end of the second end portion, and the other end of the second end portion is hingedly connected to another adjacent load-bearing member.
[0015] In one embodiment, a receiving groove is provided on the load-bearing member. When the load-bearing member is switched to the folded state, the connecting member is folded and received in the receiving groove.
[0016] In one embodiment, the foldable marine building wall structure further includes a top plate. When the load-bearing member is in the working state, the top plate is fixedly connected to the end of the load-bearing member away from the bottom groove plate.
[0017] In one embodiment, the foldable marine building wall structure further includes a stiffening connection shell. One of the load-bearing members located on both sides of the other load-bearing members is fixedly arranged on the bottom groove plate through the stiffening connection shell. The stiffening connection shell includes an L-shaped plate and a triangular plate. The L-shaped plate has a first plate body portion and a second plate body portion that are vertically fixedly connected. The first plate body portion is fixedly connected to the bottom groove plate, and the load-bearing member fixedly connected to the bottom groove plate is fixedly connected to the second plate body portion. Two triangular plates are provided, and the two triangular plates are respectively fixedly connected to both sides of the L-shaped plate, and the triangular plates are fixedly connected to the inner wall of the first chute.
[0018] The embodiments of the present utility model have the following advantages:
[0019] In the foldable marine building wall structure provided by the embodiment of the present application, the load-bearing members can be flexibly switched between the folded state and the working state. When the load-bearing members are in the folded state, the space occupied is small, which is convenient for transportation and storage. When the load-bearing members are needed to support the operation, the adjacent load-bearing members can be directly unfolded and switched to the working state, without assembling the wall structure at the construction site, saving working hours and improving work efficiency. And a connecting member is arranged between adjacent load-bearing members, and through the connecting member, the adjacent load-bearing members can be kept stable, improving the installation performance and reliability.
[0020] In order to make the above objects, features, and advantages of the present utility model more obvious and understandable, the following specific preferred embodiments are given in conjunction with the accompanying drawings and are described in detail as follows. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for use in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present utility model and should not be regarded as limiting the scope. For those of ordinary skill in the art, other related drawings can be obtained based on these drawings without creative efforts.
[0022] Figure 1 FIG. 1 shows a schematic structural view of one perspective of an embodiment of a foldable marine building wall structure provided by the embodiment of the present application;
[0023] Figure 2 FIG. 2 shows a schematic structural view of a second perspective of another embodiment of a foldable marine building wall structure provided by the embodiment of the present application;
[0024] Figure 3 FIG. 3 shows a schematic structural view of a third perspective of still another embodiment of a foldable marine building wall structure provided by the embodiment of the present application;
[0025] Figure 4Shows a structural schematic diagram of four perspectives of a partial structure of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application;
[0026] Figure 5 Shows a structural schematic diagram of five perspectives of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application;
[0027] Figure 6 Shows a structural schematic diagram of six perspectives of a partial structure of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application;
[0028] Figure 7 Shows a structural schematic diagram of seven perspectives of a partial structure of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application;
[0029] Figure 8 Shows a structural schematic diagram of eight perspectives of a partial structure of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application;
[0030] Figure 9 Shows a structural schematic diagram of nine perspectives of a partial structure of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application;
[0031] Figure 10 Shows a structural schematic diagram of ten perspectives of a partial structure of another embodiment of a foldable marine building wall structure provided by an embodiment of the present application.
[0032] Main element symbol description:
[0033] 100 - bottom groove plate; 110 - first chute;
[0034] 200 - load-bearing member; 210 - wire arrangement through-hole; 220 - receiving groove;
[0035] 300 - connecting member; 310 - first connecting plate; 320 - second connecting plate; 330 - wire slot body;
[0036] 400 - limit groove plate; 410 - second chute;
[0037] 500 - top plate;
[0038] 600 - stiffening connection shell; 610 - L-shaped plate; 620 - triangular plate. Detailed implementation manners
[0039] Embodiments of the present utility model will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals indicate the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present utility model and should not be construed as a limitation of the present utility model.
[0040] It should be noted that when an element is referred to as "fixed to" another element, it can be directly on the other element or there can also be an intermediate element. When an element is considered to be "connected" to another element, it can be directly connected to the other element or there may be an intermediate element at the same time. On the contrary, when an element is referred to as being "directly on" another element, there is no intermediate element. The terms "vertical", "horizontal", "left", "right" and similar expressions used herein are for illustrative purposes only.
[0041] In the present utility model, unless otherwise clearly defined and limited, terms such as "installed", "connected", "connected", "fixed", etc. should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0042] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present utility model, "a plurality" means two or more unless otherwise clearly and specifically defined.
[0043] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs. The terms used in the description of the template herein are only for the purpose of describing specific embodiments and are not intended to limit the present utility model. The term "and / or" used herein includes any and all combinations of one or more of the related listed items.
[0044] As Figures 1 to 10 shown, the embodiments of the present application provide a foldable marine building wall structure, which can be used to support a floor slab and thus form a frame structure with an internal space. The foldable marine building wall structure includes a bottom groove plate 100, a load-bearing member 200, and a connecting member 300.
[0045] AsFigure 1 , as Figure 2 or Figure 3 shown, the bottom channel plate 100 is fixedly arranged on the ground or other fixed table surfaces. Other fixed table surfaces are, for example, offshore platforms, etc. There is a foundation for fixing the bottom channel plate 100 on the ground or other fixed table surfaces. The fixed connection method between the bottom channel plate 100 and the ground or other fixed table surfaces is not limited. Exemplarily, the bottom channel plate 100 is fixedly connected to the ground or other fixed table surfaces by means of bolts, clamping or welding, etc.
[0046] On one side of the bottom channel plate 100 close to the load-bearing member 200, a first chute 110 is opened. Two or more load-bearing members 200 are vertically arranged in the first chute 110 of the bottom channel plate 100. Exemplarily, as Figure 2 shown, five load-bearing members 200 are arranged; as Figure 3 shown, in one embodiment, four load-bearing members 200 are arranged. In another embodiment, three load-bearing members 200 are arranged.
[0047] The load-bearing member 200 has a folded state and a working state. As Figure 1 shown, the load-bearing members 200 move away from each other so that the load-bearing members 200 enter the working state; as Figure 3 shown, the load-bearing members 200 move closer to each other so that the load-bearing members 200 switch to the folded state; of course, as Figure 7 shown, the load-bearing members 200 can also be in a semi-folded state.
[0048] There are two load-bearing members 200 located on both sides of the remaining load-bearing members 200. One of the load-bearing members 200 is fixedly connected to one end of the bottom channel plate 100, and the remaining load-bearing members 200 are slidably installed in the first chute 110 of the bottom channel plate 100. For example, four load-bearing members 200 are arranged. The four load-bearing members 200 are arranged in sequence and are respectively named the first load-bearing member, the second load-bearing member, the third load-bearing member, and the fourth load-bearing member. The first load-bearing member and the fourth load-bearing member are located on both sides of the second load-bearing member and the third load-bearing member. Then the first load-bearing member or the fourth load-bearing member is fixedly connected to the bottom channel plate 100. For better description and understanding of the technical solution of the present application, the first load-bearing member or the second load-bearing member fixedly connected to the bottom channel plate 100 is named the fixed connection member. If two load-bearing members are arranged, and the two load-bearing members are the first load-bearing member and the second load-bearing member respectively, then one of the first load-bearing member and the second load-bearing member is the fixed connection member.
[0049] Exemplarily, the fixed connection member is fixedly connected to the bottom channel plate 100 by means of bolt connection, clamping or welding, etc.
[0050] The arranged bottom channel plate 100 can disperse the pressure of each load-bearing member 200 on the ground, protect the foundation through the arranged bottom channel plate 100, make the ground stress uniform, and improve the overall bearing capacity of the foldable marine building wall structure.
[0051] Through the provided first sliding groove 110, when the load-bearing member 200 is in a folded state, the inner wall of the first sliding groove 110 can limit the displacement of the load-bearing member 200, preventing the load-bearing member 200 from being scattered during transportation.
[0052] As Figure 1 or Figure 5 As shown, the connecting member 300 is used to connect two adjacent load-bearing members 200. At least one connecting member 300 is provided between two adjacent load-bearing members 200. The connecting member 300 can be folded or unfolded. When the load-bearing members 200 move away from each other, the connecting member 300 unfolds. When the load-bearing members 200 move closer to each other, the connecting member 300 folds.
[0053] Exemplarily, as Figure 1 shown, two connecting members 300 are provided between two adjacent load-bearing members 200. In another embodiment, three connecting members 300 are provided between two adjacent load-bearing members 200. In yet another embodiment, four connecting members 300 are provided between two adjacent load-bearing members 200.
[0054] For the foldable marine building wall structure provided by the embodiment of the present application, the load-bearing member 200 has a folded state and a working state. When the load-bearing member 200 is in the folded state, it occupies a small space, which is convenient for transportation and storage. When it is necessary for the load-bearing member 200 to support the floor slab, the adjacent load-bearing members 200 are directly unfolded to switch to the working state, without the need to assemble the wall structure at the construction site, saving working hours and improving work efficiency. And a connecting member 300 is provided between adjacent load-bearing members 200, and the connecting member 300 can keep the adjacent load-bearing members 200 stable, improving the installation performance and reliability.
[0055] As Figure 2 and Figure 3 shown, in one embodiment, the bottom groove plate 100 has two ends. One end of the bottom groove plate 100 is the first end, and the other end of the bottom groove plate 100 is the second end. The first end is the end fixedly connected to the load-bearing member 200. A limiting groove plate 400 is hingedly provided at the second end. The limiting groove plate 400 can rotate around the hinge point with the second end. As Figure 2 shown, when the limiting groove plate 400 rotates, it can be perpendicular to the load-bearing member 200. At this time, the load-bearing members 200 can move away from each other to switch to the working state; as Figure 3 shown, when the limiting groove plate 400 rotates, it can be parallel to the load-bearing member 200. At this time, the load-bearing members 200 are in the folded state.
[0056] The limiting groove plate 400 is provided with a second chute 410 communicating with the first chute 110. The first chute 110 and the second chute 410 are arranged in a straight line. The load-bearing member 200 can only move in a straight line by the inner wall of the second chute 410. The load-bearing member 200 can slide in the second chute 410 to switch to the working state or the folded state. When the load-bearing member 200 is in the working state, the inner wall of the second chute 410 can limit the load-bearing member 200 to prevent shaking and improve stability and reliability.
[0057] As Figure 3 shown, in one embodiment, the length of the bottom groove plate 100 is equal to the sum of the thickness of the limiting groove plate 400 and the thicknesses of all the load-bearing members 200. When the load-bearing members 200 are in the folded state, the adjacent load-bearing members 200 are attached to each other through the bottom groove plate 100 and the limiting groove plate 400, preventing relative movement between the load-bearing members 200 during transportation and reducing the transportation difficulty. If the length of the bottom groove plate 100 is less than the sum of the thickness of the limiting groove plate 400 and the thicknesses of all the load-bearing members 200, there will be a gap between the adjacent load-bearing members 200 when the load-bearing members 200 are in the folded state, and the load-bearing members 200 are likely to slide and knock against each other during transportation. If the length of the bottom groove plate 100 is greater than the sum of the thickness of the limiting groove plate 400 and the thicknesses of all the load-bearing members 200, when the load-bearing members 200 switch to the folded state, the limiting groove plate 400 cannot be closed to a state parallel to the load-bearing members 200 as Figure 3 shown, which is not convenient for transportation and storage.
[0058] As Figure 3 shown, in one embodiment, when the load-bearing member 200 is in the folded state, the limiting groove plate 400 is parallel to the load-bearing member 200, and the limiting groove plate 400 can be locked and connected to the load-bearing member 200 to keep the load-bearing member 200 in the folded state. Exemplarily, screw holes are provided at one end of the limiting groove plate far from the bottom groove plate. Among the multiple load-bearing members, one load-bearing member close to the limiting groove plate is locked and connected to the limiting groove plate by screws, restricting the displacement of the limiting groove plate and the load-bearing member by the screws, preventing the load-bearing member from switching from the folded state to the working state due to vibration during transportation, and improving the stability and reliability of the load-bearing member.
[0059] As Figure 1 shown, after the load-bearing member 200 switches to the working state, the load-bearing member 200 and the limiting groove plate 400 are fixedly connected by bolts; of course, the load-bearing member 200 and the limiting groove plate 400 can also be fixedly connected by welding, clamping, etc. to prevent the load-bearing member 200 from shaking when supporting the floor slab and improve stability and safety.
[0060] The provided bottom channel plate 100 and the limit channel plate 400 can disperse the pressure of each load-bearing member 200 onto the ground. By providing the bottom channel plate 100, the foundation is protected, the ground stress is made uniform, and the overall load-bearing capacity of the foldable marine building wall structure is improved. Moreover, the provided bottom channel plate 100 and limit channel plate 400 can separate the load-bearing member 200 from the ground. In a humid and rainy environment, the bottom channel plate 100 and the limit channel plate 400 can also slow down the corrosion of the load-bearing member 200, extend the service life of the load-bearing member 200, and improve the safety performance of the foldable marine building wall structure.
[0061] Exemplarily, a slider is provided at one end of the load-bearing member close to the bottom channel plate 100 and the limit channel plate 400, and the load-bearing member 200 is slidably mounted on the bottom channel plate 100 and the limit channel plate 400 through the slider.
[0062] As Figure 1 shown, in one embodiment, the connecting member 300 includes a first connecting plate 310 and a second connecting plate 320. Between two adjacent load-bearing members 200, one end of the first connecting plate 310 is hingedly connected to one load-bearing member 200, the other end of the first connecting plate 310 is hingedly connected to one end of the second connecting plate 320, and the other end of the second connecting plate 320 is hingedly connected to another adjacent load-bearing member 200. As Figure 1 shown, the first connecting plate 310 and the second connecting plate 320 can be unfolded to a state where they are parallel to each other. As Figure 7 shown, the first connecting plate 310 and the second connecting plate 320 can be fully folded or semi-folded.
[0063] In one embodiment, an elastic member is connected between the first connecting plate and the second connecting plate. The elastic member can apply a pulling force to the first connecting plate and the second connecting plate. The elastic member pulls the first connecting plate and the second connecting plate to rotate and fold or there is a tendency to rotate and fold, so that two adjacent load-bearing members approach each other or there is a tendency to approach each other, and thus the load-bearing members in the folded state are not easily dispersed during transportation, facilitating transportation. And by applying a pulling force to the first connecting plate and the second connecting plate through the elastic member, the first connecting plate and the second connecting plate rotate around their hinge points, thereby driving the adjacent load-bearing members to quickly approach each other, so as to quickly switch the load-bearing members to the folded state and improve the efficiency.
[0064] Exemplarily, the elastic member is one of the following: a helical spring, a leaf spring, or a pneumatic spring.
[0065] As Figure 8 、 Figure 9 and Figure 10 shown, in one embodiment, the first connecting plate 310 and the second connecting plate 320 are plate body structures with wire groove bodies 330. Wires can be accommodated in the wire groove bodies 330, and the inner walls of the wire groove bodies 330 can limit the wires.
[0066] As Figure 1 shown, in one embodiment, a wire arranging through hole 210 is provided at a position on the load-bearing member 200 close to the connecting member 300. The wire arranging through hole 210 communicates with the wire arranging groove body 330, and the cable can be arranged in the wire arranging through hole 210 and the wire arranging groove body 330.
[0067] It is worth mentioning that the uses of the wire arranging groove body 330 and the wire arranging through hole 210 are not limited. The wire arranging groove body 330 and the wire arranging through hole 210 not only provide an installation basis for the cable, but also pipelines, sound insulation cotton, thermal insulation materials, etc. can be arranged in the wire arranging groove body 330 and the wire arranging through hole 210.
[0068] In one embodiment, the technical solution in which the connecting member 300 of the above embodiment has the first connecting plate 310 and the second connecting plate 320 can also be replaced with the following technical solution:
[0069] The connecting member 300 includes a first end portion and a second end portion that are slidably and telescopically fitted with each other. Between two adjacent load-bearing members 200, one end of the first end portion is hinged to one load-bearing member 200, the other end of the first end portion is slidably and telescopically fitted with one end of the second end portion, and the other end of the second end portion is hinged to another adjacent load-bearing member 200.
[0070] As Figure 7 shown, in one embodiment, a receiving groove 220 is provided on the load-bearing member 200. When the load-bearing member 200 is switched to the folded state, the connecting member 300 is folded and received in the receiving groove 220, preventing a gap from existing between adjacent load-bearing members 200 and increasing the occupied space, which is convenient for storage and transportation. And it is worth mentioning that the use of the receiving groove 220 is not limited, and cables, pipelines, sound insulation cotton, and thermal insulation materials, etc. can also be arranged in the receiving groove 220.
[0071] As Figure 4 shown, in one embodiment, the foldable marine building wall structure further includes a top plate 500. As Figure 5 shown, when the load-bearing member 200 is in the working state, the top plate 500 is fixedly connected to one end of the load-bearing member 200 away from the bottom groove plate 100. The load-bearing member 200 is fixedly connected to the floor through the top plate 500. The top plate 500 disperses the weight of the floor to each load-bearing member 200, making the force on each load-bearing member 200 uniform and improving the bearing capacity. Exemplarily, the top plate 500 is fixedly connected to the load-bearing member 200 by means of bolt connection, welding, clamping, etc. And by providing the top plate 500, the displacement of the load-bearing member 200 in the working state can also be limited, improving the seismic performance.
[0072] As Figure 6As shown, in one of the embodiments, the foldable marine building wall structure further includes a stiffening connection shell 600. As Figure 7 shown, one of the load-bearing members 200 located on both sides of the remaining load-bearing members 200 is fixedly arranged on the bottom groove plate 100 through the stiffening connection shell 600. Following the naming method of the previous embodiment, among the load-bearing members 200, the load-bearing member 200 fixedly connected to the bottom groove plate 100 is named the fixed connection member, and the fixed connection member is fixedly arranged on the bottom groove plate 100 through the stiffening connection shell 600.
[0073] As Figure 6 shown, the stiffening connection shell 600 includes an L-shaped plate 610 and a triangular plate 620. The L-shaped plate 610 has a first plate body part and a second plate body part that are vertically fixedly connected. The first plate body part is fixedly connected to the bottom groove plate 100, and the load-bearing member 200 fixedly connected to the bottom groove plate 100 is fixedly connected to the second plate body part, that is, the fixed connection member is fixedly connected to the second plate body part; two triangular plates 620 are provided, one triangular plate 620 is fixedly connected to one side of the L-shaped plate 610; the other triangular plate 620 is fixedly connected to the other side of the L-shaped plate 610. Through the triangular plate 620, the connection strength between the first plate body part and the second plate body part of the L-shaped plate 610 can be improved, and the anti-deformation ability of the L-shaped plate 610 can be improved. Exemplarily, the L-shaped plate 610 and the triangular plate 620 are integrally formed or welded.
[0074] During use, the triangular plate 620 is fixedly connected to the inner wall of the first chute 110, and the L-shaped plate 610 is fixedly connected to the fixed connection member.
[0075] Exemplarily, through holes are provided on the triangular plate 620 and the L-shaped plate 610. The triangular plate 620 is fixedly connected to the inner wall of the first chute 110 through bolts, and the L-shaped plate 610 is fixedly connected to the fixed connection member through bolts. In another embodiment, the triangular plate 620 is fixedly connected to the bottom groove plate 100 by clamping, welding, etc., and the L-shaped plate 610 is fixedly connected to the fixed connection member by clamping, welding, etc.
[0076] The stiffening connection shell 600 can strengthen the fixed connection between the fixed connection member and the bottom groove plate 100 from all directions and improve the connection strength.
[0077] In all the examples shown and described here, any specific value should be construed as merely exemplary and not as a limitation. Therefore, other examples of the exemplary embodiments may have different values.
[0078] It should be noted that: similar reference numerals and letters denote similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.
[0079] The above-described embodiments merely represent several implementation manners of the present utility model. The description thereof is relatively specific and detailed, but it should not be construed as a limitation to the scope of the present utility model. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present utility model, several modifications and improvements can still be made, and these all fall within the protection scope of the present utility model.
Claims
1. A foldable ocean building wall structure, characterized in that Including: A bottom groove plate (100), the bottom groove plate (100) is fixedly arranged; Load-bearing members (200), on one side of the bottom groove plate (100) close to the load-bearing members (200), a first sliding groove (110) is opened. Two or more of the load-bearing members (200) are vertically arranged in the first sliding groove (110) of the bottom groove plate (100). One of the load-bearing members (200) located on both sides of the remaining load-bearing members (200) is fixedly connected to one end of the bottom groove plate (100), and the remaining load-bearing members (200) are slidably installed in the first sliding groove (110) of the bottom groove plate (100). The load-bearing members (200) have a folded state and a working state. The load-bearing members (200) move away from each other to make the load-bearing members (200) enter the working state, and the load-bearing members (200) move closer to each other to make the load-bearing members (200) switch to the folded state; Connecting members (300), the connecting members (300) are used to connect two adjacent load-bearing members (200). At least one connecting member (300) is arranged between two adjacent load-bearing members (200). The connecting members (300) can be folded or unfolded. When the load-bearing members (200) move away from each other, the connecting members (300) are unfolded, and when the load-bearing members (200) move closer to each other, the connecting members (300) are folded.
2. The foldable marine building wall structure according to claim 1, characterized in that, The bottom groove plate (100) has two ends. One end of the bottom groove plate (100) is the first end, and the other end of the bottom groove plate (100) is the second end. The first end is the end fixedly connected to the load-bearing members (200). A limiting groove plate (400) is hingedly arranged on the second end. The limiting groove plate (400) can rotate around the hinge point with the second end to make the limiting groove plate (400) perpendicular or parallel to the load-bearing members (200); A second sliding groove (410) communicating with the first sliding groove (110) is arranged on the limiting groove plate (400).
3. The foldable marine building wall structure according to claim 2, characterized in that, The length of the bottom groove plate (100) is equal to the thickness of the limiting groove plate (400) plus the sum of the thicknesses of all the load-bearing members (200); And / or, when the load-bearing members (200) are in the folded state, the limiting groove plate (400) is parallel to the load-bearing members (200), and the limiting groove plate (400) can be locked and connected to the load-bearing members (200) to keep the load-bearing members (200) in the folded state.
4. The foldable marine building wall structure according to claim 1, characterized in that, The connecting member (300) includes a first connecting plate (310) and a second connecting plate (320). Between two adjacent load-bearing members (200), one end of the first connecting plate (310) is hingedly connected to one load-bearing member (200), the other end of the first connecting plate (310) is hingedly connected to one end of the second connecting plate (320), and the other end of the second connecting plate (320) is hingedly connected to another adjacent load-bearing member (200).
5. The foldable marine building wall structure according to claim 4, characterized in that, The first connecting plate (310) and the second connecting plate (320) are plate body structures with wire arranging groove bodies (330); And / or; An elastic member is connected between the first connecting plate (310) and the second connecting plate (320). The elastic member can apply a tensile force to the first connecting plate (310) and the second connecting plate (320), so that two adjacent load-bearing members (200) approach each other or tend to approach each other.
6. The foldable marine building wall structure according to claim 5, characterized in that, A wire arranging through hole (210) is provided at a position on the load-bearing member (200) close to the connecting member (300). The wire arranging through hole (210) communicates with the wire arranging groove body (330).
7. The foldable marine building wall structure according to claim 1, characterized in that, The connecting member (300) includes a first end portion and a second end portion that are slidably and telescopically engaged with each other. Between two adjacent load-bearing members (200), one end of the first end portion is hinged to one load-bearing member (200), the other end of the first end portion is slidably and telescopically engaged with one end of the second end portion, and the other end of the second end portion is hinged to another adjacent load-bearing member (200).
8. The foldable marine building wall structure according to claim 1, characterized in that, A receiving groove (220) is provided on the load-bearing member (200). When the load-bearing member (200) is switched to the folded state, the connecting member (300) is folded and received into the receiving groove (220).
9. The folding marine building wall structure according to claim 1, characterized in that, Further comprising: A top plate (500), when the load-bearing member (200) is in the working state, the top plate (500) is fixedly connected to one end of the load-bearing member (200) away from the bottom groove plate (100).
10. The foldable marine building wall structure according to claim 1, characterized in that, Further comprising: A stiffening connection shell (600), one of the load-bearing members (200) located on both sides of the remaining load-bearing members (200) is fixedly arranged on the bottom groove plate (100) through the stiffening connection shell (600). The stiffening connection shell (600) includes an L-shaped plate (610) and a triangular plate (620). The L-shaped plate (610) has a first plate body portion and a second plate body portion that are vertically fixedly connected. The first plate body portion is fixedly connected to the bottom groove plate (100), and the load-bearing member (200) fixedly connected to the bottom groove plate (100) is fixedly connected to the second plate body portion; Two triangular plates (620) are provided, and the two triangular plates (620) are respectively fixedly connected to both sides of the L-shaped plate (610), and the triangular plates (620) are fixedly connected to the inner wall of the first sliding groove (110).