A reinforcing device for a container house
Patent Information
- Application Number
- CN202522091852.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-28
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-09-28
AI Technical Summary
长期使用后,底部结构强度下降,不仅缩短集装箱房的整体使用寿命,还可能引发结构安全隐患,尤其在承载人员或设备时,存在坍塌风险
1、本实用新型中,通过设置钢制网格底座可将集装箱房本体与地面脱离接触,支撑柱直接支撑在地面,使得钢制网格底座悬空,避免集装箱房本体被地面腐蚀,对集装箱房本体具有保护作用;
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Figure CN224785080U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of container house installation technology, and in particular to a reinforcement device for container houses. Background Technology
[0002] In the field of temporary construction, container houses are widely used in temporary dormitories for construction workers, field camps, and temporary resettlement sites after disasters due to their advantages such as convenient construction, low cost, and high space utilization. However, existing container houses still have many problems in actual use, as follows: I. Ground contact corrosion is a prominent problem, shortening service life. Traditional container houses are typically placed directly on the ground or a simple mat, with their bottoms in constant contact with the ground. In humid environments, during the rainy season, or in areas with high soil moisture content, ground moisture and corrosive ions (such as salts in the soil) can easily penetrate to the steel surface of the container house's bottom, causing corrosion of the metal structure. Over time, this reduces the structural strength of the bottom, shortening the overall lifespan of the container house and potentially leading to structural safety hazards, especially when carrying people or equipment, posing a risk of collapse. Furthermore, direct contact with the ground makes the bottom of the container house susceptible to dampness, affecting the comfort of the internal living or usage environment and increasing the cost of moisture-proofing.
[0003] II. Insufficient flexibility in both mobile and fixed applications, limiting adaptability to various scenarios. The relocation of existing container houses typically relies on large lifting equipment (such as cranes and forklifts). On the one hand, lifting operations require specialized equipment and personnel, making them complex and costly, especially in areas with narrow spaces where lifting equipment has difficulty accessing (such as mountain campsites or narrow urban construction sites), where relocation is extremely difficult. On the other hand, some container houses are connected to the ground by welding or pouring concrete foundations to ensure stability. However, when relocation is needed later, the foundation must be damaged or the welded points cut, which is not only time-consuming and labor-intensive but may also damage the container house structure, failing to meet the core requirements of temporary buildings for "flexible relocation and reuse".
[0004] Third, its overall stability is poor and its resistance to external forces is weak. Container houses are lightweight structures, and existing fixing methods mostly only provide simple restraint at the bottom (such as using stones for weight or simple bolts), failing to form a multi-dimensional reinforcement system of "house body - base - ground". When subjected to external forces such as strong winds and earthquakes, they are prone to overall swaying, displacement, or even overturning.
[0005] To better address the above problems, we propose a reinforcement device for container houses. Utility Model Content
[0006] The purpose of this utility model is to address the shortcomings of existing technologies by proposing a reinforcement device for container houses.
[0007] To achieve the above objectives, the present invention adopts the following technical solution: A reinforcement device for a container house includes a steel grid base and a container house body. The top four sides of the steel grid base are fixed with fixing plates. The container house body is fixedly connected to the fixing plates. The four corners of the steel grid base are equipped with walking mechanisms. The sides of the steel grid base are equipped with a second reinforcement structure connected to the ground. The container house body is equipped with a first reinforcement mechanism connected to the ground.
[0008] Preferably, a support column is fixed to the bottom of the steel mesh base.
[0009] Preferably, the walking mechanism includes a fixed block, a sliding rod, a mounting plate, a hydraulic jack, and rollers. The fixed block is fixed to the fixed plate, and the sliding rod is slidably sleeved inside the fixed block. The bottom end of the sliding rod is fixed to the mounting plate, and the hydraulic jack is mounted on the mounting plate. The piston rod of the hydraulic jack is fixed to the fixed block, and rollers are mounted on the bottom of the mounting plate.
[0010] Preferably, a limit block is fixed at the top of the slide rod, and two slide rods are provided.
[0011] Preferably, the first reinforcement mechanism includes a sleeve, an internally threaded pipe, a screw, a chain, a pull ring, a first reinforcing bar, and an arc-shaped hook. The sleeve is hinged to the container house body, and the internally threaded pipe is rotatably sleeved inside the sleeve. The internally threaded pipe is threadedly sleeved with the screw. One end of the screw is connected to a pull ring via a chain. An arc-shaped hook is fixed on the first reinforcing bar, and the pull ring is sleeved on the arc-shaped hook. The first reinforcing bar is inserted into the ground.
[0012] Preferably, a limiting bolt is threaded onto the arc-shaped hook, and the limiting bolt is used to limit the slot of the arc-shaped hook.
[0013] Preferably, the second reinforcement structure includes an angle iron and a second reinforcing bar. The angle iron is fixed on a steel grid base, and the second reinforcing bar is slidably sleeved on the angle iron and inserted into the ground.
[0014] Compared with the prior art, the beneficial effects of this utility model are: 1. In this utility model, by setting a steel grid base, the container house body can be separated from the ground, and the support column is directly supported on the ground, so that the steel grid base is suspended in the air, avoiding the container house body from being corroded by the ground, and protecting the container house body. 2. In this utility model, the height of the mounting plate can be adjusted by a hydraulic jack. This allows the whole unit to be pushed when the rollers are in contact with the ground, and to be placed stably when the rollers are detached from the ground, making it very flexible to use. 3. In this utility model, the first reinforcing bar is inserted into the ground, and then the pull ring is fitted into the arc-shaped hook. The groove of the arc-shaped hook is then limited by the limiting bolt, thereby limiting the pull ring and preventing it from running out. Then, the internal threaded tube is rotated, and the iron chain can be tensioned through the thread transmission of the internal threaded tube and the screw, ensuring the reliability of the connection. The second reinforcing bar is inserted into the ground to fix the angle iron, thereby fixing the steel grid base. The first reinforcement mechanism connects the container house body to the ground, and the second reinforcement structure connects the steel grid base to the ground. Through the first reinforcement mechanism and the second reinforcement structure, the overall stability can be improved. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of a container house reinforcement device proposed in this utility model; Figure 2 This is a top view of the steel mesh base of a container house reinforcement device proposed in this utility model; Figure 3 This is a schematic diagram of the first reinforcement mechanism of a container house reinforcement device proposed in this utility model; Figure 4 This is a schematic diagram of the walking mechanism of a container house reinforcement device proposed in this utility model; Figure 5 This is a schematic diagram of the second reinforcement structure of a container house reinforcement device proposed in this utility model.
[0016] In the diagram: 1. Steel mesh base, 2. Support column, 3. Fixing plate, 4. Walking mechanism, 41. Fixing block, 42. Slide rod, 43. Mounting plate, 44. Limiting block, 45. Hydraulic jack, 46. Roller, 5. First reinforcement mechanism, 51. Sleeve, 52. Internal threaded pipe, 53. Screw, 54. Iron chain, 55. Pull ring, 56. First steel bar, 57. Arc hook, 58. Limiting bolt, 6. Container house body, 7. Second reinforcement structure, 71. Angle iron, 72. Second steel bar. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0018] Reference Figure 1-5A reinforcement device for container houses includes a steel mesh base 1 and a container house body 6. By setting the steel mesh base 1, the container house body 6 can be decoupled from the ground, preventing corrosion and protecting it. Fixed plates 3 are fixed to the four sides of the top of the steel mesh base 1, and the container house body 6 is fixedly connected to the fixed plates 3. Walking mechanisms 4 are installed at the four corners of the steel mesh base 1, facilitating its movement. A second reinforcement structure 7 connected to the ground is installed on the side of the steel mesh base 1, connecting it to the ground. A first reinforcement mechanism 5 connected to the ground is installed on the container house body 6, further connecting it to the ground. The first and second reinforcement structures 5 improve overall stability. A support column 2 is fixed to the bottom of the steel mesh base 1, directly supporting it on the ground, thus suspending the steel mesh base 1.
[0019] Reference Figure 4 The walking mechanism 4 includes a fixed block 41, a sliding rod 42, a mounting plate 43, a hydraulic jack 45, and rollers 46. The fixed block 41 is fixed on the fixed plate 3. The sliding rod 42 is slidably sleeved inside the fixed block 41. The mounting plate 43 is fixed to the bottom end of the sliding rod 42. The hydraulic jack 45 is mounted on the mounting plate 43. The piston rod of the hydraulic jack 45 is fixed on the fixed block 41. The rollers 46 are mounted on the bottom of the mounting plate 43. The top end of the sliding rod 42 is fixed with a limit block 44. There are two sliding rods 42. The height of the mounting plate 43 can be adjusted by the hydraulic jack 45. When the rollers 46 are in contact with the ground, the whole thing can be pushed. When the rollers 46 are detached from the ground, the whole thing can be placed stably, making it very flexible to use.
[0020] Reference Figure 3 The first reinforcement mechanism 5 includes a sleeve 51, an internally threaded pipe 52, a screw 53, a chain 54, a pull ring 55, a first reinforcing bar 56, and an arc-shaped hook 57. The sleeve 51 is hinged to the container house body 6. The internally threaded pipe 52 is rotatably sleeved inside the sleeve 51. The internally threaded pipe 52 is threadedly sleeved to the screw 53. One end of the screw 53 is connected to the pull ring 55 via the chain 54. An arc-shaped hook 57 is fixed on the first reinforcing bar 56. The pull ring 55 is sleeved on the arc-shaped hook 57. The first reinforcing bar 56 is inserted into the ground. Inside, a limiting bolt 58 is threaded onto the arc-shaped hook 57. The limiting bolt 58 is used to limit the slot of the arc-shaped hook 57. The first steel bar 56 is inserted into the ground, and then the pull ring 55 is put into the arc-shaped hook 57. The limiting bolt 58 is used to limit the slot of the arc-shaped hook 57, thereby limiting the pull ring 55 and preventing it from running out. Then, the internal threaded tube 52 is rotated. The iron chain 54 can be tensioned through the threaded transmission of the internal threaded tube 52 and the screw 53, ensuring the reliability of the connection.
[0021] Reference Figure 5 The second reinforcing structure 7 includes an angle iron 71 and a second reinforcing bar 72. The angle iron 71 is fixed on the steel grid base 1, and the second reinforcing bar 72 is slidably sleeved on the angle iron 71. The second reinforcing bar 72 is inserted into the ground. Inserting the second reinforcing bar 72 into the ground can fix the angle iron 71, thereby fixing the steel grid base 1.
[0022] Working principle: During use, by setting the steel mesh base 1, the container house body 6 can be decoupled from the ground, and the support column 2 is directly supported on the ground, so that the steel mesh base 1 is suspended in the air, preventing the container house body 6 from being corroded by the ground and protecting the container house body 6; the height of the mounting plate 43 can be adjusted by the hydraulic jack 45, so that when the roller 46 is in contact with the ground, the whole thing can be pushed, and when the roller 46 is decoupled from the ground, the whole thing can be placed stably, making it very flexible to use; the first steel bar 56 is inserted into the ground, and then the pull ring 55 is put into the arc hook 57, and then... The slot of the arc-shaped hook 57 is limited by the limiting bolt 58, thereby limiting the pull ring 55 and preventing it from running out. Then, the internal threaded tube 52 is rotated, and the iron chain 54 can be tensioned through the thread transmission of the internal threaded tube 52 and the screw 53 to ensure the reliability of the connection. The second steel bar 72 is inserted into the ground to fix the angle iron 71, thereby fixing the steel grid base 1. The first reinforcement mechanism 5 connects the container house body 6 to the ground, and the second reinforcement structure 7 connects the steel grid base 1 to the ground. The overall stability can be improved through the first reinforcement mechanism 5 and the second reinforcement structure 7.
[0023] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A reinforcement device for container houses, comprising a steel mesh base (1) and a container house body (6), characterized in that, The top four sides of the steel grid base (1) are fixed with fixing plates (3), the container house body (6) is fixedly connected to the fixing plates (3), the four corners of the steel grid base (1) are equipped with walking mechanisms (4), the side of the steel grid base (1) is equipped with a second reinforcement structure (7) connected to the ground, and the container house body (6) is equipped with a first reinforcement mechanism (5) connected to the ground.
2. The container house reinforcement device according to claim 1, characterized in that, The bottom of the steel mesh base (1) is fixed with a support column (2).
3. The container house reinforcement device according to claim 1, characterized in that, The walking mechanism (4) includes a fixed block (41), a sliding rod (42), a mounting plate (43), a hydraulic jack (45), and rollers (46). The fixed block (41) is fixed on the fixed plate (3). The sliding rod (42) is slidably sleeved inside the fixed block (41). The bottom end of the sliding rod (42) is fixed with the mounting plate (43). The hydraulic jack (45) is mounted on the mounting plate (43). The piston rod of the hydraulic jack (45) is fixed on the fixed block (41). The bottom of the mounting plate (43) is equipped with rollers (46).
4. A container house reinforcement device according to claim 3, characterized in that, The top end of the slide bar (42) is fixed with a limit block (44), and the slide bar (42) is provided with two rods.
5. A container house reinforcement device according to claim 1, characterized in that, The first reinforcement mechanism (5) includes a sleeve (51), an internally threaded tube (52), a screw (53), an iron chain (54), a pull ring (55), a first reinforcing bar (56), and an arc hook (57). The sleeve (51) is hinged to the container house body (6). The internally threaded tube (52) is rotatably sleeved inside the sleeve (51). The internally threaded tube (52) is threadedly sleeved with the screw (53). One end of the screw (53) is connected to the pull ring (55) through the iron chain (54). An arc hook (57) is fixed on the first reinforcing bar (56). The pull ring (55) is sleeved on the arc hook (57). The first reinforcing bar (56) is inserted into the ground.
6. A container house reinforcement device according to claim 5, characterized in that, The arc hook (57) is threaded with a limiting bolt (58), which is used to limit the slot of the arc hook (57).
7. A container house reinforcement device according to claim 1, characterized in that, The second reinforcement structure (7) includes an angle iron (71) and a second reinforcing bar (72). The angle iron (71) is fixed on a steel grid base (1), and the second reinforcing bar (72) is slidably sleeved on the angle iron (71). The second reinforcing bar (72) is inserted into the ground.