Reinforcing device and supporting device

By designing a reinforcement device that includes an adjustment mechanism, guide rods, and elastic elements, the problem of brittle failure in existing reinforcement devices was solved, achieving stable support and energy buffering in complex environments, and improving the seismic performance and service life of the structure.

CN224119970UActive Publication Date: 2026-04-14THE 711TH RES INST OF CHINA STATE SHIPBUILDING CORP +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
THE 711TH RES INST OF CHINA STATE SHIPBUILDING CORP
Filing Date
2025-05-06
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

The supporting components of existing reinforcement devices are prone to brittle failure when subjected to multidimensional impacts from seismic waves or sudden lateral loads, resulting in poor structural stability, inability to effectively buffer energy, and potential for cascading structural failures.

Method used

Design a reinforcement device including a first support component, a second support component, and an adjustment mechanism. The second connecting member is moved along the axial direction of the second support component by the adjustment mechanism. Combined with the coordinated work of the guide rod and the elastic element, energy buffering and position adjustment are achieved, forming a triangular structure to enhance support stability.

Benefits of technology

It effectively buffers the impact of seismic waves, extends the life of the device, improves the stability and seismic performance of the structure in complex environments, and ensures safe operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a reinforcing device and a supporting device, and belongs to the technical field of reinforcing devices. The reinforcing device comprises a first supporting assembly and a second supporting assembly. The second supporting assembly comprises a first connecting piece, an adjusting mechanism and a second connecting piece. The adjusting mechanism and the second connecting piece are sequentially connected to the two sides of the first connecting piece. The adjusting mechanism can drive the second connecting piece to move relative to the first connecting piece in the axial direction of the second supporting assembly. The first supporting assembly, the second supporting assembly and other structures form a triangle, the supporting strength is enhanced through multi-node connection, the anti-seismic and anti-impact capacity of other structures is improved through optimized supporting nodes, and it is ensured that the supporting structure stably operates under the complex working condition. The adjusting mechanism can flexibly adjust the relative position of the two connecting pieces, and the limitation of a traditional rigid reinforcing device is broken through. When earthquake wave impact occurs, the adjusting mechanism can buffer energy and reduce impact force.
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Description

Technical Field

[0001] This application relates to the field of reinforcement device technology, and in particular to a reinforcement device and support device. Background Technology

[0002] The supporting components of reinforcement devices are mostly rigid structures, which are difficult to buffer energy when subjected to multidimensional impacts of seismic waves or sudden lateral loads. Once the load exceeds the critical value, rigid components are prone to brittle failure, which not only fails to provide reinforcement but may also trigger a chain of structural failures. Utility Model Content

[0003] The present application provides a reinforcement device that aims to solve the technical problem that existing reinforcement devices are prone to brittle fracture, resulting in poor structural stability; another objective of the present application is to provide a support device.

[0004] To achieve the above objectives, according to a first aspect of this application, a reinforcement device is provided, comprising:

[0005] First support component;

[0006] The second support component includes:

[0007] The first connector is hinged to the first support assembly;

[0008] An adjustment mechanism is connected to the end of the first connector that is furthest from the first support component;

[0009] The second connector is connected to the end of the adjustment mechanism that is away from the first connector;

[0010] The adjustment mechanism is configured to drive the second connector to move relative to the first connector along the axial direction of the second support assembly.

[0011] Optionally, the adjustment mechanism includes:

[0012] The guide rod has one end connected to the second connector and the other end movably inserted into the first connector; the guide rod is capable of moving along the axial direction of the second support assembly.

[0013] An elastic element is sleeved on the outer periphery of the guide rod and located between the first connector and the second connector.

[0014] Optionally, the first connector has an adjustment cavity, and one end of the guide rod away from the second connector is movably inserted into the adjustment cavity;

[0015] The adjustment mechanism includes a slider connected to the end of the guide rod away from the two connecting members, and the slider is capable of moving along the axial direction of the second support assembly.

[0016] Optionally, the second support component includes:

[0017] A first end plate is connected to the end of the first connector facing the second connector, and the guide rod is movably inserted through the first end plate;

[0018] The second end plate is connected to the end of the second connector facing the first end plate, and the guide rod is connected to the second end plate.

[0019] Optionally, the first end plate has a stepped portion, which is embedded in the adjustment cavity and connected to the first connector.

[0020] Optionally, the second support assembly further includes a nut, which is threadedly connected to the guide rod; the two ends of the elastic element abut against the second end plate and the nut, respectively.

[0021] Optionally, the second support component further includes a first position detection module, which is connected to the first connector, and the detection end of the first position detection module is located inside the adjustment cavity.

[0022] Optionally, the second support component further includes a second position detection module connected to the first connector. The second position detection module is located on the side of the first position detection module closer to the second connector, and the detection end of the second position detection module is located inside the adjustment cavity.

[0023] Optionally, the first support component includes:

[0024] First support rod;

[0025] The second support rod is at least partially slidably connected to the outer periphery of the first support rod, and the first connector is hinged to the second support rod.

[0026] A positioning buckle is installed on the second support rod and partially passes through the second support rod to connect with the first support rod.

[0027] Optionally, the reinforcement device includes a first connecting buckle, which is disposed at the end of the first support rod away from the second support rod.

[0028] Optionally, the reinforcement device includes:

[0029] The second connecting buckle is located at the end of the first connector away from the adjustment mechanism and is connected to the first support component;

[0030] The third connecting clip is located at the end of the second connector that is away from the second connecting clip.

[0031] According to a second aspect of this application, a support device is provided, comprising:

[0032] Steel structure;

[0033] The steel structure may have multiple reinforcement devices as described above, and all of the reinforcement devices may be connected to the steel structure.

[0034] The reinforcement device of this application embodiment includes a first support assembly and a second support assembly connected together. The second support assembly includes a first connector, an adjustment mechanism, and a second connector. The first connector is hinged to the first support assembly; the adjustment mechanism is connected to the end of the first connector away from the first support assembly; the second connector is connected to the end of the adjustment mechanism away from the first connector. The adjustment mechanism is configured to move the second connector relative to the first connector along the axial direction of the second support assembly. Through this technical solution, on the one hand, a portion of the first and second support assemblies forms a triangle with other structures, enhancing support stability. The multi-node connection design of the reinforcement device strengthens the support strength, and the reasonable support nodes improve the seismic and impact resistance of other structures, ensuring their safe operation under complex working conditions. On the other hand, the adjustment mechanism can flexibly adjust the relative positions of the first and second connectors, overcoming the drawbacks of traditional rigid reinforcement devices. When encountering seismic wave impacts, the adjustment mechanism can buffer energy, reduce impact force, extend the life of the reinforcement device, and improve its stability in complex environments.

[0035] Other features and advantages of this application will be described in detail in the following detailed description section. Attached Figure Description

[0036] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0037] To gain a more complete understanding of this application and its beneficial effects, the following description will be provided in conjunction with the accompanying drawings, wherein the same reference numerals in the following description denote the same parts.

[0038] Figure 1 This is a schematic diagram of the overall structure of the reinforcement device provided in an exemplary embodiment of this disclosure;

[0039] Figure 2This is a schematic diagram of the structure of the adjustment mechanism provided in an exemplary embodiment of this disclosure;

[0040] Figure 3 This is a schematic diagram showing the connection relationship between the reinforcement device and other structures provided in the exemplary embodiments of this disclosure;

[0041] Figure 4 This is a schematic diagram of the overall structure of the first support component provided in an exemplary embodiment of this disclosure;

[0042] Figure 5 This is a schematic diagram of the support device structure provided in an exemplary embodiment of this disclosure.

[0043] Explanation of reference numerals in the attached figures:

[0044] 100 - First support component; 110 - First support rod; 120 - Second support rod; 130 - Positioning buckle;

[0045] 200 - Second support assembly; 210 - First connector; 211 - Adjustment cavity; 220 - Adjustment mechanism; 221 - Guide rod; 222 - Elastic element; 223 - Slider; 230 - Second connector; 240 - Nut; 250 - First position detection module; 260 - Second position detection module; 270 - First end plate; 271 - Stepped portion; 280 - Second end plate;

[0046] 300 - First connecting clip;

[0047] 400 - Second connecting clip;

[0048] 500 - Third connecting clip;

[0049] 600 - Steel structure. Detailed Implementation

[0050] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the protection scope of this application.

[0051] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in orders other than those illustrated or described herein. Furthermore, they should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first" or "second" may explicitly or implicitly include one or more features. In the description of this application, unless otherwise stated, "multiple" means two or more. "And / or" describes the relationship between related objects, indicating that three relationships can exist; for example, A and / or B can represent: A alone, A and B simultaneously, or B alone. The character " / " generally indicates that the preceding and following related objects are in an "or" relationship. Furthermore, the terms “comprising” and “having”, and any variations thereof, are intended to cover non-exclusive inclusion, such that a process, method, system, product, or apparatus that includes a series of steps or units is not necessarily limited to those steps or units that are explicitly listed, but may include other steps or units that are not explicitly listed or that are inherent to such process, method, product, or apparatus.

[0052] In the modern petrochemical industry, steel structures have become an important choice for engineering construction due to their significant advantages such as light weight, strong load-bearing capacity, and high degree of industrialization. However, the stability design of steel structures is a core aspect of ensuring their safe operation. Among these, columns and vertical supports, as key lateral force resisting components, directly affect the overall stability of the structure. Due to the limitations of equipment and pipeline layout in petrochemical projects, it is often necessary to add auxiliary support systems (such as reinforcement devices) around the steel columns to improve structural stiffness and resistance to lateral displacement.

[0053] Current reinforcement devices added to the perimeter of steel structures have technical shortcomings. The supporting components of existing reinforcement devices are mostly rigid structures, which are unable to buffer energy when subjected to multidimensional impacts from seismic waves or sudden lateral loads. Once the load exceeds a critical value, rigid components are prone to brittle failure, not only failing to provide reinforcement but also potentially triggering a chain reaction of structural failures. This further exacerbates the safety hazards of steel structures under extreme conditions and severely limits their stable application and long-term development in complex environments such as petrochemical plants.

[0054] According to the first aspect of this application, please refer to Figure 1This embodiment provides a reinforcement device, which includes a first support assembly 100 and a second support assembly 200 connected to each other. The second support assembly 200 includes a first connector 210, an adjustment mechanism 220, and a second connector 230. The first connector 210 is hinged to the first support assembly 100; the adjustment mechanism 220 is connected to the end of the first connector 210 away from the first support assembly 100; and the second connector 230 is connected to the end of the adjustment mechanism 220 away from the first connector 210. The adjustment mechanism 220 is configured to drive the second connector 230 to move relative to the first connector 210 along the axial direction of the second support assembly 200. It is understood that during use, when the steel structure 600 shakes due to equipment operation or external forces, the adjustment mechanism 220 can adjust the relative position and stress state between the components in real time through the movement of the second connector 230.

[0055] Specifically, one end of the first support component 100 is placed on the mounting surface, providing a solid foundation support for the entire device, while the other end is connected to other structures. The end of the second support component 200 furthest from the first support component 100 is also connected to other structures. In this way, a triangular structure is formed between the first support component 100, the second support component 200, and other structures. Triangles possess unique stability; utilizing this characteristic, the reinforcement device can evenly and effectively distribute external loads to each support component, avoiding excessive localized stress. In other words, through the coordinated operation of the first support component 100 and the second support component 200, more stable and reliable support can be provided to other structures.

[0056] It should be noted that the first connector 210 is connected to the first support assembly 100 by a hinge. After both the first connector 210 and the first support assembly 100 are installed on other structures, the angle between the first connector 210 and the first support assembly 100 at the hinge can be flexibly adjusted. This angle adjustment feature allows the reinforcement device to better adapt to different installation environments and stress conditions. By adjusting the angle, the stress on each component is more balanced, effectively dispersing external stress and avoiding local stress concentration.

[0057] It should be noted that in the application scenario of this reinforcement device, "other structures" usually refers to objects requiring reinforcement and protection, such as steel structure 600. By connecting this reinforcement device to steel structure 600, and utilizing the first support component 100, the second support component 200, and the triangular stabilizing structure formed by them, along with the flexibly adjustable adjustment mechanism 220, the overall stiffness, lateral displacement resistance, and seismic performance of steel structure 600 can be effectively enhanced, thereby ensuring the safe and stable operation of steel structure 600 under complex working conditions. Besides steel structure 600, "other structures" in practical applications may also include other types of engineering structures such as concrete structures and steel-concrete composite structures. These can also benefit from this reinforcement device to improve structural performance and meet the reinforcement needs of different engineering scenarios.

[0058] Through the above technical solution, on the one hand, a triangular structure is formed between some of the first support component 100, the second support component 200, and other structures. This triangular structure design significantly enhances the stability of the support for other structures. In other words, the reinforcement device adopts a multi-node connection design (i.e., both the first support component 100 and the second support component 200 are connected to other structures), further strengthening the support strength for other structures. A reasonable support node construction can achieve efficient support for other structures, significantly improving their seismic and impact resistance, and ensuring their safe and stable operation under complex conditions such as petrochemicals. On the other hand, the existence of the adjustment mechanism 220 allows for flexible adjustment of the relative position between the second connecting member 230 and the first connecting member 210. Compared with traditional rigid reinforcement devices, this effectively overcomes many drawbacks of existing technologies. When encountering multidimensional seismic wave impacts, the adjustment mechanism 220 can buffer energy in a timely manner, reducing the impact force on the structure. This not only significantly extends the service life of the reinforcement device but also significantly improves its stability in complex environments.

[0059] In some embodiments, please refer to Figure 2 It should be noted that, Figure 2Partial structural removal is made from the first connecting member 210 to reveal the overall structure of the adjustment mechanism 220. The adjustment mechanism 220 includes a guide rod 221 and an elastic element 222. The guide rod 221 and the elastic element 222 cooperate to achieve flexible adjustment of the second support assembly 200. One end of the guide rod 221 is connected to the second connecting member 230, providing guidance and support for the movement of the second connecting member 230. The other end of the guide rod 221 is movably inserted into the first connecting member 210. This insertion structure gives the guide rod 221 the ability to move freely along the axial direction of the second support assembly 200, thereby driving the second connecting member 230 to move synchronously and adjusting the force relationship between the second support assembly 200 and other structures. The elastic element 222 is sleeved on the outer periphery of the guide rod 221, between the first connecting member 210 and the second connecting member 230. When the structure is under stress, the elastic element 222 can buffer the external force through its own deformation, playing a role in elastic support and adjustment.

[0060] Understandably, when the reinforcement device is subjected to external loads, the guide rod 221 will generate axial displacement within the first connector 210 according to the actual stress conditions. This displacement is not aimless sliding, but rather a dynamic response to external loads. By moving the second connector 230, it changes the force angle and force distribution between the second support assembly 200 and the surrounding structure, thus reasonably dispersing the load and avoiding local stress concentration.

[0061] Understandably, during normal operation of the reinforcement device, the elastic element 222 is in a pre-tightened state, providing initial stiffness to the entire adjustment mechanism 220 and ensuring the stable connection of each component. When encountering sudden external forces such as seismic wave impact or equipment vibration, the elastic element 222 will rapidly deform due to its own elasticity, absorbing and dissipating the external force energy, effectively mitigating the rigid collision between the guide rod 221 and the connecting piece, and preventing structural damage due to excessive instantaneous impact force. After the external force weakens, the elastic element 222 will rely on its elastic restoring force to cause the guide rod 221 and the second connecting piece 230 to reset, allowing the reinforcement device to return to a stable working state, further enhancing its adaptability and stability under complex working conditions.

[0062] In some examples, the elastic element 222 can be a helical spring. By integrating the helical spring as a buffer component within the adjustment mechanism 220, compared to traditional rigid supports, it can effectively dissipate impact energy through the elastic deformation of the helical spring when subjected to dynamic loads, thus significantly enhancing the seismic performance and impact resistance of the 600 steel structure system.

[0063] Through the above technical solution, the guide rod 221 and the elastic element 222 in the adjustment mechanism 220 work together. On the one hand, the axial movement of the guide rod 221 dynamically adjusts the force relationship of the second support component 200 and disperses the load. On the other hand, the pre-tightening, deformation and recovery characteristics of the elastic element 222 are used to enhance the stability of the mechanism, buffer sudden external forces, avoid structural damage, and automatically reset after being subjected to force, which significantly improves the adaptability and reliability of the reinforcement device under various working conditions.

[0064] In some embodiments, please refer to Figure 2 To further illustrate the adjustable characteristics of the adjustment mechanism 220, the first connector 210 is provided with an adjustment cavity 211. The adjustment cavity 211 provides track space for the movement of the guide rod 221. The end of the guide rod 221 away from the second connector 230 is movably inserted into the adjustment cavity 211, so that the guide rod 221 can move flexibly along the axial direction of the second support assembly 200.

[0065] Meanwhile, the adjustment mechanism 220 is also equipped with a slider 223. The slider 223 is connected to the end of the guide rod 221 away from the second connecting member 230. The slider 223 and the inner wall of the adjustment cavity 211 need to ensure both smooth sliding performance and good stability during movement. With this structural design, the slider 223 can slide freely along the axial direction of the second support component 200, which not only further enhances the accuracy and reliability of the guide rod 221's movement, but also, through the synergistic cooperation of the two, enables the second connecting member 230 to adjust its position according to actual force requirements under different environments. This fully leverages the dynamic control function of the adjustment mechanism 220 on the entire reinforcement device, greatly improving the reinforcement device's ability to cope with complex load environments.

[0066] In some embodiments, please refer to Figure 2The second support assembly 200, with the addition of a first end plate 270 and a second end plate 280, further optimizes the overall structural performance. The first end plate 270 is connected to the end of the first connector 210 facing the second connector 230, providing a stable perforated foundation for the guide rod 221. This allows the guide rod 221 to move flexibly and stably within it, ensuring smooth movement of the guide rod 221 and enhancing the reliability of the connection between the first connector 210 and the guide rod 221. The second end plate 280 is connected to the end of the second connector 230 facing the first end plate 270 and is securely connected to the guide rod 221. This not only provides a fixed fulcrum for the end of the guide rod 221 but also further strengthens the connection between the second connector 230 and the guide rod 221. Through the coordinated action of the first end plate 270 and the second end plate 280, the guide rod 221 is more firmly installed in the second support assembly 200, and the stability during operation is significantly improved, thereby ensuring that the entire adjustment mechanism 220 and even the second support assembly 200 can function efficiently and stably under different working conditions.

[0067] In some embodiments, please refer to Figure 2 The first connecting member 210 is made of square steel, which features high structural strength and good stability. The adjusting cavity 211 is the hollow inner cavity of the square steel, providing space for the movement of the guide rod 221. To achieve a tighter and more stable connection between the first end plate 270 and the first connecting member 210, the first end plate 270 is specially designed. The first end plate 270 has a stepped portion 271, the size of which is adapted to the adjusting cavity 211, allowing it to be precisely embedded within the adjusting cavity 211. Through this embedding method, the first end plate 270 and the first connecting member 210 achieve a tight fit, which not only increases the contact area between the two but also improves the reliability of the connection. This effectively prevents relative displacement between the first end plate 270 and the first connecting member 210 during stress, thereby ensuring the structural stability of the entire second support assembly 200 and the normal functioning of its adjustment function.

[0068] In some embodiments, please refer to Figure 2The second support assembly 200 is also equipped with a nut 240, which is threadedly connected to the guide rod 221. Through the threaded engagement, the nut 240 can be adjusted along the axial position of the guide rod 221. An elastic element 222 is sleeved on the guide rod 221, with one end tightly abutting against the second end plate 280 and the other end abutting against the nut 240. This arrangement allows for adjustment of the preload of the elastic element 222 by tightening the nut 240 to adapt to different stress requirements under various working conditions. Furthermore, when the reinforcement device is subjected to external forces, the nut 240 and the second end plate 280 together restrict the deformation space of the elastic element 222, enabling the elastic element 222 to fully exert its buffering and energy-absorbing function, thereby improving the stability and reliability of the reinforcement device.

[0069] In some embodiments, please refer to Figure 2 The second support component 200 integrates a first position detection module 250, which is firmly connected to the first connector 210, with its detection end arranged within the adjustment cavity 211. It should be noted that the detection direction of the first position detection module 250 is the width of the first connector 210; that is, the moving direction of the slider 223 is perpendicular to the detection direction of the first position detection module 250. In some examples, the first position detection module 250 can be a sensor, such as a displacement sensor or a proximity sensor, which, with its high-precision detection performance, can effectively improve the accuracy of position detection.

[0070] During actual operation, when the slider 223 moves under the action of force, a detection will be triggered immediately once the slider 223 is at the same horizontal position as the first position detection module 250. This trigger detection indicates that the reinforcement device has reached the limit of its adjustable range. In this state, the reinforcement device can no longer rely on its own structural adjustment to provide further reinforcement support for the connected steel structure 600 or other external structures.

[0071] It is worth mentioning that this detection mechanism has a timely early warning function. Once the slider 223 is detected to have triggered the detection, the system will quickly transmit the detected signal to the external control system. After receiving the signal, the external control system will immediately activate the corresponding early warning program. For example, by emitting a sharp alarm sound or displaying a conspicuous warning message on the monitoring screen, it will remind relevant personnel that the condition of other reinforced structures is relatively dangerous and that appropriate measures need to be taken urgently. In practical application scenarios, the specific signal transmission methods are relatively mature, and will not be specifically described in this embodiment. Any signal transmission method that can achieve the early warning function of this embodiment can be used.

[0072] In some embodiments, please refer to Figure 2The second support component 200 further incorporates a second position detection module 260, which is securely connected to the first connector 210 and positioned closer to the second connector 230 than the first position detection module 250. The detection end also extends deep into the adjustment cavity 211. In some examples, this second position detection module 260 can be a sensor, such as a displacement sensor or a proximity sensor, whose high-precision detection performance effectively improves the accuracy of position detection. It should be noted that this design establishes a dual monitoring defense: the initial position of the slider 223 is between the first position detection module 250 and the second position detection module 260, indicating that the reinforcement device is in its normal operating range and can flexibly adjust to changes in external loads; when the slider 223 moves and triggers the second position detection module 260, it indicates that the reinforcement device has entered an adjustment state; and when the slider 223 touches the first position detection module 250, it means that the reinforcement device has reached its adjustment limit and can no longer provide reinforcement support to the connected steel structure 600 or other external structures. This achieves comprehensive, phased monitoring and early warning of the reinforcement device's operating status, ensuring the safe and stable operation of the structure.

[0073] In some embodiments, please refer to Figure 4 The first support assembly 100 includes a first support rod 110, a second support rod 120, and a positioning buckle 130. The second support rod 120 is at least partially slidably connected to the outer periphery of the first support rod 110. This design allows the second support rod 120 to be flexibly adjusted relative to the first support rod 110, thereby changing the overall length of the first support assembly 100 according to actual working conditions to adapt to external structures such as steel structures 600 of different sizes, thus expanding the applicability of the reinforcement device.

[0074] It should be noted that the first connector 210 and the second support rod 120 are connected by a hinge. During installation, this hinge structure can optimize the connection and support effect between the reinforcement device and other external structures by adjusting the rotation angle. The positioning buckle 130 is set on the second support rod 120 and partially passes through the connection between the second support rod 120 and the first support rod 110. After the second support rod 120 is slidably adjusted to its position on the outer circumference of the first support rod 110, the positioning buckle 130 can quickly lock the relative positions of the two to prevent slippage during use, ensuring that the first support assembly 100 provides stable and reliable support to the external structure, and ensuring the stability and safety of the reinforcement device during operation.

[0075] In some embodiments, please refer to Figure 3This reinforcement device is equipped with a first connecting clip 300, a second connecting clip 400, and a third connecting clip 500. These connecting clips play an important role in the connection and support of the reinforcement device with other structures. Specifically, the first connecting clip 300 is located at the end of the first support rod 110 away from the second support rod 120. This location allows the reinforcement device to be effectively connected to the external structure via the first connecting clip 300. The first connecting clip 300 can be designed with a specific shape and structure according to actual needs to ensure a tight fit with other structures, thereby stably fixing the first support assembly 100 in the corresponding position and providing a basic support connection point for the entire reinforcement device. The second connecting clip 400 is located at the end of the first connector 210 away from the adjustment mechanism 220 and is connected to the first support assembly 100. The second connecting clip 400 acts as a bridge connecting the first connector 210 and the first support assembly 100. The second connecting clip 400 not only ensures a stable connection between the first connecting member 210 and the first support component 100, but also transmits force and torque to a certain extent, enabling the various parts of the reinforcement device to work together under stress. Simultaneously, this connection method facilitates the disassembly and assembly of the first connecting member 210 and the first support component 100 during installation and maintenance. The third connecting clip 500 is located at the end of the second connecting member 230 furthest from the second connecting clip 400. The third connecting clip 500 is mainly used to connect the second connecting member 230 to other structures or components. Through the third connecting clip 500, the second connecting member 230 can form an effective connection with the external structure, further enhancing the support and reinforcement effect of the reinforcement device on the external structure. Moreover, the placement of the third connecting clip 500 makes the spatial layout of the reinforcement device more rational, better adaptable to different application scenarios. Through the synergistic effect of the above technical solutions, the reinforcement device can connect and support other structures more stably and reliably, improving the performance and safety of the entire reinforcement system.

[0076] According to a second aspect of this disclosure, a support device is provided, such as... Figure 5As shown, the support device includes the aforementioned multiple reinforcing devices and a steel structure 600, with each reinforcing device connected to the steel structure 600. These multiple devices possess all the beneficial effects of the aforementioned reinforcing devices, which will not be elaborated further here. By combining multiple reinforcing devices with the steel structure 600, this support device effectively improves the overall structural stability and load-bearing capacity. The multiple reinforcing devices work collaboratively to strengthen the steel structure 600 from different angles and positions, distributing and bearing external loads, and reducing the risk of deformation and damage to the steel structure 600 under stress. In practical applications, whether used in large-scale building projects, bridge construction, or industrial equipment support structures, this support device, with its unique combination, can provide reliable support and a solid guarantee for the safe and stable operation of various engineering projects.

[0077] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0078] The embodiments, implementation methods, and related technical features of this application can be combined and substituted for each other without conflict.

[0079] The above are merely preferred embodiments of this application and are not intended to limit this application in any way. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of this application without departing from the scope of the technical solution of this application shall still fall within the scope of the technical solution of this application.

Claims

1. A reinforcement device, characterized in that, include: First support component (100); The second support component (200) includes: The first connector (210) is hinged to the first support assembly (100); An adjustment mechanism (220) is connected to the end of the first connector (210) away from the first support assembly (100); The second connector (230) is connected to the end of the adjustment mechanism (220) away from the first connector (210); The adjustment mechanism (220) is configured to move the second connector (230) relative to the first connector (210) along the axial direction of the second support assembly (200).

2. The reinforcement device according to claim 1, characterized in that, The adjustment mechanism (220) includes: The guide rod (221) is connected at one end to the second connector (230) and the other end is movably inserted into the first connector (210); the guide rod (221) is axially movable along the second support assembly (200); The elastic element (222) is sleeved on the outer periphery of the guide rod (221) and located between the first connector (210) and the second connector (230).

3. The reinforcement device according to claim 2, characterized in that, The first connector (210) has an adjustment cavity (211), and the end of the guide rod (221) away from the second connector (230) is movably inserted into the adjustment cavity (211); The adjustment mechanism (220) includes a slider (223) connected to the end of the guide rod (221) away from the two connecting members, and the slider (223) is axially movable along the second support assembly (200).

4. The reinforcement device according to claim 3, characterized in that, The second support component (200) includes: A first end plate (270) is connected to one end of the first connector (210) facing the second connector (230), and the guide rod (221) is movably inserted through the first end plate (270); The second end plate (280) is connected to the end of the second connector (230) facing the first end plate (270), and the guide rod (221) is connected to the second end plate (280).

5. The reinforcement device according to claim 4, characterized in that, The first end plate (270) has a stepped portion (271), which is embedded in the adjustment cavity (211) and connected to the first connector (210).

6. The reinforcement device according to claim 4, characterized in that, The second support assembly (200) further includes a nut (240) which is threadedly connected to the guide rod (221); the two ends of the elastic element (222) abut against the second end plate (280) and the nut (240) respectively.

7. The reinforcement device according to claim 3, characterized in that, The second support component (200) further includes a first position detection module (250), which is connected to the first connector (210), and the detection end of the first position detection module (250) is located in the adjustment cavity (211).

8. The reinforcement device according to claim 7, characterized in that, The second support component (200) further includes a second position detection module (260) connected to the first connector (210). The second position detection module (260) is located on the side of the first position detection module (250) near the second connector (230), and the detection end of the second position detection module (260) is located in the adjustment cavity (211).

9. The reinforcement device according to claim 1, characterized in that, The first support component (100) includes: First support rod (110); The second support rod (120) is at least partially slidably connected to the outer periphery of the first support rod (110), and the first connector (210) is hinged to the second support rod (120); A positioning buckle (130) is disposed on the second support rod (120) and partially passes through the second support rod (120) to connect with the first support rod (110).

10. The reinforcement device according to claim 9, characterized in that, Includes a first connecting buckle (300), which is disposed at the end of the first support rod (110) away from the second support rod (120).

11. The reinforcement device according to claim 1, characterized in that, include: The second connecting buckle (400) is disposed at the end of the first connecting member (210) away from the adjusting mechanism (220) and is connected to the first support assembly (100); The third connecting clip (500) is disposed at the end of the second connector (230) away from the second connecting clip (400).

12. A support device, characterized in that, include: Steel structure (600); Multiple reinforcement devices as described in any one of claims 1 to 11, wherein each of the multiple reinforcement devices is connected to the steel structure (600).