Dangerous rock falling buffering device with negative Poisson's ratio characteristic

By designing the negative Poisson's ratio honeycomb structure and the buffer cover of the pressure-bearing plate in the dangerous rock rockfall buffer device, the problem of insufficient energy absorption and buffering performance of the existing negative Poisson's ratio structure under the impact of multi-direction rockfall is solved, and more efficient energy absorption and structural stability are achieved.

CN120026567AActive Publication Date: 2025-05-23CENT SOUTH UNIV +3
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Patent Information

Application Number
CN202510518287.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-05-23
Estimated Expiration
2045-04-24

AI Technical Summary

Technical Problem

The existing negative Poisson's ratio structures usually can only show negative Poisson's ratio in specific directions, and the energy absorption buffering performance is limited, making it difficult to adapt to rockfall impacts in different directions.

Method used

A buffering layer including a negative Poisson's ratio honeycomb structure and a pressure-bearing plate was designed. The negative Poisson's ratio honeycomb structure exhibits negative Poisson's ratio characteristics in the three directions of X, Y and Z through multiple mesh structure layers and curved connecting rods, enhancing the energy absorption capacity of the structure.

Benefits of technology

This design improves the impact resistance and stability of the dangerous rock falling buffer device, and can even absorb and disperse energy under the impact of rock falling in multiple directions, extend the impact time, and reduce the impact force peak.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the field of dangerous rockfall protection, and particularly relates to a dangerous rockfall buffering device with the negative Poisson's ratio characteristic, a buffering protection layer covers the collision side of a rockfall blocking structure, the impact force borne by the rockfall blocking structure when the rockfall blocking structure is collided can be effectively reduced, and the impact resistance of the rockfall blocking structure is improved. The unique geometric space of the negative Poisson's ratio honeycomb structure in the buffer protection layer enables the buffer protection layer to have negative Poisson's ratio characteristics in the X, Y and Z directions of the space, the buffer protection layer shows the negative Poisson's ratio characteristics in the two side face directions when subjected to the impact effect transmitted by the bearing plate, the side direction of the buffer protection layer tends to contract, and more energy can be absorbed and dispersed. Meanwhile, due to the angle relation between the bent rods and the bent connecting rods, it is guaranteed that the negative Poisson's ratio honeycomb structure has the same negative Poisson's ratio in the two side face directions, it is guaranteed that the negative Poisson's ratio honeycomb structure evenly deforms under the impact effect, and the overall mechanical property and stability of the buffer protection layer are improved.
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Description

Technical Field

[0001] The present application relates to the technical field of slope rockfall protection, and in particular to a dangerous rockfall buffer device with negative Poisson's ratio characteristics. Background Art

[0002] With the advancement of my country's transportation construction, more and more railway projects are being built in the difficult mountainous areas of the west. However, the risks of dangerous rockfall in these areas have brought challenges to engineering construction. Dangerous rockfall barrier structure is an engineering structure used to control and prevent natural disasters such as landslides, dangerous rockfalls, and rolling rock fragments. It can protect buildings and infrastructure from damage, maintain smooth traffic, protect the ecological environment, and prevent secondary disasters. The current dangerous rockfall barrier structure has some limitations in impact resistance and barrier efficiency. For large-scale rock landslides and huge falling objects, the existing structure may not be able to completely prevent or absorb the impact force, and there are still potential risks. In rockfall protection projects, the existing buffer sheath mainly relies on traditional materials and structural forms, such as foam, metal mesh, etc. Although they can play a certain buffering role, they are prone to structural fatigue, excessive deformation, and decreased energy absorption capacity when facing high impact loads or long-term use. Due to its special deformation characteristics, negative Poisson's ratio materials can show strong energy absorption and buffering capabilities when subjected to force, but they have not yet been widely used in the field of rockfall protection.

[0003] As a metamaterial, negative Poisson's ratio materials have many excellent mechanical properties. Compared with traditional positive Poisson's ratio materials, negative Poisson's ratio materials have the characteristics of "tension, expansion and compression". When negative Poisson's ratio materials are subjected to force, the materials tend to gather at the force point, making the materials have excellent resistance to deformation, shear and fracture. The porous structure of negative Poisson's ratio materials has good energy absorption, and due to the stress-strain characteristics of negative Poisson's ratio materials, they have a higher stress platform, which has better energy absorption and vibration reduction performance than ordinary materials. The excellent mechanical properties of negative Poisson's ratio materials give them broad application prospects. The application of negative Poisson's ratio materials in dangerous rock fall barrier structures can prevent rock landslides and falls while absorbing and reducing impact forces through self-regulation and micro-creep of materials, thereby improving the stability and durability of the structure. However, most existing negative Poisson's ratio structures can usually only show negative Poisson's ratio in specific directions, and their characteristics are difficult to flexibly adjust according to actual needs, which limits the breadth and adaptability of applications. Summary of the invention

[0004] The embodiment of the present application provides a rockfall buffer device with negative Poisson's ratio characteristics, which is used to solve the technical problem that most existing negative Poisson's ratio structures can usually only show negative Poisson's ratio in a specific direction and have limited energy absorption and buffering performance.

[0005] To achieve the above-mentioned purpose, the present application provides a dangerous rockfall buffer device with negative Poisson's ratio characteristics, comprising a rockfall blocking structure and a buffer protective layer installed on the collision side of the rockfall blocking structure, the buffer protective layer comprising a negative Poisson's ratio honeycomb structure and a pressure-bearing plate, the negative Poisson's ratio honeycomb structure is provided with the pressure-bearing plates on both opposite sides of the collision direction, and the collision direction is perpendicular to the collision side of the rockfall blocking structure; The negative Poisson's ratio honeycomb structure comprises a plurality of mesh structure layers and a plurality of curved connecting rods, wherein the plurality of mesh structure layers are arranged at equal intervals in the impact direction, the mesh structure layer is formed by interlacing curved rods in a first direction and a second direction perpendicular to each other to form a mesh structure, the first direction and the second direction are both perpendicular to the impact direction, the curved rods are formed by linearly connecting a plurality of first arc units in sequence, the bending directions of adjacent first arc units are opposite, the planes where the curved rods are located are parallel to the impact direction, in the mesh structure layer, the spacing between two adjacent curved rods in the first direction and the spacing between two adjacent curved rods in the second direction are both the chord length of the first arc unit, and the bending directions of the first arc units at corresponding positions of two adjacent mesh structure layers in the impact direction are opposite; the corresponding connection nodes between the mesh structure layers in the impact direction are connected by the curved connecting rods, the curved connecting rods are formed by connecting a plurality of second arc units in sequence along the impact direction, the bending directions of adjacent second arc units are opposite, the planes where the two adjacent curved connecting rods are located are perpendicular to each other, and the spacing between two adjacent mesh structure layers is the chord length of the second arc unit.

[0006] Optionally, the chord lengths of the first arc unit and the second arc unit are equal, and the central angle θ corresponding to the first arc unit is 1 The central angle θ corresponding to the second arc unit is 45°-90°. 2 Satisfies the following formula: ; In the formula, is the chord length of the first arc unit, when θ 2 and θ 1 When the above formula is satisfied, the Poisson's ratio ν of the negative Poisson's ratio honeycomb structure is -1. On this basis, increasing θ 2 It can increase the lateral deformation corresponding to the unit impact direction displacement and reduce the Poisson's ratio ν; reduce θ 2 It can reduce the lateral deformation corresponding to the unit impact direction displacement and increase the Poisson's ratio ν.

[0007] Optionally, the buffer protective layer further includes a filling material, and the filling material is filled in the gaps of the negative Poisson's ratio honeycomb structure.

[0008] Optionally, the filling material comprises polymer foam or aerogel, and the filling material is tightly combined with the negative Poisson's ratio honeycomb structure by injection or spraying.

[0009] Optionally, the negative Poisson's ratio honeycomb structure is made of metal material or polymer material by 3D printing, laser cutting or metal stamping.

[0010] Optionally, the chord lengths of the first arc unit and the second arc unit are equal, the cross-sections of the curved rod and the curved connecting rod are circular or square, and the cross-section diameter or side length is 0.05-0.15 times the chord length of the first arc unit.

[0011] Optionally, the rockfall retaining structure comprises rockfall retaining piles or rockfall retaining walls of reinforced concrete structure.

[0012] The beneficial effects of the dangerous rockfall buffer device with negative Poisson's ratio provided by the present application are: The buffer layer is covered on the impact side of the rockfall barrier structure, which can effectively reduce the impact force on the rockfall barrier structure when it is hit, so as to improve the impact resistance of the rockfall barrier structure. The unique geometric space of the negative Poisson's ratio honeycomb structure in the buffer layer makes it have negative Poisson's ratio characteristics in the three directions of X, Y, and Z in three-dimensional space. When it is impacted by the pressure plate, it shows negative Poisson's ratio characteristics in both lateral directions. It tends to shrink laterally and can absorb and disperse more energy. At the same time, the angle relationship between the bent rod and the bent connecting rod ensures that the negative Poisson's ratio honeycomb structure has the same negative Poisson's ratio in both lateral directions, ensures that the negative Poisson's ratio honeycomb structure deforms uniformly under impact, and improves the overall mechanical properties and stability of the buffer layer. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.

[0014] in: Figure 1 It is a structural schematic diagram of a dangerous rockfall buffer device with negative Poisson's ratio characteristics shown in one embodiment of the present application; Figure 2 It is a schematic structural diagram of a buffer protective layer in a dangerous rockfall buffer device having a negative Poisson's ratio characteristic shown in one embodiment of the present application; Figure 3 is a schematic diagram of a negative Poisson's ratio honeycomb structure in a buffer protective layer shown in an embodiment of the present application; Figure 4 is a schematic diagram of a mesh structure layer in a negative Poisson's ratio honeycomb structure shown in one embodiment of the present application; Figure 5 is a schematic structural diagram of a bent rod in a mesh structure layer shown in an embodiment of the present application; Figure 6 yes Figure 3 Schematic diagram of the negative Poisson's ratio honeycomb structure in the X-axis direction; Figure 7 yes Figure 3 Schematic diagram of the negative Poisson's ratio honeycomb structure in the Z-axis direction; Figure 8 yes Figure 3 Schematic diagram of the negative Poisson's ratio honeycomb structure in the Y-axis direction.

[0015] Description of reference numerals: 10. Rockfall barrier structure; 20. Buffer protective layer; 21. Negative Poisson's ratio honeycomb structure; 211. Mesh structure layer; 2111. Bending rod; 212. Bending connecting rod; 22. Pressure plate. DETAILED DESCRIPTION

[0016] In order to facilitate the understanding of the present application, the present application will be described more comprehensively with reference to the relevant drawings below. The preferred embodiments of the present application are provided in the drawings. However, the present application can be implemented in many other different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the understanding of the disclosure of the present application more thorough and comprehensive.

[0017] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element.

[0018] In addition, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of this application, the meaning of "plurality" is two or more, unless otherwise clearly and specifically defined.

[0019] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which this application belongs. The terms used herein in the specification of this application are only for the purpose of describing specific embodiments and are not intended to limit this application.

[0020] The embodiment of the present application provides a rockfall buffer device with negative Poisson's ratio characteristics, such as Figure 1-Figure 2 As shown, the rockfall buffer device comprises a rockfall blocking structure 10 and a buffer protective layer 20 installed on the collision side of the rockfall blocking structure 10, wherein the rockfall blocking structure 10 includes but is not limited to a rock blocking pile and a rock blocking wall of a reinforced concrete structure. The buffer protective layer 20 comprises a negative Poisson's ratio honeycomb structure 21 and a pressure plate 22, and the negative Poisson's ratio honeycomb structure 21 is provided with pressure plates 22 on both sides of the opposite sides of the collision direction, and the collision direction is perpendicular to the collision side of the rockfall blocking structure 10.

[0021] For ease of understanding and explanation, an XYZ space coordinate system is established in the figure, wherein the impact direction is the direction of the X-axis, the first direction mentioned below is the direction of the Y-axis, and the second direction is the direction of the Z-axis.

[0022] like Figure 3-Figure 8As shown, the negative Poisson's ratio honeycomb structure 21 includes a plurality of mesh structure layers 211 and a plurality of curved connecting rods 212. The plurality of mesh structure layers 211 are arranged at equal intervals in the impact direction. The mesh structure layer 211 is formed by interlacing curved rods 2111 in a first direction and a second direction perpendicular to each other to form a mesh structure. The first direction and the second direction are both perpendicular to the impact direction. The curved rods 2111 are formed by linearly connecting a plurality of first arc units in sequence. In order to make the structure have a negative Poisson's ratio characteristic, the bending directions of adjacent first arc units are opposite. The smooth transition characteristics of the arc unit can effectively avoid the stress concentration problem at the traditional straight line connection or right angle connection, and improve the structural strength and durability; the arc unit structural characteristics enable it to evenly distribute stress, and when subjected to force, it can evenly absorb and disperse the impact energy through bending elastic deformation, thereby enhancing the energy absorption capacity; the symmetry and continuity design ensure that the structure is evenly deformed when subjected to force, avoiding excessive local deformation or instability, and improving the overall stability of the structure. The planes where the bent rods 2111 are located are parallel to the impact direction. In the mesh structure layer 211, the spacing between two adjacent bent rods 2111 in the first direction and the spacing between two adjacent bent rods 2111 in the second direction are both the chord length of the first arc unit. With this design, the two sides of the structure exhibit the same negative Poisson's ratio when subjected to an impact, and energy is uniformly absorbed through uniform deformation to ensure the stability of the structure. The bending directions of the first arc units at the corresponding positions of the two adjacent mesh structure layers 211 in the impact direction are opposite, which is also to make the structure have negative Poisson's ratio characteristics; the corresponding connection nodes between the mesh structure layers 211 in the impact direction are connected by a curved connecting rod 212, and the curved connecting rod 212 is formed by connecting a number of second arc units in sequence along the impact direction. In order to make the structure have negative Poisson's ratio characteristics, the bending directions of adjacent second arc units are opposite, and the planes where the two adjacent curved connecting rods 212 are located are perpendicular to each other, so that when the structure is impacted, both sides can reflect the negative Poisson's ratio characteristics. The spacing between the two adjacent mesh structure layers 211 is the chord length of the second arc unit. This design makes the grid present a regular square distribution in the space along the impact direction, thereby optimizing the force characteristics of the structure. The symmetry and uniformity of the square grid can ensure that the stress is evenly distributed in the structure, avoid local stress concentration, and improve the strength and stability of the overall structure.

[0023] The above-mentioned designs of the negative Poisson's ratio honeycomb structure 21 enable the structure to have negative Poisson's ratio characteristics in the three directions of X, Y, and Z. This regular spatial square distribution not only optimizes the uniform distribution of stress and avoids local stress concentration, but also significantly improves the overall strength, stability and energy absorption capacity of the structure. At the same time, the regular square grid design simplifies the manufacturing process, ensures the high precision and high performance of the structure, and is suitable for the needs of efficient energy absorption and impact protection under complex working conditions.

[0024] In the embodiment of the present application, in the dangerous rockfall buffer device, the buffer layer 20 covers the impact side of the rockfall blocking structure 10, which can effectively reduce the impact force received by the rockfall blocking structure 10 when it is hit, so that the impact resistance of the rockfall blocking structure 10 is improved. The buffer layer 20 has a simple structure and is easy to produce and apply. The unique geometric space of the negative Poisson's ratio honeycomb structure 21 in the buffer layer 20 makes it have negative Poisson's ratio characteristics in the three directions of X, Y, and Z in the three-dimensional space. When it is subjected to the impact transmitted by the pressure plate 22, it exhibits negative Poisson's ratio characteristics in both lateral directions. It will have a tendency to shrink laterally and can absorb and disperse more energy. At the same time, the angle relationship between the bent rod 2111 and the bent connecting rod 212 ensures that the negative Poisson's ratio honeycomb structure 21 has the same negative Poisson's ratio in both lateral directions, ensures that the negative Poisson's ratio honeycomb structure 21 is uniformly deformed under the impact, and improves the overall mechanical properties and stability of the buffer layer 20.

[0025] In one embodiment, the chord lengths of the first arc unit and the second arc unit are equal, and the central angle θ corresponding to the first arc unit is 1 is 45°-90°. Within this angle range, the first arc unit can balance the rigidity and deformation capacity of the structure, ensuring sufficient strength to resist impact and effectively absorbing energy through elastic deformation. 1 If the curvature of the first arc unit is lower than 45°, the curvature of the first arc unit is too small, which will lead to excessive structural rigidity and insufficient deformation capacity, making it difficult to give full play to the negative Poisson's ratio characteristics and reduce the energy absorption efficiency. 1 If the curvature is higher than 90°, the first arc unit will have too large a curvature, insufficient structural rigidity, and prone to excessive deformation or even instability, affecting the overall mechanical properties and durability. Therefore, the center angle range of 45°-90° can achieve the optimal balance between strength, deformation capacity and energy absorption performance, meeting the engineering requirements under complex working conditions. The center angle θ corresponding to the second arc unit 2 Satisfies the following formula: ; In the formula, is the chord length of the first arc unit, when θ 2 and θ 1 When the above formula is satisfied, the Poisson's ratio ν of the negative Poisson's ratio honeycomb structure 21 is -1. On this basis, increasing θ 2 It can increase the lateral deformation corresponding to the unit impact direction displacement and reduce the Poisson's ratio ν; reduce θ 2 It can reduce the lateral deformation corresponding to the unit impact direction displacement and increase the Poisson's ratio ν.

[0026] The above-mentioned method can realize flexible adjustment of the Poisson's ratio of the negative Poisson's ratio honeycomb structure 21, and can be applied to engineering applications with various complex working conditions and impact energy levels.

[0027] In one embodiment, the buffer protective layer 20 also includes a filling material (not shown in the figure), and the filling material is filled in the gap of the negative Poisson's ratio honeycomb structure 21. Specifically, the filling material can be a lightweight material, such as polymer foam or aerogel, which has good elasticity and cushioning properties and can effectively enhance the impact absorption performance of the structure. The filling material can be tightly combined with the negative Poisson's ratio honeycomb structure 21 by injection or spraying, and the lightweight material should be densely filled in the negative Poisson's ratio honeycomb structure 21 without leaving gaps. When the negative Poisson's ratio honeycomb structure 21 is subjected to external force, the filling material in its gap will shrink in volume, and this shrinkage can absorb and disperse the energy caused by the external force. The filling material works together with the negative Poisson's ratio honeycomb structure 21 to effectively improve the overall negative Poisson's ratio characteristics. Compared with traditional materials, the buffer protective layer 20 can produce greater deformation and displacement under the same stress, thereby having a higher energy absorption capacity.

[0028] Compared with traditional materials, the lightweight negative Poisson's ratio structure has higher specific strength and specific stiffness, while reducing the weight of the overall structure, which is beneficial to improving the performance of the barrier system.

[0029] In one embodiment, the negative Poisson's ratio honeycomb structure 21 may be made of metal material or polymer material, and its high strength, corrosion resistance and plasticity can ensure the stability of the buffer protective layer 20 in long-term use.

[0030] The negative Poisson's ratio honeycomb structure 21 can adopt advanced manufacturing processes, such as 3D printing, laser cutting, metal stamping and other technologies, which can accurately control the size and shape of each honeycomb unit to ensure efficient energy absorption and excellent negative Poisson's ratio characteristics of the structure.

[0031] The chord lengths of the first arc unit and the second arc unit are equal, and the cross-sections of the curved rod 2111 and the curved connecting rod 212 are circular or square, and the cross-section diameter or side length is 0.05-0.15 times the chord length of the first arc unit. The circular or square cross-sectional shape can evenly distribute stress, avoid local stress concentration, and is easy to manufacture and install; the circular cross-section has isotropic mechanical properties and is suitable for multi-directional force scenes, while the square cross-section is easy to stack and combine, improving space utilization. Selecting a cross-sectional size of 0.05-0.15 times the chord length can effectively control the weight and cost of the structure while meeting the strength requirements. If the cross-sectional size is less than 0.05 times, the stiffness and strength of the rod are insufficient, and it is easy to deform or break, affecting the stability and energy absorption performance of the overall structure; if the cross-sectional size is higher than 0.15 times, although the strength is improved, it will cause a significant increase in the weight and material cost of the structure, reduce the lightweight advantage, and may affect the performance of the negative Poisson's ratio. Therefore, the range of 0.05-0.15 times achieves the optimal balance between strength, weight and cost, ensuring the high performance and economy of the structure.

[0032] In a specific embodiment, the buffer sheath 20 can be designed in a modular manner to facilitate transportation and installation. The structural units can be combined and adjusted according to actual needs, which ensures flexibility and simplifies installation and maintenance.

[0033] In actual use, such as Figure 1 As shown, the buffer layer 20 is installed and fixed on the impact side of the rockfall barrier structure 10 to form a dangerous rockfall buffer device with negative Poisson's ratio characteristics, and the pressure plate 22 of the buffer layer 20 faces the impact direction. When a rock falls on the slope, it will first hit the buffer layer 20, and the buffer layer 20 can absorb and disperse the energy released when the rock falls. Through its volume contraction characteristics, the buffer layer 20 can convert impact energy into deformation energy, smooth the impact process, prolong the impact time, reduce the peak value of the impact force, and reduce the degree of impact force transmitted to the barrier structure, thereby reducing the stress and damage to the rockfall barrier structure 10. The buffer layer 20 can effectively enhance the durability and reliability of the rockfall barrier structure 10, and can reduce the need for maintenance and replacement.

[0034] The rockfall buffer device in the embodiment of the present application can be formed by the buffer sheath 20 and various rockfall protection structures, and is particularly suitable for use in high-impact and harsh environments. The size, structural design and installation method of the buffer sheath 20 and the rockfall protection structure can be adjusted according to different slopes, geological conditions and rockfall scales to meet various rockfall protection needs.

[0035] Since the buffer protective layer 20 can maintain excellent performance during long-term use, especially when facing the influence of environmental factors such as multiple impacts, temperature changes, corrosion, etc., the negative Poisson's ratio honeycomb structure 21 and the filling material can effectively maintain their negative Poisson's ratio characteristics and buffering effects, ensuring the long-term stability of the rockfall protection structure.

[0036] The technical features of the above embodiments may be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0037] The above embodiments only express several implementation methods of the present application, and the descriptions thereof are relatively specific and detailed, but they cannot be understood as limiting the scope of the application. It should be pointed out that, for a person of ordinary skill in the art, several variations and improvements can be made without departing from the concept of the present application, and these all belong to the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the attached claims.

Claims

1. A rockfall buffer device with negative Poisson's ratio, characterized in that: It comprises a rockfall blocking structure and a buffer protective layer installed on the collision side of the rockfall blocking structure, the buffer protective layer comprises a negative Poisson's ratio honeycomb structure, a pressure-bearing plate and a filling material, the negative Poisson's ratio honeycomb structure is provided with the pressure-bearing plates on both sides of the collision direction, the collision direction is perpendicular to the collision side of the rockfall blocking structure, and the filling material is filled in the gaps of the negative Poisson's ratio honeycomb structure; The negative Poisson's ratio honeycomb structure comprises a plurality of mesh structure layers and a plurality of curved connecting rods, wherein the plurality of mesh structure layers are arranged at equal intervals in the impact direction, the mesh structure layer is formed by interlacing curved rods in a first direction and a second direction perpendicular to each other to form a mesh structure, the first direction and the second direction are both perpendicular to the impact direction, the curved rods are formed by linearly connecting a plurality of first arc units in sequence, the bending directions of adjacent first arc units are opposite, the planes where the curved rods are located are parallel to the impact direction, in the mesh structure layer, the spacing between two adjacent curved rods in the first direction and the spacing between two adjacent curved rods in the second direction are both the chord length of the first arc unit, and the bending directions of the first arc units at corresponding positions of two adjacent mesh structure layers in the impact direction are opposite; the corresponding connection nodes between the mesh structure layers in the impact direction are connected by the curved connecting rods, the curved connecting rods are formed by connecting a plurality of second arc units in sequence along the impact direction, the bending directions of adjacent second arc units are opposite, the planes where the two adjacent curved connecting rods are located are perpendicular to each other, and the spacing between two adjacent mesh structure layers is the chord length of the second arc unit.

2. The rockfall buffer device with negative Poisson's ratio characteristic according to claim 1, characterized in that: The chord lengths of the first arc unit and the second arc unit are equal, the center angle θ1 corresponding to the first arc unit is 45°-90°, and the center angle θ2 corresponding to the second arc unit satisfies the following formula: ; In the formula, is the chord length of the first arc unit. When θ2 and θ1 satisfy the above formula, the Poisson's ratio ν of the negative Poisson's ratio honeycomb structure is -1. On this basis, increasing θ2 can increase the corresponding lateral deformation under unit impact direction displacement and reduce the Poisson's ratio ν; reducing θ2 can reduce the corresponding lateral deformation under unit impact direction displacement and increase the Poisson's ratio ν.

3. The rockfall buffer device with negative Poisson's ratio characteristic according to claim 1, characterized in that: The filling material comprises polymer foam or aerogel, and the filling material is tightly combined with the negative Poisson's ratio honeycomb structure by injection or spraying.

4. The rockfall buffer device with negative Poisson's ratio characteristic according to claim 1, characterized in that: The negative Poisson's ratio honeycomb structure is made of metal material or polymer material through 3D printing, laser cutting or metal stamping.

5. The rockfall buffer device with negative Poisson's ratio characteristic according to claim 1, characterized in that: The chord lengths of the first arc unit and the second arc unit are equal, the cross-sections of the curved rod and the curved connecting rod are circular or square, and the cross-section diameter or side length is 0.05-0.15 times the chord length of the first arc unit.

6. The rockfall buffer device with negative Poisson's ratio characteristic according to claim 1, characterized in that: The rockfall retaining structure comprises a rockfall retaining pile or a rockfall retaining wall of a reinforced concrete structure.

Citation Information

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