4.6 Article

A Novel Design Method for Energy Absorption Property of Chiral Mechanical Metamaterials

Journal

MATERIALS
Volume 14, Issue 18, Pages -

Publisher

MDPI
DOI: 10.3390/ma14185386

Keywords

full-cycle interactive progressive method; energy absorption property; rotation mechanism; chiral mechanical metamaterials

Funding

  1. National Natural Science Foundation of China [52075195]
  2. Fundamental Research Funds for the Central Universities [2172019kfyXJJS078, 2019kfyXKJC042]
  3. Program for HUST Academic Frontier Youth Team [2017QYTD04]

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The paper introduces a full-cycle interactive progressive (FIP) method that integrates topology optimization, parametric optimization, and experimental analysis for determining optimal energy absorption properties in the design of chiral mechanical metamaterials. The FIP method shows improved ability and efficiency compared to traditional design methods by strengthening overall design, introducing surrogate models, and considering application conditions. Through the application of FIP design, a chiral mechanical metamaterial with optimized energy absorption properties and impact resistance was obtained, showing the effectiveness of the method in improving energy absorption properties.
In this paper, a full-cycle interactive progressive (FIP) method that integrates topology optimization, parametric optimization, and experimental analysis to determine the optimal energy absorption properties in the design of chiral mechanical metamaterials is proposed. The FIP method has improved ability and efficiency compared with traditional design methods due to strengthening the overall design, introducing surrogate models, and its consideration of the application conditions. Here, the FIP design was applied in the design of mechanical metamaterials with optimized energy absorption properties, and a chiral mechanical metamaterial with good energy absorption and impact resistance was obtained based on the rotation mechanism of metamaterials with a negative Poisson's ratio. The relationship among the size parameters, applied boundary conditions, and energy absorption properties were studied. An impact compression experiment using a self-made Fiber Bragg Grating sensor was carried out on the chiral mechanical metamaterial. In light of the large deviation of the experimental and simulation data, a feedback adjustment was carried out by adjusting the structural parameters to further improve the mechanical properties of the chiral mechanical metamaterial. Finally, human-computer interaction, self-innovation, and a breakthrough in the design limits of the optimized model were achieved. The results illustrate the effectiveness of the FIP design method in improving the energy absorption properties in the design of chiral mechanical metamaterials.

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