Application of scalable sensor-assisted multi-scale computational methods in the simulation of micro mechanical behavior of composite materials

被引:0
|
作者
Wang, Pan [1 ]
Liu, Peijin [1 ]
Ao, Wen [1 ]
机构
[1] Science and Technology on Combustion, Internal Flow and Thermostructure Laboratory, Northwestern Polytechnical University, Xi'an,71007, China
来源
关键词
Compressive strength;
D O I
10.62617/mcb.v21i1.307
中图分类号
学科分类号
摘要
Micro mechanics involves the examination of the mechanical behavior of heterogeneous materials, taking into account inhomogeneities such as voids, fractures, and inclusions, and building on mathematical models developed. Composites bring engineering design barriers despite their strengths. Composite manufacturing and processing need specialized equipment, strategies, and labor, ensuring they are challenging and expensive. Mechanical behavior deals with how a composite material performs if faced with mechanical effects and action. Scalable sensor-assisted multi-scale computational Methods (SS-MSCM) are used to investigate topics ranging from the molecular basis of soot production in combustion to how molecule-level flaws influence macroscopic mechanical qualities. Carbon fiber reinforced polymers (CFRP) are generated by mixing graphene fiber with a resin, like vinyl ester and epoxy, to render a composite material with superior performance to the component ingredients. Hence, SS-MSCM-CFRP has Improved mechanical qualities achieved by incorporating nano-reinforcements, including carbon nanofibers and graphene nanoplates, into the CFRP matrix: enhanced flexural and compressive strengths, energy absorption upon impact, toughness to fracture, and interlaminar bonding. Composite materials feature excellent mechanical qualities like high strength and stiffness, fatigue resistance, and durability. It is possible to insert scalable sensors throughout the manufacturing process, which enables real-time monitoring of structural health, strain, and other factors. Scalable sensor-assisted multi-scale computational methods offer enhanced accuracy, real-time monitoring, and cost-effectiveness by integrating sensor data with computational models, improving predictions and failure mechanism insights. However, they face limitations like sensor dependency, computational complexity, data integration challenges, and high implementation costs, leading to potential discrepancies between simulation and experimental results. Important qualities include corrosion resistance, thermal conductivity, and electrical conductivity. As the composite materials develop to satisfy the established mechanical stress and temperature conditions, they offer high durability and strength. © 2024 by author(s).
引用
收藏
相关论文
共 50 条
  • [41] Determination of elastic and flexural strength properties of multi-scale materials via indentation assisted micro-bending experiment and inverse analysis
    El Awad, Santiago
    Stefaniuk, Damian
    Krakowiak, Konrad J.
    MECHANICS OF MATERIALS, 2021, 158
  • [42] The influence of multi-scale tough liquid fiber toughening agent on the mechanical properties of oil well cement-based composite materials
    Meng, Qingshan
    MATERIALS RESEARCH EXPRESS, 2024, 11 (06)
  • [43] A multi-scale investigation on recycled ceramic and rubber composite cement-based materials: Acoustic emission, NMR, molecular dynamics simulation
    Yang, Jian
    Gao, Xifeng
    Xu, Jie
    Zhu, Han
    Hasan, Md Mehedi
    Shao, Jianwen
    Haruna, Sadi Ibrahim
    CONSTRUCTION AND BUILDING MATERIALS, 2024, 412
  • [44] Multi-scale analysis of mechanical properties and damage behavior of polypropylene composite (GF50-PP) plate at room and cryogenic temperatures
    Shirinbayan, Mohammadali
    Rezaei-khamseh, Mojdeh
    Nikooharf, Mohammad Hossein
    Tcharkhtchi, Abbas
    Fitoussi, Joseph
    COMPOSITE STRUCTURES, 2021, 278
  • [45] Effects of alloying and local order in AuNi contacts for Ohmic radio frequency micro electro mechanical systems switches via multi-scale simulation
    Gaddy, Benjamin E.
    Kingon, Angus I.
    Irving, Douglas L.
    JOURNAL OF APPLIED PHYSICS, 2013, 113 (20)
  • [46] Comprehensive Simulation for Microclimate Environment with Computational Fluid Dynamics Methods and Its Application for Optimal Sensor Placement in Small-Scale Greenhouse
    Liu, Yanzheng
    Teng, Guanghui
    Liu, Yaoze
    Xu, Tingwu
    Jiao, Youquan
    Li, Chunting
    Li, Yan
    Wang, Xiangjun
    SENSOR LETTERS, 2010, 8 (01) : 208 - 217
  • [47] A multi-scale, discrete-cell simulation of organogenesis: Application to the effects of strain stimulus on collective cell behavior during ameloblast migration
    Cox, Brian
    JOURNAL OF THEORETICAL BIOLOGY, 2010, 262 (01) : 58 - 72
  • [48] A selection of papers from an international meeting on: advances in multi-scale modelling of composite material systems & componentsDevelopment & application of predictive modelling in the arena of composite materials systems & technology
    Peter W. R. Beaumont
    Journal of Materials Science, 2006, 41 : 6505 - 6509
  • [49] Multi-scale coarse-grained molecular dynamics simulation to investigate the thermo-mechanical behavior of shape-memory polyurethane copolymers
    Park, Sungwoo
    Moon, Junghwan
    Kim, Byungjo
    Cho, Maenghyo
    Polymer, 2021, 213
  • [50] Multi-scale coarse-grained molecular dynamics simulation to investigate the thermo-mechanical behavior of shape-memory polyurethane copolymers
    Park, Sungwoo
    Moon, Junghwan
    Kim, Byungjo
    Cho, Maenghyo
    POLYMER, 2021, 213