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Application of Numerical Integration in Analysing the Volume of Reinforcement Particles in Algorithms for Generating Representative Volume Elements (RVEs)

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30 paź 2024

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Robinson M. J., Kosmatka J. B. Development of a Short-Span Fiber-Reinforced Composite Bridge for Emergency Response and Military Applications. Journal of Bridge Engineering [Internet]. 2008;13(4):388–97. Available from: https://ascelibrary.org/doi/abs/10.1061/(ASCE)1084-0702(2008)13:4(388) Search in Google Scholar

Macke A, Schultz B, Rohatgi PK. Metal Matrix Composites Offer the Automotive Industry an Opportunity to Reduce Vehicle Weight, Improve Performance. Advanced Materials and Processes. 2012;170:19–23. Search in Google Scholar

Mieczkowski G, Szpica D, Borawski A, Diliunas S, Pilkaite T, Leisis V. Application of Smart Materials in the Actuation System of a Gas Injector. Materials. Basel Switzerland [Internet]. 2021;14(22). Available from: https://pubmed.ncbi.nlm.nih.gov/34832384/ Search in Google Scholar

Borawski A. Impact of Operating Time on Selected Tribological Properties of the Friction Material in the Brake Pads of Passenger Cars. Materials 2021;14(4):884 [Internet]. Available from: https://www.mdpi.com/1996-1944/14/4/884/htm Search in Google Scholar

Beck AJ, Hodzic A, Soutis C, Wilson CW. Influence of Implementation of Composite Materials in Civil Aircraft Industry on reduction of Environmental Pollution and Greenhouse Effect. IOP Conference Series: Materials Science and Engineering [Internet]. 2011;26:12015. Available from: https://doi.org/10.1088%2F1757-899x%2F26%2F1%2F012015 Search in Google Scholar

Richerson DW. Modern Ceramic Engineering: Properties, Processing, and Use in Design, Third Edition. CRC Press. 2005. Search in Google Scholar

Ibrahim IA, Mohamed FA, Lavernia EJ. Particulate reinforced metal matrix composites — a review. Journal of Materials Science [Internet]. 1991;26(5):1137–56. Available from: https://link.springer.com/article/10.1007/BF00544448 Search in Google Scholar

Zhao X, Wang J, Chen Q, Jiang H, Chen C, Tu W. Microstructure design and optimization of multilayered piezoelectric composites with wavy architectures. [Internet]. 2023. Available from: https://www.tandfonline.com/doi/abs/10.1080/15376494.2023.2172234 Search in Google Scholar

Mieczkowski G. Static Electromechanical Characteristics of Piezoelectric Converters with various Thickness and Length of Piezoelectric Layers. Acta Mechanica et Automatica. 2019;13(1):30–6. Search in Google Scholar

Borawski A, Szpica D, Mieczkowski G, Borawska E, Awad MM, Shalaby RM, et al. Theoretical Analysis of the Motorcycle Front Brake Heating Process during High Initial Speed Emergency Braking. Journal of Applied and Computational Mechanics. 2020;6(Special Issue):1431–7. Search in Google Scholar

Wang C, Ping X, Zhang Y, Xiao Z, Xiao Y. On the three-dimensional singular stress field near the corner front of revolution-shaped inclusions. Acta Mechanica [Internet]. 2021;232(12):4867–95. Available from: https://link.springer.com/article/10.1007/s00707-021-03078-2 Search in Google Scholar

Ran Z, Yan Y, Li J, Qi Z, Yang L. Determination of thermal expansion coefficients for unidirectional fiber-reinforced composites. Chinese Journal of Aeronautics [Internet]. 2014;27(5):1180–7. Available from: https://linkinghub.elsevier.com/retrieve/pii/S1000936114000429 Search in Google Scholar

Santos JA, Sanches AO, Akasaki JL, Tashima MM, Longo E, Malmonge JA. Influence of PZT insertion on Portland cement curing process and piezoelectric properties of 0–3 cement-based composites by impedance spectroscopy. Construction and Building Materials. 2020;238:117675. Search in Google Scholar

Oh KH, Han KS. Short-fiber/particle hybrid reinforcement: Effects on fracture toughness and fatigue crack growth of metal matrix composites. Composites Science and Technology [Internet]. 2007;67(7):1719–26. Available from: http://www.sciencedirect.com/science/article/pii/S026635380600251X Search in Google Scholar

Sijo MT, Jayadevan KR. Analysis of Stir Cast Aluminium Silicon Carbide Metal Matrix Composite: A Comprehensive Review. Procedia Technology [Internet]. 2016;24:379–85. Available from: http://www.sciencedirect.com/science/article/pii/S2212017316301360 Search in Google Scholar

Caban J, Droździel P, Ignaciuk P, Kordos P. The impact of changing the fuel dose on chosen parameters of the diesel engine start-up process. Transport Problems. 2019;14(4):51–62. Search in Google Scholar

Szpica D. Fuel dosage irregularity of LPG pulse vapor injectors at different stages of wear. Mechanika. 2016;22(1):44–50. Search in Google Scholar

Duschlbauer D, Böhm HJ, Pettermann HE. Computational Simulation of Composites Reinforced by Planar Random Fibers: Homogenization and Localization by Unit Cell and Mean Field Approaches. [Internet]. 2006;40(24):2217–34. Available from: https://journals.sagepub.com/doi/10.1177/0021998306062317 Search in Google Scholar

Tornabene F, Luo Y. Microstructure-Free Finite Element Modeling for Elasticity Characterization and Design of Fine-Particulate Composites. Journal of Composites Science [Internet]. 2022;6(2):35. Available from: https://www.mdpi.com/2504-477X/6/2/35/htm Search in Google Scholar

Tu ST, Cai WZ, Yin Y, Ling X. Numerical Simulation of Saturation Behavior of Physical Properties in Composites with Randomly Distributed Second-phase. [Internet]. 2005;39(7):617–31. Available from: https://journals.sagepub.com/doi/10.1177/0021998305047263 Search in Google Scholar

Warguła Ł, Wojtkowiak D, Kukla M, Talaśka K. Symmetric Nature of Stress Distribution in the Elastic-Plastic Range of Pinus L. Pine Wood Samples Determined Experimentally and Using the Finite Element Method (FEM). Symmetry 2021;13(1):39 [Internet]. Available from: https://www.mdpi.com/2073-8994/13/1/39/htm Search in Google Scholar

Yao Z, Kong F, Wang H, Wang P. 2D Simulation of composite materials using BEM. Engineering Analysis with Boundary Elements. 2004;28(8):927–35. Search in Google Scholar

Chen X, Liu Y. Multiple-cell modeling of fiber-reinforced composites with the presence of interphases using the boundary element method. Computational Materials Science. 2001;21(1):86–94. Search in Google Scholar

Drugan WJ, Willis JR, Drugan WJ, Willis JR. A micromechanics-based nonlocal constitutive equation and estimates of representative volume element size for elastic composites. JMPSo [Internet]. 1996;44(4):497–524. Available from: https://ui.adsabs.harvard.edu/abs/1996JMPSo..44..497D/abstract Search in Google Scholar

Kanit T, Forest S, Galliet I, Mounoury V, Jeulin D. Determination of the size of the representative volume element for random composites: statistical and numerical approach. International Journal of Solids and Structures. 2003;40(13–14):3647–79. Search in Google Scholar

Widom B. Random Sequential Addition of Hard Spheres to a Volume. The Journal of Chemical Physics [Internet]. 1966;44(10):3888–94. Available from: /aip/jcp/article/44/10/3888/81726/Random-Sequential-Addition-of-Hard-Spheres-to-a Search in Google Scholar

Böhm HJ, Eckschlager A, Han W. Multi-inclusion unit cell models for metal matrix composites with randomly oriented discontinuous reinforcements. Computational Materials Science. 2002;25(1–2):42–53. Search in Google Scholar

Kari S, Berger H, Gabbert U. Numerical evaluation of effective material properties of randomly distributed short cylindrical fibre composites. Computational Materials Science. 2007;39(1):198–204. Search in Google Scholar

Lee WJ, Son JH, Park IM, Oak JJ, Kimura H, Park YH. Analysis of 3D random AI18B4O33 whisker reinforced Mg composite using FEM and random sequential adsorption. Materials Transactions. 2010;51(6):1089–93. Search in Google Scholar

Bailakanavar M, Liu Y, Fish J, Zheng Y. Automated modeling of random inclusion composites. Engineering with Computers. 2012;30(4):609–25. Search in Google Scholar

Zhou J, Qi L, Gokhale AM. Generation of Three-Dimensional Micro-structure Model for Discontinuously Reinforced Composite by Modified Random Sequential Absorption Method. Journal of Engineering Materials and Technology, Transactions of the ASME [Internet]. 2016;138(2). Available from: https://asmedigitalcollection.asme.org/materialstechnology/article/138/2/021001/384156/Generation-of-Three-Dimensional-Microstructure Search in Google Scholar

Jin BC, Pelegri AA. Three-dimensional numerical simulation of random fiber composites with high aspect ratio and high volume fraction. Journal of Engineering Materials and Technology [Internet]. 2011;133(4). Available from: https://asmedigitalcollection.asme.org/materialstechnology/article/133/4/041014/469603/Three-Dimensional-Numerical-Simulation-of-Random Search in Google Scholar

Qing H. Automatic generation of 2D micromechanical finite element model of silicon–carbide/aluminum metal matrix composites: Effects of the boundary conditions. Materials & Design. 2013;44:446–53. Search in Google Scholar

Eberly D. Robust Computation of Distance Between Line Segments. Geometric Tools [Internet]. 2018;1–14. Available from: https://www.geometrictools.com/ Search in Google Scholar

Mieczkowski G. Determination of effective mechanical properties of particle - Reinforced composite material with use of numerical approach. Engineering for Rural Development. 2020;19:571–7. Search in Google Scholar