Optimization of High-performance Materials Design and Manufacturing Processes in Mechanical Engineering
DOI:
https://doi.org/10.54097/xt0vxb82Keywords:
High-performance material design, manufacturing process optimization, flexible structures, mechanical engineering, testing technology, simulation software.Abstract
With the continuous improvement of material performance requirements in the field of mechanical engineering, the design and manufacturing process optimization of high-performance materials has become an important link to achieve product quality and function improvement. This paper discusses how to improve the performance of high-performance materials in flexible structures through advanced material design methods and manufacturing process optimization. Optimized design of materials based on computer-aided design (CAD), the way to predict and improve material properties through simulation software. Combined with the application of advanced manufacturing technologies, how 3D printing, laser cutting and other technologies can improve the mechanical properties of flexible materials through process parameter optimization. , such as surface self-cleaning, antimicrobial properties, anti-icing, corrosion protection, and fluid drag reduction. With the development of new materials and the emergence of innovative processing technologies, superhydrophobic surface preparation methods have become more efficient and diverse. It is foreseeable that flexible materials with woven superhydrophobic properties will have greater applications in biomedicine, biomimetic sensors, flexible solar cells and other fields. The combination of the performance of material properties in practical applications and optimization effects with real-world applications, especially the potential innovative applications in flexible structures, is demonstrated through specific cases of test validation.
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[1] Zhu Z , Xu L , Chen G ,et al.Optimization on tribological properties of aramid fibre and CaSO4 whisker reinforced non-metallic friction material with analytic hierarchy process and preference ranking organization method for enrichment evaluations[J].Materials & Design, 2010, 31(1):551-555.DOI:10.1016/j.matdes.2009.07.015.
[2] Zhang Y Z Y , Chen Y C Y , Gong C G C ,et al.Optimization of Superlattice Thermoelectric Materials and Microcoolers [J]. Journal of Microelectromechanical Systems, 2007, 16(5):1113-1119.DOI:10.1109/JMEMS.2007.900884.
[3] Qiu K .Topology optimization of periodic cellular solids based on a superelement method[J].Engineering Optimization, 2009, 41(3):225-239.DOI:10.1080/03052150802414718.
[4] Celina,M.Selection and optimization of piezoelectric polyvinylidene fluoride polymers for adaptive optics in space environments [J]. High Performance Polymers, 2005, 17(4):575-592.DOI:10.1177/0954008305052206.
[5] Hu I , Yang T S , Chen K S .Synergetic effects of wafer rigidity and retaining-ring parameters on contact stress uniformity in chemical mechanical planarization [J]. The International Journal of Advanced Manufacturing Technology, 2011, 56(5-8):523-538.DOI:10.1007/s00170-011-3215-8.
[6] Bao W , Chen J , Xie G .Optimized strength and conductivity of multi-scale copper alloy/metallic glass composites tuned by a one-step spark plasma sintering(SPS) process[J].Journal of Materials Science & Technology, 2022(33):22-30.
[7] Xiao J , Cao J , Song C ,et al.The Collapse Deformation Prediction Model of Wide 7075 Al-Alloy Intermediate Slabs Based on Particle Swarm Optimization and Support Vector Regression During the Hot Rolling Process[J].Journal of Materials Engineering and Performance, 2024, 33(2):1034-1050.DOI:10.1007/s11665-023-08033-x.
[8] Hernandez-Carrillo G , Duran-Herrera A , Tagnit-Hamou A .Optimization of Ultra-High-Performance Concrete Using Soft and Hard Inert Fillers (Limestone and Quartz)[J].ACI materials journal, 2022, 119(1):275-288.
[9] Adediran A A , Akinwande A A , Balogun O A ,et al.Optimization studies of stir casting parameters and mechanical properties of TiO2 reinforced Al 7075 composite using response surface methodology[J].Scientific Reports, 2021, 11(1):1-20.DOI:10.1038/s41598-021-99168-1.
[10] Jixing,Yang,Yeqing,et al.Optimization of Molecular Structure and Electrode Architecture of Anthraquinone-Containing Polymer Cathode for High-Performance Lithium-Ion Batteries.[J].ACS applied materials & interfaces, 2019, 11(45):42305-42312.DOI:10.1021/acsami.9b16678.
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