材料科学
3D打印
聚酰胺
复合材料
刚度
极限抗拉强度
复合数
喷嘴
有限元法
比模量
响应面法
抗冲击性
填充
艾氏冲击强度试验
挤压
3d打印
机械工程
织物
熔融沉积模型
抗弯刚度
动态力学分析
先进复合材料
结构工程
玻璃纤维
作者
B. Satyanarayana,Jasthy Sreedevi,B. Varshini
标识
DOI:10.1177/08927057261426848
摘要
Additively manufactured parts are distinctly influenced by diverse 3D-printing parameters, which directly affect their mechanical properties and overall performance. Key factors such as print orientation, infill density, nozzle temperature, and layer height play an essential role in determining the strength, durability, and dimensional accuracy of the printed parts. These parameters must be carefully optimized to get the appropriate mechanical characteristics and ensure that the final product meets quality and performance standards. This research investigates the mechanical behaviour of boron Fiber-reinforced glass bead-filled polyamide 12, focusing on fracture mechanics across various printing orientations. To optimize the composite formulation, this mechanical impact predictive analysis integrates deep learning and advanced optimization techniques, specifically Enhancing Spiking Neural Networks with Hybrid Top-Down Attention and Clouded Leopard Optimization (ESNN-HTDA-CLO). Additionally, post-heat treatment improves tensile strength and surface roughness, achieving nearly a 10% improvement. Also, this research aims to address challenges in enhancing stiffness and temperature resistance while showcasing the composite advantages. The findings underscore the potential of the developed composite in aerospace, automotive, electronics, construction industries, medical devices, and advanced manufacturing.
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