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USER EXPERIENCE ORIENTED PARALLEL RANDOM TREE MINIMIZATION OF FLUX TARGETS FOR WEARABLE FABRIC COLLISION DETECTION

机译:以用户体验为导向的并行目标树最小化可穿戴织物碰撞检测的流量目标

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Based on multi-scale structural characteristics and destruction process of fabric matrix material, a kind of UE (user experience)-oriented parallel random tree clothing material collision detection method for minimizing flux targets is designed to study the mechanical properties of based wood such as compressive strength, bending strength, bend ductility, multiple cracking morphology and fracture process. The results show that the strength and toughness of the matrix material have been significantly improved. MSFRCC exhibits hardening behavior and multiple cracking modes under bending load. Scanning electron microscopy and fracture test results confirm that multi-scale fibers play a role of multi-scale crack resistance in the destruction process of fabric matrix composites. The study shows that implementing multi-scale composite design of fiber can significantly improve the toughness of fabric matrix composites.
机译:基于织物基质材料的多尺度结构特征和破坏过程,设计了一种以UE(用户体验)为导向的并行随机树状服装材料碰撞检测方法,以最小化通量目标,研究了基木的力学性能,如抗压强度。强度,弯曲强度,弯曲延展性,多重开裂形态和断裂过程。结果表明,基质材料的强度和韧性得到了显着提高。 MSFRCC在弯曲载荷下表现出硬化行为和多种开裂模式。扫描电子显微镜和断裂试验结果证实,多尺度纤维在织物基质复合材料的破坏过程中起着多尺度抗裂性的作用。研究表明,实施纤维的多尺度复合设计可以显着提高织物基复合材料的韧性。

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