TY - JOUR
T1 - Analysis of the formation mechanism under different grinding conditions on the machining defects of needle-punched quartz fibre reinforced hybrid polymer matrix composites
AU - Zhao, Pengcheng
AU - An, Wenzhao
AU - Wang, Liyu
AU - Xu, Weiwei
AU - Wang, Yutao
AU - Shi, Xiaojin
AU - Yuan, Songmei
N1 - Publisher Copyright:
© 2025
PY - 2025/11/1
Y1 - 2025/11/1
N2 - To understand the defect forms of needle-punched quartz fibres reinforced hybrid polymer matrix composites, this study adopt end face and side face grinding and selected down and up grinding to conduct experiments. The results show that the macroscopic defects are mainly burrs and the microscopic defects are mainly fibre pull-out, fibre debonding, fibre bending and matrix interface broken. And it is found that the 90° fibre pull-out degrees of end face down grinding (EFDG) and end face up grinding (EFUG) were similar, which were 7.82 μm and 7.34 μm respectively, significantly lower than 53.57 μm of side face up grinding (SFUG) and 82.10 μm of side face down grinding (SFDG). The pull-out degree of the 0° fibre bundle showed the same variation pattern as that of the 90° fibre bundle, but its pull-out degree is significantly higher than that of the 90° fibre bundle, which were 34.92 μm (EFDG), 33.13 μm (EFUG), 61.46 μm (SFUG), and 256.56 μm (SFDG) respectively. By analyzing different grinding conditions, the effective action distance that plays a crucial role in defect formation is obtained, and the effective action distances of end face grinding and side face grinding are different. The grits of the internal end face play an important role in the formation of defects under EFUG and EFDG conditions. In addition, the support effects also vary under different grinding conditions. The joint support effect formed between the grits and the material > the separate support effect of the material > almost no support effect and only the grinding effect of grits.
AB - To understand the defect forms of needle-punched quartz fibres reinforced hybrid polymer matrix composites, this study adopt end face and side face grinding and selected down and up grinding to conduct experiments. The results show that the macroscopic defects are mainly burrs and the microscopic defects are mainly fibre pull-out, fibre debonding, fibre bending and matrix interface broken. And it is found that the 90° fibre pull-out degrees of end face down grinding (EFDG) and end face up grinding (EFUG) were similar, which were 7.82 μm and 7.34 μm respectively, significantly lower than 53.57 μm of side face up grinding (SFUG) and 82.10 μm of side face down grinding (SFDG). The pull-out degree of the 0° fibre bundle showed the same variation pattern as that of the 90° fibre bundle, but its pull-out degree is significantly higher than that of the 90° fibre bundle, which were 34.92 μm (EFDG), 33.13 μm (EFUG), 61.46 μm (SFUG), and 256.56 μm (SFDG) respectively. By analyzing different grinding conditions, the effective action distance that plays a crucial role in defect formation is obtained, and the effective action distances of end face grinding and side face grinding are different. The grits of the internal end face play an important role in the formation of defects under EFUG and EFDG conditions. In addition, the support effects also vary under different grinding conditions. The joint support effect formed between the grits and the material > the separate support effect of the material > almost no support effect and only the grinding effect of grits.
KW - Diamond wheel decomposed
KW - Effective action distance
KW - Material defects
KW - Support forms
UR - https://www.scopus.com/pages/publications/105010111975
U2 - 10.1016/j.compositesb.2025.112796
DO - 10.1016/j.compositesb.2025.112796
M3 - 文章
AN - SCOPUS:105010111975
SN - 1359-8368
VL - 306
JO - Composites Part B: Engineering
JF - Composites Part B: Engineering
M1 - 112796
ER -