TY - JOUR
T1 - Numerical simulation for delamination during drilling of CFRP/AL stacks
AU - Qi, Z.
AU - Zhang, K.
AU - Cheng, H.
AU - Liu, S.
PY - 2015/6/1
Y1 - 2015/6/1
N2 - This paper is devoted to predicting the critical thrust force at delamination onset by finite element method in order to contribute the delamination-free drilling process of carbon-fiber-reinforced polymer/aluminum (CFRP/AL) stacks. First, taking the tapered drill point into account, a qualitative finite element analysis of push-out delamination is carried out to ascertain the location where the delamination first occurs. Mixed failure criteria and Camanho-Matthews stiffness' degradation criterion are applied to represent the damage initiation and evolution of CFRP. Second, three-dimensional finite element models are developed for predicting the critical thrust force of drilling CFRP/AL stacks at different stages by using traction-separation law to represent the interlaminar property. Finally, to validate the rationality of the finite element (FE) models, the results are compared with the previous theoretical and experimental results, and acceptable agreements have been obtained.
AB - This paper is devoted to predicting the critical thrust force at delamination onset by finite element method in order to contribute the delamination-free drilling process of carbon-fiber-reinforced polymer/aluminum (CFRP/AL) stacks. First, taking the tapered drill point into account, a qualitative finite element analysis of push-out delamination is carried out to ascertain the location where the delamination first occurs. Mixed failure criteria and Camanho-Matthews stiffness' degradation criterion are applied to represent the damage initiation and evolution of CFRP. Second, three-dimensional finite element models are developed for predicting the critical thrust force of drilling CFRP/AL stacks at different stages by using traction-separation law to represent the interlaminar property. Finally, to validate the rationality of the finite element (FE) models, the results are compared with the previous theoretical and experimental results, and acceptable agreements have been obtained.
KW - CFRP/AL stacks
KW - Critical thrust force
KW - Delamination
KW - Drilling
KW - Finite element method
UR - http://www.scopus.com/inward/record.url?scp=84941277670&partnerID=8YFLogxK
U2 - 10.1179/1432891715Z.0000000001457
DO - 10.1179/1432891715Z.0000000001457
M3 - 文章
AN - SCOPUS:84941277670
SN - 1432-8917
VL - 19
SP - S698-S6101
JO - Materials Research Innovations
JF - Materials Research Innovations
ER -