TY - JOUR
T1 - Measurement of multiple mechanical properties for polymer composites using digital image correlation at elevated temperatures
AU - Hao, Ziqing
AU - Ji, Xiaohui
AU - Deng, Linlin
AU - Ke, Hongjun
AU - Liu, Liu
N1 - Publisher Copyright:
© 2020 The Authors
PY - 2021/1/15
Y1 - 2021/1/15
N2 - This work presents a cost-effective experimental method for measuring multiple mechanical properties for carbon fiber reinforced modified epoxy matrix composites using the digital image correlation method at elevated temperatures. The method is based on combining a calculated stress distribution and a surface full-field strain measurement in a custom short-beam shear specimen. As the in-plane shear strain exceeds 0.01, all unidirectional SBS specimens exhibited highly nonlinear shear stress-strain behavior. Shear delamination failure occurred at elevated temperatures up to 150oC. Axial elastic modulus and in-plane shear modulus were determined from 2-mm-wide gage regions mid-way between the loading nose and lower support in a single experiment using the closed-form approximation and finite-element-model-updating method. The average axial moduli determined using two different methods are highly consistent. The variation of multiple mechanical properties for the composite material with the temperature rising to 150oC has been obtained simultaneously. The experimental results demonstrate that the axial elastic modulus decreased by only 5.2% at 100oC and 7.8% at 150oC, respectively. However, the in-plane shear modulus decreased by 20.8% at 150oC. It indicates that the degradation of the in-plane shear behavior is sensitive to temperature rising since it is dominated by the matrix, which is sensitive to the glass transition temperature Tg of epoxy resin.
AB - This work presents a cost-effective experimental method for measuring multiple mechanical properties for carbon fiber reinforced modified epoxy matrix composites using the digital image correlation method at elevated temperatures. The method is based on combining a calculated stress distribution and a surface full-field strain measurement in a custom short-beam shear specimen. As the in-plane shear strain exceeds 0.01, all unidirectional SBS specimens exhibited highly nonlinear shear stress-strain behavior. Shear delamination failure occurred at elevated temperatures up to 150oC. Axial elastic modulus and in-plane shear modulus were determined from 2-mm-wide gage regions mid-way between the loading nose and lower support in a single experiment using the closed-form approximation and finite-element-model-updating method. The average axial moduli determined using two different methods are highly consistent. The variation of multiple mechanical properties for the composite material with the temperature rising to 150oC has been obtained simultaneously. The experimental results demonstrate that the axial elastic modulus decreased by only 5.2% at 100oC and 7.8% at 150oC, respectively. However, the in-plane shear modulus decreased by 20.8% at 150oC. It indicates that the degradation of the in-plane shear behavior is sensitive to temperature rising since it is dominated by the matrix, which is sensitive to the glass transition temperature Tg of epoxy resin.
KW - Digital image correlation
KW - Elevated temperature
KW - Experimental method
KW - Mechanical properties
UR - http://www.scopus.com/inward/record.url?scp=85097156792&partnerID=8YFLogxK
U2 - 10.1016/j.matdes.2020.109349
DO - 10.1016/j.matdes.2020.109349
M3 - Article
AN - SCOPUS:85097156792
SN - 0264-1275
VL - 198
JO - Materials and Design
JF - Materials and Design
M1 - 109349
ER -