TY - JOUR
T1 - Rheological behaviors of plasticized polyvinyl chloride thermally conductive composites with oriented flaky fillers
T2 - A case study on graphite and mica
AU - Zhang, Han
AU - Zhang, Jun
N1 - Publisher Copyright:
© 2022 Wiley Periodicals LLC.
PY - 2022/6/5
Y1 - 2022/6/5
N2 - In this study, two oriented flaky fillers in plasticized polyvinyl chloride (P-PVC) matrix were respectively compared on some rheological behaviors such as dynamic rheological behavior, melt flow rate, and Barus effect. By comparing and analyzing the rheological behaviors and thermal conductivity of P-PVC/graphite and P-PVC/mica composites with oriented fillers, it is found that the P-PVC/graphite composites have obvious percolation thresholds of viscosity, modulus and thermal conductivity at 23.6 vol%. However, P-PVC/mica composites did not show similar phenomenon. Moreover, the variable parameter K′ in the modified Kerner–Nielson equation was used to relate the rheological behavior, percolation concentration and thermal conductivity of the composites, and the formation of the filler network was analyzed through the rheological behavior to explain the influence of the percolation threshold in the composites caused by the change of internal structure on the thermal conductivity. It has important guiding significance for the mechanism research and comprehensive performance improvement of the filled composites.
AB - In this study, two oriented flaky fillers in plasticized polyvinyl chloride (P-PVC) matrix were respectively compared on some rheological behaviors such as dynamic rheological behavior, melt flow rate, and Barus effect. By comparing and analyzing the rheological behaviors and thermal conductivity of P-PVC/graphite and P-PVC/mica composites with oriented fillers, it is found that the P-PVC/graphite composites have obvious percolation thresholds of viscosity, modulus and thermal conductivity at 23.6 vol%. However, P-PVC/mica composites did not show similar phenomenon. Moreover, the variable parameter K′ in the modified Kerner–Nielson equation was used to relate the rheological behavior, percolation concentration and thermal conductivity of the composites, and the formation of the filler network was analyzed through the rheological behavior to explain the influence of the percolation threshold in the composites caused by the change of internal structure on the thermal conductivity. It has important guiding significance for the mechanism research and comprehensive performance improvement of the filled composites.
KW - composites
KW - poly(vinyl chloride)
KW - rheology
UR - http://www.scopus.com/inward/record.url?scp=85124106021&partnerID=8YFLogxK
U2 - 10.1002/app.52186
DO - 10.1002/app.52186
M3 - 文章
AN - SCOPUS:85124106021
SN - 0021-8995
VL - 139
JO - Journal of Applied Polymer Science
JF - Journal of Applied Polymer Science
IS - 21
M1 - 52186
ER -