TY - GEN
T1 - In-situ detection of phase transitions of semi-crystalline carbon fiber reinforced thermoplastics using dielectric analysis and its correlation to DMA and DSC
AU - Chaloupka, A.
AU - Grund, D.
AU - Wedel, A.
AU - Rudolph, N. M.
AU - Drechsler, K.
N1 - Publisher Copyright:
© 2016, European Conference on Composite Materials, ECCM. All rights reserved.
PY - 2016
Y1 - 2016
N2 - The mechanical performance of carbon fiber reinforced thermoplastics is strongly influenced by fiber volume fraction, fiber orientation, crystallization conditions, and in case of polyamides humidity. Commonly, the degree of crystallization is verified applying thermo-physical investigations after fabrication, which is often considered cumbersome and time-consuming, especially in a production site. Therefore, this work shows the potential of the in-situ detection of phase transitions such as glass-transition (Tg), melting and crystallization of polyamide-6 (PA6) reinforced by 45 vol.% of carbon fibers using dielectric analysis (DEA). Differential scanning calorimetry (DSC) and dynamic mechanical analysis (DMA) were used to verify the observed phase changes measured by dielectric analysis. The glass transition temperature was determined using DEA, DSC and DMA during heating and cooling at a rate of 2 K/min. It can be seen that the glass transition temperature obtained from the analysis of the loss modulus E″ measured by DMA is in good agreement with the glass transition temperature determined from dielectric loss ε″ of the DEA. Consequently, the dielectric properties of carbon fiber reinforced semi-crystalline thermoplastics are strongly related to the molecular mobility changes at the glass transition temperature. This shows its potential as a high-sensitive inline measurement technique during the manufacturing of thermoplastic composites.
AB - The mechanical performance of carbon fiber reinforced thermoplastics is strongly influenced by fiber volume fraction, fiber orientation, crystallization conditions, and in case of polyamides humidity. Commonly, the degree of crystallization is verified applying thermo-physical investigations after fabrication, which is often considered cumbersome and time-consuming, especially in a production site. Therefore, this work shows the potential of the in-situ detection of phase transitions such as glass-transition (Tg), melting and crystallization of polyamide-6 (PA6) reinforced by 45 vol.% of carbon fibers using dielectric analysis (DEA). Differential scanning calorimetry (DSC) and dynamic mechanical analysis (DMA) were used to verify the observed phase changes measured by dielectric analysis. The glass transition temperature was determined using DEA, DSC and DMA during heating and cooling at a rate of 2 K/min. It can be seen that the glass transition temperature obtained from the analysis of the loss modulus E″ measured by DMA is in good agreement with the glass transition temperature determined from dielectric loss ε″ of the DEA. Consequently, the dielectric properties of carbon fiber reinforced semi-crystalline thermoplastics are strongly related to the molecular mobility changes at the glass transition temperature. This shows its potential as a high-sensitive inline measurement technique during the manufacturing of thermoplastic composites.
KW - Carbon
KW - DMA
KW - Dielectric analysis
KW - Glass transition
KW - Thermoplastic composites
UR - http://www.scopus.com/inward/record.url?scp=85018576780&partnerID=8YFLogxK
M3 - Conference contribution
AN - SCOPUS:85018576780
T3 - ECCM 2016 - Proceeding of the 17th European Conference on Composite Materials
BT - ECCM 2016 - Proceeding of the 17th European Conference on Composite Materials
PB - European Conference on Composite Materials, ECCM
T2 - 17th European Conference on Composite Materials, ECCM 2016
Y2 - 26 June 2016 through 30 June 2016
ER -