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Multiscale modeling of PVDF matrix carbon fiber composites
Michael Greminger
, Ghazaleh Haghiashtiani
Mechanical & Industrial Engineering
Mechanical Engineering
Research output
:
Contribution to journal
›
Article
›
peer-review
12
Scopus citations
Overview
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Keyphrases
Multiscale Modeling
100%
Carbon Fiber Composite
100%
Polyvinylidene Difluoride
100%
Carbon Fiber Layer
60%
Composite Materials
40%
Self-sensing
40%
Degree of Polarization
40%
Micromechanics
20%
Dielectric
20%
Inverse Problem
20%
Modeling Approach
20%
Mechanical Properties
20%
Structural Health Monitoring
20%
Predictive Models
20%
Finite Element Model
20%
Mechanical Performance
20%
Electrical Properties
20%
Electrically Conductive
20%
Finite Element Modeling
20%
Matrix Materials
20%
Piezoelectric Polymer
20%
Embedded Sensors
20%
Design Intent
20%
Composite Performance
20%
Piezoelectric Coefficient
20%
Multiscale Modeling Approach
20%
Plain Weave
20%
Effective piezoelectric Coefficient
20%
Piezoelectric Performance
20%
Carbon Fiber Reinforced
20%
Conductive Carbon Fiber
20%
Smart Composites
20%
Smart Composite Materials
20%
Carbon Fiber Reinforced Polymer Composites
20%
Modeling Results
20%
External Sensor
20%
Engineering
Multiscale Modeling
100%
Carbon Fibre Composite
100%
Composite Material
100%
Piezoelectric
66%
Smart Composite
66%
Piezoelectric Coefficient
66%
Multiscale
33%
Dielectrics
33%
Structural Health Monitoring
33%
Good Agreement
33%
Finite Element Modeling
33%
Experimental Result
33%
Conductive
33%
Piezoelectric Polymer
33%
Design Purpose
33%
Embedded Sensor
33%
Carbon Fibre-Reinforced Polymer Composite
33%
Fiber-Reinforced Composite
33%
Micromechanics
33%
Fem Model
33%
Matrix Material
33%
Material Science
Carbon Fiber
100%
Composite Material
100%
Piezoelectricity
71%
Composite Material
42%
Finite Element Modeling
28%
Kevlar
28%
Reinforced Plastic
14%
Polymer Composite
14%
Fiber-Reinforced Composite
14%
Micromechanics
14%
Dielectric Material
14%