Heterogeneous materials, such as composites consist of clearly distinguishable constituents (or phases) that show different electrical properties. Multifunctional composites have anisotropic electrical properties that can be tailored for a particular application. The effective anisotropic electrical conductivity of composites is strongly affected by many parameters including volume fractions, distributions, and orientations of constituents. Given the electrical properties of the constituents, one important goal of micromechanics of materials consists of predicting electrical response of the heterogeneous material on the basis of the geometries and properties of the individual phases, a task known as homogenization. The benefit of homogenization is that the behavior of a heterogeneous material can be determined without resorting or testing it. Furthermore, continuum micromechanics can predict the full multi-axial properties and responses of inhomogeneous materials, which are anisotropic in nature. Effective electrical conductivity estimation is performed by using classical micromechanics techniques (composite cylinder assemblage method) that investigates the effect of the fiber/matrix electrical properties and their volume fractions on the micro scale composite response. The composite cylinder assemblage method (CCM) is an analytical theory that is based on the assumption that composites are in a state of periodic structure. The CCM was developed to extend capabilities variable fiber shape/array availability with same volume fraction, interphase analysis, etc. The CCM is a continuum-based micromechanics model that provides closed form expressions for upper level length scales such as macro-scale composite responses in terms of the properties, shapes, orientations and constituent distributions at lower length levels such as the micro-scale.

1.
Haider
,
M. F.
;
Majumdar
,
P.K.
and
Reifsnider
,
K. L.
(
2013
) “
Study of damage in Carbon fiber reinforced Composites Due to Electric Current
”,
American Society for Composites 28th Technical Conference
September 9-11, 2013
State College, Pennsylvania, USA
.
2.
Majumdar
,
P.K.
;
Haider
,
M. F.
and
Reifsnider
,
K. L.
(
2013
) “
AC Conductivity and Microstructural Changes of Composite Materials
.”
International Conference on Lightning and Static Electricity (ICOLSE) 2013
,
Seattle, Washington, USA
. (Hosted by Boeing).
3.
Majumdar
,
P.K.
;
Haider
,
M. F.
and
Reifsnider
,
K. L.
(
2013
) “
Effect of Fiber Orientation on AC Conductivity of Composite Materials
”,
SAMPE 2013 conference
,
6-9May, 2013
,
California, USA
.
4.
Haider
,
M. F.
;
Majumdar
,
P.K.
;
Angeloni
,
S.
and
Reifsnider
,
K. L.
(
2015
) “
Measurement and Prediction of Electrical Response of Composite Materials
.”
SAMPE 2015 conference
May 18-21, 2015
Baltimore, Maryland, USA
.
5.
Haider
,
M. F.
;
Majumdar
,
P.K.
and
Angeloni
,
S.
, (
2015
) “
Degradation of Carbon Fiber Composite Materials Due to Electrical Current and Potential Impact on Synergistic Durability
.”
American Society for Composites 30th Technical Conference
September 28-30, 2015
Michigan State University, East Lansing, Michigan, USA
.
6.
Torquato
,
S.
(
1985
).
Effective electrical conductivity of two-phase disordered composite media
.
Journal of Applied Physics
,
58
(
10
),
3790
3797
.
7.
Greenwood
,
J. H.
,
Lebeda
,
S.
and
Bernasconi
,
J.
(
1975
).
The anisotropic electrical resistivity of a carbon fibre reinforced plastic disc and its use as a transducer
.
Journal of Physics E: Scientific Instruments
,
8
(
5
),
369
.
8.
Kovacik
,
J.
(
1998
).
Electrical conductivity of two-phase composite material
.
Scripta materialia
,
39
(
2
),
153
157
.
9.
Louis
,
M.
,
Joshi
,
S. P.
and
Brockmann
,
W.
(
2001
).
An experimental investigation of through-thickness electrical resistivity of CFRP laminates
.
Composites science and technology
,
61
(
6
),
911
919
.
10.
Ezquerra
,
T. A.
,
Connor
,
M. T.
,
Roy
,
S.
,
Kulescza
,
M.
,
Fernandes-Nascimento
,
J.
and
Baltá-Calleja
,
F. J.
(
2001
).
Alternating-current electrical properties of graphite, carbon-black and carbon-fiber polymeric composites
.
Composites science and technology
,
61
(
6
),
903
909
.
11.
Lin
,
Y.
,
Gigliotti
,
M.
,
Lafarie-Frenot
,
M. C.
,
Bai
,
J.
,
Marchand
,
D.
and
Mellier
,
D.
(
2015
).
Experimental study to assess the effect of carbon nanotube addition on the through-thickness electrical conductivity of CFRP laminates for aircraft applications
.
Composites Part B: Engineering
,
76
,
31
37
.
12.
Makvandi
,
R.
and
Öchsner
,
A.
(
2014
).
On a Finite Element Approach to Predict the Thermal Conductivity of Carbon Fiber Reinforced Composite Materials
.
In Defect and Diffusion Forum
(Vol.
354
, pp.
215
225
).
This content is only available via PDF.
You do not currently have access to this content.