Hs. Park et Ys. Yoon, APPLICATION OF LINEAR BIPHASIC THEORY TO FINITE-ELEMENT ANALYSIS OF HEAD IMPULSE LOADING, Proceedings of the Institution of Mechanical Engineers. Part C, Journal of mechanical engineering science, 211(2), 1997, pp. 153-165
A finite element model of the human head by linear biphasic theory is
developed to study the dynamic response of the human head to impact. I
ntracranial tissues are modelled as a binary mixture, i.e. the fluid a
nd solid phases. To validate the biphasic finite element formulation,
the result of the numerical analysis of a one-dimensional wave propaga
tion problem is compared with that of analytic solution. The permeabil
ities of the subarachnoid space and brain which may reproduce the same
coup and contre-coup CSF (cerebral spinal fluid) pressures from the m
onophasic model are searched in the specified range of skull permeabil
ity. Then the intracranial pressure distributions from the biphasic mo
del for the frontal impact are compared with those from the monophasic
model. In general, the biphasic model produces a more injurious intra
cranial pressure distribution than the monophasic model. The pressure
distribution from the biphasic model shows a little higher contre-coup
pressure in the frontal lobe than in the occipital region. This findi
ng is in agreement with those clinical findings that contre-coup injur
ies are more frequently found in the frontal lobe. Another numerical s
imulation is conducted to characterize the effect of the volume ratios
between two phases in the skull and subarachnoid space. From the resu
lts, it can be seen that the variation of the volume ratio in the suba
rachnoid space affects the intracranial pressure distribution of the l
ateral part while the variation in the skull does not.