ELASTOMECHANICAL CHARACTERIZATION OF BRAIN-TISSUES

被引:37
作者
SAHAY, KB
MEHROTRA, R
SACHDEVA, U
BANERJI, AK
机构
[1] ALL INDIA INST MED SCI, DEPT PHYSIOL, NEW DELHI 110016, INDIA
[2] ALL INDIA INST MED SCI, DEPT NEUROSURG, NEW DELHI 110016, INDIA
关键词
D O I
10.1016/0021-9290(92)90029-Z
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The fluid-induced changes in the intracranial pressure which have important clinical implications are believed to be largely determined by the elastomechanical properties of the brain tissues. To define and evaluate the elastomechanical characteristics of the brain tissues a nonlinear hyperelastic hollow spherical shell has been employed to model the craniospinal complex for its fluid-induced intracranial pressure volume changes. The strain energy function proposed by Hart-Smith has been used to derive the constitutive equations. In 10 dogs, fluid has been infused in the lateral ventricle of the brain. The resulting changes in the ventricular fluid pressure (VFP) and the epidural pressure (EDP) have been recorded. The plot of pressure as a function of volume increases first, reaches a maximum, decreases, reaches a minimum and increases monotonously. The values of maximum and minimum pressures (p(v max) and p(v min)) due to fluid infusion are found to be, respectively, 42.4 +/- 15.4 mmHg and 33.1 +/- 12.2 mmHg. The pressure achieved the maximum and minimum values with infusion of 0.19 +/- 0.09 ml and 0.51 +/- 0.15 ml of fluid, respectively. The elastomechanical parameters of the Hart-Smith function that characterize the brain tissues have been evaluated by matching the experimentally obtained pressure-volume curves with the corresponding model generated curves. It is found that the agreement between the experimentally obtained pressure-volume curves and the corresponding Hart-Smith profile is satisfactory at a high inflation level but less so at the lower inflation level.
引用
收藏
页码:319 / 326
页数:8
相关论文
共 33 条
[1]  
AKKAS N, 1979, PROGR BIOMECHANICS, P327
[2]  
Ayala G, 1925, MON PSYCHIATR NEUROL, V58, P65
[3]  
CRISP JDC, 1972, BIOMECHANICS ITS F O, P162
[4]   A MATHEMATICAL MODEL TO DETERMINE VISCOELASTIC BEHAVIOR OF IN-VIVO PRIMATE BRAIN [J].
ENGIN, AE ;
WANG, HC .
JOURNAL OF BIOMECHANICS, 1970, 3 (03) :283-&
[5]   DYNAMIC MECHANICAL PROPERTIES OF HUMAN BRAIN TISSUE [J].
FALLENSTEIN, GT ;
HULCE, VD ;
MELVIN, JW .
JOURNAL OF BIOMECHANICS, 1969, 2 (03) :217-+
[6]   The elasticity of the dural sac and its contents [J].
Flexner, LB ;
Clark, JH ;
Weed, LH .
AMERICAN JOURNAL OF PHYSIOLOGY, 1932, 101 (02) :292-303
[7]  
FRIDEN H, 1980, INTRACRANIAL PRESSUR, V4, P93
[8]   A VISCOELASTIC STUDY OF SCALP, BRAIN, AND DURA [J].
GALFORD, JE ;
MCELHANEY, JH .
JOURNAL OF BIOMECHANICS, 1970, 3 (02) :211-+
[9]  
GREEN AE, 1968, THEORETICAL ELASTICI, P103
[10]   LARGE ELASTIC DEFORMATIONS OF THIN RUBBER MEMBRANES [J].
HARTSMIT.LJ ;
CRISP, JDC .
INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 1967, 5 (01) :1-&