Freed A D, Liao J, Einstein D R
Department of Mechanical Engineering, Saginaw Valley State University, 202 Pioneer Hall, 7400 Bay Road, University Center, MI, 48710, USA,
Biomech Model Mechanobiol. 2014 Aug;13(4):871-81. doi: 10.1007/s10237-013-0542-8. Epub 2013 Nov 27.
A Fungean solid is derived for membranous materials as a body defined by isotropic response functions whose mathematical structure is that of a Hookean solid where the elastic constants are replaced by functions of state derived from an implicit, thermodynamic, internal energy function. The theory utilizes Biot's (Lond Edinb Dublin Philos Mag J Sci 27:468-489, 1939) definitions for stress and strain that, in one-dimension, are the stress/strain measures adopted by Fung (Am J Physiol 28:1532-1544, 1967) when he postulated what is now known as Fung's law. Our Fungean membrane model is parameterized against a biaxial data set acquired from a porcine pleural membrane subjected to three, sequential, proportional, planar extensions. These data support an isotropic/deviatoric split in the stress and strain-rate hypothesized by our theory. These data also demonstrate that the material response is highly nonlinear but, otherwise, mechanically isotropic. These data are described reasonably well by our otherwise simple, four-parameter, material model.
对于膜状材料,基于各向同性响应函数定义了一种冯氏固体,该函数的数学结构类似于胡克固体,只是弹性常数被由隐式热力学内能函数导出的状态函数所取代。该理论采用了比奥(《伦敦爱丁堡都柏林哲学杂志科学版》27:468 - 489, 1939)对应力和应变的定义,在一维情况下,这是冯(《美国生理学杂志》28:1532 - 1544, 1967)在提出现在所知的冯氏定律时所采用的应力/应变度量。我们的冯氏膜模型是根据从猪胸膜膜获取的双轴数据集进行参数化的,该数据集经过了三次连续的、成比例的平面拉伸。这些数据支持了我们理论所假设的应力和应变率的各向同性/偏量分解。这些数据还表明材料响应具有高度非线性,但在其他方面是机械各向同性的。我们这个原本简单的四参数材料模型能够较好地描述这些数据。