Porporato Amilcare, Calabrese Salvatore, Hueckel Tomasz
Department of Civil and Environmental Engineering and Princeton Environmental Institute, Princeton University, Princeton, NJ 08544, USA.
Department of Civil and Environmental Engineering, Duke University, Durham, NC 27708, USA.
Entropy (Basel). 2019 Mar 19;21(3):295. doi: 10.3390/e21030295.
We present new general relationships among the material properties of an isotropic material kept in homogeneous stress conditions with hydrostatic pressure and plane shear. The derivation is not limited to the proximity of the zero shear-stress and -strain condition, which allows us to identify the relationship between adiabatic and isothermal shear compliances (inverse of the moduli of rigidity) along with new links, among others, between isobaric and isochoric shear thermal expansion coefficients and heat capacities at constant stress and constant shear strain. Such relationships are important for a variety of applications, including the determination of constitutive equations, the characterization of nanomaterials, and the identification of properties related to earthquakes precursors and complex media (e.g., soil) behavior. The results may be useful to investigate the behavior of materials during phase transitions involving shear or in non-homogeneous conditions within a local thermodynamic equilibrium framework.
我们给出了处于静水压力和平面剪切的均匀应力条件下的各向同性材料的材料属性之间新的一般关系。推导不限于零剪应力和剪应变条件附近,这使我们能够确定绝热和等温剪切柔量(刚性模量的倒数)之间的关系,以及等压和等容剪切热膨胀系数与恒应力和恒剪应变下的热容之间的新联系等。这些关系对于多种应用都很重要,包括本构方程的确定、纳米材料的表征以及与地震前兆和复杂介质(如土壤)行为相关属性的识别。这些结果可能有助于研究材料在涉及剪切的相变过程中或在局部热力学平衡框架内的非均匀条件下的行为。