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Adiabatic, shock, and plastic work heating of solids and exploding metal cylinders

机译:固体和爆炸的金属圆柱体的绝热,冲击和塑性功加热

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Solids subjected to high pressures, shocks, and/or deformation experience an increase in internal energy density and temperature due to adiabatic compression, shock heating, and plastic work heating, respectively. Analytic approximations are derived here for the internal energy and temperature changes that result from these processes based on the analytic constitutive model and Gruneisen equation of state of Steinberg. Although of general use, the utility of the expressions is demonstrated by the detailed example of a cylindrical metal tube filled with high explosives, and detonated on axis at one end. This geometry is often used to determine the detonation properties of high explosives, where it is known as the "cylinder test." The geometry is also of special interest for use as the armature of cylindrical magnetic flux compression pulsed current generators. The results are favorably compared with two dimension numerical simulations of the process using Lawrence Livermore National Laboratory's shock-hydro computer code CALE using the same model for the metal.
机译:经受高压,冲击和/或变形的固体分别由于绝热压缩,冲击加热和塑性功加热而经历内部能量密度和温度的增加。在此基于解析本构模型和斯坦伯格状态方程式的Gruneisen状态方程,得出这些过程导致的内部能量和温度变化的解析近似值。尽管是通用的,但这些表达式的实用性通过装满高炸药并在一端沿轴线引爆的圆柱形金属管的详细示例得到证明。这种几何形状通常用于确定高炸药的爆炸特性,在这里被称为“圆柱体试验”。该几何形状还特别适合用作圆柱形磁通量压缩脉冲电流发生器的电枢。将结果与使用劳伦斯·利弗莫尔国家实验室(Lawrence Livermore National Laboratory)的冲击水计算机代码CALE(使用相同金属模型)的过程的二维数值模拟进行了比较。

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