论文标题

天文材料的特定热量:审查理论概念,材料和技术

The specific heat of astro-materials: Review of theoretical concepts, materials and techniques

论文作者

Biele, Jens, Grott, Matthias, Zolensky, Michael E., Benisek, Artur, Dachs, Edgar

论文摘要

我们在矿物质及其混合物的特定热CP(“天文材料”以及有关常见矿物质和其他相关固体物质的背景信息上,我们提供了详细的背景,理论和实用的背景。此外,我们演示了如何使用特定的热和组成数据为月球样品和陨石以及末端成员矿物热能的新数据库(广泛的文献综述的结果)来构建同性特异性热CP的参考模型,作为常见太阳系材料的温度函数。使用(通常是线性的)混合模型来进行矿物质的特定热量,可以将可用数据推送到非常低且非常高的温度,从而覆盖至少在10到1000 K之间的温度范围(以及从零到几个KBARS的压力)。我们描述了一种几乎所有具有已知矿物质成分的固体太阳系材料的CP(T)的程序,例如,模型比热作为温度的函数,用于许多具有已知矿物学成分的典型陨石类别。作为示例,我们介绍了许多描述的实验室雷果类似物的CP(t)曲线,以及外部太阳系中的行星冰和“托林斯”的CP(T)曲线。第二部分将审查并介绍矿物质和化合物的热容量数据库,第三部分将涵盖应用程序,标准参考组成,CP(T)曲线以及与新的和文献实验数据的比较。

We provide detailed background, theoretical and practical, on the specific heat cp of minerals and mixtures thereof, 'astro-materials', as well as background information on common minerals and other relevant solid substances found on the surfaces of solar system bodies. Furthermore, we demonstrate how to use specific heat and composition data for lunar samples and meteorites as well as a new database of endmember mineral heat capacities (the result of an extensive literature review) to construct reference models for the isobaric specific heat cP as a function of temperature for common solar system materials. Using a (generally linear) mixing model for the specific heat of minerals allows extrapolation of the available data to very low and very high temperatures, such that models cover the temperature range between 10 and 1000 K at least (and pressures from zero up to several kbars). We describe a procedure to estimate cp(T) for virtually any solid solar system material with a known mineral composition, e.g., model specific heat as a function of temperature for a number of typical meteorite classes with known mineralogical compositions. We present, as examples, the cp(T) curves of a number of well-described laboratory regolith analogues, as well as for planetary ices and 'tholins' in the outer solar system. Part II will review and present the heat capacity database for minerals and compounds and part III is going to cover applications, standard reference compositions, cp(T) curves and a comparison with new and literature experimental data.

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