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INTRODUCTION TO HIGH-PRESSURE SCIENCE

机译:高压科学介绍

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摘要

To a common person pressure is just one of the parameters that describe a thermodynamic state. We all hear about it in everyday weather forecasts, and most of us do not associate it with anything particularly unique. Probably the most intuitive idea of the effect of high-pressure comes from movies, where submarine sinking to the bottom of the ocean is gradually crushed by the surrounding water, until its hull implodes. Why, then hundreds of scientists throughout the world spent their lifelong careers studying high-pressure phenomena? Despite all the developments in experimental technologies and instrumentation, modern scientist has very few tools that allow him or her to "grab" two atoms and bring them, in a very controllable way, closer together. Being able to achieve this task means the ability to directly probe interatomic interaction potentials and can cause transformations as dramatic as turning of a common gas into solid metal. Before the reader delves into more advanced topics described later in this book, this introductory chapter aims to explain several elementary, but extremely important concepts in high-pressure science. We will start with a brief discussion of laboratory devices used to produce pressure, address the issue of hydrostaticity, elastic and plastic compression, and will conclude with a short discussion of unique effects of anisotropic stress.
机译:对于一个普通的人,压力只是描述热力学状态的参数之一。我们都在日常天气预报中听到它,我们大多数人都不会将其与特别独特的任何东西联系起来。可能是高压效果的最直观的思想来自电影,其中潜水艇沉入海洋的底部逐渐被周围水压碎,直到其船体爆发。为什么,在全世界的数百家科学家度过了他们的终身职业生涯,研究了高压现象?尽管实验技术和仪器中的所有发展,现代科学家具有很少的工具,使他或她以一种非常可控的方式“抓住”两个原子并将它们带到一起。能够实现这项任务意味着能够直接探测外部组合相互作用电位,并且可以导致变换作为戏剧性的变换作为将普通气体转向固体金属。在读者删除本书稍后描述的更高级主题之前,这一介绍章节旨在解释几个基本,但在高压科学中的概念。我们将首先介绍用于产生压力的实验室设备,解决静水,弹性和塑料压缩问题,并逐步讨论各向异性应力的独特影响。

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