Heat transfer in laser pulse interaction with reactive substances

I. Assovskiy
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引用次数: 1

Abstract

The purpose of this paper is to analyze thermal regime of a laser-pulse interaction with a substance reacting in bulk and on the surface. Emphasis is on the critical phenomena in non-resonant interaction of substance with laser beam, and how they depend on thermo-chemical and optical characteristics of system. It is shown that irradiation of exothermically reacting substance can induce its ignition, if the laser-beam diameter exceeds a critical one. This critical diameter depends on the pulse intensity and duration, as on the thermo-chemical characteristics of system. The cases of short-pulse and quasi-steady irradiation are considered in details. A role of soot particles or other absorbing micro-inclusions in the interaction is investigated. In certain field of the system parameters such micro-inclusions cause local heat explosion, due to exothermic reaction in environment. In the case of quasi-steady irradiation the explosion is induced if the particle diameter exceeds a critical one. This critical diameter depends on the initial temperature, reaction rate constants, as on radiation intensity. It is directly proportional to the characteristic space-scale of reaction in the system. The product of the particle critical diameter and the radiation intensity is approximately constant. In the case of short-pulse irradiation the highest temperature disturbance in the substance is caused by particles having certain medium diameter. This critical diameter increases with pulse duration and with heat-conductivity of the substance. The main results of consideration are illustrated by instances with reacting gas, condensed fuels, and explosives. The results application to typical problems of laser based diagnostics are also demonstrated.
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激光脉冲与反应物质相互作用中的热传递
本文的目的是分析激光脉冲与物质相互作用的热状态。重点讨论了物质与激光束非共振相互作用中的关键现象,以及这些现象如何依赖于系统的热化学和光学特性。结果表明,当激光束直径超过某一临界直径时,放热反应物质的辐照会引起其着火。这个临界直径取决于脉冲强度和持续时间,也取决于系统的热化学特性。详细讨论了短脉冲和准稳态辐照的情况。研究了烟灰颗粒或其他吸收性微夹杂物在相互作用中的作用。在系统参数的一定范围内,由于环境中的放热反应,这些微夹杂物会引起局部热爆炸。在准稳态辐照情况下,如果颗粒直径超过临界直径,就会引起爆炸。这个临界直径取决于初始温度、反应速率常数以及辐射强度。它与体系中反应的特征空间尺度成正比。粒子临界直径与辐射强度的乘积近似为常数。在短脉冲辐照的情况下,物质中最高的温度扰动是由具有一定介质直径的颗粒引起的。这个临界直径随着脉冲持续时间和物质的导热性而增加。考虑的主要结果以反应气体、浓缩燃料和炸药为例加以说明。最后给出了应用于激光诊断典型问题的结果。
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