Thermotechnical Properties of the Fire-Extinguishing Powder for Extinguishing Materials Based on Magnesium Alloy Chips

B. Gusar, V. Kovalyshyn, S. Pozdieiev, V. Kovalyshyn, O. Zemlianskyi, K. Myhalenko
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Abstract

The article addresses the relevant issue of determining the thermotechnical characteristics of the fire-extinguishing powder for thermal insulation of the fire center of materials based on magnesium alloy chips to prevent fire development and propagation and its effective extinguishing. To solve this problem, laboratory and field experimental studies of the heat-insulating ability of the fire-extinguishing powder of combined effect were conducted. As a result, we obtained the data on the temperature in the center of the fire of materials based on magnesium alloy chips and outside during their suppressing by the fire-extinguishing powder with a combined effect. In this case, the temperature of the non-heated side of the fire-extinguishing powder layer does not exceed 170 °C at the average temperature of the fire center of 740 °C, which indicates high insulation capacity of the powder and, consequently, its high fire-fighting efficiency in extinguishing the fires of materials based on magnesium alloy chips. The obtained temperature data were used to determine the thermophysical parameters of the layer of the fire-fighting powder using the created mathematical model of the heat transfer process in the powder layer at the heat insulation of the fire center. To create a mathematical model of the heat transfer process, the main provisions during consecutive consideration of several experimental situations were stated. The first experimental situation meets the conditions of the stationary thermal process, and other experimental situations meet the conditions of the non-stationary thermal process. These experimental situations were created with the help of changing the thickness of the fire-fighting powder layer at different parameters of its feeding to the fire center. The mathematical model of the process is based on the use of the differential equation of heat transfer at its approximation by the method of finite differences. At the same time, it is believed that the heat transfer conditions at the boundary between the non-heated side of the insulating layer of the fire-extinguishing powder and the environment in each experimental situation are the same. Using the created model, the coefficient of heat transfer between the non-heated side of the insulating layer of the fire-extinguishing powder and the environment was determined. It amounted to 395.7 W(m 2 ×°С). The dependence of the effective thermal conductivity coefficient on the thickness of the insulating layer was explored. It was shown that this dependence can be approximated by linear dependence l(d)=–0.016+93.907×d (d is the thickness of the layer of the fire-extinguishing powder in meters). After conducting the necessary calculations, we obtained the value of the required thickness of the layer of fire-extinguishing powder d=45.2 mm
基于镁合金芯片的灭火材料用灭火粉的热工性能
本文论述了镁合金片基材料火灾中心保温用灭火粉的热技术特性的确定,以防止火灾的发展和传播,并有效地扑灭火灾。为解决这一问题,对复合效果灭火粉的隔热性能进行了室内和现场试验研究。因此,我们得到了镁合金片基材料在灭火粉联合作用下灭火过程中火场中心和火场外部的温度数据。在火灾中心平均温度为740℃的情况下,灭火粉层非受热侧温度不超过170℃,说明灭火粉具有较高的保温能力,因此对镁合金片基材料的火灾具有较高的灭火效果。利用得到的温度数据,建立火灾中心绝热处粉末层传热过程的数学模型,确定灭火粉末层的热物性参数。为了建立传热过程的数学模型,阐述了连续考虑几种实验情况时的主要规定。第一种实验情况满足稳态热过程的条件,其他实验情况满足非稳态热过程的条件。这些实验场景是通过改变消防粉层厚度,在不同的消防粉层给火参数下产生的。该过程的数学模型是基于有限差分法近似下传热微分方程的使用。同时,认为各实验情况下灭火粉保温层非受热侧边界处的换热条件与环境是相同的。利用所建立的模型,确定了灭火粉保温层非受热侧与环境之间的换热系数。它达到395.7 W(m 2 ×°С)。探讨了有效导热系数与保温层厚度的关系。结果表明,这种关系可以近似为线性关系l(d)= -0.016 +93.907×d (d为灭火粉层厚度,单位为米)。经过必要的计算,得到灭火粉层所需厚度d=45.2 mm
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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