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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Mathematical model for intumescent coatings growth: application to fire retardant systems evaluation
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Mathematical model for intumescent coatings growth: application to fire retardant systems evaluation

机译:膨胀型涂料生长的数学模型:在阻燃系统评估中的应用

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摘要

Intumescent coatings are designed to react when they are heated, by building up a swollen multi-layered insulating structure. The substrate onto which they are applied is then actively protected. In a military framework, it is crucial to provide efficient protection to a wide range of devices and vehicles, which must be able to sustain intense thermal conditions such as fires or explosions. For this purpose, the behaviour of intumescent paints under exposure to high thermal fluxes is investigated. In order to develop and validate a model describing heat transfers in materials protected by intumescent coatings, experimental simulations of different types of radiative aggressions were carried out. A 45 kW solar furnace was used as a heat source, which allowed simulating fires and explosions. Temperature ranges and kinetics calculated by the model are similar to those observed and measured during the experiments. The mathematical model, initially developed for fire simulations, also proves efficient in the case of thermal fluxes induced by brief, violent explosions. However, the results show that a better identification of each layer's thermal properties is needed to improve the accuracy of the model. For this purpose, an experimental identification campaign using the solar furnace has to be developed.
机译:膨胀型涂料经设计可通过膨胀的多层绝缘结构在加热时起反应。然后,对其进行了积极的保护。在军事框架中,至关重要的是为各种设备和车辆提供有效的保护,这些设备和车辆必须能够承受激烈的高温条件,例如火灾或爆炸。为此,研究了膨胀型涂料在高热通量下的行为。为了开发和验证描述由膨胀涂层保护的材料中的热传递的模型,进行了不同类型的辐射侵袭的实验模拟。使用45 kW的太阳能炉作为热源,可以模拟火灾和爆炸。该模型计算出的温度范围和动力学与实验期间观察和测量的温度范围和动力学相似。最初为火灾模拟开发的数学模型在短暂的剧烈爆炸引起的热通量的情况下也证明是有效的。但是,结果表明,需要更好地识别每一层的热性能,以提高模型的准确性。为此,必须开展使用太阳能炉的实验鉴定活动。

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