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Polyurethane foam response to fire in practical geometries

机译:在实际几何形状中聚氨酯泡沫对火的响应

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摘要

An efficient polymer mass loss and foam response model has been developed to predict the behavior of unconfined polyurethane foam exposed to fire-like heat fluxes. The mass loss model is based on a simple two-step mechanism using distributed reaction rates. The mass loss model was implemented into a multidimensional finite element heat conduction code that supports chemical kinetics and dynamic enclosure radiation. A discretization bias correction model was parameterized using elements with characteristic lengths ranging from 0.1 cm to 1 cm. Bias corrected solutions with these large elements gave essentially the same results as grid-independent solutions using 0.01-cm elements. Predictions were compared to measured decomposition front locations determined from real-time X-rays of 9-cm diameter, 15-cm tall cylinders of foam that were heated with lamps. The calculated and measured locations of the decomposition fronts were well within 1 cm of each other and in some cases the fronts coincided.
机译:已经开发了有效的聚合物质量损失和泡沫响应模型,以预测暴露于火样热通量的无侧限聚氨酯泡沫的行为。质量损失模型基于使用分布式反应速率的简单两步机制。质量损失模型已实现为支持化学动力学和动态外壳辐射的多维有限元热传导代码。使用特征长度范围从0.1 cm到1 cm的元素对离散化偏差校正模型进行参数化。使用这些大元素的偏差校正后的解决方案与使用0.01厘米元素的独立于网格的解决方案提供的结果基本相同。将预测结果与通过使用灯加热的直径9厘米,高度15厘米的泡沫圆柱体的实时X射线确定的测量分解前沿位置进行比较。分解前沿的计算和测量位置相距不超过1厘米,在某些情况下,前沿一致。

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