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Pyrolysis Model Development for a Multilayer Floor Covering

机译:多层地板覆盖的热解模型开发

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Comprehensive pyrolysis models that are integral to computational fire codes have improved significantly over the past decade as the demand for improved predictive capabilities has increased. High fidelity pyrolysis models may improve the design of engineered materials for better fire response, the design of the built environment, and may be used in forensic investigations of fire events. A major limitation to widespread use of comprehensive pyrolysis models is the large number of parameters required to fully define a material and the lack of effective methodologies for measurement of these parameters, especially for complex materials. The work presented here details a methodology used to characterize the pyrolysis of a low-pile carpet tile, an engineered composite material that is common in commercial and institutional occupancies. The studied material includes three distinct layers of varying composition and physical structure. The methodology utilized a comprehensive pyrolysis model (ThermaKin) to conduct inverse analyses on data collected through several experimental techniques. Each layer of the composite was individually parameterized to identify its contribution to the overall response of the composite. The set of properties measured to define the carpet composite were validated against mass loss rate curves collected at conditions outside the range of calibration conditions to demonstrate the predictive capabilities of the model. The mean error between the predicted curve and the mean experimental mass loss rate curve was calculated as approximately 20% on average for heat fluxes ranging from 30 to 70 kW·m−2, which is within the mean experimental uncertainty.
机译:随着对改进的预测能力的需求增加,过去十年来,综合热解模型与计算消防码的成本显着提高。高保真性热解模型可以改善工程材料的设计,以便更好的消防反应,建筑环境的设计,并且可以用于消防事件的法医研究。对全面的热解模型的广泛使用的主要限制是完全定义材料所需的大量参数以及缺乏用于测量这些参数的有效方法,特别是对于复杂的材料。此类工作提供了一种方法,该方法用于表征低桩地毯瓦片的热解,这是商业和机构占用的工程复合材料。研究的材料包括三层不同的改变组成和物理结构。该方法利用综合热解模型(Thermakin)来对通过几种实验技术收集的数据进行逆分析。单独参数化的每层复合材料以识别其对复合材料整体响应的贡献。测量以定义地毯复合材料的一组特性被验证,用于在校准条件范围内的条件下收集的质量损失率曲线,以证明模型的预测能力。预测曲线与平均实验质量损失率曲线之间的平均误差平均计算为约20%的热通量,从30〜70 kW·m -2℃,这在平均实验中不确定。

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