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A simple model for calculating peak pressure in vented explosions of hydrogen and hydrocarbons

机译:一个简单的模型,用于计算氢气和碳氢化合物的爆炸爆炸中的峰值压力

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The authors presented a basic mathematical model for estimating peak overpressure attained in vented explosions of hydrogen in a previous study (Sinha et al. [1]). The model focussed on idealized cases of hydrogen, and was not applicable for realistic accidental scenarios like presence of obstacles, initial turbulent mixture, etc. In the present study, the underlying framework of the model is reformulated to overcome these limitations. The flame shape computations are simplified. A more accurate and simpler formulation for venting is also introduced. Further, by using simplifying assumptions and algebraic manipulations, the detailed model consisting of several equations is reduced to a single equation with only four parameters. Two of these parameters depend only on fuel properties and a standard table provided in the Appendix can be used. Therefore, to compute the overpressure, only the two parameters based on enclosure geometry need to be evaluated. This greatly simplifies the model and calculation effort. Also, since the focus of previous investigation was hydrogen, properties of hydrocarbon fuels, which are much more widely used, were not accounted for. The present model also accounts for thermophysical properties of hydrocarbons and provides table for fuel parameters to be used in the final equation for propane and methane. The model is also improved by addition of different sub-models to account for various realistic accidental scenarios. Moreover, no adjustable parameters are used; the same equation is used for all conditions and all gases. Predictions from this simplified model are compared with experimentally measured values of overpressure for hydrogen and hydrocarbons and found to be in good agreement. First the results from experiments focussing on idealized conditions of uniformly mixed fuel in an empty enclosure under quiescent conditions are considered. Further the model applicability is also tested for realistic conditions of accidental explosion consisting of obstacles inside the enclosure, non-uniform fuel distribution, initial turbulent mixture, etc. For all the cases tested, the new simple model is found to produce reasonably good predictions. (C) 2019 The Authors. Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC.
机译:作者在先前的研究中提出了一个基本的数学模型,用于估计在氢气爆炸中达到的峰值超压(Sinha等人[1])。该模型侧重于理想化的氢情况,不适用于现实的意外情况,例如障碍物的存在,初始湍流混合物等。在本研究中,该模型的基础框架经过重新设计以克服这些限制。火焰形状计算得到简化。还介绍了一种更准确,更简单的排气配方。此外,通过使用简化的假设和代数运算,由几个方程组成的详细模型被简化为只有四个参数的单个方程。其中两个参数仅取决于燃料特性,可以使用附录中提供的标准表。因此,要计算超压,仅需要评估基于外壳几何形状的两个参数。这大大简化了模型和计算工作。另外,由于先前研究的重点是氢,因此未考虑更广泛使用的碳氢燃料的特性。本模型还考虑了碳氢化合物的热物理性质,并提供了在丙烷和甲烷的最终方程式中使用的燃料参数表。该模型还通过添加不同的子模型进行了改进,以解决各种现实的意外情况。而且,不使用可调参数。相同的方程式适用于所有条件和所有气体。将该简化模型的预测结果与实验测得的氢气和碳氢化合物的超压值进行了比较,发现吻合良好。首先,考虑了集中在空箱中静态条件下均匀混合燃料的理想条件下的实验结果。此外,还针对包括外壳内部的障碍物,燃料分布不均匀,初始湍流混合物等在内的意外爆炸的实际条件对模型的适用性进行了测试。对于所有测试的情况,发现新的简单模型可以产生合理的良好预测。 (C)2019作者。由Elsevier Ltd代表Hydrogen Energy Publications LLC发布。

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