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On the quantification of nomination feasibility in stationary gas networks with random load

机译:随机负荷固定式燃气管网提名可行性的量化研究

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The paper considers the computation of the probability of feasible load constellations in a stationary gas network with uncertain demand. More precisely, a network with a single entry and several exits with uncertain loads is studied. Feasibility of a load constellation is understood in the sense of an existing flow meeting these loads along with given pressure bounds in the pipes. In a first step, feasibility of deterministic exit loads is characterized algebraically and these general conditions are specified to networks involving at most one cycle. This prerequisite is essential for determining probabilities in a stochastic setting when exit loads are assumed to follow some (joint) Gaussian distribution when modeling uncertain customer demand. The key of our approach is the application of the spheric-radial decomposition of Gaussian random vectors coupled with Quasi Monte-Carlo sampling. This approach requires an efficient algorithmic treatment of the mentioned algebraic relations moreover depending on a scalar parameter. Numerical results are illustrated for different network examples and demonstrate a clear superiority in terms of precision over simple generic Monte-Carlo sampling. They lead to fairly accurate probability values even for moderate sample size.
机译:本文考虑了需求不确定的固定式燃气网络中可行负荷星座图概率的计算。更准确地说,研究了具有不确定负载的单入口和若干出口的网络。从满足这些负载的现有流量以及管道中的给定压力范围的意义上理解负载星座的可行性。第一步,对确定性出口负荷的可行性进行代数表征,并将这些一般条件指定给最多包含一个周期的网络。当对不确定的客户需求建模时,假设出口负荷遵循某种(联合)高斯分布时,此先决条件对于确定随机设置中的概率至关重要。我们方法的关键是将高斯随机矢量的球-径向分解与拟蒙特卡洛采样相结合的应用。此外,该方法需要根据标量参数对上述代数关系进行有效的算法处理。给出了针对不同网络示例的数值结果,并显示了在精度方面优于简单的通用蒙特卡洛采样的明显优势。即使对于中等样本量,它们也可以得出相当准确的概率值。

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