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FUEL CELL MICROTURBINE HYBRID SYSTEM ANALYSIS THROUGH DIFFERENT UNCERTAINTY QUANTIFICATION METHODS

机译:不同不确定度定量方法的燃料电池微涡轮混合系统分析

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The analysis of different energy systems has shown various sources of variability and uncertainty; hence the necessity to quantify and take these into account is becoming more and more important. In this paper, a steady state, off-design model of a solid oxide fuel cell and turbocharger hybrid system with recuperator has been developed. Performances of such stiff systems are affected significantly by uncertainties both in component performance and operating parameters. This work started with the application of Monte Carlo Simulation method, as a reference sampling method, and then compared it with two different approximated methods. The first one is the Response Sensitivity Analysis, based on Taylor series expansion, and the latter is the Polynomial Chaos, based on a linear combination of different polynomials. These are non-intrusive methods, thus the model is treated as a black-box, with the uncertainty propagation method staying at an upper level. The work is focused on the application on highly non-linear complex systems, such as the hybrid systems, without any optimization process included. Hence, only the uncertainty propagation is considered. Uncertainties in the fuel utilization, ohmic resistance of the fuel cell, and efficiency of the recuperator are taken into account. In particular, their effects on fuel cell lifetime and some simple economic parameters are evaluated. The analysis distinguishes the specific features of each approach and identifies the strongest influencing inputs to the monitored output. Both approximated methods allow an important reduction in the number of evaluations while maintaining a good accuracy compared to Monte Carlo Simulation.
机译:对不同能源系统的分析显示出各种可变性和不确定性的来源。因此,量化和考虑这些因素的必要性变得越来越重要。本文建立了带有换热器的固体氧化物燃料电池和涡轮增压器混合系统的稳态非设计模型。此类刚性系统的性能会受到组件性能和操作参数不确定性的显着影响。这项工作首先从作为参考采样方法的蒙特卡罗模拟方法的应用开始,然后将其与两种不同的近似方法进行比较。第一个是基于泰勒级数展开的响应灵敏度分析,第二个是基于不同多项式线性组合的多项式混沌。这些是非侵入性方法,因此将模型视为黑盒,不确定性传播方法保持在较高水平。这项工作的重点是在高度非线性的复杂系统(例如混合系统)上的应用,不包括任何优化过程。因此,仅考虑不确定性传播。考虑到燃料利用率,燃料电池的欧姆电阻和换热器效率方面的不确定性。特别是,评估了它们对燃料电池寿命的影响以及一些简单的经济参数。该分析区分了每种方法的特定功能,并确定了对监视输出影响最大的输入。与蒙特卡洛模拟相比,这两种近似方法均可以显着减少评估数量,同时保持良好的准确性。

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