首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >CALCULATING THE SYSTEM EFFICIENCY OF THE NETL GAS-TURBINE / FUEL-CELL HYBRID SYSTEM USING A FULLY COUPLED LUMPED PARAMETER SYSTEM MODEL
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CALCULATING THE SYSTEM EFFICIENCY OF THE NETL GAS-TURBINE / FUEL-CELL HYBRID SYSTEM USING A FULLY COUPLED LUMPED PARAMETER SYSTEM MODEL

机译:使用完全耦合的集总参数系统模型计算NETL气汽轮机/燃料电池混合系统的系统效率

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Thermodynamic efficiency must be considered in the effective analysis of gas turbine fuel cell power generation system performance. In most numerical simulations of hybrid systems, the use of compressor maps and turbine maps are neglected. It is assumed that the design criterion generated by the system model can be met by the manufacturer of these items. These system models may use partial information from a compressor map, or a turbine map, but they fail to match all the operating conditions of both maps in a hybrid configuration. Also, to simplify the calculations that are performed by the complex hybrid system models, the effects of heat transfer and fluid dynamic drag are often decoupled. When system calculations are done in this way, the resulting calculations for system efficiency may suffer error. Hybrid system designers need a simple method to calculate the system performance directly from the maps of real compressors and real turbines that currently exist, and that would be part of a hybrid system. In this work, a simple procedure is illustrated where a coupled analysis of the various system components is performed and included as part of the system model. This analysis is done using the compressor and turbine maps of the hybrid performance project hardware at the U.S. Department of Energy, National Energy Technology Laboratory (NETL). Model parameters are tuned using experimental conditions and results are obtained. The results show the importance of aerodynamic coupling in system models, and how this coupling affects the system efficiency calculations. This coupling becomes important especially for the variable density flows that are typically found in combustors, heat exchangers and fuel cells.
机译:在燃气轮机燃料电池发电系统性能的有效分析中必须考虑热力学效率。在混合系统的大多数数值模拟中,忽略了压缩机地图和涡轮机地图的使用。假设系统模型产生的设计标准可以由这些物品的制造商满足。这些系统模型可以从压缩机映射或涡轮机映射使用部分信息,但是它们无法匹配混合配置中的两个地图的所有操作条件。此外,为了简化由复杂混合系统模型执行的计算,传热和流体动态阻力的效果通常会分离。以这种方式完成系统计算时,产生的系统效率的结果可能遭受错误。混合系统设计人员需要一种简单的方法来直接从真正存在的真实压缩机和真正存在的真实涡轮机的地图计算系统性能,这将是混合系统的一部分。在这项工作中,示出了简单的过程,其中执行各种系统组件的耦合分析并且作为系统模型的一部分。该分析是使用美国能源部,国家能源技术实验室(NetL)的混合性能项目硬件的压缩机和涡轮机地图完成。使用实验条件调整模型参数,并获得结果。结果表明,系统模型中的空气动力学耦合以及该耦合如何影响系统效率计算。该耦合特别是对于通常在燃烧器,热交换器和燃料电池中发现的可变密度流动的重要性。

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