Numerical Investigation of an Inverted Brayton Cycle Micro Gas Turbine Based on Experimental Data

Eleni Agelidou, M. Henke, T. Monz, M. Aigner
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引用次数: 10

Abstract

Residential buildings account for approximately one fifth of the total energy consumption and 12 % of the overall CO2 emissions in the OECD countries. Replacing conventional boilers by a co-generation of heat and power in decentralized plants on site promises a great benefit. Especially, micro gas turbine (MGT) based combined heat and power systems are particularly suitable due to their low pollutant emissions without exhaust gas treatment. Hence, the overall aim of this work is the development of a recuperated inverted MGT as heat and power supply for a single family house with 1 kWel. First, an inverted MGT on a Brayton cycle MGT was developed and experimentally characterized, in previous work by the authors. This approach allows exploiting the potential of using the same components for both cycles. As a next step, the applicability of the Brayton cycle components operated in inverted mode needs to be evaluated and the requirements for a component optimization need to be defined, both, by pursuing thermodynamic cycle simulations. This paper presents a parametrization and validation of in-house 1D steady state simulation tool for an inverted MGT, based on experimental data from the inverted Brayton cycle test rig. Moreover, a sensitivity analysis is conducted to estimate the influence of every major component on the overall system and to identify the necessary optimizations. Finally, the component requirements for an optimized inverted MGT with 1 kWel and 16 % of electrical efficiency are defined. This work demonstrates the high potential of an inverted MGT for a decentralized heat and power generation when optimizing the system components.
基于实验数据的反布雷顿循环微型燃气轮机数值研究
在经合组织国家中,住宅建筑约占总能耗的五分之一,占总二氧化碳排放量的12%。在现场分散的工厂用热电联产取代传统的锅炉将带来巨大的好处。特别是基于微型燃气轮机(MGT)的热电联产系统,由于其低污染物排放而无需废气处理,因此特别适合。因此,这项工作的总体目标是开发一种可回收的倒置MGT,作为1千瓦单户住宅的供热和供电。首先,作者在之前的工作中开发了一种基于布雷顿循环MGT的倒置MGT并进行了实验表征。这种方法可以利用在两个循环中使用相同组件的潜力。下一步,需要通过热力学循环模拟来评估Brayton循环组件在倒转模式下的适用性,并确定组件优化的要求。本文基于倒置布雷顿循环试验台的实验数据,提出了一种倒置MGT内部一维稳态仿真工具的参数化和验证方法。此外,还进行了敏感性分析,以估计每个主要组件对整个系统的影响,并确定必要的优化。最后,定义了优化后的1 kWel和16%电效率的反向MGT的组件要求。这项工作证明了倒置MGT在优化系统组件时用于分散供热和发电的高潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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