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Thermodynamic Assessment of Membrane-Assisted Premixed and Non-Premixed Oxy-Fuel Combustion Power Cycles

机译:膜辅助预混和非预混氧燃料燃烧功率循环热力学评估

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This study focuses on the investigations of gas turbine power generation system that works on oxy-combustion technology utilizing membrane-assisted oxygen separation. The two investigated systems are (ⅰ) a premixed oxy-combustion power generation cycle utilizing an ion transport membrane (ITM)-based air separation unit (ASU) which selectively allows oxygen to permeate from the feeding air and (ⅱ) a non-premixed oxy-fuel combustion power cycle, where oxygen separation takes place, with cogeneration of hydrogen in an integrated combustor. A gas turbine combined cycle that works on conventional air-methane combustion was considered as the base case for this work. Commercial software package Hysys V8 was utilized to conduct the process simulation for the proposed cycles. The two novel cycle designs were proposed and evaluated in comparison with that of the conventional cycle. The first law efficiency of the premixed combustion power cycle was calculated to be 45.9%, a loss of 2.4% as an energy penalty for the oxygen separation. The non-premixed cycle had the lowest first law efficiency of 39.6%, which was 8.7% lower than the efficiency of the base cycle. The lower effectiveness of the cycle could be attributed to the highly endothermic H_2O splitting reaction for oxygen production. High irreversibility in the H_2O-splitter and the reactor was identified as the main cause of exergy losses. The overall second law efficiency of the non-premixed power cycle was around 50% lesser than that of the other cycles. The energy penalty related to air separation is dominated as the parameter that reduces the efficiencies of the oxy-fuel combustion cycles; however, the premixed combustion cycle performance was found to be comparable to that of the conventional air-combustion cycle.
机译:本研究重点研究了利用膜辅助氧气分离的燃气轮机发电系统的研究。两种调查的系统是(Ⅰ)使用离子输送膜(ITM)的空气分离单元(ASU)的预混氧燃烧发电循环,其选择性地允许氧气从饲料空气中渗透到(Ⅱ)非预混合氧气 - 燃料燃烧动力循环,其中氧气分离发生,在集成燃烧器中具有氢气的热电联产。燃气轮机组合循环,用于传统的空气 - 甲烷燃烧的燃气轮机被认为是这项工作的基础情况。商业软件包Hysys V8用于开展所提出的周期的过程模拟。与传统循环相比,提出并评估了两种新的循环设计。预混合燃烧能量循环的第一律效率计算为45.9%,损失为2.4%,作为氧气分离的能量损失。非预混循环的最低律效率为39.6%,比基本循环效率低8.7%。该循环的效率较低可归因于高热的H_2O分裂反应用于氧气产生。 H_2O分离器中的高不可逆转性和反应器被确定为漏洞损失的主要原因。非预混功率循环的总体第二律效率比其他循环的少于50%。与空气分离有关的能量惩罚主要是降低氧燃料燃烧循环效率的参数;然而,发现预混合的燃烧循环性能与传统的空气燃烧循环相当。

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