首页> 外文会议>ASME Biennial Conference on Engineering Systems Design and Analysis >EXERGY ANALYSIS OF A SIMPLE GAS TURBINE SYSTEM CONSIDERING COMBUSTION PROCESS AS COMPLETE COMBUSTION AND EQUILIBRIUM COMBUSTION
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EXERGY ANALYSIS OF A SIMPLE GAS TURBINE SYSTEM CONSIDERING COMBUSTION PROCESS AS COMPLETE COMBUSTION AND EQUILIBRIUM COMBUSTION

机译:考虑燃烧过程作为完全燃烧和平衡燃烧的简单燃气轮机系统

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Exergy analysis provides useful information for the system optimization. An exergy analysis identifies the sources of thermodynamic inefficiencies by evaluating the exergy destruction within each system component. The present work is an attempt to compare the effect of variations of species concentrations of the combustion process in a simple gas turbine system. Therefore, using a Complete combustion model and an Equilibrium combustion program model, the exergetic evaluation is carried out for a simple gas turbine system with a rated output power of 30 MW. The Complete combustion involves O_2, N_2, CO_2, H_2O and Equilibrium combustion model involves N_2, O_2, CO_2, H_2O, CO, H_2, H, O, OH, N, NO as the species of combustion products. In this work, Equilibrium combustion products were calculated using Olikara and Borman method. Also, a principle of division of chemical availability (exergy) into oxidation availability, reduction availability and diffusion availability has been investigated in these models. Expression involving the variables for exergetic efficiency, exergy destruction, and chemical availability in the components of the gas turbine cycle are derived. The exergy losses and efficiencies of components based on both Complete combustion and Equilibrium combustion models are evaluated. The exergetic efficiencies of the plant based on Complete combustion and Equilibrium combustion are determined to be 28.11% and 28.16%, respectively. It is found that, variation of species has negligible effect on the system main parameters. It is also concluded that chemical exergy in Equilibrium combustion is a little more than that of Complete combustion. Because of additional species involved in Equilibrium combustion, reduction availability and oxidation availability are defined in this modeling beside diffusion availability and it increases chemical exergy of equilibrium combustion modeling. The results obtained here show that in the analysis of the power plant cycles, a simple combustion model (i.e. Complete combustion model) is in good agreement with a complex combustion model considering various species (i.e. Equilibrium combustion model). As a result, there is negligible difference between results of the mentioned combustion models and the simple Complete combustion model facilitates the analysis of such processes.
机译:Deergy分析为系统优化提供了有用的信息。 Adergy分析通过评估每个系统组件内的漏洞破坏来识别热力学效率低下的源。目前的作品是一种试图比较物种浓度在简单的燃气轮机系统中的燃烧过程的变化的影响。因此,使用完整的燃烧模型和平衡燃烧程序模型,对简单的燃气涡轮机系统进行了前进的评估,其具有30mW的额定输出功率。完全燃烧涉及O_2,N_2,CO_2,H_2O和平衡燃烧模型涉及N_2,O_2,CO_2,H_2O,CO,H_2,H,O,OH,N,NO作为燃烧产物的种类。在这项工作中,使用Olikara和Borman方法计算平衡燃烧产物。此外,在这些模型中研究了化学可用性(Dexergy)分为氧化可用性,减少可用性和扩散可用性的原则。推导出涉及用于促进效率,漏洞破坏和燃气轮机循环组件中的化学物质的变量的表达。评估了基于完全燃烧和平衡燃烧模型的基于完全燃烧和平衡燃烧模型的能量损失和效率。基于完全燃烧和平衡燃烧的植物的蜕膜效率分别确定为28.11%和28.16%。结果发现,物种的变化对系统主要参数具有可忽略的影响。还得出结论,均衡燃烧中的化学漏洞比完全燃烧的燃烧量大。由于涉及平衡燃烧的额外物种,在扩散可用性之外,在该模型中定义了降低可用性和氧化可用性,并且增加了平衡燃烧建模的化学漏洞。这里获得的结果表明,在发电厂循环的分析中,考虑各种物种(即平衡燃烧模型),简单的燃烧模型(即完整的燃烧模型)与复杂的燃烧模型很好。结果,上述燃烧模型的结果之间存在可忽略的差异,并且简单的完全燃烧模型有助于分析这些过程。

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