Optimization Analysis of Combined Heat and Power Plant of Multistage Gas Turbine for Marine Applications

Zhitao Wang, H. Lei, Yi-Guang Li, Shuying Li, Wang Weitian
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引用次数: 2

Abstract

Nowadays, the rising demand for energy and serious environmental pollution become the motive to improve the energy structure, saving energy and optimize energy utilization. Based on a gas turbine, a marine multistage gas turbine combined heat and power (CHP) structure is proposed. The CHP system includes the top gas turbine Brayton cycle, the intermediate water Rankine cycle (WRC) and the bottom organic Rankine cycle (ORC). According to the method of screening organic Rankine cycle refrigerant to select the appropriate organic working fluids, and their physical characteristics are described. Based on the modular modelling method, the 3-stage CHP system is established. In order to more effectively absorb low temperature waste heat, three different kinds of 3-stage CHP structures were designed to recover the heat in the exhaust gas from the heat recover steam generator (HRSG). The thermodynamic model of the combined heat and power system of marine multistage gas turbine was used to simulate the performance of three different types of 3-stage CHP structures, the optimal 3-stage CHP structure was selected by comparing and analyzing the simulation results. Based on the simulation results of the design point, it is found that the introduction of the optimal 3-stage CHP structure can increase the power output by about 8.5% and improve the cycle thermal efficiency by about 4.32% compared with a conventional 2-stage CHP cycle where only gas turbine topping cycle and water Rankine bottoming cycle are included.
船用多级燃气轮机热电联产优化分析
在能源需求不断增长和环境污染严重的今天,改善能源结构、节约能源、优化能源利用成为动力。以某型燃气轮机为基础,提出了一种船用多级燃气轮机热电联产结构。热电联产系统包括顶部燃气轮机布雷顿循环、中间水朗肯循环(WRC)和底部有机朗肯循环(ORC)。根据筛选有机朗肯循环制冷剂的方法选择合适的有机工质,并对其物理特性进行了描述。基于模块化建模方法,建立了三级热电联产系统。为了更有效地吸收低温余热,设计了三种不同的三级热电联产结构来回收热回收蒸汽发生器(HRSG)废气中的热量。利用船用多级燃气轮机热电联产系统的热力学模型,对三种不同类型的三级热电联产结构进行了性能仿真,通过对仿真结果的对比分析,选择了最优的三级热电联产结构。基于设计点的仿真结果发现,与仅包含燃气轮机顶循环和水朗肯底循环的常规2级热电联产循环相比,引入优化的3级热电联产结构可使输出功率提高约8.5%,循环热效率提高约4.32%。
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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