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Comparative Evaluation of Integrated Waste Heat Utilization Systems for Coal-Fired Power Plants Based on In-Depth Boiler-Turbine Integration and Organic Rankine Cycle

机译:基于深入锅炉 - 汽轮机集成和有机朗肯循环的燃煤发电厂综合废热利用系统对比较评价

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摘要

To maximize the system-level heat integration, three retrofit concepts of waste heat recovery via organic Rankine cycle (ORC), in-depth boiler-turbine integration, and coupling of both are proposed, analyzed and comprehensively compared in terms of thermodynamic and economic performances. For thermodynamic analysis, exergy analysis is employed with grand composite curves illustrated to identify how the systems are fundamentally and quantitatively improved, and to highlight key processes for system improvement. For economic analysis, annual revenue and investment payback period are calculated based on the estimation of capital investment of each component to identify the economic feasibility and competitiveness of each retrofit concept proposed. The results show that the in-depth boiler-turbine integration achieves a better temperature match of heat flows involved for different fluids and multi-stage air preheating, thus a significant improvement of power output (23.99 MW), which is much larger than that of the system with only ORC (6.49 MW). This is mainly due to the limitation of the ultra-low temperature (from 135 to 75 °C) heat available from the flue gas for ORC. The thermodynamic improvement is mostly contributed by the reduction of exergy destruction within the boiler subsystem, which is eventually converted to mechanical power; while the exergy destruction within the turbine system is almost not changed for the three concepts. The selection of ORC working fluids is performed to maximize the power output. Due to the low-grade heat source, the cycle with R11 offers the largest additional net power generation but is not significantly better than the other preselected working fluids. Economically, the in-depth boiler-turbine integration is the most economic completive solution with a payback period of only 0.78 year. The ORC concept is less attractive for a sole application due to a long payback time (2.26 years). However, by coupling both concepts, a net power output of 26.51 MW and a payback time of almost one year are achieved, which may promote the large-scale production and deployment of ORC with a cost reduction and competitiveness enhancement.
机译:为了最大化系统级热集成,在热力学和经济表演方面,提出了通过有机朗肯循环(ORC),深入锅炉 - 涡轮机集成以及两者的深度蒸发循环,深入锅炉 - 汽轮机集成和耦合的三种改造概念。对于热力学分析,展示的大型复合曲线采用了高级分析,以确定系统的根本性和定量地改进的方式,并突出系统改善的关键过程。对于经济分析,根据每个组成部分的资本投资估算计算每年的收入和投资回收期,以确定所提出的每个改造概念的经济可行性和竞争力。结果表明,在深入机炉一体化实现热量的更好的温度匹配涉及对于不同的流体和多级空气预热,从而功率输出(23.99 MW),这比大得多的显著改善流仅具有ORC(6.49 MW)的系统。这主要是由于从烟气中获得的超低温度(从135至75°C)的热量的限制。热力学改善主要是通过降低锅炉子系统内的漏洞破坏的贡献,最终转化为机械功率;虽然三个概念几乎没有改变涡轮系统内的暴力破坏。执行ORC工作流体的选择以最大化功率输出。由于低级的热源,循环与R11提供最大的额外净发电,但并不明显优于其他预选的工作流体。经济上,深入的锅炉 - 汽轮机集成是最经济的完善解决方案,仅有0.78年的投资回收期。由于长期投资回收期(2.26年),ORC概念对唯一应用程序不太吸引人。然而,通过耦合这两个概念,实现了26.51兆瓦的净功率输出和差不多一年的投资回收期,这可能促进兽人的大规模生产和部署,以降低成本和竞争力增强。

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