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System Integration and Flowsheet Optimization of 1000 MW Coal-fired Supercritical Power Generation Units

机译:1000 MW燃煤超临界发电单位的系统集成和流程优化

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For traditional power generation process, energy losses are often caused by heat-and-mass transfer between the boiler and turbine subsystems, especially the heat transfer process with fairly high temperature difference in boiler. Generally, such energy losses are often unavoidable, if heat-and-mass transfer processes occur only in an independent way within certain subsystem or equipment but not in a cascade-integrated way. In this paper, new integration approach was proposed in order to reasonably utilize the heat at different temperature levels from the overall system perspective. Compared with isolated designs of the boiler and turbine subsystems, this approach comprehensively considers the match of heat transfer processes in air preheater and feedwater regeneration subsystem, and takes the principle of feedwater availability in the feedwater preheating process into account. The heat utilization process is reconstructed among the streams of flue gas, air, steam, feedwater and condensate water in a more coupling way. As a consequence, the thermodynamic irreversibility within air-preheating process and feedwater-regenerating system is sharply reduced. The heat-transfer characteristics and energy-saving effect of the integrated system was quantitatively analyzed. The results show that the power output of the novel integrated system is 21.74 MW higher than that of the conventional system. Moreover, the cost of electricity (COE) and the coal consumption rate can be decreased by 1.2% and 5.09 g/kWh, respectively. This paper provides useful information for the energy-saving effects and design optimization of heat transfer process in thermal power generation.
机译:对于传统发电过程,能量损失通常是由锅炉和涡轮机子系统之间的热量传递引起的,特别是锅炉中具有相当高的温差的传热过程。通常,如果仅以某些子系统或设备内的独立方式发生热量和传质过程,则这种能量损失通常是不可避免的。在本文中,提出了新的集成方法,以合理地利用来自整个系统的视角不同温度水平的热量。与锅炉和涡轮机子系统的孤立设计相比,该方法全面考虑了空气预热器和给水再生子系统中的传热过程的匹配,并考虑了给水预热过程中的给水水可用性原理。以更耦合的方式在烟道气,空气,蒸汽,蒸汽,料水流和冷凝水中重建热利用过程。结果,空气预热过程和给水再生系统内的热力学不可逆转性急剧降低。定量分析了集成系统的传热特性和节能效果。结果表明,新型集成系统的功率输出高于传统系统的21.74兆瓦。此外,电力(COE)的成本和煤消耗率分别可以减少1.2%和5.09克/千瓦时。本文为热电发电中的传热过程提供了有用的节能效果和设计优化。

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