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An efficient integrated power generation system of solid waste coupled with anaerobic fermentation and incineration is proposed. Solid waste anaerobic fermentation is adopted to generate biogas, which enters the biogas burner to burn and generates high-temperature flue gas, and the flue gas heats the steam-water system and the primary and secondary air through the heater and air preheater in the unit. Under the condition that the heat generated by solid waste incineration in the boiler is not changed, the energy entering the steam turbine to do work is increased, thus the power generation efficiency of the whole unit increases. At the same time, according to the first law of thermodynamics and the second law of thermodynamics, the reasons for power generation efficiency and exergy efficiency improvement are analyzed. The results show that, compared with the case unit, the proposed high-temperature flue gas system with biogas combustion can increase the net power generation by 8.69 MW. In addition, the power generation efficiency and power generation exergy efficiency of the new system has increased by 3.56 percentage points and 9.74 percentage points, respectively. Economic analysis shows that the proposed coupling system is equipped with an anaerobic fermentation biogas combustion system, and the dynamic recovery period is 3.78 years, which has obvious economic advantages.
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提出了一种高效的厌氧发酵与焚烧耦合的固体废物(固废)发电综合系统,采用固废厌氧发酵产生沼气,沼气进入沼气燃烧器燃烧产生高温烟气,烟气通过机组中的加热器和空气预热器对汽水系统和一、二次风进行加热;在保证进入锅炉中固废焚烧产生的热量不变的情况下,增加了进入汽轮机中做功的能量,从而提高了整体机组的发电效率;同时根据热力学第一定律和热力学第二定律分析机组发电效率和㶲效率提升的原因。结果表明:与案例机组相比,所提出加入沼气燃烧高温烟气系统可增加8.69 MW净发电量;此外,新系统的发电效率提升了3.56百分点,发电㶲效率提升了9.74百分点。经济性分析表明:所提出的耦合系统增设了厌氧发酵沼气燃烧系统,动态回收周期为3.78年,经济优势明显。
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李云飞(1998),男,硕士研究生,主要研究方向为多能互补系统集成技术,leeeyf@ncepu.edu.cn。
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李云飞(1998),男,硕士研究生,主要研究方向为多能互补系统集成技术,leeeyf@ncepu.edu.cn。
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