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A HIGHLY EFFICIENT COGENERATION SYSTEM USING APT COUPLED WITH BIOMASS GASIFICATION

机译:结合生物质气化技术的高效热电联产系统

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Biomass is a significant renewable energy source. The conversion of woody biomass into a combustible gas provides the opportunity to enhance the efficiency of biomass-based power systems, and allows solid fuels to be used in high-efficiency power generation processes. This paper discusses the energy efficient utilization of biomass by turbo machines under unpressurized conditions, working with the inverted Brayton cycle in which turbine expansion, cooling by heat exchanger and draft by compressor are made in an open cycle mode. Author calls this an "atmospheric pressure turbine (APT)". Thermodynamic analysis has shown that an electric efficiency up to 25 percent (HHV) and a total energy efficiency of more than 75 percent (HHV) are expected for combined heat and power applications even at small plant capacities (less than 40 kW). By adapting EGR (exhaust gas recirculation), the total cogeneration efficiency is considerably improved by raising the recirculation ratio, and total energy efficiency of 85% is expected when EGR ratio is 0.4. However, the recirculation ratio is limited by the residual oxygen in the combustor. In the present analysis, in order to remove this limitation the air separation unit (ASU) is used additionally. Therefore, the recirculation ratio of 95% can be attained.
机译:生物质是重要的可再生能源。木质生物质向可燃气体的转化提供了提高基于生物质的电力系统效率的机会,并使固体燃料可用于高效发电过程。本文讨论了在无压条件下涡轮机对生物质的能源利用效率,与反向布雷顿循环一起工作,在该循环布雷顿循环中,涡轮机的膨胀,热交换器的冷却和压缩机的通风以开放循环的方式进行。作者称其为“大气压涡轮机(APT)”。热力学分析表明,即使在小工厂容量(小于40 kW)下,热电联产应用也有望达到25%(HHV)的电效率和75%(HHV)以上的总能效。通过采用EGR(废气再循环),通过提高再循环率可以显着提高总的热电联产效率,而当EGR率为0.4时,总能源效率可望达到85%。但是,再循环率受到燃烧器中残余氧气的限制。在本分析中,为了消除此限制,还额外使用了空气分离单元(ASU)。因此,可以达到95%的再循环率。

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