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THERMOCHEMICAL GASIFICATION OF BIOMASS: FUEL CONVERSION, HOT GAS CLEANUP AND GAS TURBINE COMBUSTION

机译:生物质的热化学气化:燃料转换,热气体清洁和燃气轮机燃烧

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Air-blown fluidized bed biomass gasification integrated with a gas- and steam turbine combined cycle (BIGCC) is a potentially attractive way to convert biomass into electricity and heat with a high efficiency. There exist a number of technical uncertainties with regard to this option which have to be understood better and in more detail before industrial-scale systems can be designed, optimized, controlled and assessed with regard to technical feasibility and costs. Some of the design choices which cannot be made convincingly on the basis of currently available knowledge are: atmospheric versus pressurized gasification, bubbling versus circulating fluidized bed, dry versus wet gas cleaning, in-bed or ex-bed tar removal and required gas turbine modifications. All of these choices have an impact on operational issues like the fate of Nitrogen components, tar, alkalies, trace components, gas turbine combustion, dynamic behaviour and control. To be able to predict the influence of the system choices on these issues, validated, reliable and possibly mechanistic models, simulating the relevant processes, are needed. A 1.5 MWth Process Development Unit which contains the main 'active' components of a BIGCC, is used to obtain experimental data which are needed to develop and validate models. The PDU basically consists of a dedicated compressed air-supply system, three independently controlled solids feed systems, a pressurized bubbling fluidized bed gasifier, a high temperature ceramic filter and a gas turbine combustion section equipped with a pressurized heated air supply system, simulating compressor air. In the current configuration the hot pressurized gas, coming from the hot ceramic filter, is directly entering the gas turbine combustor. Experimental results with regard to the fate of different components during their passage through the complete system are presented and discussed.
机译:空气流化床生物质气化与气体和蒸汽涡轮机联合循环(BIGCC)集成(BIGCC)是将生物量转化为电力和热量的潜在有吸引力的方法。在工业规模的系统可以设计,优化,控制和评估之前,必须更好,更详细地理解这一选项的技术不确定因素,这些选项必须更好地理解,并且更详细地理解技术可行性和成本。一些设计选择不能令人信服地在目前可用知识的基础上令人信服的是:大气与加压气化,鼓泡与循环流化床,干燥与湿气体清洁,床上床或床焦油焦点和所需的燃气轮机改性。所有这些选择对氮素成分,焦油,碱,痕量成分,燃气涡轮机燃烧,动态行为和控制等的命运产生了影响。为了能够预测系统选择对这些问题的影响,需要验证,可靠和可能的机械模型,模拟相关过程。一个1.5 MWTH过程开发单元,其中包含BIGCC的主要“活动”组件,用于获得开发和验证模型所需的实验数据。 PDU基本上由专用的压缩空气供应系统组成,三种独立控制的固体进料系统,加压鼓泡流化床气化器,高温陶瓷过滤器和配备有加压加热空气供应系统的燃气涡轮燃烧部分,模拟压缩机空气。在电流配置中,来自热陶瓷过滤器的热压气体直接进入燃气轮机燃烧器。提出并讨论了通过完整系统在通过完整系统的不同组件的命运的实验结果。

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