首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >COMPARISON OF PERFORMANCE OF ALTERNATIVE POST COMBUSTION CARBON CAPTURE PROCESSES FOR A BIOGAS FUELED MICRO GAS TURBINE
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COMPARISON OF PERFORMANCE OF ALTERNATIVE POST COMBUSTION CARBON CAPTURE PROCESSES FOR A BIOGAS FUELED MICRO GAS TURBINE

机译:沼气燃料微型燃气轮机替代燃烧碳捕获工艺性能的比较

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The urgent need to decrease greenhouse gases (GHG) has prompted countries such as the UK and Norway to commit to net zero emissions by 2050 and 2030, respectively. One of the sectors contributing to GHG emissions is agriculture, by approximately 10% in the EU in 2017. GHG reductions in the production side should involve avoidance at source, reduction of emissions and/or removal of those emissions, with the potential for negative emissions by carbon capture. This paper focuses on the utilisation of agricultural waste that can be converted into biogas, such as livestock and crops residues which represent around 37% of GHG emissions by agriculture in the EU. The biogas can be used to produce electricity and heat in a micro gas turbine (MGT). Then, the exhaust gases can be sent to a carbon capture plant. This offers the potential for integration of waste into energy for in-house use in farms and fosters a circular-bioeconomy, where the captured CO_2 could be used in greenhouses to grow vegetables. This could even allow the integration of other renewable technologies, since the MGT offers flexible operation for rapid start-up and shut down or intermittency of other technologies such as solar or wind. Current carbon capture processes are very costly at the smaller scales typical of remote communities. The alternative A3C (advanced cryogenic carbon capture) process is much more economical at smaller scales. The A3C separates CO_2 from process gas that flows counter-currently with a cold moving bed, where the CO_2 desublimes on the surface of bed material as a thin layer of frost. This allows enhanced heat transfer and avoids heavy build-up of frost that reduces severely the heat transfer. The phase change separation process employed by A3C and the large thermal inertia of the separation medium gives good flexibility of capture for load changes and on-off despatch. This study integrates a combined heat and power MGT, Turbec T100, of 100 kWe output. This include developed models for the MGT using characteristics maps for the compressor and turbine and for the cryogenic carbon capture plant, using two software tools, IPSEpro and Aspen Plus, respectively.
机译:迫切需要减少温室气体(GHG),促使诸如英国和挪威等国家分别犯下2050年和2030年的零排放量。其中一个部门致力于GHG排放的部门是农业,2017年欧盟约10%。生产方的温室气体减少应涉及避免来源,减少排放和/或删除这些排放,具有负排放的潜力通过碳捕获。本文侧重于利用可以转化为沼气的农业废物,如牲畜和作物残留物,欧盟农业占农业约占GHG排放量的37%。沼气可用于在微燃气轮机(MGT)中产生电力和热量。然后,可以将废气送至碳捕获植物。这提供了将废物整合到农场内部使用的能源的潜力,并促进循环生物经济,其中捕获的CO_2可以用于温室以种植蔬菜。这甚至可以允许其他可再生技术的集成,因为MGT提供灵活的操作,以便快速启动和关闭或间歇性的其他技术,如太阳风或风。目前的碳捕获过程在远程社区典型的较小尺度上非常昂贵。替代A3C(高级低温碳捕获)过程在较小的尺度下更经济。 A3C将Co_2与流动的过程气体分离,该气体气体与冷移动床一起流动,其中Co_2在床材料表面上作为薄层霜层。这允许增强的传热,避免霜的沉重积聚,从而减少了传热。 A3C采用的相变分离过程和分离介质的大的热惯性使捕获具有良好的捕获灵活性,用于负载变化和开关发货。本研究集成了100kWE输出的组合热量和功率MGT,Curbec T100。这包括使用两种软件工具,IPSEPRO和Aspen Plus的压缩机和涡轮机和低温碳捕获工厂的特性图,为MGT提供了MGT的模型。

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