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Energy Balance of Biogas Production from Microalgae: Effect of Harvesting Method, Multiple Raceways, Scale of Plant and Combined Heat and Power Generation

机译:微藻生产沼气的能量平衡:收割方法,多个水道,植物规模以及热电联产的影响

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A previously-developed mechanistic energy balance model for production of biogas from the anaerobic digestion of microalgal biomass grown in open raceway systems was used to consider the energetic viability of a number of scenarios, and to explore some of the most critical parameters affecting net energy production. The output demonstrated that no single harvesting method of those considered (centrifugation, settlement or flocculation) produced an energy output sufficiently greater than operational energy inputs to make microalgal biogas production energetically viable. Combinations of harvesting methods could produce energy outputs 2.3–3.4 times greater than the operational energy inputs. Electrical energy to power pumps, mixers and harvesting systems was 5–8 times greater than the heating energy requirement. If the energy to power the plant is generated locally in a combined heat and power unit, a considerable amount of “low grade” heat will be available that is not required by the process, and for the system to show a net operational energy return this must be exploited. It is concluded that the production of microalgal biogas may be energetically viable, but it is dependent on the effective use of the heat generated by the combustion of biogas in combined heat and power units to show an operational energy return.
机译:以前开发的机械能平衡模型,用于通过在开放水道系统中生长的微藻生物质进行厌氧消化来生产沼气,用于考虑多种情​​况下的能量可行性,并探讨影响净能源生产的一些最关键参数。输出结果表明,没有一种考虑的收集方法(离心,沉降或絮凝)产生的能量输出足够大于操作能量输入,从而使微藻沼气的生产在能量上可行。采收方式的组合可以产生的能量输出是可操作能量输入的2.3-3.4倍。动力泵,混合器和收割系统的电能比加热能的需求大5–8倍。如果为工厂提供动力的能量是在热电联产设备中本地产生的,则将提供过程中不需要的大量“低等级”热量,并且对于系统而言,这将显示出净运行能量回馈必须加以利用。结论是,微藻沼气的生产可能在能源上可行,但这取决于有效利用沼气在热电联产装置中燃烧产生的热量,以显示出可操作的能量返回。

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