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Adaptive Coordination Control among PV, Battery, and Methane Generation Unit

机译:PV,电池和甲烷生成单元之间的自适应协调控制

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Methane generation unit (MGU) can make use of power electricity and carbon dioxide to produce methane with the biocatalyst of methanogenic bacteria. In this paper, a simple external electrical characteristic model of MGU is constructed based on the accumulated experimental data and control variable method. Furthermore, the abovementioned model is applied in the islanded dc microgrid, and the adaptive coordination control strategy among photovoltaic (PV) generator, storage battery, MGU and local load is introduced based on dc bus voltage value. When in charging situation, the dc bus voltage will grow with the increase of the state-of-charge (SoC) of the battery, and the power consumption of MGU can adaptively increase with the increase of dc bus voltage. Because the much input power of MGU will produce hydrogen gas and suppress the activity of methanogens. Hence, the PV generator needs to limit its output power if the battery and MGU all work at their critical point. When in discharging situation, MGU needs to be cut out if the dc bus voltage drops to the setting value, then the battery will discharge to supply the local load till the next day.
机译:甲烷生成单位(MGU)可以利用电力和二氧化碳,用甲烷型细菌的生物催化剂生产甲烷。本文基于累积的实验数据和控制变量方法构建了MGU的简单外部电气特性模型。此外,基于直流母线电压值,引入了上述模型在岛立的DC微电网中应用了光伏(PV)发电机,蓄电池,MGU和局部负荷之间的自适应协调控制策略。在充电情况时,直流母线电压将随着电池的充电状态(SoC)的增加而增长,并且MGU的功耗随着直流母线电压的增加而自适应地增加。因为MGU的大量输入功率将产生氢气并抑制甲烷的活性。因此,如果电池和MGU在其关键点处工作,则PV发生器需要限制其输出功率。如果在放电情况下,如果直流母线电压降至设定值,则需要切除MGU,然后电池将放电以供应局部负荷直至第二天。

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