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Zero Energy Building by Multicarrier Energy Systems including Hydro, Wind, Solar, and Hydrogen

机译:包括水电,风,太阳能和氢气的多载波能量系统零能量建设

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This article proposes a unified solution to address the energy issues in net-zero energy building (ZEB), as a new contribution to earlier studies. The multicarrier energy system, including hydro-wind-solar-hydrogen-methane-carbon dioxide-thermal energies is integrated and modeled in ZEB. The electrical sector is supplied by hydro-wind-solar, combined heat and power (CHP), and pumped hydro storage (PHS). The thermal sector is supplied by CHP, thermal boiler, and electric heating. The hydrogen storage system and Methanation process operate as the interface energy carriers between the electrical and thermal sectors. The carbon dioxide (CO2) of the ZEB is captured and fed into the Methanation process. The purpose is minimizing the released CO2 to the atmosphere while all the electrical-thermal load demands are successfully supplied considering events and disruptions. The model improves simultaneously the energy resilience and minimizes the environmental pollutions. The results demonstrate that the developed model reduces the CO2 pollution by about 33 451 kg per year. The model is a resilient energy system that can handle all failures of components. The model can efficiently handle 26% increment in the electrical loads and 110% increment in the thermal loads.
机译:本文提出了一个统一的解决方案,以解决净零能量建设(Zeb)中的能源问题,作为对早期研究的新贡献。多载波能量系统,包括水力 - 太阳能 - 氢 - 甲烷 - 二氧化碳 - 热能集成和建模在Zeb中。电气部门由水风 - 风 - 太阳能,综合发热和功率(CHP)提供,并泵送水电储存(PHS)。热部门由CHP,热锅炉和电加热提供。储氢系统和甲烷化过程作为电气和热扇区之间的界面能量载体操作。酶的二氧化碳(CO 2)被捕获并进料到甲烷化过程中。目的是最小化释放的CO2到大气,而考虑到事件和中断,所有电热负荷要求都成功地提供。该模型同时改善了能量弹性,并最大限度地减少了环境污染。结果表明,发达模式每年将CO2污染减少约33 451千克。该模型是一种弹性能量系统,可以处理组件的所有故障。该模型可以有效地处理电荷的26%增量,在热负载中增加110%。

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