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Modelling of renewable gas and renewable liquid fuels in future integrated energy systems

机译:未来综合能源系统中可再生煤气和可再生液体燃料的建模

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This study conducts an integrated energy system assessment to evaluate pathways for using locally distributed sustainable biomass resources in the conversion to renewable gas and liquid biofuels in future integrated energy systems. A modelling framework with a detailed spatiotemporal representation is used, optimising the usage and transportation of local biomass resources for producing renewable gas and renewable liquid fuels through the OptiFlow model, along with the comprehensive power and district heating model Balmorel, integrating shortterm dynamics in the long-term planning horizon. Results for a fossil-independent Danish energy system by 2050 show that production of bio-jet fuel in Denmark would impose high pressure on national biomass resources. Electrofuels, such as biomethanol, have economic viability and promising potentials. The results regarding renewable gas production show that anaerobic co-digestion of a mixed feedstock to produce biogas, which is further upgraded to biomethane using water scrubbing for CO2 removal, would be the preferred option. Biorefineries are located near larger cities to benefit from economy of scale and access to large district heating networks, as excess heat from biorefineries could supply up to 21% of the national district heating demand. On the contrary, biogas plants would be located in the countryside, as the costs of transporting manure are a determining factor. Therefore, our study provides a novel modelling approach, which enables optimisation of geographical distributed resources for renewable gas and liquid fuel production, while taking synergies across energy vectors in account.
机译:本研究开展了一体化的能源系统评估,以评估在未来的综合能源系统中转换为可再生气体和液质生物燃料的局部分布式可持续生物量资源的途径。使用具有详细的时空表示的建模框架,优化了本地生物量资源的使用和运输,通过光学光线模型,以及综合电力和区供暖模型Balmorel,整合了较长的速度动态的可再生气体和可再生液体燃料 - 策划地平线。由2050年的化石独立丹麦能源系统的结果表明,丹麦生物喷射燃料的生产将对国家生物量资源产生高压。电燃料,如生物甲烷,具有经济的活力和有希望的潜力。关于可再生气体生产的结果表明,使用水擦洗进一步升级为生产沼气的混合原料的厌氧共消化,这将是优选的选择。 Bioorefineries位于较大的城市附近,可以从规模经济和进入大型区供暖网络中受益,因为生物寄生虫的过度热量可以提供最多21%的国家地区供暖需求。相反,沼气植物将位于农村,因为运输粪便的成本是决定因素。因此,我们的研究提供了一种新颖的建模方法,它能够优化可再生气体和液体燃料生产的地理分布式资源,同时在账户中跨能量向量进行协同作用。

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