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Transforming the electricity generation of the Berlin-Brandenburg region, Germany

机译:改变德国柏林-勃兰登堡州的发电方式

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We present possible steps for Germany's capital region for a pathway towards high-level renewable energy contributions. To this end, we give an overview of the current energy policy and status of electricity generation and demand of two federal states: the capital city Berlin and the surrounding state of Brandenburg. In a second step we present alternative, feasible scenarios with focus on the years 2020 and 2030. All scenarios were numerically evaluated in hourly time steps using a cost optimisation approach. The required installed capacities in an 80% renewables scenario in the year 2020 consist of 8.8 GW wind energy, 4.8 GW photovoltaics, 0.4 GW_(el) bioenergy, 0.6 GW_(el) methanation and a gas storage capacity of 180 GWhth- In order to meet a renewable electricity share of 100% in 2030, approximately 9.5 GW wind energy, 10.2 GW photovoltaics and 0.4 GW_(el) bioenergy will be needed, complemented by a methanation capacity of about 1.5 GW_(el) and gas storage of about 530 GWhth. In 2030, an additional 11 GWh_(el) of battery storage capacity will be required. Approximately 3 GW of thermal gas power plants will be necessary to cover the residual load in both scenarios. Furthermore, we studied the transmission capacities of extra-high voltage transmission lines in a second simulation and found them to be sufficient for the energy distribution within the investigated region.
机译:我们介绍了德国首都地区实现高水平可再生能源贡献的可能步骤。为此,我们概述了两个联邦州(首都柏林和周围的勃兰登堡州)的当前能源政策和发电状况以及需求。在第二步中,我们提出了另一些可行的方案,重点是2020年和2030年。所有方案均使用成本优化方法以小时为单位进行了数值评估。到2020年,在80%的可再生能源情景中,所需的装机容量包括8.8吉瓦的风能,4.8吉瓦的光伏,0.4吉瓦的(el)生物能,0.6吉瓦的(el)甲烷化和180吉瓦时的储气量。为了满足2030年100%的可再生电力份额,将需要约9.5 GW_el的甲烷化能力和约530 GWhth的储气量,以补充约9.5 GW的风能,10.2 GW的光伏和0.4 GW_(el)的生物能源。在2030年,将需要额外的11 GWh_(el)的电池存储容量。在两种情况下,大约需要3 GW的热力燃气电厂来覆盖剩余负荷。此外,我们在第二次仿真中研究了超高压传输线的传输容量,发现它们足以满足所研究区域内的能量分布。

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