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The feasible onshore wind energy potential in Baden-Wurttemberg: A bottom-up methodology considering socio-economic constraints

机译:巴登-符腾堡州可行的陆上风能潜力:一种考虑社会经济约束的自下而上的方法

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Detailed information about the potential and costs of renewable energies is an important input for energy system models as well as for commercial and political decision-making processes. Especially wind energy with its increasing locally installed capacity and hub heights plays an important role when it comes to meeting climate targets and optimizing electricity networks. Recently however, wind energy has faced more and more social barriers and land use constraints which can negatively impact both political goals and investment decisions. Therefore this work presents a bottom-up methodology to estimate these effects by calculating the feasible potential and the associated costs for the German federal state of Baden-Wurttemberg as a case study. Landscape aesthetical aspects are considered and an algorithm applied based on graph-theoretical considerations to include spatial planning rules such as separation distances between wind farms. By means of spatially high-resolution land use data and techno-economic parameters, possible wind turbines are placed considering wind direction and variable spacing between turbines. In a further step, possible farm sites are located and assessed, and the result is presented in the form of cost-potential curves. The feasible potential is found to be between a third and a half of the technical potential and is between 11.8 and 29.1 TWh, with costs between 6.7 and 12.6 (sic)ct/kWh. In addition, a substantial spatial shift in the location of future wind energy production can be observed when wind farm spacing is taken into account. The quality of the algorithm is tested against already existing wind farms and areas that are approved by regional authorities for the use of wind energy, and a very good correlation is observed. The focus in future work should lie on the development of an economic criterion that, unlike the levelized cost of electricity (LCOE), is able to account for the system costs of a widespread wind energy development, including network expansion, balancing power and reserve energy costs. Further, visibility analysis could be implemented using digital elevation models to consider the topography for optimal wind farm spacing. (C) 2016 Elsevier Ltd. All rights reserved.
机译:有关可再生能源潜力和成本的详细信息,对于能源系统模型以及商业和政治决策过程来说都是重要的输入。特别是在本地安装容量和轮毂高度不断增加的风能,在满足气候目标和优化电网方面发挥着重要作用。然而,最近,风能面临越来越多的社会障碍和土地使用限制,这可能对政治目标和投资决策产生负面影响。因此,这项工作提出了一种自下而上的方法,通过计算德国巴登-符腾堡州联邦政府的可行潜力和相关成本来估算这些影响,作为案例研究。考虑景观美学方面,并基于图论考虑因素应用算法,以包括空间规划规则,例如风电场之间的分隔距离。借助空间高分辨率的土地利用数据和技术经济参数,可以考虑风向和涡轮机之间的可变间距来放置可能的风力涡轮机。在下一步中,对可能的农场地点进行定位和评估,并以成本潜力曲线的形式显示结果。发现可行的潜力在技术潜力的三分之一到一半之间,在11.8和29.1 TWh之间,成本在6.7和12.6(sic)ct / kWh之间。另外,当考虑到风电场的间距时,可以观察到未来风能生产的位置发生很大的空间变化。针对已经存在的风电场和区域当局批准使用风能的区域测试了算法的质量,并且观察到很好的相关性。未来工作的重点应放在制定经济标准上,该经济标准与电力平均成本(LCOE)不同,它能够考虑广泛的风能开发的系统成本,包括网络扩展,平衡功率和储备能源费用。此外,可以使用数字高程模型来执行能见度分析,以考虑地形以实现最佳风电场间距。 (C)2016 Elsevier Ltd.保留所有权利。

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