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Variable time-step: A method for improving computational tractability for energy system models with long-term storage

机译:可变时间步骤:通过长期存储改善能量系统模型的计算途径的方法

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摘要

Optimizing an energy system model featuring a large proportion of variable (non-dispatchable) renewable energy requires a fine temporal resolution and a long period of weather data to provide robust results. Many models are optimized over a limited set of 'representative' periods (e.g. weeks) but this precludes a realistic representation of long-term energy storage. To tackle this issue, we introduce a new method based on a variable time-step. Critical periods that may be important for dimensioning part of the electricity system are defined, during which we use an hourly temporal resolution. For the other periods, the temporal resolution is coarser. This method brings very accurate results in terms of system cost, curtailment, storage losses and installed capacity, even though the optimization time is reduced by a factor of around 60. Results are less accurate for battery volume. We conclude that further research into this 'variable time-step' method would be worthwhile.
机译:优化具有大部分变量(不可调度的)可再生能源的能量系统模型需要精细的时间分辨率和长时间的天气数据来提供鲁棒的结果。许多型号通过有限的“代表”期间(例如,周)进行优化,但这排除了长期储能的现实表示。为了解决这个问题,我们将基于变量时间步介绍一种新方法。定义了对于尺寸的电力系统的部分可能是重要的关键时期,在此期间我们使用每小时的时间分辨率。对于其他时段,时间分辨率是粗糙的。这种方法在系统成本,缩减,存储损耗和安装容量方面具有非常准确的结果,即使优化时间减少了大约60倍。电池容积的结果较低。我们得出结论,进一步研究这种“可变时步”方法是值得的。

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