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On the way towards smart energy supply in cities: The impact of interconnecting geographically distributed district heating grids on the energy system

机译:在城市智能能源供应的道路上:地理分布的区域供热网络与能源系统相互连接的影响

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摘要

A linear continuous optimization model with an hourly time resolution was developed in order to model the impact of subsequent interconnections of different DH grids. The municipality of Sønderborg was chosen for a case study and interconnections of five currently disconnected DH grids were assessed. Moreover, the impact of industrial waste heat on the DH supply was also assessed. In the reference year (2013) two out of four interconnections proved to be economically viable. The results for the future energy system (2029) showed that interconnecting geographically distributed DH grids reduces primary energy supply by 9.5%, CO emissions by 11.1% and total system costs by 6.3%. Inclusion of industrial waste heat in the fully interconnected DH grid reduced primary energy supply for an additional 3%, CO emissions for an additional 2.2% and total system costs for an additional 1.3%. The case of the future energy supply system with interconnected DH grids and installed industrial waste heat recuperation results in the lowest primary energy demand, emissions and costs. Finally, the benefits of the interconnected DH grid, in terms of system flexibility, CO emissions, total costs and energy efficiency, proved to be much greater in the future energy system.
机译:开发了具有小时时间分辨率的线性连续优化模型,以便对不同DH网格的后续互连的影响进行建模。选择了Sønderborg市进行案例研究,并评估了五个当前断开的DH电网的互连。此外,还评估了工业废热对DH供应的影响。在参考年(2013年),四分之三的互连在经济上被证明是可行的。未来能源系统(2029)的结果表明,互连的地理分布的DH电网可将一次能源供应减少9.5%,CO排放减少11.1%,总系统成本减少6.3%。在完全互连的DH电网中包含工业废热,可将一次能源供应量减少3%,将CO排放量减少2.2%,将系统总成本增加1.3%。未来的能源供应系统具有相互连接的DH电网和已安装的工业废热回收系统,因此其一次能源需求,排放和成本最低。最后,在未来的能源系统中,相互连接的DH电网在系统灵活性,CO排放,总成本和能源效率方面的优势被证明是更大的。

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