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Energy flexibility characteristics of centralized hot water system in university dormitories

机译:大学宿舍集中式热水系统的能源灵活性特征

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The large-scale application of renewable energy is an important strategy to achieve the goal of carbon neutrality in the building sector. Energy flexibility is essential for ensuring balance between energy demand and supply when targeting the maximum penetration rate of renewable energy during the operation of regional integrated energy systems. Revealing the energy flexibility characteristics of centralized hot water systems, which are an important source of such flexibility, is of great significance to the optimal operation of regional integrated energy systems. Hence, in this study, based on the annual real-time monitoring data, the energy flexibility of the centralized hot water system in university dormitories is evaluated from the perspective of available storage capacity (C_(adr)), recovery time (fremvety), and storage efficiency (η_(aor)), by the data-driven simulation method. The factors influencing the energy flexibility of the centralized hot water system are also analyzed. Available storage capacity has a strong positive correlation with daily water consumption and a strong negative correlation with daily mean outdoor temperature. These associations indicate that increased water use on the energy flexibility of the centralized hot water system is conducive to optimal dispatching. In contrast, higher outdoor temperature is unfavorable. The hourly mean value of the available storage capacity in spring and winter is found to be around 80 kWh in the daytime, and about twice that in summer and autumn. Recovery time is evenly distributed throughout the year, while t_(recovery)/C_(ADR) in spring and winter is about half that in summer. The storage efficiency was significantly higher in spring, summer, and winter than in autumn. The hourly mean storage efficiency was found to be about 40 in the daytime. The benefits of activating energy flexibility in spring and winter are the best, because these two seasons have higher available storage capacity and storage efficiency, while the benefit of activating energy flexibility is the highest at 6:00 a.m., and very low from midnight to 3:00 a.m.
机译:可再生能源的大规模应用是实现建筑领域碳中和目标的重要战略。在区域综合能源系统运行期间,以可再生能源的最大渗透率为目标时,能源灵活性对于确保能源需求和供应之间的平衡至关重要。揭示集中式热水系统的能源灵活性特征是集中式热水系统灵活性的重要来源,对区域综合能源系统的优化运行具有重要意义。因此,本研究基于年度实时监测数据,采用数据驱动的仿真方法,从可用存储容量(C_(adr))、恢复时间(fremvety)和存储效率(η_(aor))的角度评估了高校宿舍集中式热水系统的能源灵活性。还分析了影响集中式热水系统能源灵活性的因素。可用存储容量与每日用水量呈较强正相关,与日平均室外温度呈较强负相关。这些关联表明,集中式热水系统的能源灵活性增加用水量有利于优化调度。相反,较高的室外温度是不利的。春季和冬季可用存储容量的每小时平均值在白天约为 80 kWh,约为夏季和秋季的两倍。恢复时间全年均匀分布,而春季和冬季的t_(恢复)/C_(ADR)约为夏季的一半。春季、夏季和冬季的储存效率明显高于秋季。白天每小时平均储存效率约为40%。在春季和冬季激活能源灵活性的好处是最好的,因为这两个季节具有更高的可用存储容量和存储效率,而激活能源灵活性的好处在早上 6:00 最高,从午夜到凌晨 3:00 非常低。

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