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Energy flexibility investigation of advanced grid-responsive energy control strategies with the static battery and electric vehicles: A case study of a high-rise office building in Hong Kong

机译:静态电池和电动汽车对电网响应的先进能源控制策略的能源灵活性研究:以香港一幢高层办公楼为例

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The energy flexibility of the sophisticated building energy systems with the integration of renewable systems, diversified energy storages, advanced energy conversions and electric vehicles, has attracted increasing attention. However, there are limited studies on the energy flexibility quantification and enhancement of the sophisticated building energy systems. In this study, a nonlinear component-based model, integrating building integrated photovoltaics and vehicle integrated photovoltaics, was developed for the energy flexibility assessment. A generic methodology with a series of quantifiable energy flexibility indicators (the off-peak renewable-discharging ratio and the off-peak grid-discharging ratio) has been presented to quantify the energy flexibility of the hybrid grid-connected building vehicle system. Two dynamic advanced grid-responsive energy control strategies have been proposed for the energy flexibility enhancement. Techno-economic feasibility has been discussed regarding different off-peak electricity tariffs and different rated renewable capacities. Moreover, a technical solution is presented to solve the energy congestion contradiction regarding the exploitation of the off-peak grid electricity and the on-site renewable energy through electrical storage systems. The research results showed that the proposed renewable-to-demand and the off-peak grid-supported storage control (Control Strategy 3) shows the robustness and competitiveness, in terms of activating both the on-site renewable system and the grid to participate in the building energy system. By implementing the Control Strategy 3, 96.8% of the grid electricity can be shifted from the off-peak period to the peak period for the usage of the office building. Depending on the critical static battery capacity at 10 kWh for each floor, the energy congestion contradiction can be solved by managing the off-peak grid-battery charging power to minimise the energy-based operational cost. This study formulates a flexible energy management system and a flexible energy control strategy, which are important for the promotion of energy flexible buildings, with participation of both the policymakers and the householders.
机译:先进的建筑能源系统的能源灵活性与可再生能源系统的集成,多样化的储能,先进的能源转换和电动汽车,已引起越来越多的关注。然而,关于能量灵活性的量化和增强复杂建筑能源系统的研究很少。在这项研究中,开发了一种基于非线性组件的模型,该模型将建筑集成光伏和车辆集成光伏集成在一起,用于能源灵活性评估。提出了一种通用的方法,该方法具有一系列可量化的能源灵活性指标(非高峰期可再生排放比和非高峰期电网排放比),以量化混合并网建筑车辆系统的能源灵活性。已经提出了两种动态的先进的网格响应能量控制策略来增强能量灵活性。已经讨论了关于不同的非高峰电价和不同的额定可再生容量的技术经济可行性。此外,提出了一种技术方案来解决关于通过储电系统开发非高峰电网电力和现场可再生能源的能源拥挤矛盾。研究结果表明,在激活现场可再生能源系统和电网参与其中的方面,所提出的按需可再生能源和非高峰电网支持的存储控制(控制策略3)显示出鲁棒性和竞争力。建筑能源系统。通过实施《控制策略3》,可以将办公用电的96.8%从非高峰时段转移到高峰时段。根据每层10 kWh的临界静态电池容量,可以通过管理非高峰期的网格电池充电功率来最大程度地降低基于能源的运营成本,从而解决能源拥挤矛盾。这项研究制定了灵活的能源管理系统和灵活的能源控制策略,在决策者和居民的参与下,这对于促进灵活的能源建筑至关重要。

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