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Optimal coordinated operation of a multi-energy community considering interactions between energy storage and conversion devices

机译:考虑能量存储和转换设备之间的相互作用的多能量社区的最佳协调操作

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摘要

An optimal coordinated operation model of comprehensive energy storage and conversion devices was built by considering interdependency in a multi-vector energy community, to achieve an overall optimum. The model determined the storage size, the operation strategies of energy storage and conversion devices and scenario analysis was further conducted. The proposed sequential method solved the complex mixed-integer nonlinear programming (MINLP) problem by decomposing the multi-energy system into a subsystem of conversion devices and a PV-battery subsystem, which reduced the computation complexity. Firstly, electricity, heat and gas networks were modelled in an integrated manner and with a suitable level of detail for operational purposes. The integrated electrical-hydraulic-thermal-gas flow equations imposed by multi-energy networks were formulated as equality constraints in the optimization. The optimal operation of conversion technologies with increasing net-load variability on the consumer load profiles was determined. Secondly, the design and operation of PV-battery systems was investigated to provide economic incentives for storage owners. The total costs, the self consumption ratio (SCR), the internal return rate (IRR) of PV-battery systems were calculated. In scenario analysis, interactions between multi-energy network operation limits as well as the impact of energy conversion devices on PV-battery systems were demonstrated. It showed that the option of Combined Heat and Power (CHP) was advantageous without considering PV-battery systems using 2016 financial data. However, considering the profit of PV-battery systems and the declining grid electricity carbon intensity, the option of heat pumps was advantageous and may be a favorable option in the long term.
机译:通过考虑在多向量能量界中的相互依赖性,实现了全面的能量存储和转换装置的最佳协调操作模型,以实现全面的最佳选择。该模型确定了存储尺寸,进一步进行了能量存储和转换装置的操作策略和场景分析。所提出的顺序方法通过将多能量系统分解成转换装置和PV电池子系统的子系统来解决复杂的混合整数非线性编程(MINLP)问题,这减少了计算复杂性。首先,用综合方式建模电力,热量和气体网络,并且具有适当的操作目的细节水平。通过多能量网络施加的集成电气液压 - 热气流方程被配制为优化中的平等约束。确定了转换技术的最佳运行,随着消费者负载轮廓上的净负载变异性增加。其次,调查了PV-电池系统的设计和操作,为存储业主提供了经济激励。计算总成本,自费(SCR),计算PV电池系统的内部回波率(IRR)。在场景分析中,对多能量网络运行限制之间的相互作用以及能量转换装置对PV电池系统的影响。它表明,在不考虑2016财务数据的情况下,组合热量和功率(CHP)的选择是有利的。然而,考虑到PV电池系统的利润和电网电力碳强度下降,热泵的选择是有利的,并且长期可能是有利的选择。

著录项

  • 来源
    《Applied Energy 》 |2019年第15期| 256-273| 共18页
  • 作者单位

    Shanghai Jiao Tong Univ Sch Elect Informat & Elect Engn Shanghai Peoples R China|Shanghai Jiao Tong Univ Key Lab Control Power Transmiss & Transformat Minist Educ Shanghai Peoples R China;

    Shanghai Jiao Tong Univ Sch Elect Informat & Elect Engn Shanghai Peoples R China|Shanghai Jiao Tong Univ Key Lab Control Power Transmiss & Transformat Minist Educ Shanghai Peoples R China;

    Cardiff Univ Sch Engn Queens Bldg Cardiff CF24 3AA S Glam Wales;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    PV-battery systems; Energy conversion devices; Multi-energy communities; Optimal operation; Optimization; Energy system integration;

    机译:PV电池系统;能量转换装置;多能量社区;最优运行;优化;能量系统集成;

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