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PV self-consumption optimization with storage and Active DSM for the residential sector

机译:利用住宅领域的存储和主动DSM进行光伏自耗优化

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摘要

With the rising prices of the retail electricity and the decreasing cost of the PV technology, grid parity with commercial electricity will soon become a reality in Europe. This fact, together with less attractive PV feed-in-tariffs in the near future and incentives to promote self-consumption suggest, that new operation modes for the PV Distributed Generation should be explored; differently from the traditional approach which is only based on maximizing the exported electricity to the grid. The smart metering is experiencing a growth in Europe and the United States but the possibilities of its use are still uncertain, in our system we propose their use to manage the storage and to allow the user to know their electrical power and energy balances. The ADSM has many benefits studied previously but also it has important challenges, in this paper we can observe and ADSM implementation example where we propose a solution to these challenges. In this paper we study the effects of the Active Demand-Side Management (ADSM) and storage systems in the amount of consumed local electrical energy. It has been developed on a prototype of a self-sufficient solar house called "MagicBox" equipped with grid connection, PV generation, lead-acid batteries, controllable appliances and smart metering. We carried out simulations for long-time experiments (yearly studies) and real measures for short and mid-time experiments (daily and weekly studies). Results show the relationship between the electricity flows and the storage capacity, which is not linear and becomes an important design criterion.
机译:随着零售电价的上涨和光伏技术成本的降低,与商业用电的电网平价将很快在欧洲成为现实。这一事实,再加上近期吸引力不大的光伏上网电价,以及促进自我消费的激励措施,都表明,应当探索光伏分布式发电的新运营模式;与仅基于最大化输往电网的电力的传统方法不同。在欧洲和美国,智能电表正在经历增长,但其使用的可能性仍不确定,在我们的系统中,我们建议将其用于管理存储并允许用户了解其电力和能量平衡。 ADSM具有先前研究的许多优点,但也面临着重要的挑战,在本文中,我们可以观察到ADSM的实施示例,其中我们提出了应对这些挑战的解决方案。在本文中,我们研究了主动需求方管理(ADSM)和存储系统对消耗的本地电能的影响。它是根据一个自给自足的太阳能房屋(称为“ MagicBox”)的原型开发的,该房屋具有并网,光伏发电,铅酸电池,可控设备和智能计量。我们对长期实验(每年的研究)进行了模拟,对短期和中期实验(每天和每周的研究)进行了实际测量。结果表明,电流与蓄电量之间的关系不是线性的,成为重要的设计准则。

著录项

  • 来源
    《Solar Energy》 |2011年第9期|p.2338-2348|共11页
  • 作者单位

    ETSI Telecomunicacion, Universidad Politecnica de Madrid, Av. Compluten.se 30, 28040 Madrid, Spain Institute de Energia Solar, Universidad Politecnica de Madrid, Av. Complutense 30, 28040 Madrid, Spain;

    Institute de Energia Solar, Universidad Politecnica de Madrid, Av. Complutense 30, 28040 Madrid, Spain;

    ETSI Telecomunicacion, Universidad Politecnica de Madrid, Av. Compluten.se 30, 28040 Madrid, Spain;

    ETSI Telecomunicacion, Universidad Politecnica de Madrid, Av. Compluten.se 30, 28040 Madrid, Spain;

    ETSI Telecomunicacion, Universidad Politecnica de Madrid, Av. Compluten.se 30, 28040 Madrid, Spain;

    ETSI Telecomunicacion, Universidad Politecnica de Madrid, Av. Compluten.se 30, 28040 Madrid, Spain;

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

    Active Demand-Side Management; Self-consumption; PV systems; Battery storage; Distributed energy; Smart metering;

    机译:主动的需求方管理;自我消费;光伏系统电池储存;分布式能源;智能计量;

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