Maximizing PV hosting capacity of distribution feeder microgrid

被引:20
|
作者
Lee, J. [1 ]
Berard, Jean-Philippe [2 ]
Razeghi, G. [1 ]
Samuelsen, S. [1 ]
机构
[1] Univ Calif Irvine, Adv Power & Energy Program, Irvine, CA 92697 USA
[2] OPAL RT Technol, Montreal, PQ, Canada
关键词
Distributed energy resources; Distribution management; Controller; GHG reduction; Substation automation; Feeder microgrid; BATTERY ENERGY-STORAGE; LOW-VOLTAGE NETWORKS; SYSTEMS; INTEGRATION; PENETRATION; PROFILE;
D O I
10.1016/j.apenergy.2019.114400
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
To meet energy and environmental goals and challenging reliability and resiliency targets, the electric grid is transitioning from solely central generation to the inclusion of distributed energy resources (DERs). With a high penetration of DERs on primary circuits (feeders), utility substation communication, automation, and control must adopt to this new paradigm. In principle, utility substations can transition to and operate the feeder circuits in an islanded mode, effectively as Distribution Feeder Microgrids. This creates the need for research to address the challenges associated with integrating and managing significant deployment of DERs on circuits served by distribution substations. In response, this study addresses substation control to manage circuits emanating from utility substations as a microgrid. To this end, a model for substation automatic control using a Generic Microgrid Controller compliant with the IEEE 2030.7 standard was developed, and the role and impact of substation control to improve energy management, increase renewable penetration, and reduce greenhouse gas emissions were evaluated. The detailed digital simulation model developed encompassed two 12 kV distribution circuits emanating from a utility distribution substation. Individual homes were modeled and results verified using field data collected from a previous study. Various scenarios were simulated in order to determine PV hosting capability of the circuits equipped with a controller at the substation and with three energy storage configurations: (1) A residential energy storage unit (RESU) where all customers own a battery energy storage behind the meter, (2) a community energy storage (CES) unit where a utility-owned battery energy storage is deployed near each transformer, and (3) a circuit battery where a relatively large battery is deployed at the substation serving the entire feeder microgrid. Results show that substation automation and control can increase renewable penetration and reduce emissions without any necessary upgrades to the grid infrastructure. Moreover, the CES configuration was found to be a more economic approach for achieving high PV penetration and GHG reduction than residential storage, achieving a 660 mTCO(2eq) reduction per MWh of installed energy storage and overall 32% reduction in greenhouse gas emissions.
引用
下载
收藏
页数:17
相关论文
共 50 条
  • [1] Distribution Feeder Hosting Capacity Analysis
    O'Connell, Alison
    Smith, Jeff
    Keane, Andrew
    2017 IEEE PES INNOVATIVE SMART GRID TECHNOLOGIES CONFERENCE EUROPE (ISGT-EUROPE), 2017,
  • [2] Assessment of the PV Hosting Capacity for the Medium-Voltage 11.4 kV Distribution Feeder
    Liu, Yu-Jen
    Tai, Yu-Hsuan
    Huang, Chi-Yang
    Su, Huai-Jhe
    Lan, Pei-Hsiu
    Hsieh, Ming-Kun
    PROCEEDINGS OF 4TH IEEE INTERNATIONAL CONFERENCE ON APPLIED SYSTEM INNOVATION 2018 ( IEEE ICASI 2018 ), 2018, : 381 - 384
  • [3] A Study of Enhancing PV Hosting Capacity in an Industrial Microgrid
    Arnab, Adib Aktab
    Jamil, Md. Tahmid
    Huda, Rafsan
    Rahman, Mosiur
    Rabbi, Ata E.
    Aziz, Tareq
    2022 INTERNATIONAL CONFERENCE ON ENERGY AND POWER ENGINEERING, ICEPE, 2022,
  • [4] Locational Dependence of PV Hosting Capacity Correlated with Feeder Load
    Coogan, Kyle
    Reno, Matthew J.
    Grijalva, Santiago
    Broderick, Robert J.
    2014 IEEE PES T&D CONFERENCE AND EXPOSITION, 2014,
  • [5] A Stochastic Approach for Determining PV Hosting Capacity of a Distribution Feeder Considering Voltage Quality Constraints
    Tang, N. C.
    Chang, G. W.
    2018 18TH INTERNATIONAL CONFERENCE ON HARMONICS AND QUALITY OF POWER (ICHQP), 2018,
  • [6] A Method for Maximizing the Hosting Capacity to Electric Vehicles using Feeder Reconfiguration
    Kamruzzaman, Md
    Benidris, Mohammed
    Elsaiah, Salem
    Tian, Yuting
    2020 IEEE POWER & ENERGY SOCIETY GENERAL MEETING (PESGM), 2020,
  • [7] Maximizing PV Hosting Capacity and Community Level Battery Storage
    Ertugrul, Nesimi
    Castillo, Fernando
    2019 29TH AUSTRALASIAN UNIVERSITIES POWER ENGINEERING CONFERENCE (AUPEC), 2019,
  • [8] Estimating spatial distribution impacts of rooftops solar PV on dynamic hosting capacity evaluation for a real distribution feeder
    Emmanuel, Michael
    Zhang, Yingchen
    2021 IEEE 48TH PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC), 2021, : 1565 - 1569
  • [9] Increasing Feeder PV Hosting Capacity by Regulating Secondary Circuit Voltages
    Padullaparti, Harsha V.
    Jothibasu, Suma
    Santoso, Surya
    Todeschini, Grazia
    2018 IEEE POWER & ENERGY SOCIETY GENERAL MEETING (PESGM), 2018,
  • [10] Statistical Analysis of Feeder and Locational PV Hosting Capacity for 216 Feeders
    Reno, Matthew J.
    Broderick, Robert J.
    2016 IEEE POWER AND ENERGY SOCIETY GENERAL MEETING (PESGM), 2016,