Power Quality Assessment of Distributed Generator Grounding Method
The objective of this project was to assess the specific transformer grounding and connection methods that are used at the subject utility for distributed generators (DGs) and provide a risk assessment in terms of potential impact, ways to minimize the impact, and site specific screening criteria fo...
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Published in | IEEE transactions on industry applications Vol. 45; no. 1; pp. 303 - 309 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
New York
IEEE
01.01.2009
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
Subjects | |
Online Access | Get full text |
ISSN | 0093-9994 1939-9367 |
DOI | 10.1109/TIA.2008.2009573 |
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Abstract | The objective of this project was to assess the specific transformer grounding and connection methods that are used at the subject utility for distributed generators (DGs) and provide a risk assessment in terms of potential impact, ways to minimize the impact, and site specific screening criteria for additional protection that may be required for DG interconnection. The utility has standardized on a grounded wye-grounded wye transformer connection for customers connected to their distribution system. When a backup generator exists in the customer's facility that could be paralleled with the utility system, a contactor is installed on the neutral to ground connection on the generator. This contactor is opened at any time that the generator is paralleled. The utility is considering remotely dispatching these distributed generation assets in times of peak load in the future. This will require the generators to run paralleled for extended periods of time. Grounding practices for auxiliary generators were evaluated, and simulations of both steady-state and fault conditions were conducted. The most critical factors were found to be assuring that the generator ground switch was closed during islanding and that the overvoltage protection operates correctly to isolate the generator during fault conditions. Recommendations for overvoltage protection and testing were developed based upon the results. |
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AbstractList | The objective of this project was to assess the specific transformer grounding and connection methods that are used at the subject utility for distributed generators (DGs) and provide a risk assessment in terms of potential impact, ways to minimize the impact, and site specific screening criteria for additional protection that may be required for DG interconnection. The utility has standardized on a grounded wye-grounded wye transformer connection for customers connected to their distribution system. When a backup generator exists in the customer's facility that could be paralleled with the utility system, a contactor is installed on the neutral to ground connection on the generator. This contactor is opened at any time that the generator is paralleled. The utility is considering remotely dispatching these distributed generation assets in times of peak load in the future. This will require the generators to run paralleled for extended periods of time. Grounding practices for auxiliary generators were evaluated, and simulations of both steady-state and fault conditions were conducted. The most critical factors were found to be assuring that the generator ground switch was closed during islanding and that the overvoltage protection operates correctly to isolate the generator during fault conditions. Recommendations for overvoltage protection and testing were developed based upon the results. The objective of this project was to assess the specific transformer grounding and connection methods that are used at the subject utility for distributed generators (DGs) and provide a risk assessment in terms of potential impact, ways to minimize the impact, and site specific screening criteria for additional protection that may be required for DG interconnection. |
Author | Sutherland, P.E. Short, T.A. |
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References | (ref6) 1997 cook (ref4) 2003 (ref1) 2003 (ref8) 2001 (ref7) 1998 (ref5) 1995 (ref11) 0 mozina (ref2) 2004 short (ref3) 2000 short (ref10) 2004 (ref9) 0 |
References_xml | – year: 1998 ident: ref7 publication-title: IEEE Guide for Maintenance Operation and Safety of Industrial and Commercial Power Systems (Yellow Book) – year: 1997 ident: ref6 publication-title: IEEE Recommended Practice for Applying Low-Voltage Circuit Breakers Used in Industrial and Commercial Power Systems (Blue Book) – year: 1995 ident: ref5 publication-title: IEEE Recommended Practice for Emergency and Standby Power Systems for Industrial and Commercial Applications (Orange Book) – year: 0 ident: ref9 publication-title: National Electrical Code NFPA 70 – start-page: 14 year: 0 ident: ref11 publication-title: New York State Standardized Interconnection Requirements and Application Process for New Distributed Generators 300 kVA or Less or Farm Waste Generators 400 kW or Less Connected in Parallel With Radial Distribution Lines – start-page: 658 year: 2004 ident: ref10 publication-title: Electric Power Distribution Handbook – year: 2003 ident: ref1 publication-title: IEEE Standard for interconnecting distributed resources with electric power systems – year: 2003 ident: ref4 article-title: history and interpretation of electrical grounding in wisconsin publication-title: Public Service Commission of Wisconsin PSC White Paper Series – start-page: 1 year: 2004 ident: ref2 article-title: update on the current status of dg interconnection protection: what ieee p-1547 doesn't tell you about dg interconnection protection publication-title: Georgia Tech Relay Conf – year: 2000 ident: ref3 article-title: surge protection issues with distributed generation publication-title: Proc Fall Surge Protective Devices Committee Meeting – year: 2001 ident: ref8 publication-title: IEEE Recommended Practice for Protection and Coordination of Industrial and Commercial Power Systems (Buff Book) |
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SubjectTerms | Dispatching Distributed generation Distributed power generation generator grounding generator protection Generators Grounding interconnection protection Power generation Power quality Protection Risk management Standby generators Switches Voltage control |
Title | Power Quality Assessment of Distributed Generator Grounding Method |
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