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Exploration of the integration of renewable resources into California's electric system using the Holistic Grid Resource Integration and Deployment (HiGRID) tool

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Listed:
  • Eichman, Joshua D.
  • Mueller, Fabian
  • Tarroja, Brian
  • Schell, Lori Smith
  • Samuelsen, Scott

Abstract

Renewable resources represent an opportunity for environmentally preferred generation of electricity that supports energy security and independence; however integrating renewable technologies is not without challenges. Renewable resources have limitations that can include location, capacity, cost and availability. California is proactive in the implementation of renewable energy through legislation and execution of a Renewable Portfolio Standard. This work explores key challenges to achieving high penetrations of renewables onto California's grid. The Holistic Grid Resource Integration and Deployment (HiGRID) tool has been developed for this analysis and is verified herein. This tool resolves the hourly operation, performance and cost of renewable and non-renewable generation resources.

Suggested Citation

  • Eichman, Joshua D. & Mueller, Fabian & Tarroja, Brian & Schell, Lori Smith & Samuelsen, Scott, 2013. "Exploration of the integration of renewable resources into California's electric system using the Holistic Grid Resource Integration and Deployment (HiGRID) tool," Energy, Elsevier, vol. 50(C), pages 353-363.
  • Handle: RePEc:eee:energy:v:50:y:2013:i:c:p:353-363
    DOI: 10.1016/j.energy.2012.11.024
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    References listed on IDEAS

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    1. Tarroja, Brian & Mueller, Fabian & Eichman, Joshua D. & Brouwer, Jack & Samuelsen, Scott, 2011. "Spatial and temporal analysis of electric wind generation intermittency and dynamics," Renewable Energy, Elsevier, vol. 36(12), pages 3424-3432.
    2. Jarvis, Darryl S.L. & Sovacool, Benjamin K., 2011. "Conceptualizing and evaluating best practices in electricity and water regulatory governance," Energy, Elsevier, vol. 36(7), pages 4340-4352.
    3. Connolly, D. & Lund, H. & Mathiesen, B.V. & Leahy, M., 2010. "A review of computer tools for analysing the integration of renewable energy into various energy systems," Applied Energy, Elsevier, vol. 87(4), pages 1059-1082, April.
    4. Banovac, Eraldo & Glavić, Mevludin & Tešnjak, Sejid, 2009. "Establishing an efficient regulatory mechanism—Prerequisite for successful energy activities regulation," Energy, Elsevier, vol. 34(2), pages 178-189.
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