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DOE OSTI · 3364021

NG-CT Peaker Upgrades with Bottoming Cycle: Preliminary Analysis

Abstract

The National Energy Technology Laboratory (NETL) has conducted a preliminary analysis exploring a significant opportunity to increase the nation's power grid capacity and reliability. The study focuses on retrofitting under-utilized natural gas combustion turbines (NG-CTs), often called "peaker" plants, with a bottoming cycle to capture waste heat and generate additional electricity. This analysis shows that upgrading these existing assets could add approximately 26,250 MW of new power capacity across the United States. A detailed study of the PJM Interconnection, the nation's largest grid operator, confirmed the benefits of these upgrades. Key findings for the PJM region include: - A median increase in the plants' capacity factor by 17 percentage points. - A projected 36.2% median reduction in the levelized cost of electricity (LCOE) for the upgraded plants, with nearly 88% of them expected to break even. - An average reduction in the regional wholesale price of electricity by approximately 3.0% in the year 2030. - A significant boost to grid reliability, with a 46% reduction in projected Loss of Load Hours (LOLH). These findings suggest that retrofitting peaker plants is a promising and economically viable strategy to enhance grid performance, reduce electricity costs, and meet future demand without the challenges associated with building entirely new facilities.

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BibTeXRIS

Pidaparti, Sandeep [NETL Site Support Contractor, National Energy Technology Laboratory], Kuffour, Joshua [NETL Site Support Contractor, National Energy Technology Laboratory], Willems, Nicholas [NETL Site Support Contractor, National Energy Technology Laboratory], Iyengar, Arun [NETL Site Support Contractor, National Energy Technology Laboratory], Stevens, Robert [NETL] (ORCID:0000000208646768), Labarbara, Kirk [NETL] (ORCID:0009000679420690), Crane, John [NETL], Weiland, Nathan [NETL] (ORCID:0000000193826909). 2026-03-06. NG-CT Peaker Upgrades with Bottoming Cycle: Preliminary Analysis. https://doi.org/10.2172/3364021

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