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Journal of Engineering for Gas Turbines and Power-transactions of The Asme | 2012

An Expanded Cost of Electricity Model for Highly Flexible Power Plants

S. Can Gülen; Indrajit Mazumder

Cost of electricity (COE) is the most widely used metric to quantify the cost-performance trade-off involved in comparative analysis of competing electric power generation technologies. Unfortunately, the currently accepted formulation of COE is only applicable to comparisons of power plant options with the same annual electric generation (kilowatt-hours) and the same technology as defined by reliability, availability, and operability. Such a formulation does not introduce a big error into the COE analysis when the objective is simply to compare two or more base-loaded power plants of the same technology (e.g., natural gas fired gas turbine simple or combined cycle, coal fired conventional boiler steam turbine, etc.) and the same (or nearly the same) capacity. However, comparing even the same technology class power plants, especially highly flexible advanced gas turbine combined cycle units with cyclic duties, comprising a high number of daily starts and stops in addition to emissions-compliant low-load operation to accommodate the intermittent and uncertain load regimes of renewable power generation (mainly wind and solar) requires a significant overhaul of the basic COE formula. This paper develops an expanded COE formulation by incorporating crucial power plant operability and maintainability characteristics such as reliability, unrecoverable degradation, and maintenance factors as well as emissions into the mix. The core impact of duty cycle on the plant performance is handled via effective output and efficiency utilizing basic performance correction curves. The impact of plant start and load ramps on the effective performance parameters is included. Differences in reliability and total annual energy generation are handled via energy and capacity replacement terms. The resulting expanded formula, while rigorous in development and content, is still simple enough for most feasibility study type of applications. Sample calculations clearly reveal that inclusion (or omission) of one or more of these factors in the COE evaluation, however, can dramatically swing the answer from one extreme to the other in some cases.


Archive | 2009

Pre-heating gas turbine inlet air using an external fired heater and reducing overboard bleed in low-btu applications

Vinod Kumar Baikampady Gopalkrishna; Aslam Basha; Shivaprasad Lokanath; Rajarshi Saha; Indrajit Mazumder


Archive | 2011

Efficient Selective Catalyst Reduction System

Laxmikant Merchant; Rajarshi Saha; Indrajit Mazumder; Vedhanabhatla Sarma; Robert Frank Hoskin; Gilbert Otto Kraemer


Archive | 2012

Gas turbine anti-icing system

Indrajit Mazumder; Rajarshi Saha; Seyfettin Can Gulen; Sabarinath Devarajan; Prashant Kumar


Archive | 2012

SYSTEM FOR CONTROLLING A COOLING FLOW FROM A COMPRESSOR SECTION OF A GAS TURBINE

Rajarshi Saha; Santhosh Donkada; Indrajit Mazumder; Bhasker Pemmi


Archive | 2010

Systems, Methods, and Apparatus for Modifying Power Output and Efficiency of a Combined Cycle Power Plant

Rajarshi Saha; L Shivaprasad; Indrajit Mazumder; Vinod Kumar Baikampady Gopalkrishna


Archive | 2010

HEAT EXCHANGER FOR A COMBINED CYCLE POWER PLANT

Rakesh Sivasankaran; Timothy Russell Bilton; Hatim Khandwavala; Indrajit Mazumder; Ezhil Nargunan


Archive | 2009

Optimization of low-btu fuel-fired combined-cycle power plant by performance heating

Indrajit Mazumder; Rajarshi Saha; Shivaprasad Lokanath; Vinod Kumar Baikampady Gopalkrishna


Archive | 2012

AIR SUPPLY AND CONDITIONING SYSTEM FOR A TURBINE SYSTEM AND METHOD OF SUPPLYING AIR

Rajarshi Saha; Venkateswara Rao Akana; Indrajit Mazumder; Laxmikant Merchant


Archive | 2011

HEAT EXCHANGER FOR COMBINED CYCLE POWER PLANT

Timothy Russell Bilton; Hatim Khandwavala; Indrajit Mazumder; Ezhil Nargunan; Rakesh Sivasankaran; インドラジット・マズムダー; エジール・ナルガナン; ティモシー・ラッセル・ビルトン; ハティム・カンドワヴァラ; ラケッシュ・シヴァサンカラン

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