This paper reports on a techno-economical parametric analysis of an inlet air cooling system applied to an aero-derivative Gas Turbine (GT) for a combined cycle power plant (CC). The system is based on a cold water thermal storage charged nighttime by mechanical chillers; chilled water is used in the hottest day hours to cool inlet air to the compressor. Three cases have been analyzed, supposing the plant operating in different sites, Phoenix (AZ-USA), New Orleans (LA-USA) and Abu Dhabi (UAE), characterized by quite different climatic conditions. Particular attention was paid to the influence of storage volume and heat exchanger sizing on both energetic and economic performances. Results have been obtained by a numerical code specifically developed to size the inlet air cooling system and to model the whole power plant behavior over the entire year on one hour basis. A 55 MWe combined cycle power plant with a GE LM6000 gas turbine was assumed as a reference case. Operational hours and power output augmentation were higher in hotter climates; wet climates required huge thermal storages, thus increasing the investment cost. The best techno-economic performance is attained for sites with high temperature combined with low relative humidity, typical of desert areas. The parametric analysis showed that the size of cooling storage is a very important parameter for the economical revenue.

(2015). Techno-economic analysis of gas turbine inlet air cooling for combined cycle power plant for different climatic conditions [journal article - articolo]. In APPLIED THERMAL ENGINEERING. Retrieved from http://hdl.handle.net/10446/49915

Techno-economic analysis of gas turbine inlet air cooling for combined cycle power plant for different climatic conditions

BARIGOZZI, Giovanna;PERDICHIZZI, Antonio Giovanni;GRITTI, Carolina;GUAIATELLI, Iacopo
2015-01-01

Abstract

This paper reports on a techno-economical parametric analysis of an inlet air cooling system applied to an aero-derivative Gas Turbine (GT) for a combined cycle power plant (CC). The system is based on a cold water thermal storage charged nighttime by mechanical chillers; chilled water is used in the hottest day hours to cool inlet air to the compressor. Three cases have been analyzed, supposing the plant operating in different sites, Phoenix (AZ-USA), New Orleans (LA-USA) and Abu Dhabi (UAE), characterized by quite different climatic conditions. Particular attention was paid to the influence of storage volume and heat exchanger sizing on both energetic and economic performances. Results have been obtained by a numerical code specifically developed to size the inlet air cooling system and to model the whole power plant behavior over the entire year on one hour basis. A 55 MWe combined cycle power plant with a GE LM6000 gas turbine was assumed as a reference case. Operational hours and power output augmentation were higher in hotter climates; wet climates required huge thermal storages, thus increasing the investment cost. The best techno-economic performance is attained for sites with high temperature combined with low relative humidity, typical of desert areas. The parametric analysis showed that the size of cooling storage is a very important parameter for the economical revenue.
articolo
2015
Barigozzi, Giovanna; Perdichizzi, Antonio Giovanni; Gritti, Carolina; Guaiatelli, Iacopo
(2015). Techno-economic analysis of gas turbine inlet air cooling for combined cycle power plant for different climatic conditions [journal article - articolo]. In APPLIED THERMAL ENGINEERING. Retrieved from http://hdl.handle.net/10446/49915
File allegato/i alla scheda:
File Dimensione del file Formato  
Barigozzi - Techno-economic analysis of gas turbine inlet air cooling.pdf

Solo gestori di archivio

Versione: publisher's version - versione editoriale
Licenza: Licenza default Aisberg
Dimensione del file 3.19 MB
Formato Adobe PDF
3.19 MB Adobe PDF   Visualizza/Apri
Techno-economic analysis of Gas Turbine inlet air cooling for Combined Cycle power plant for different climatic conditions.pdf

Open Access dal 28/02/2017

Versione: postprint - versione referata/accettata senza referaggio
Licenza: Creative commons
Dimensione del file 195.32 kB
Formato Adobe PDF
195.32 kB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

Aisberg ©2008 Servizi bibliotecari, Università degli studi di Bergamo | Terms of use/Condizioni di utilizzo

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10446/49915
Citazioni
  • Scopus 69
  • ???jsp.display-item.citation.isi??? 59
social impact