Gas Turbine Fogging Technology — A State-of-the-Art Review: Part I — Inlet Evaporative Fogging, Analytical and Experimental Aspects

Author:

Bhargava R. K.1,Meher-Homji C. B.2,Chaker M. A.3,Bianchi M.4,Melino F.4,Peretto A.4,Ingistov S.5

Affiliation:

1. Jacobs Engineering Group, Inc., Houston, TX

2. Bechtel Corporation

3. Mee Industries, Inc., Monrovia, CA

4. University of Bologna, Bologna, Italy

5. WCC/BP, Carson, CA

Abstract

Ambient temperature strongly influences gas turbine power output causing a reduction of between 0.50% to 0.90% for every 1°C of temperature rise. There is also a significant increase in the gas turbine heat rate as the ambient temperature rises, resulting in an increased operating cost. As the increase in power demand is usually coincident with high ambient temperature, power augmentation during the hot part of the day become important for independent power producers, cogenerators and electric utilities. Evaporative and overspray fogging are simple, proven and cost effective approaches for recovering lost gas turbine performance. A comprehensive review of the current understanding of the analytical and experimental and practical aspects of high-pressure inlet fogging technology is provided. A discussion of analytical and experimental results relating to droplet dynamics, factors affecting droplet size, and inlet configuration effects on inlet evaporative fogging are covered in this paper. Commonly used fogging nozzles are also described and experimental findings presented.

Publisher

ASMEDC

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Einfluss von Wassertropfen oder Partikeln in der Verdichterluft;Aerodynamik axialer Turbokompressoren;2020

2. Experimental Investigation on Characteristics of Liquid Film at Different Angle of Attack;International Journal of Gas Turbine, Propulsion and Power Systems;2017

3. After fogging process in water injected gas turbine systems;Heat and Mass Transfer;2013-08-20

4. Analysis of water droplet evaporation in a gas turbine inlet fogging process;Applied Thermal Engineering;2012-02

5. The Influence of Inlet Fogging for the Stable Range in a Transonic Compressor Stage;Journal of Engineering for Gas Turbines and Power;2011-12-20

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