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.2,Bianchi M.3,Melino F.3,Peretto A.3,Ingistov S.4

Affiliation:

1. 22515 Holly Lake Drive, Katy, TX 77450

2. Bechtel Corporation, 3000 Post Oak Boulevard, Houston, TX 77056

3. University of Bologna, DIEM, Facolta di Ingegneria, Viale Risorgimento 2, Bologna 40136, Italy

4. Watson Cogeneration Co./BP, 11850 S. Wilmington Avenue, P. O. Box 6203, Carson, CA 90749

Abstract

Ambient temperature strongly influences gas turbine power output causing a reduction of around 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 becomes 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, experimental, and practical aspects including climatic and psychrometric aspects of high-pressure inlet evaporative fogging technology is provided. A discussion of analytical and experimental results relating to droplets dynamics, factors affecting droplets size, and inlet duct configuration effects on inlet evaporative fogging is covered in this paper. Characteristics of commonly used fogging nozzles are also described and experimental findings presented.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference23 articles.

1. Global Energy Resources, Power Generation and Gas Turbine Market - Recent Trends;Bhargava

2. Parametric Analysis of Existing Gas Turbines with Inlet Evaporative and Overspray Fogging;Bhargava;ASME J. Eng. Gas Turbines Power

3. Gas Turbine Fogging Technology: A State-of-the-Art Review—Part II: Overspray Fogging—Analytical and Experimental Aspects;Bhargava;ASME J. Eng. Gas Turbines Power

4. Gas Turbine Fogging Technology: A State-of-the-Art Review—Part III: Practical Considerations and Operational Experience;Bhargava;ASME J. Eng. Gas Turbines Power

5. Gas Turbine Power Augmentation by Fogging of Inlet Air;Meher-Homji

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