Microturbines have been developed as an important power unit for distributed generation (DG) or distributed energy resource (DER) options [1]. They have been established and are widely used in aircraft and power applications, due to their easy installation, reliability, high performance, multi-fuel capabilities and low emission [2]. However, the aerothermodynamic design of a radial turbine still poses a challenge due to its high rotational speed and high inlet temperature, which influence the centrifugal stress and the rotor structural integrity. This paper presents the numerical investigations on the aerothermodynamic design of the nozzle and the radial inflow rotor for a 600 kW simple cycle gas turbine engine using a One-dimensional Computer FORTRAN Code (OFC) [3], on the grounds of non-dimensional parameters aimed at computational and work time reduction. This program utilizes a one-dimensional solution of flow conditions through the turbine along the meanline. The referred computer program is an effective performance prediction tool mostly in the initial stage of the preliminary design and can be used to quickly investigate and calculate the number of design options prior to any details of the vane and blade geometry. In order to find the most promising design option, a computational fluid dynamics (CFD) simulation has been used to study the performance, the aerothermodynamic design and the flow characteristics of the turbine components. The OFC results were compared with the CFD simulation, a computer program for the design analysis of radial inflow turbines, and analytical results taken from specialized literature showed the results were in agreement.
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ASME Turbo Expo 2010: Power for Land, Sea, and Air
June 14–18, 2010
Glasgow, UK
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
978-0-7918-4400-7
PROCEEDINGS PAPER
Radial Inflow Turbine One and Tri-Dimensional Design Analysis of 600 kW Simple Cycle Gas Turbine Engine Available to Purchase
Rube´n A. Miranda Carrillo,
Rube´n A. Miranda Carrillo
Universidade Federal de Itajuba´, Itajuba´, MG, Brazil
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Marco A. R. Nascimento,
Marco A. R. Nascimento
Universidade Federal de Itajuba´, Itajuba´, MG, Brazil
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Elkin I. Gutie´rrez Vela´squez,
Elkin I. Gutie´rrez Vela´squez
Universidade Federal de Itajuba´, Itajuba´, MG, Brazil
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Newton R. Moura
Newton R. Moura
Petrobras Research and Development Centre (CENPES), Rio de Janeiro, RJ, Brazil
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Rube´n A. Miranda Carrillo
Universidade Federal de Itajuba´, Itajuba´, MG, Brazil
Marco A. R. Nascimento
Universidade Federal de Itajuba´, Itajuba´, MG, Brazil
Elkin I. Gutie´rrez Vela´squez
Universidade Federal de Itajuba´, Itajuba´, MG, Brazil
Newton R. Moura
Petrobras Research and Development Centre (CENPES), Rio de Janeiro, RJ, Brazil
Paper No:
GT2010-22951, pp. 477-486; 10 pages
Published Online:
December 22, 2010
Citation
Miranda Carrillo, RA, Nascimento, MAR, Gutie´rrez Vela´squez, EI, & Moura, NR. "Radial Inflow Turbine One and Tri-Dimensional Design Analysis of 600 kW Simple Cycle Gas Turbine Engine." Proceedings of the ASME Turbo Expo 2010: Power for Land, Sea, and Air. Volume 5: Industrial and Cogeneration; Microturbines and Small Turbomachinery; Oil and Gas Applications; Wind Turbine Technology. Glasgow, UK. June 14–18, 2010. pp. 477-486. ASME. https://doi.org/10.1115/GT2010-22951
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