4.3 Article

Design of a multi-can carbon-free gas turbine combustor utilizing multiple shell-and-tube OTRs for ZEPP applications

期刊

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jngse.2017.06.031

关键词

Oxygen transport reactor (OTR); Gas turbine combustor; Carbon-free; Oxygen permeation; Oxy-fuel combustion; Zero emission power plant (ZEPP)

资金

  1. King Abdulaziz City for Science and Technology (KACST) through the KACST technology innovation center for carbo capture and sequestration at King Fand University of Petroleum Minerals [KACST-TIC-CCS-14]
  2. SABIC project [ME 002394]

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Based on 3-D numerical simulations, the present study presents a design of a multi-can carbon-free gas turbine combustor utilizing multiple oxygen transport reactors (OTRs) of the shell and tube type for zero emission power plant (ZEPP) applications. The design of the gas turbine combustor is calculated based on optimizations of flow configuration (co and counter current), shell side and tube side (feed and sweep) flow rates, inlet fuel concentration in the sweep flow (CH4 plus CO2), and membrane tube diameter, pitch (spacing) and length. High-temperature mixed conducting perovskite-type BSCF (Ba0.5Sr0.5Co0.8Fe0.2O3-delta) ceramic membrane tubes are used considering square arrangement of the tubes. A mesh was developed and used by the ANSYS Fluent software. A modified oxygen permeation equation was utilized accounting for reacting flow and sub-step membrane surface reactions. Series of user defined functions (UDFs) written in C++ code are compiled and hooked to the software to account for oxygen permeation across the membrane. A modified two-step oxy-combustion reaction kinetics mechanism for methane is applied. The results showed that co-current flow configuration can fit better the application of OTR in gas turbine combustion applications. Based on required power output in the range from 10 to 15 MWe, the final design of the gas turbine combustor is calculated to have 16 cans (OTRs) with 3000 membrane tubes per can and volume of 5.2272 m(3) per can. (C) 2017 Elsevier B.V. All rights reserved.

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