Combustion Performance in a Semiclosed Cycle Gas Turbine for IGCC Fired With CO-Rich Syngas and Oxy-Recirculated Exhaust Streams

Author:

Hasegawa Takeharu1

Affiliation:

1. Central Research Institute of Electric Power Industry, 2-6-1 Nagasaka, Yokosuka-shi, Kanagawa-ken, 240-0196, Japan

Abstract

Our study found that burning a CO-rich gasified coal fuel, derived from an oxygen–CO2 blown gasifier, with oxygen under stoichiometric conditions in a closed cycle gas turbine produced a highly-efficient, oxy-fuel integrated coal gasification combined cycle (IGCC) power generation system with CO2 capture. We diluted stoichiometric combustion with recycled gas turbine exhaust and adjusted for given temperatures. Some of the exhaust was used to feed coal into the gasifier. In doing so, we found it necessary to minimize not only CO and H2 of unburned fuel constituents but also residual O2, not consumed in the gas turbine combustion process. In this study, we examined the emission characteristics of gasified-fueled stoichiometric combustion with oxygen through numerical analysis based on reaction kinetics. Furthermore, we investigated the reaction characteristics of reactant gases of CO, H2, and O2 remaining in the recirculating gas turbine exhaust using present numerical procedures. As a result, we were able to clarify that since fuel oxidation reaction is inhibited due to reasons of exhaust recirculation and lower oxygen partial pressure, CO oxidization is very sluggish and combustion reaction does not reach equilibrium at the combustor exit. In the case of a combustor exhaust temperature of 1573 K (1300 °C), we estimated that high CO exhaust emissions of about a few percent, in tens of milliseconds, corresponded to the combustion gas residence time in the gas turbine combustor. Combustion efficiency was estimated to reach only about 76%, which was a lower value compared to H2/O2-fired combustion while residual O2 in exhaust was 2.5 vol%, or five times as much as the equilibrium concentration. On the other hand, unburned constituents in an expansion turbine exhaust were slowed to oxidize in a heat recovery steam generator (HRSG) flue processing, and exhaust gases reached equilibrium conditions. In this regard, however, reaction heat in HRSG could not devote enough energy for combined cycle thermal efficiency, making advanced combustion technology necessary for achieving highly efficient, oxy-fuel IGCC.

Publisher

ASME International

Subject

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

Reference24 articles.

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2. Nakao, Y., Koda, E., and Takahaslhi, T.,2009, “Development of CO2 Capture IGCC System—Investigation of Aiming at Higher Efficiency in CO2 Capture IGCC System,” Central Research Institute of Electric Power Industry, Report No. M08006 (in Japanese).

3. Hasegawa, T., Nishida, H., and Inumaru, J.,2011, “Study on Gas Turbine Combustion for Highly Efficient IGCC Power Generation With CO2 Capture—2nd report: Emission Analysis of Gasified-Fueled Gas Turbines With Circulating Exhaust & Stoichiometric Combustion,” Central Research Institute of Electric Power Industry, Report No. M10005 (in Japanese).

4. Kobayashi, M. , and Nunokawa, M., 2010, “Optimization of Dry Desulfurization Process for IGCC Power Generation Capable of Carbon Dioxide Capture—Determination of Carbon Deposition Boundary and Examination of Countermeasure,” Central Research Institute of Electric Power Industry, Report No. M09015 (in Japanese).

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