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Information Journal Paper

Title

PREDICTING CO EMISSION IN A STATIONARY GAS TURBINE COMBUSTOR USING FINITE RATE EDDY DISSIPATION COMBUSTION MODEL

Pages

  33-49

Abstract

 The main objective of the present paper is to predict CO emission in a stationary gas turbine combustor comprising 18 EV BURNERs. To such aim, k-e turbulent model along with FINITE RATE EDDY DISSIPATION COMBUSTION MODEL and a global two- step kinetic mechanism are used to simulate the reacting flow field in the combustor. Primary investigations show that the global two-step mechanism underestimates CO concentration at the combustor outlet by several orders of magnitude. Therefore, the global mechanism is tuned to better capture CO emission. To such aim, temperature exponent of the Arrhenius form of reaction rate is tuned as a function of equivalence ratio. Investigations show that the tuned global mechanism using the present methodology accurately predicts CO emission in the stationary gas turbine at various operating conditions. The obtained results show that modifications of the global mechanism have no effect on the overall flame shape and flame lift- off distance.

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    APA: Copy

    SHAHSAVARI, MOHAMMAD, SOROUDI, MOHAMMAD ALI, YAZDANI, MOOSA, MONTAZERINEJAD, SARA, & BAGHERI, YOUSEF. (2018). PREDICTING CO EMISSION IN A STATIONARY GAS TURBINE COMBUSTOR USING FINITE RATE EDDY DISSIPATION COMBUSTION MODEL. FUEL AND COMBUSTION, 10(3 ), 33-49. SID. https://sid.ir/paper/138635/en

    Vancouver: Copy

    SHAHSAVARI MOHAMMAD, SOROUDI MOHAMMAD ALI, YAZDANI MOOSA, MONTAZERINEJAD SARA, BAGHERI YOUSEF. PREDICTING CO EMISSION IN A STATIONARY GAS TURBINE COMBUSTOR USING FINITE RATE EDDY DISSIPATION COMBUSTION MODEL. FUEL AND COMBUSTION[Internet]. 2018;10(3 ):33-49. Available from: https://sid.ir/paper/138635/en

    IEEE: Copy

    MOHAMMAD SHAHSAVARI, MOHAMMAD ALI SOROUDI, MOOSA YAZDANI, SARA MONTAZERINEJAD, and YOUSEF BAGHERI, “PREDICTING CO EMISSION IN A STATIONARY GAS TURBINE COMBUSTOR USING FINITE RATE EDDY DISSIPATION COMBUSTION MODEL,” FUEL AND COMBUSTION, vol. 10, no. 3 , pp. 33–49, 2018, [Online]. Available: https://sid.ir/paper/138635/en

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