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Original Articles

Mild Combustion: Process Features and Technological Constrains

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Pages 33-50 | Received 21 Sep 1999, Published online: 17 Sep 2008

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Read on this site (4)

Lin Wang, Zhaohui Liu, Sheng Chen & Chuguang Zheng. (2012) Comparison of Different Global Combustion Mechanisms Under Hot and Diluted Oxidation Conditions. Combustion Science and Technology 184:2, pages 259-276.
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Hamdi Mohamed, Hmaeid Bentîcha & Sassi Mohamed. (2009) Numerical Modeling of the Effects of Fuel Dilution and Strain Rate on Reaction Zone Structure and NOx Formation in Flameless Combustion. Combustion Science and Technology 181:8, pages 1078-1091.
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D. LUPANT*B. PESENTI, P. EVRARD & P. LYBAERT. (2007) NUMERICAL AND EXPERIMENTAL CHARACTERIZATION OF A SELF-REGENERATIVE FLAMELESS OXIDATION BURNER OPERATION IN A PILOT-SCALE FURNACE. Combustion Science and Technology 179:1-2, pages 437-453.
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MAUROA. GALBIATI, ALESSANDRO CAVIGIOLO, ALESSANDRO EFFUGGI, DAVINO GELOSA & RENATO ROTA. (2004) MILD COMBUSTION FOR FUEL-NOx REDUCTION. Combustion Science and Technology 176:7, pages 1035-1054.
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Articles from other publishers (36)

Jordan A.C. Kildare, Michael J. Evans, Zhao Tian & Paul R. Medwell. (2024) Estimation and testing of single-step oxidation reactions for hydrogen and methane in low-oxygen, elevated pressure conditions. Fuel 360, pages 130589.
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Fatemeh Mohammadzadeh Pormehr & Mohammad Zabetian Targhi. (2024) Deflector design to improve internal gas recirculation in a MILD combustion laboratory furnace. Fuel 360, pages 130542.
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Jun Chen, Weidong Fan, Guanyu Feng, Hao Guo & Hai Zhang. (2024) NO emission characteristics of air coflowed non-premixed ammonia jet flame at elevated ambient temperatures and with N2 dilution. Journal of Cleaner Production 435, pages 140463.
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Arthur Péquin, Michael J. Evans, Alfonso Chinnici, Paul R. Medwell & Alessandro Parente. (2023) The reactor-based perspective on finite-rate chemistry in turbulent reacting flows: A review from traditional to low-emission combustion. Applications in Energy and Combustion Science 16, pages 100201.
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Yu Bao, Qingbo Yu, Huaqing Xie, Qin Qin & Yu Zhao. (2023) Effect of H2 and CO in syngas on oxy-MILD combustion. Applied Energy 352, pages 122025.
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Gianluca Rossiello, Muhammad Ali Uzair, Seyed Behzad Ahmadpanah, Lorenzo Morandi, Marzio Ferrara, Gabriele Domenico Rago, Giuseppe Molfetta, Alessandro Saponaro & Marco Torresi. (2023) Design and testing of a Multi-Fuel industrial burner suitable for syn-gases, flare gas and pure hydrogen. Thermal Science and Engineering Progress 42, pages 101845.
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Chunjing Liu, Xiude Hu, Gang Chen & Jianyi Lu. (2022) Temperature and NOx distribution characteristics of coal particles under high-temperature and low-oxygen environments simulating MILD oxy-coal combustion conditions. Journal of the Energy Institute 101, pages 73-86.
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Douglas B Proud, Michael J Evans, Qing N Chan & Paul R Medwell. (2022) Dilute spray flames of ethanol and -heptane in the transition to mild combustion . Combustion and Flame 238, pages 111918.
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Saurabh Sharma & Sudarshan Kumar. 2022. Fundamentals of Low Emission Flameless Combustion and Its Applications. Fundamentals of Low Emission Flameless Combustion and Its Applications 45 79 .
Giancarlo Sorrentino, Giovanni Battista Ariemma, Maria Virginia Manna, Antonio Cavaliere, Pino Sabia, Mara de Joannon & Raffaele Ragucci. 2022. Fundamentals of Low Emission Flameless Combustion and Its Applications. Fundamentals of Low Emission Flameless Combustion and Its Applications 149 180 .
Jingwen Lu, Shuwei Zhang, Longhui Tan & Jianyi Lu. 2022. Clean Coal and Sustainable Energy. Clean Coal and Sustainable Energy 317 326 .
Douglas B. Proud, Michael J. Evans, Paul R. Medwell & Qing N. Chan. (2021) Experimental investigation of the flame structure of dilute sprays issuing into a hot and low-oxygen coflow. Combustion and Flame 230, pages 111439.
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Mohammadreza Zharfa & Nader Karimi. (2021) Intensification of MILD combustion of methane and hydrogen blend by the application of a magnetic field- a numerical study. Acta Astronautica 184, pages 259-268.
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Pino Sabia, Maria Virginia Manna, Raffaele Ragucci & Mara de Joannon. (2020) Mutual inhibition effect of hydrogen and ammonia in oxidation processes and the role of ammonia as “strong” collider in third-molecular reactions. International Journal of Hydrogen Energy 45:56, pages 32113-32127.
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F. Hampp & R.P. Lindstedt. (2020) Quantification of fuel chemistry effects on burning modes in turbulent premixed flames. Combustion and Flame 218, pages 134-149.
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Ziyun Shu, Feifei Wang, Chong Dai, Jicang Si, Bo Wang & Jianchun Mi. (2020) Characteristics of Nitric-Oxide Emissions from Traditional Flame and MILD Combustion Operating in a Laboratory-Scale Furnace. Journal of Thermal Science 29:4, pages 868-883.
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P. Sabia & M. de Joannon. (2020) On H2–O2 oxidation in several bath gases. International Journal of Hydrogen Energy 45:15, pages 8151-8167.
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Junhu Zhou, Guangyi Liu, Zhihua Wang, Weijuan Yang, Jianzhong Liu & Kenfa Cen. (2020) Adiabatic laminar burning velocities of C3H8-O2-CO2 and C3H8-O2-N2 mixtures at ambient conditions-PART I: Experimental and numerical study. Fuel 263, pages 116533.
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Manabendra Saha, Bassam B. Dally, Alfonso Chinnici & Paul R. Medwell. (2019) Effect of co-flow oxygen concentration on the MILD combustion of pulverised coal. Fuel Processing Technology 193, pages 7-18.
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Aizam Shahroni Mohd Arshad, Yuzuru Nada, Yoshiyuki Kidoguchi, Daisuke Asao & Shinichiro Yoshimura. (2019) Rapid emulsification of a fuel–water rapid internal mixing injector for emulsion fuel combustion. Energy 167, pages 35-46.
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Ziqu Ouyang, Wen Liu & Jianguo Zhu. (2017) Flameless combustion behaviour of preheated pulverized coal. The Canadian Journal of Chemical Engineering 96:5, pages 1062-1070.
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Akshay Gopan, Zhiwei Yang, Benjamin M. Kumfer & Richard L. Axelbaum. (2017) Effects of Inert Placement ( Z st ) on Soot and Radiative Heat Flux in Turbulent Diffusion Flames . Energy & Fuels 31:7, pages 7617-7623.
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Pedro N. Alvarado, Luis F. Cardona, Alexander Santamaria, Andres A. Amell & Wilson Ruiz. (2017) Characterization of Coal Combustion in a Hot and Diluted Environment Using a Surface-Stabilized Gas Natural Flame. Energy & Fuels 31:4, pages 4479-4487.
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Manabendra Saha, Bassam B. Dally, Paul R. Medwell & Alfonso Chinnici. (2017) Effect of particle size on the MILD combustion characteristics of pulverised brown coal. Fuel Processing Technology 155, pages 74-87.
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Saeed M. Al-Noman, Sang Kyu Choi & Suk Ho Chung. (2016) Numerical study of laminar nonpremixed methane flames in coflow jets: Autoignited lifted flames with tribrachial edges and MILD combustion at elevated temperatures. Combustion and Flame 171, pages 119-132.
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Saeed M. Al-Noman, Sang Kyu Choi & Suk Ho Chung. (2015) Autoignition characteristics of laminar lifted jet flames of pre-vaporized iso -octane in heated coflow air. Fuel 162, pages 171-178.
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Manabendra Saha, Alfonso Chinnici, Bassam B. Dally & Paul R. Medwell. (2015) Numerical Study of Pulverized Coal MILD Combustion in a Self-Recuperative Furnace. Energy & Fuels 29:11, pages 7650-7669.
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A. A. A. Abuelnuor, M. A. Wahid, H. A. Mohammed & A. Saat. (2014) Flameless combustion role in the mitigation of NO X emission: a review . International Journal of Energy Research 38:7, pages 827-846.
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Zhenfeng MEI, Feifei WANG, Pengfei LI & Jianchun MI. (2013) Diffusion Flame of a CH4/H2 Jet in a Hot Coflow: Effects of Coflow Oxygen and Temperature. Chinese Journal of Chemical Engineering 21:7, pages 787-799.
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Sivaji Seepana & Sreenivas Jayanti. (2012) Flame structure investigations of oxy-fuel combustion. Fuel 93, pages 52-58.
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Pengfei Li, Jianchun Mi, Bassam B. Dally, Richard A. Craig & Feifei Wang. (2011) Premixed Moderate or Intense Low-Oxygen Dilution (MILD) Combustion from a Single Jet Burner in a Laboratory-Scale Furnace. Energy & Fuels 25:7, pages 2782-2793.
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PengFei Li, JianChun Mi, B. B. Dally, FeiFei Wang, Lin Wang, ZhaoHui Liu, Sheng Chen & ChuGuang Zheng. (2011) Progress and recent trend in MILD combustion. Science China Technological Sciences 54:2, pages 255-269.
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Sivaji Seepana & Sreenivas Jayanti. (2009) Flame structure and NO generation in oxy-fuel combustion at high pressures. Energy Conversion and Management 50:4, pages 1116-1123.
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Marco Derudi, Alessandro Villani & Renato Rota. (2007) Sustainability of mild combustion of hydrogen-containing hybrid fuels. Proceedings of the Combustion Institute 31:2, pages 3393-3400.
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N A Warner. (2005) Liquid metal systems for gasification-based power generation. Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy 218:6, pages 387-401.
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Marco Mancini, Roman Weber & Ugo Bollettini. (2002) Predicting NOx emissions of a burner operated in flameless oxidation mode. Proceedings of the Combustion Institute 29:1, pages 1155-1163.
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