799
Views
60
CrossRef citations to date
0
Altmetric
Original Articles

Mild Combustion of Methane-Derived Fuel Mixtures: Natural Gas and Biogas

, , &
Pages 481-493 | Published online: 23 Jan 2008

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (2)

Asif Hoda, Tariq M. R. Rahman, Waqar Asrar & Sher Afghan Khan. (2022) A Comparative Study of Natural Gas and Biogas Combustion in A Swirling Flow Gas Turbine Combustor. Combustion Science and Technology 194:13, pages 2613-2640.
Read now
Seyed Ehsan Hosseini & Mazlan Abdul Wahid. (2015) Effects of Burner Configuration on the Characteristics of Biogas Flameless Combustion. Combustion Science and Technology 187:8, pages 1240-1262.
Read now

Articles from other publishers (58)

Jian Jiao, Wang Yungang, Liu Yufei, Zhang Xingbang & Zhao Qinxin. (2023) Study on combustion characteristics of fully premixed water-cooled biogas burner. Case Studies in Thermal Engineering 52, pages 103669.
Crossref
A K Khodir, S M El-Behery & A H Elaskary. (2023) Numerical study of inlet air conditions on methane flameless combustion characteristics. Journal of Physics: Conference Series 2616:1, pages 012019.
Crossref
Byoung-Hwa Lee, Yoon-Ho Bae, Si-Hyun Cho, Gyeong-Min Kim & Chung-Hwan Jeon. (2023) Comprehensive technical review for fundamental characteristics and application of NH3 co-firing with coal. Chemical Engineering Journal 474, pages 145587.
Crossref
Khurshid Ahmad, Shreshtha Kumar Gupta & Vaibhav Kumar Arghode. (2023) Investigation of a low emission peripheral vortex reverse flow (PVRF) combustor fuelled by LPG and ethylene. Journal of the Energy Institute 108, pages 101200.
Crossref
Payal Tyagi, Devender Singh, Neeti Malik, Sumit Kumar & Rajender Singh Malik. (2023) Metal catalyst for CO2 capture and conversion into cyclic carbonate: Progress and challenges. Materials Today 65, pages 133-165.
Crossref
Yunting Yang, Jiachen Jiang, Jiafu Zeng, Zhangxiong Chen, Xiaosong Zhu & Yiwei Shi. (2023) CH4, C2H6, and CO2 Multi-Gas Sensing Based on Portable Mid-Infrared Spectroscopy and PCA-BP Algorithm. Sensors 23:3, pages 1413.
Crossref
Abdelgader A. S. Gheidan, Mazlan Bin Abdul Wahid & Anthony C. Opia. Flameless combustion mode as a promising trend: A review on its fundamental, role towards emissions reduction, fuel consumption and performance enhancement. Flameless combustion mode as a promising trend: A review on its fundamental, role towards emissions reduction, fuel consumption and performance enhancement.
M. Norhafana, C. K. Ihsan, M. M. Noor, A. A. Hairuddin, K. Kadirgama & D. Ramasamy. 2023. Technological Advancement in Mechanical and Automotive Engineering. Technological Advancement in Mechanical and Automotive Engineering 75 88 .
Hernando A. Yepes, Julián E. Obando & Andrés A. Amell. (2022) The effect of syngas addition on flameless natural gas combustion in a regenerative furnace. Energy 252, pages 124008.
Crossref
Mingli Zou, Liqun Sun & Xuan Wang. (2022) CH4/C2H6 dual-gas sensing system based on wavelength modulation spectroscopy using a single near infrared laser. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 272, pages 120970.
Crossref
Shuo TIAN, Noriaki NAKATSUKA, Tsukasa HORI, Jun HAYASHI & Fumiteru AKAMATSU. (2022) The research on NO generation mechanism in MILD combustion of primary combustion gas of waste incinerator by NO-LIF methodNO-LIF法を用いた都市ごみ焼却炉一次燃焼ガスに対するMILD Combustion状態の燃焼場におけるNO生成機構に関する研究. Transactions of the JSME (in Japanese) 88:910, pages 22-00068-22-00068.
Crossref
Yaxin Su & Bingtao Zhao. 2022. Fundamentals of Low Emission Flameless Combustion and Its Applications. Fundamentals of Low Emission Flameless Combustion and Its Applications 81 117 .
Pino Sabia, Giancarlo Sorrentino, Giovanni B. Ariemma, Maria V. Manna, Raffaele Ragucci & Mara de Joannon. (2021) MILD Combustion and Biofuels: A Minireview. Energy & Fuels 35:24, pages 19901-19919.
Crossref
Muhammed S. Abdallah, Mohy S. Mansour & Nageh K. Allam. (2021) Mapping the stability of free-jet biogas flames under partially premixed combustion. Energy 220, pages 119749.
Crossref
Shuo TIAN, Noriaki NAKATSUKA, Tsukasa HORI, Jun HAYASHI & Fumiteru AKAMATSU. (2021) The research on NOx formation in MILD combustion of primary combustion gas in waste incinerator都市ごみ焼却炉一次燃焼ガスに対するMILD combustion状態の火炎のNOx生成特性に関する研究. Transactions of the JSME (in Japanese) 87:900, pages 21-00130-21-00130.
Crossref
Mohy S. Mansour, Muhammed S. Abdallah, Nageh K. Allam, A.M. Ibrahim, Alaa M. Khedr, Hazem M. Al-Bulqini & Mohamed F. Zayed. (2020) Biogas production enhancement using nanocomposites and its combustion characteristics in a concentric flow slot burner. Experimental Thermal and Fluid Science 113, pages 110014.
Crossref
Xuebin Wang, Jiaye Zhang, Xinwei Xu, Hrvoje Mikulčić, Yan Li, Yuegui Zhou & Houzhang Tan. (2020) Numerical study of biomass Co-firing under Oxy-MILD mode. Renewable Energy 146, pages 2566-2576.
Crossref
Lemthong Chanphavong & Z.A. Zainal. (2019) Characterization and challenge of development of producer gas fuel combustor: A review. Journal of the Energy Institute 92:5, pages 1577-1590.
Crossref
Hernando A. Yepes, Carlos E. Arrieta & Andres A. Amell. (2019) Combustión sin llama como una alternativa para mejorar la eficiencia de sistemas térmicos: revisión del estado del arte. TecnoLógicas 22:46, pages 115-154.
Crossref
Marco Derudi & Renato Rota. (2019) 110th Anniversary : MILD Combustion of Liquid Hydrocarbon–Alcohol Blends . Industrial & Engineering Chemistry Research 58:32, pages 15061-15068.
Crossref
Shreshtha Kumar Gupta & Vaibhav Kumar Arghode. (2019) Investigation of a reverse-cross flow combustor with varying fuel injection momentum. Thermal Science and Engineering Progress 10, pages 232-244.
Crossref
Xing Tian, Yuan Cao, Jiajin Chen, Kun Liu, Guishi Wang, Tu Tan, Jiaoxu Mei, Weidong Chen & Xiaoming Gao. (2019) Dual-Gas Sensor of CH4/C2H6 Based on Wavelength Modulation Spectroscopy Coupled to a Home-Made Compact Dense-Pattern Multipass Cell. Sensors 19:4, pages 820.
Crossref
A. Chinnici, G.J. Nathan & B.B. Dally. (2018) Combined solar energy and combustion of hydrogen-based fuels under MILD conditions. International Journal of Hydrogen Energy 43:43, pages 20086-20100.
Crossref
Mina Mehregan & Mohammad Moghiman. (2018) A numerical investigation of preheated diluted oxidizer influence on NOx emission of biogas flameless combustion using Taguchi approach. Fuel 227, pages 1-5.
Crossref
Kin-Pang Cheong, Guochang Wang, Jianchun Mi, Bo Wang, Rong Zhu & Wei Ren. (2018) Premixed MILD Combustion of Propane in a Cylindrical Furnace with a Single Jet Burner: Combustion and Emission Characteristics. Energy & Fuels 32:8, pages 8817-8829.
Crossref
Lemthong Chanphavong, Zainal Alimuddin Zainal, Tsuneyoshi Matsuoka & Yuji Nakamura. (2018) Simulation of producer gas flameless combustion with fresh reactant diluted by hot flue gas. International Journal of Energy Research 42:10, pages 3218-3227.
Crossref
X. Jiang, D. Mira & D.L. Cluff. (2018) The combustion mitigation of methane as a non-CO 2 greenhouse gas. Progress in Energy and Combustion Science 66, pages 176-199.
Crossref
M.J. Evans, A. Chinnici, P.R. Medwell & J. Ye. (2017) Ignition features of methane and ethylene fuel-blends in hot and diluted coflows. Fuel 203, pages 279-289.
Crossref
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.
Crossref
Ruochen Liu, Enke An, Kun Wu & Zeqing Liu. (2017) Numerical simulation of oxy-coal MILD combustion with high-velocity oxygen jets. Journal of the Energy Institute 90:1, pages 30-43.
Crossref
Kareem I. Khidr, Yehia A. Eldrainy & Mohamed M. EL-Kassaby. (2017) Towards lower gas turbine emissions: Flameless distributed combustion. Renewable and Sustainable Energy Reviews 67, pages 1237-1266.
Crossref
Yaming Liu, Sheng Chen, Shi Liu, Yongxin Feng, Kai Xu & Chuguang Zheng. (2016) Methane combustion in various regimes: First and second thermodynamic-law comparison between air-firing and oxyfuel condition. Energy 115, pages 26-37.
Crossref
Manabendra Saha, Bassam B. Dally, Paul R. Medwell & Alfonso Chinnici. (2016) Burning characteristics of Victorian brown coal under MILD combustion conditions. Combustion and Flame 172, pages 252-270.
Crossref
Kamil Kwiatkowski & Epaminondas Mastorakos. (2016) Regimes of Nonpremixed Combustion of Hot Low-Calorific-Value Gases Derived from Biomass Gasification. Energy & Fuels 30:6, pages 4386-4397.
Crossref
Wojciech M. Budzianowski. (2016) A review of potential innovations for production, conditioning and utilization of biogas with multiple-criteria assessment. Renewable and Sustainable Energy Reviews 54, pages 1148-1171.
Crossref
Yaming Liu, Sheng Chen, Bo Yang, Kai Liu & Chuguang Zheng. (2015) First and second thermodynamic-law comparison of biogas MILD oxy-fuel combustion moderated by CO2 or H2O. Energy Conversion and Management 106, pages 625-634.
Crossref
Jingjing Ye, Paul R. Medwell, Emilien Varea, Stephan Kruse, Bassam B. Dally & Heinz G. Pitsch. (2015) An experimental study on MILD combustion of prevaporised liquid fuels. Applied Energy 151, pages 93-101.
Crossref
Seyed Ehsan Hosseini & Mazlan Abdul Wahid. (2014) Development of biogas combustion in combined heat and power generation. Renewable and Sustainable Energy Reviews 40, pages 868-875.
Crossref
Seyed Ehsan Hosseini & Mazlan Abdul Wahid. (2014) Enhancement of exergy efficiency in combustion systems using flameless mode. Energy Conversion and Management 86, pages 1154-1163.
Crossref
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.
Crossref
P. Li, F. Wang, Y. Tu, Z. Mei, J. Zhang, Y. Zheng, H. Liu, Z. Liu, J. Mi & C. Zheng. (2014) Moderate or Intense Low-Oxygen Dilution Oxy-combustion Characteristics of Light Oil and Pulverized Coal in a Pilot-Scale Furnace. Energy & Fuels 28:2, pages 1524-1535.
Crossref
V. Mahendra Reddy, Pratim Biswas, Prateek Garg & Sudarshan Kumar. (2014) Combustion characteristics of biodiesel fuel in high recirculation conditions. Fuel Processing Technology 118, pages 310-317.
Crossref
Mario Sánchez, Francisco Cadavid & Andrés Amell. (2013) Experimental evaluation of a 20kW oxygen enhanced self-regenerative burner operated in flameless combustion mode. Applied Energy 111, pages 240-246.
Crossref
Alexey Sepman, Ebrahim Abtahizadeh, Anatoli Mokhov, Jeroen van Oijen, Howard Levinsky & Philip de Goey. (2013) Experimental and numerical studies of the effects of hydrogen addition on the structure of a laminar methane–nitrogen jet in hot coflow under MILD conditions. International Journal of Hydrogen Energy 38:31, pages 13802-13811.
Crossref
Seyed Ehsan Hosseini & Mazlan Abdul Wahid. (2013) Biogas utilization: Experimental investigation on biogas flameless combustion in lab-scale furnace. Energy Conversion and Management 74, pages 426-432.
Crossref
Seyed Ehsan Hosseini, Mazlan A. Wahid & Saber Salehirad. (2013) Environmental Protection and Fuel Consumption Reduction by Flameless Combustion Technology: A Review. Applied Mechanics and Materials 388, pages 292-297.
Crossref
Seyed Ehsan Hosseini, Mazlan A. Wahid & Abuelnuor Abdeen Ali Abuelnuor. (2013) Biogas Flameless Combustion: A Review. Applied Mechanics and Materials 388, pages 273-279.
Crossref
Pengfei Li, Bassam B. Dally, Jianchun Mi & Feifei Wang. (2013) MILD oxy-combustion of gaseous fuels in a laboratory-scale furnace. Combustion and Flame 160:5, pages 933-946.
Crossref
Xiao Liu & Hongtao Zheng. (2013) Numerical Simulation of Air Inlet Conditions Influence on the Establishment of MILD Combustion in Stagnation Point Reverse Flow Combustor. Mathematical Problems in Engineering 2013, pages 1-9.
Crossref
Pino Sabia, Mariarosaria de Joannon, Antonio Picarelli & Raffaele Ragucci. (2013) Methane auto-ignition delay times and oxidation regimes in MILD combustion at atmospheric pressure. Combustion and Flame 160:1, pages 47-55.
Crossref
Paul R. Medwell & Bassam B. Dally. (2012) Effect of fuel composition on jet flames in a heated and diluted oxidant stream. Combustion and Flame 159:10, pages 3138-3145.
Crossref
Paul R. Medwell & Bassam B. Dally. (2012) Experimental Observation of Lifted Flames in a Heated and Diluted Coflow. Energy & Fuels 26:9, pages 5519-5527.
Crossref
Javad Aminian, Shahrokh Shahhosseini & Mahmoud Bayat. (2012) Numerical investigation of the application of high temperature air combustion in an industrial furnace. Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy 226:5, pages 694-705.
Crossref
Shan Cheng, Donglin Chen, Ying Yun & Tao Deng. (2012) Design and Numerical Simulation of a Multi-Stage Self-Preheating Burner for a Recuperative Furnace. Design and Numerical Simulation of a Multi-Stage Self-Preheating Burner for a Recuperative Furnace.
A. S. Veríssimo, A. M. A. Rocha & M. Costa. (2011) Operational, Combustion, and Emission Characteristics of a Small-Scale Combustor. Energy & Fuels 25:6, pages 2469-2480.
Crossref
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.
Crossref
Marco Derudi & Renato Rota. (2011) Experimental study of the mild combustion of liquid hydrocarbons. Proceedings of the Combustion Institute 33:2, pages 3325-3332.
Crossref
Bassam. B. Dally, Sung Hoon Shim, Richard. A. Craig, Peter J. Ashman & George G. Szegö. (2010) On the Burning of Sawdust in a MILD Combustion Furnace. Energy & Fuels 24:6, pages 3462-3470.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.