Heavy fuel oil pyrolysis and combustion: kinetics and evolved gases investigated by TGA-FTIR
暂无分享,去创建一个
William L. Roberts | Ayman El-Baz | S. Mani Sarathy | Hong G. Im | S. M. Sarathy | Abdul Gani Abdul Jameel | H. Im | W. Roberts | Yunqing Han | Omar Brignoli | Selvedin Telalovic | S. Telalović | A. Jameel | Yunqing Han | Ayman El-Baz | Omar Brignoli | Omar Brignoli
[1] C. W. Siegmund,et al. Influence of heavy fuel oil composition and boiler combustion conditions on particulate emissions. , 1976, Environmental science & technology.
[2] Carlos M. Silva,et al. Chromatographic and spectroscopic analysis of heavy crude oil mixtures with emphasis in nuclear magnetic resonance spectroscopy: a review. , 2011, Analytica chimica acta.
[3] J. Wendt,et al. Fine Particle Emissions from Heavy Fuel Oil Combustion in a Firetube Package Boiler , 1998 .
[4] Jenny M. Jones,et al. The combustion of droplets of high-asphaltene heavy oils , 2013 .
[5] William L. Roberts,et al. Calculation of Average Molecular Parameters, Functional Groups, and a Surrogate Molecule for Heavy Fuel Oils Using 1H and 13C Nuclear Magnetic Resonance Spectroscopy , 2016 .
[6] Camilo A. Franco,et al. Influence of Asphaltene Aggregation on the Adsorption and Catalytic Behavior of Nanoparticles , 2015 .
[7] S. Su,et al. Techniques to determine ignition, flame stability and burnout of blended coals in p.f. power station boilers , 2001 .
[8] Wen-Chen Chang,et al. Low NOx heavy fuel oil combustion with high temperature air , 2007 .
[9] N. Balasubramanian,et al. Treatment of Tannery Effluent Using a Rotating Disc Electrochemical Reactor , 2017, Water environment research : a research publication of the Water Environment Federation.
[10] Xiaoxun Ma,et al. GC-MS and TG-FTIR Study of Petroleum Ether Extract and Residue from Low Temperature Coal Tar , 2011 .
[11] Adel F Sarofim,et al. Pollutant emissions from gasoline combustion. 1. Dependence on fuel structural functionalities. , 2008, Environmental science & technology.
[12] Félix Barreras,et al. Behavior of a High-Capacity Steam Boiler Using Heavy Fuel Oil. Part I: High-temperature Corrosion , 2004 .
[13] Dengyu Chen,et al. Effects of Torrefaction on the Pyrolysis Behavior and Bio-Oil Properties of Rice Husk by Using TG-FTIR and Py-GC/MS , 2014 .
[14] Ryan J. Gillis,et al. Characterization of Macromolecular Structure Elements from a Green River Oil Shale, II. Characterization of Pyrolysis Products by 13C NMR, GC/MS, and FTIR , 2014 .
[15] Jacopo Giuntoli,et al. Quantitative and Kinetic Thermogravimetric Fourier Transform Infrared (TG-FTIR) Study of Pyrolysis of Agricultural Residues: Influence of Different Pretreatments , 2009 .
[16] A. Farshi,et al. SULFUR REDUCTION OF HEAVY FUEL OIL BY OXIDATIVE DESULFURIZATION (ODS) METHOD , 2015 .
[17] K. Miura,et al. A Simple Method for Estimating f(E) and k0(E) in the Distributed Activation Energy Model , 1998 .
[18] A. Ciajolo,et al. Pyrolysis and oxidation of heavy fuel oils and their fractions in a thermogravimetric apparatus , 1984 .
[19] Chun-mei Lu,et al. Comprehensive Investigation of the Thermal Degradation Characteristics of Biodiesel and Its Feedstock Oil through TGA–FTIR , 2015 .
[20] Michael A. Serio,et al. TG-FTIR Study of the Influence of potassium Chloride on Wheat Straw Pyrolysis , 1998 .
[21] Qingfeng Sun,et al. Study on the thermal degradation behaviors and kinetics of alkali lignin for production of phenolic-rich bio-oil using TGA–FTIR and Py–GC/MS , 2016 .
[22] Joseph H. Flynn,et al. General Treatment of the Thermogravimetry of Polymers. , 1966, Journal of research of the National Bureau of Standards. Section A, Physics and chemistry.
[23] Qiang Zhang,et al. The oxidation of heavy oil: Thermogravimetric analysis and non-isothermal kinetics using the distributed activation energy model , 2014 .
[24] R. Villasenor,et al. An experimental study of the effects of asphaltenes on heavy fuel oil droplet combustion , 1999 .
[25] Shadi W. Hasan,et al. Heavy crude oil viscosity reduction and rheology for pipeline transportation , 2010 .
[26] W. Reid,et al. Mechanisms of formation of sulfur oxides in combustion , 1970 .
[27] Effect of heavy fuel oil/natural gas co-combustion on pollutant generation in retrofitted power plant , 2007 .
[28] H. Im,et al. New Procedure to Develop Lumped Kinetic Models for Heavy Fuel Oil Combustion , 2016 .
[29] David L. Urban,et al. New results on coke formation in the combustion of heavy-fuel droplets , 1991 .
[30] P. Koponen,et al. Selective catalytic reduction operation with heavy fuel oil: NOx, NH3, and particle emissions. , 2015, Environmental science & technology.
[31] V. Kampars,et al. Comparative study on thermal pyrolysis of buckwheat and wheat straws by using TGA-FTIR and Py-GC/MS methods , 2017 .
[32] A. Marcilla,et al. TGA/FTIR study of tobacco and glycerol–tobacco mixtures , 2013 .
[33] T. Fletcher,et al. Characterization of Macromolecular Structure of Pyrolysis Products from a Colorado Green River Oil Shale , 2013 .
[34] Nianhua Huang,et al. A TGA-FTIR study on the effect of CaCO3 on the thermal degradation of EBA copolymer , 2009 .
[35] K. Miura. A New and Simple Method to Estimate f(E) and k0(E) in the Distributed Activation Energy Model from Three Sets of Experimental Data , 1995 .
[36] William L. Roberts,et al. TG/DTG, FT-ICR Mass Spectrometry, and NMR Spectroscopy Study of Heavy Fuel Oil , 2015 .
[37] Terry Wall,et al. Computational Fluid Dynamics Modeling of NOx Reduction Mechanism in Oxy-Fuel Combustion† , 2010 .
[38] J. Charland,et al. Application of Thermogravimetric Fourier Transform Infrared Spectroscopy (TG−FTIR) to the Analysis of Oxygen Functional Groups in Coal , 2006 .
[39] R. Balasubramanian,et al. TGA–FTIR investigation of co-combustion characteristics of blends of hydrothermally carbonized oil palm biomass (EFB) and coal , 2014 .
[40] A. Marcilla,et al. TGA/FTIR study of the pyrolysis of diammonium hydrogen phosphate–tobacco mixtures , 2015 .
[41] N. Selçuk,et al. Combustion behaviour of Turkish lignite in O2/N2 and O2/CO2 mixtures by using TGA–FTIR , 2011 .
[42] Olli Sippula,et al. Comparison of particle emissions from small heavy fuel oil and wood-fired boilers , 2009 .
[43] H. L. Friedman,et al. Kinetics of thermal degradation of char-forming plastics from thermogravimetry. Application to a phenolic plastic , 2007 .
[44] A. Pütün,et al. Synthetic fuel production from cottonseed: Fast pyrolysis and a TGA/FT-IR/MS study , 2014 .
[45] S. Mani Sarathy,et al. Predicting Fuel Ignition Quality Using 1H NMR Spectroscopy and Multiple Linear Regression , 2016 .
[46] Paul T. Williams,et al. Pyrolysis of waste materials using TGA-MS and TGA-FTIR as complementary characterisation techniques , 2012 .
[47] Dengyu Chen,et al. Determination of pyrolysis characteristics and kinetics of palm kernel shell using TGA–FTIR and model-free integral methods , 2015 .
[48] N. R. Khalili,et al. PAH source fingerprints for coke ovens, diesel and, gasoline engines, highway tunnels, and wood combustion emissions , 1995 .