Flow properties of ash and slag under co-gasification of coal and extract residue of direct coal liquefaction residue
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Dapeng Bi | Xiaoyang Cao | A. Szlek | Zhen Liu | J. Bai | Zefeng Ge | W. Li | Zongqing Bai | Lingxue Kong | Ziyang Feng | B. Peng | Huai-zhu Li | A. Szlęk
[1] B. Meyer,et al. Effect of CaO/Fe2O3 ratio on slag viscosity behavior under entrained flow gasification conditions , 2019 .
[2] B. Meyer,et al. The role of residual char on ash flow behavior, Part 2: Effect of SiO2/Al2O3 on ash fusibility and carbothermal reaction , 2019, Fuel.
[3] B. Meyer,et al. The role of residual char on ash flow behavior, Part 3: Effect of Fe2O3 content on ash fusibility and carbothermal reaction , 2019 .
[4] Xiaoxun Ma,et al. Co-pyrolysis characteristics and interaction route between low-rank coals and Shenhua coal direct liquefaction residue , 2019, Chinese Journal of Chemical Engineering.
[5] Bing Yu,et al. Investigation on improve ash fusion temperature (AFT) of low-AFT coal by biomass addition , 2019, Fuel Processing Technology.
[6] Xiaoyang Cao,et al. Effects of atmosphere on the oxidation state of iron and viscosity behavior of coal ash slag , 2019, Fuel.
[7] Xianyong Wei,et al. Structural features of liquefaction residue from Shenmu-Fugu subbituminous coal , 2019, Fuel.
[8] Michael Müller,et al. Slag mobility in entrained flow gasifiers optimized using a new reliable viscosity model of iron oxide-containing multicomponent melts , 2019, Applied Energy.
[9] Xiaoyang Cao,et al. Effect of water vapor on coal ash slag viscosity under gasification condition , 2019, Fuel.
[10] C. He,et al. Effect of CaO/Na2O on slag viscosity behavior under entrained flow gasification conditions , 2018, Fuel Processing Technology.
[11] Guangsuo Yu,et al. In-situ atomization and flame characteristics of coal water slurry in an impinging entrained-flow gasifier , 2018, Chemical Engineering Science.
[12] S. Nath. Geopolymerization behavior of ferrochrome slag and fly ash blends , 2018, Construction and Building Materials.
[13] Zhen Liu,et al. Coal ash fusion properties from molecular dynamics simulation: the role of calcium oxide , 2018 .
[14] Xin Dai,et al. The key for sodium-rich coal utilization in entrained flow gasifier: The role of sodium on slag viscosity-temperature behavior at high temperatures , 2017 .
[15] A. Huang,et al. Utilization of incineration fly ash from biomass power plants for zeolite synthesis from coal fly ash by microwave hydrothermal treatment , 2017 .
[16] Jiansheng Zhang,et al. Crystallization characteristics prediction of coal slags based on SiO2.Al2O3.CaO.Fe2O3.MgO components , 2017 .
[17] J. Bai,et al. Study on fusibility of coal ash rich in sodium and sulfur by synthetic ash under different atmospheres , 2017 .
[18] Xianyong Wei,et al. Extraction of direct coal liquefaction residue using dipropylamine as a CO2-triggered switchable solvent , 2017 .
[19] J. Bai,et al. Effect of SiO2/Al2O3 on fusion behavior of coal ash at high temperature , 2017 .
[20] Lei Shi,et al. Preparation and desulfurization kinetics of activated carbons from semi-coke of coal liquefaction residual , 2017, Journal of Thermal Analysis and Calorimetry.
[21] Xin Dai,et al. Physico-chemical structure and combustion properties of chars derived from co-pyrolysis of lignite with direct coal liquefaction residue , 2017 .
[22] Dongmei Lv,et al. Properties of direct coal liquefaction residue water slurry: Effect of treatment by low temperature pyrolysis , 2016 .
[23] Yong Yang,et al. Extracting Coal Liquids from Direct Coal Liquefaction Residue Using Subcritical Water , 2016 .
[24] Yue Shi,et al. Viscosity of coal ash slag containing vanadium and nickel , 2015 .
[25] H. Sohn,et al. Analysis of Slag Chemistry by FTIR‐RAS and Raman Spectroscopy: Effect of Water Vapor Content in H2H2OCOCO2 Mixtures Relevant to a Novel Green Ironmaking Technology , 2015 .
[26] Kefa Cen,et al. Effect of temperature on the sintering behavior of Zhundong coal ash in oxy-fuel combustion atmosphere , 2015 .
[27] Li Wen,et al. Transformation of minerals in direct coal liquefaction residue under gasification atmosphere at high temperatures , 2015 .
[28] Fuchen Wang,et al. Slag properties of blending coal in an industrial OMB coal water slurry entrained-flow gasifier , 2014 .
[29] J. Bai,et al. Improvement of ash flow properties of low-rank coal for entrained flow gasifier , 2014 .
[30] Xiangping Zhang,et al. Efficiently trapping asphaltene-type materials from direct coal liquefaction residue using alkylsulfate-based ionic liquids , 2013 .
[31] Haoquan Hu,et al. Hierarchical porous carbon catalyst for simultaneous preparation of hydrogen and fibrous carbon by catalytic methane decomposition , 2013 .
[32] A. Ilyushechkin,et al. Viscosity of High-Iron Slags from Australian Coals , 2013 .
[33] D. G. Roberts,et al. The effect of solids and phase compositions on viscosity behaviour and TCV of slags from Australian bituminous coals , 2011 .
[34] Nobusuke Kobayashi,et al. Main mineral melting behavior and mineral reaction mechanism at molecular level of blended coal ash under gasification condition , 2010 .
[35] Zhenyu Liu,et al. Hydrogenation of heavy liquids from a direct coal liquefaction residue for improved oil yield , 2009 .
[36] Yuzhen Zhang,et al. Novel Use of Residue from Direct Coal Liquefaction Process , 2009 .
[37] Yufeng Sun,et al. Preparation of carbon microfibers from coal liquefaction residue , 2008 .
[38] Beatrice Coda,et al. Slagging Behavior of Wood Ash under Entrained-Flow Gasification Conditions , 2007 .
[39] A. Minchener,et al. Coal gasification for advanced power generation , 2005 .
[40] Zhenyu Liu,et al. Characteristics of residues from thermal and catalytic coal hydroliquefaction , 2003 .
[41] A. Quintanar,et al. Viscosity measurements and empirical predictions for some model gasifier slags-II , 1999 .