Thermal regeneration characteristics of titanium isopropoxide-modified TiO_2 for the removal of environmentally hazardous NO_x in iron ore sintering process
暂无分享,去创建一个
[1] Byong-Hun Jeon,et al. Hydrogen generation from gasification of woody biomass upon acid mine drainage sludge as a novel catalyst under an air medium , 2023, Fuel.
[2] Wei-hsin Chen,et al. Thermocatalytic conversion of wood-plastic composite over HZSM-5 catalysts. , 2023, Bioresource technology.
[3] Wei-hsin Chen,et al. Microalgae gasification over Ni loaded perovskites for enhanced biohydrogen generation. , 2023, Bioresource technology.
[4] P. Show,et al. H2 generation from steam gasification of swine manure over nickel-loaded perovskite oxides catalysts. , 2022, Environmental research.
[5] F. Jamil,et al. Valorization of lignocellulosic rice husk producing biosilica and biofuels—a review , 2022, Journal of Physics: Energy.
[6] Wei-hsin Chen,et al. Household Food Waste Conversion to Biohydrogen via Steam Gasification over Copper and Nickel-loaded SBA-15 catalysts. , 2022, Bioresource technology.
[7] Jechan Lee,et al. Simultaneous Upcycling of Biodegradable Plastic and Sea Shell Wastes Through Thermocatalytic Monomer Recovery , 2022, ACS Sustainable Chemistry & Engineering.
[8] Shilin Zhao,et al. Poisoning and regeneration of commercial V2O5-WO3/TiO2 selective catalytic reduction (SCR) catalyst in coal-fired power plants , 2022, Process Safety and Environmental Protection.
[9] Wei-hsin Chen,et al. Recent achievements in platform chemical production from food waste. , 2022, Bioresource technology.
[10] Wenju Jiang,et al. The multi-metal oxides blended activated coke for efficient NH3-SCR at super low-temperature , 2022, Journal of Environmental Chemical Engineering.
[11] Wei-hsin Chen,et al. Valorization of biomass through gasification for green hydrogen generation: A comprehensive review. , 2022, Bioresource technology.
[12] A. Al-Muhtaseb,et al. A review on catalysts of biodiesel (methyl esters) production , 2022, Catalysis Reviews.
[13] Jung Yoon Seo,et al. Production of biochar from crop residues and its application for biofuel production processes - An overview. , 2022, Bioresource technology.
[14] S. Jeong,et al. The effect of CNTs on V-Ce/TiO2 for low-temperature selective catalytic reduction of NO , 2022, Korean Journal of Chemical Engineering.
[15] Soheil Valizadeh,et al. Production of aromatics fuel additives from catalytic pyrolysis of cow manure over HZSM-5, HBeta, and HY zeolites , 2022, Chemical Engineering Journal.
[16] Byong-Hun Jeon,et al. MgO-modified activated biochar for biojet fuels from pyrolysis of sawdust on a simple tandem micro-pyrolyzer. , 2022, Bioresource technology.
[17] Hyungseok Nam,et al. Recent progress in the catalytic thermochemical conversion process of biomass for biofuels , 2022, Chemical Engineering Journal.
[18] Ling Wei,et al. Chemical deactivation and resistance of Mn-based SCR catalysts for NOx removal from stationary sources , 2022, Fuel.
[19] Ki-Joon Jeon,et al. Recent advances in wide solar spectrum active W18O49-based photocatalysts for energy and environmental applications , 2022, Catalysis Reviews.
[20] Byong-Hun Jeon,et al. Technical benefits of using methane as a pyrolysis medium for catalytic pyrolysis of Kraft Lignin. , 2022, Bioresource technology.
[21] Rui Wu,et al. Low-Temperature SCR Catalyst Development and Industrial Applications in China , 2022, Catalysts.
[22] G. Ou,et al. Numerical study of fly ash deposition process in low temperature economizer under SCR conditions , 2022, Korean Journal of Chemical Engineering.
[23] Hong-Dae Kim,et al. Selective catalytic reduction of NO by NH3 over V2O5-WO3 supported by titanium isopropoxide (TTIP)-treated TiO2 , 2022, Journal of Industrial and Engineering Chemistry.
[24] Jia Hou,et al. Removal of NO by carbon-based catalytic reduction bed loaded with Mn induced by dielectric barrier discharge at low temperature , 2022, Environmental Engineering Research.
[25] Young‐Kwon Park,et al. Achievements in the production of bioplastics from microalgae , 2022, Phytochemistry Reviews.
[26] G. Rhee,et al. Mini review on H2 production from electrochemical water splitting according to special nanostructured morphology of electrocatalysts , 2022, Fuel.
[27] Wei-hsin Chen,et al. Biohydrogen Production from Furniture Waste via Catalytic Gasification in Air over Ni-loaded Ultra-stable Y-type Zeolite , 2021, Chemical Engineering Journal.
[28] Young‐Kwon Park,et al. Catalytic removal of volatile organic compounds using black mass from spent batteries , 2021, Korean Journal of Chemical Engineering.
[29] Hyungseok Nam,et al. Recent advances of thermochemical conversieon processes for biorefinery. , 2021, Bioresource technology.
[30] E. Kwon,et al. Chemical recycling of plastic waste via thermocatalytic routes , 2021, Journal of Cleaner Production.
[31] T. Iqbal,et al. Review on the progress in emission control technologies for the abatement of CO2, SOx and NOx from fuel combustion , 2021 .
[32] Daniel C W Tsang,et al. Fast Hydropyrolysis of Biomass Conversion: A Comparative Review. , 2021, Bioresource Technology.
[33] Wenshu Yang,et al. Development of highly efficient solid acid catalysts supported on mesoporous KIT-6 for esterification of oleic acid , 2021, Korean Journal of Chemical Engineering.
[34] Fengqi Si,et al. Combined effects of yaw and tilt angles of separated overfire air on the combustion characteristics in a 1,000 MW coal-fired boiler: A numerical study , 2021, Korean Journal of Chemical Engineering.
[35] Yu Zhang,et al. Recent advances in heighten sulfur resistance of SCR catalysts: A review , 2021 .
[36] Jingfang Sun,et al. Conquering ammonium bisulfate poison over low-temperature NH3-SCR catalysts: A critical review , 2021 .
[37] Young‐Kwon Park,et al. Development of PM10 and PM2.5 cyclones for small sampling ports at stationary sources: Numerical and experimental study. , 2020, Environmental research.
[38] Yi He,et al. In situ treatment by high-temperature water vapor as a novel health-care approach for commercial SCR catalyst , 2020 .
[39] Ke-song Xiao,et al. Modification of V2O5-WO3/TiO2 Catalyst by Loading of MnOx for Enhanced Low-Temperature NH3-SCR Performance , 2020, Nanomaterials.
[40] Huazhen Chang,et al. A novel method for assessing SO2 poisoning effect and thermal regeneration possibility of MOx-WO3/TiO2 (M= Fe, Mn, Cu, V) catalysts for NH3-SCR. , 2020, Environmental science & technology.
[41] Do Heui Kim,et al. Recent advances in catalytic co-pyrolysis of biomass and plastic waste for the production of petroleum-like hydrocarbons. , 2020, Bioresource technology.
[42] Daniel C W Tsang,et al. Recent advances in volatile organic compounds abatement by catalysis and catalytic hybrid processes: A critical review. , 2020, The Science of the total environment.
[43] Jin–Ho Kim,et al. Current Catalyst Technology of Selective Catalytic Reduction (SCR) for NOx Removal in South Korea , 2020 .
[44] Yongping Yang,et al. Effects of Se and SeO2 on the denitrification performance of V2O5-WO3/TiO2 SCR catalyst , 2019, Applied Catalysis A: General.
[45] R. Cioffi,et al. A Case Study for the Deactivation and Regeneration of a V2O5-WO3/TiO2 Catalyst in a Tail-End SCR Unit of a Municipal Waste Incineration Plant , 2019, Catalysts.
[46] Young‐Kwon Park,et al. Overview of the recent advances in lignocellulose liquefaction for producing biofuels, bio-based materials and chemicals. , 2019, Bioresource technology.
[47] Benjaram M. Reddy,et al. A Review of Low Temperature NH3-SCR for Removal of NOx , 2019, Catalysts.
[48] Yi He,et al. In situ regeneration of commercial NH3-SCR catalysts with high-temperature water vapor , 2018, Catalysis Communications.
[49] J. Ran,et al. Promotion of NH4HSO4 decomposition in NO/NO2 contained atmosphere at low temperature over V2O5-WO3/TiO2 catalyst for NO reduction , 2018, Applied Catalysis A: General.
[50] Junhua Li,et al. New Insight into SO2 Poisoning and Regeneration of CeO2-WO3/TiO2 and V2O5-WO3/TiO2 Catalysts for Low-Temperature NH3-SCR. , 2018, Environmental science & technology.
[51] Guodong Zhang,et al. Highly Efficient Mesoporous V2O5/WO3–TiO2 Catalyst for Selective Catalytic Reduction of NOx: Effect of the Valence of V on the Catalytic Performance , 2017, Catalysis Surveys from Asia.
[52] Wenge Qiu,et al. Promotion of ceria for decomposition of ammonia bisulfate over V2O5-MoO3/TiO2 catalyst for selective catalytic reduction , 2016 .
[53] H. Bai,et al. Low temperature selective catalytic reduction of NO x with NH 3 over Mn-based catalyst: A review , 2016 .
[54] Zhenyu Liu,et al. Behaviors of NH4HSO4 in SCR of NO by NH3 over different cokes , 2012 .
[55] Chi He,et al. Regeneration of full-scale commercial honeycomb monolith catalyst (V2O5-WO3/TiO2) used in coal-fired power plant , 2012 .
[56] C. H. Bartholomew,et al. Effects of sulfate species on V2O5/TiO2 SCR catalysts in coal and biomass-fired systems , 2009 .
[57] Zhenyu Liu,et al. Decomposition and Reactivity of NH4HSO4 on V2O5/AC Catalysts Used for NO Reduction with Ammonia , 2000 .
[58] Agreement between the Government of the United States and the Government of the Republic of Korea , 1951, American Journal of International Law.