图8 灰分样品的SEM微观形貌[9] 王茜, 韩奎华, 李辉, 等. O2/CO2气氛下稻秆添加磷酸二氢铵对固钾及灰熔融特性的研究[J]. 燃料化学学报, 2015, 43(8): 955-960.[10] 韩奎华, 齐建荟, 李辉, 等. 磷酸二氢铵脱除气相氯化钾的模拟与实验[J]. 化工学报, 2014, 65(3): 1093-1098.[11] 李琳娜, 任强强, 李诗媛, 等. 富磷添加剂对麦秆燃烧过程中碱金属迁移转化行为的影响[J]. 中国电机工程学报, 2013, 33(26): 41-47.[16] 孟晓晓, 孙锐, 袁皓, 等. 不同热解温度下玉米秸秆中碱金属K和Na的释放及半焦中赋存特性[J]. 化工学报, 2017, 68(4): 338-345.[25] 李琳娜, 任强强, 吕清刚, 等. 城市污水污泥与麦秆混烧过程中钾的转化特性[J]. 工程热物理学报, 2013, 34(6): 1166-1169.
Fig.8 SEM image of morphologies of ash samplesLi H Q, Wang C A, Zhu C Z, et al. Influence of oxy-fuel atmosphere on melting behavior and microscopic physicochemical properties of Zhundong coal ash[J]. CIESC Journal, 2018, 69(6): 2632-2638.[3] Niu Y, Tan H, Hui S E. Ash-related issues during biomass combustion: alkali-induced slagging, silicate melt-induced slagging (ash fusion), agglomeration, corrosion, ash utilization, and related countermeasures[J]. Progress in Energy & Combustion Science, 2016, 52: 1-61.[4] Wang L, Hustad J E, Skreiberg ?, et al. A critical review on additives to reduce ash related operation problems in biomass combustion applications[J]. Energy Procedia, 2012, 20: 20-29.[5] Yan T, Bai J, Kong L, et al. Effect of SiO2/Al2O3 on fusion behavior of coal ash at high temperature[J]. Fuel, 2017, 193: 275-283.[6] Yang W, Zhu Y, Cheng W, et al. Effect of minerals and binders on particulate matter emission from biomass pellets combustion[J]. Applied Energy, 2018, 215: 106-115.[7] Wang G, Jensen P A, Hao W, et al. Potassium capture by kaolin(2): K2CO3, KCl and K2SO4[J]. Energy & Fuels, 2018, 32(3): 3566-3578.[8] Dan B, Skoglund N, Grimm A, et al. Ash transformation chemistry during combustion of biomass[J]. Energy & Fuels, 2012, 26(26): 85-93.Wang Q, Han K H, Li H, et al. Influence of ammonium dihydrogen phosphates additive on potassium fixation capacity and ash fusibility for rice straw combustion in an O2 /CO2 atmosphere[J]. Journal of Fuel Chemistry and Technology, 2015, 43(8): 955-960.Han K H, Qi J H, Li H, et al. Simulation and experiments of removal process of gaseous KCl by ammonium dihydrogen phosphate[J]. CIESC Journal, 2014, 65(3): 1093-1098.Li L N, Ren Q Q, Li S Y, et al. Behavior of alkali metals during combustion of wheat straw with phosphorus-rich additives[J]. Proceedings of the CSEE, 2013, 33(26): 41-47.[12] Grimm A, Skoglund N, Bostr?m D, et al. Influence of phosphorus on alkali distribution during combustion of logging residues and wheat straw in a bench-scale fluidized bed[J]. Energy & Fuels, 2012, 26(5): 3012-3023.[13] Zhu Y, Fan J, Yang P, et al. P-based additive for reducing fine particulate matter emissions during agricultural biomass combustion[J]. Energy & Fuels, 2019, 33(11): 11274-11284.[14] Wang Q, Han K, Wang J, et al. Influence of phosphorous based additives on ash melting characteristics during combustion of biomass briquette fuel[J]. Renewable Energy, 2017, 113: 428-437.[15] Werkelin J, Skrifvars B J, Zevenhoven M, et al. Chemical forms of ash-forming elements in woody biomass fuels[J]. Fuel, 2010, 89(2): 481-493.Meng X X, Sun R, Yuan H, et al. Effect of different pyrolysis temperature on alkali metal K and Na emission and existence in semi-char[J]. CIESC Journal, 2017, 68(4): 338-345.[17] van Loo S, Koppejan J. The Handbook of Biomass Combustion and Co-Firing[M]. Earthscan, 2012.[18] Zhu Y, Hu J, Yang W, et al. The ash fusion characteristics and transformation behaviors during bamboo combustion in comparison with straw and poplar[J]. Energy & Fuels, 2018, 32: 5244-5251.[19] Liang W, Skjevrak G, Hustad J E, et al. Investigation of biomass ash sintering characteristics and the effect of additives[J]. Applied Energy, 2015, 28(1): 208-218.[20] Pyldme M, Tynsuaadu K, Paulik F, et al. Dehydrations of Ca(H2PO4)2·H2O and Mg(H2PO4)2·H2O and their reactions with KCl, examined with simultaneous TG, DTF, DTA and EGA[J]. Journal of Thermal Analysis, 1979, 17(2): 479-488.[21] Knudsen J N, Jensen P A, Dam-Johansen K. Transformation and release to the gas phase of Cl, K, and S during combustion of annual biomass[J]. Energy & Fuels, 2004, 18(5): 1385-1399.[22] Tynsuaadu K. Influence of silicic acid and glauconite on thermal dehydration of Ca(H2PO4)2·H2O [J]. Journal of Thermal Analysis, 1990, 36(5): 1785-1793.[23] Larson H W E. Preparation and properties of mono-, di-, and tricalcium phosphates[J]. Industrial & Engineering Chemistry Analytical Edition, 1935, 7(6): 401-406.[24] Wang L, Hustad J E, Gr?nli M. Sintering characteristics and mineral transformation behaviors of corn cob ashes[J]. Energy Fuels, 2012, 26(9): 5905-5916.Li L N, Ren Q Q, Lyu Q G, et al. Behavior of potassium during co-combustion of municilal sewage sludge with wheat straw[J]. Journal of Engineering Thermophysics, 2013, 34(6): 1166-1169.
图8 灰分样品的SEM微观形貌[9] 王茜, 韩奎华, 李辉, 等. O2/CO2气氛下稻秆添加磷酸二氢铵对固钾及灰熔融特性的研究[J]. 燃料化学学报, 2015, 43(8): 955-960.[10] 韩奎华, 齐建荟, 李辉, 等. 磷酸二氢铵脱除气相氯化钾的模拟与实验[J]. 化工学报, 2014, 65(3): 1093-1098.[11] 李琳娜, 任强强, 李诗媛, 等. 富磷添加剂对麦秆燃烧过程中碱金属迁移转化行为的影响[J]. 中国电机工程学报, 2013, 33(26): 41-47.[16] 孟晓晓, 孙锐, 袁皓, 等. 不同热解温度下玉米秸秆中碱金属K和Na的释放及半焦中赋存特性[J]. 化工学报, 2017, 68(4): 338-345.[25] 李琳娜, 任强强, 吕清刚, 等. 城市污水污泥与麦秆混烧过程中钾的转化特性[J]. 工程热物理学报, 2013, 34(6): 1166-1169.
Fig.8 SEM image of morphologies of ash samplesLi H Q, Wang C A, Zhu C Z, et al. Influence of oxy-fuel atmosphere on melting behavior and microscopic physicochemical properties of Zhundong coal ash[J]. CIESC Journal, 2018, 69(6): 2632-2638.[3] Niu Y, Tan H, Hui S E. Ash-related issues during biomass combustion: alkali-induced slagging, silicate melt-induced slagging (ash fusion), agglomeration, corrosion, ash utilization, and related countermeasures[J]. Progress in Energy & Combustion Science, 2016, 52: 1-61.[4] Wang L, Hustad J E, Skreiberg ?, et al. A critical review on additives to reduce ash related operation problems in biomass combustion applications[J]. Energy Procedia, 2012, 20: 20-29.[5] Yan T, Bai J, Kong L, et al. Effect of SiO2/Al2O3 on fusion behavior of coal ash at high temperature[J]. Fuel, 2017, 193: 275-283.[6] Yang W, Zhu Y, Cheng W, et al. Effect of minerals and binders on particulate matter emission from biomass pellets combustion[J]. Applied Energy, 2018, 215: 106-115.[7] Wang G, Jensen P A, Hao W, et al. Potassium capture by kaolin(2): K2CO3, KCl and K2SO4[J]. Energy & Fuels, 2018, 32(3): 3566-3578.[8] Dan B, Skoglund N, Grimm A, et al. Ash transformation chemistry during combustion of biomass[J]. Energy & Fuels, 2012, 26(26): 85-93.Wang Q, Han K H, Li H, et al. Influence of ammonium dihydrogen phosphates additive on potassium fixation capacity and ash fusibility for rice straw combustion in an O2 /CO2 atmosphere[J]. Journal of Fuel Chemistry and Technology, 2015, 43(8): 955-960.Han K H, Qi J H, Li H, et al. Simulation and experiments of removal process of gaseous KCl by ammonium dihydrogen phosphate[J]. CIESC Journal, 2014, 65(3): 1093-1098.Li L N, Ren Q Q, Li S Y, et al. Behavior of alkali metals during combustion of wheat straw with phosphorus-rich additives[J]. Proceedings of the CSEE, 2013, 33(26): 41-47.[12] Grimm A, Skoglund N, Bostr?m D, et al. Influence of phosphorus on alkali distribution during combustion of logging residues and wheat straw in a bench-scale fluidized bed[J]. Energy & Fuels, 2012, 26(5): 3012-3023.[13] Zhu Y, Fan J, Yang P, et al. P-based additive for reducing fine particulate matter emissions during agricultural biomass combustion[J]. Energy & Fuels, 2019, 33(11): 11274-11284.[14] Wang Q, Han K, Wang J, et al. Influence of phosphorous based additives on ash melting characteristics during combustion of biomass briquette fuel[J]. Renewable Energy, 2017, 113: 428-437.[15] Werkelin J, Skrifvars B J, Zevenhoven M, et al. Chemical forms of ash-forming elements in woody biomass fuels[J]. Fuel, 2010, 89(2): 481-493.Meng X X, Sun R, Yuan H, et al. Effect of different pyrolysis temperature on alkali metal K and Na emission and existence in semi-char[J]. CIESC Journal, 2017, 68(4): 338-345.[17] van Loo S, Koppejan J. The Handbook of Biomass Combustion and Co-Firing[M]. Earthscan, 2012.[18] Zhu Y, Hu J, Yang W, et al. The ash fusion characteristics and transformation behaviors during bamboo combustion in comparison with straw and poplar[J]. Energy & Fuels, 2018, 32: 5244-5251.[19] Liang W, Skjevrak G, Hustad J E, et al. Investigation of biomass ash sintering characteristics and the effect of additives[J]. Applied Energy, 2015, 28(1): 208-218.[20] Pyldme M, Tynsuaadu K, Paulik F, et al. Dehydrations of Ca(H2PO4)2·H2O and Mg(H2PO4)2·H2O and their reactions with KCl, examined with simultaneous TG, DTF, DTA and EGA[J]. Journal of Thermal Analysis, 1979, 17(2): 479-488.[21] Knudsen J N, Jensen P A, Dam-Johansen K. Transformation and release to the gas phase of Cl, K, and S during combustion of annual biomass[J]. Energy & Fuels, 2004, 18(5): 1385-1399.[22] Tynsuaadu K. Influence of silicic acid and glauconite on thermal dehydration of Ca(H2PO4)2·H2O [J]. Journal of Thermal Analysis, 1990, 36(5): 1785-1793.[23] Larson H W E. Preparation and properties of mono-, di-, and tricalcium phosphates[J]. Industrial & Engineering Chemistry Analytical Edition, 1935, 7(6): 401-406.[24] Wang L, Hustad J E, Gr?nli M. Sintering characteristics and mineral transformation behaviors of corn cob ashes[J]. Energy Fuels, 2012, 26(9): 5905-5916.Li L N, Ren Q Q, Lyu Q G, et al. Behavior of potassium during co-combustion of municilal sewage sludge with wheat straw[J]. Journal of Engineering Thermophysics, 2013, 34(6): 1166-1169.