[1] 中华人民共和国环境保护部,中华人民共和国国家发展和改革委员会. 国家危险废物名录[Z]. 2008-06-06. [2] 中华人民共和国国家统计局. 中国统计年鉴[M]. 北京:中国统计出版社, 2014. [3] 杜玉颖. 医药危废在工业窑炉中共处置的热化学反应和污染物排放特性的研究和应用[D]. 杭州:浙江大学,2015. [4] ORLOFF K,FALK H. An international perspective on hazardous waste practices[J]. International Journal of Hygiene and Environmental Health,2003,206(4/5):291-302. [5] EPA US. Source Data for Hazardous Waste Combustors[Z]. 2012. [6] 李彦林,任恒昌,龚亚军,等. 炼化三泥在煤粉锅炉掺烧技术的应用研究[J]. 石油学报(石油加工),2010(1):71-76. [7] 张文武,余云松,张早校. 含油污泥在煤粉锅炉雾化喷燃的研究分析[J]. 化工机械,2013(3):311-315. [8] 朱志斌. 单喷嘴喷入高含水污泥对电厂锅炉的影响研究[D]. 上海:华东理工大学,2013. [9] 朱志斌,夏翔鸣,徐宏,等. 煤粉锅炉掺烧污泥后的数值模拟[J]. 锅炉技术,2013,44(2):33-37. [10] CASTALDINI C,MASON H B,DEROSIER R J,et al. Field-tests of industrial boilers cofiring hazardous wastes[J]. Hazardous Waste & Hazardous Materials,1984,1(2):159-165. [11] OLEXSEY R A,MOURNIGHAN R E. Emissions testing of industrial processes burning hazardous waste materials[J]. Minimização De Resíduos Perigosos,1984:424-440 [12] CASTALDINI C,CHANG R,LIPS H,et al. Nonsteady-state testing of industrial boilers burning hazardous wastes[J]. Nuclear and Chemical Waste Management,1987,7(1):59-65. [13] STELMACH S,WASIELEWSKI R. Co-combustion of dried sewage sludge and coal in a pulverized coal boiler[J]. Journal of Material Cycles and Waste Management,2008,10(2):110-115. [14] 刘永付,王飞,吴奇,等. 大型燃煤电站锅炉协同处置污泥的试验研究[J]. 能源工程,2013(6):64-69. [15] 张成,王丹,夏季,等. 煤粉掺烧干化污泥的燃烧特性及能效分析[J]. 热能动力工程,2012(3):383-387. [16] CENNI R,GERHARDT T,SPLIETHO H,et al. Ash quality and heavy metals behavior in combined combustion of bituminous coal and dried sewage sludge[C]. Oakland, 1997. [17] SEAMES W,FERNANDEZ A,WENDT J. A study of fine particulate emissions from combustion of treated pulverized municipal sewage sludge[J]. Environmental Science & Technology,2002,36(12):2272-2276. [18] WANG Q,ZHANG L,SATO A,et al. Mineral interactions and their impacts on the reduction of PM10 emissions during co-combustion of coal with sewage sludge[J]. Proceedings of the Combustion Institute,2009,32:2701-2708. [19] ZHUO J,LI S,DUAN L,et al. Effect of phosphorus transformation on the reduction of particulate matter formation during co-combustion of coal and sewage sludge[J]. Energy and Fuels,2012,26(6):3162-3166. [20] 李洋洋. 火电厂协同处置污泥环境安全及运行工况影响研究[D].北京:清华大学,2011. [21] 张磊. 煤掺混污泥的混烧特性及动力学分析[D]. 重庆:重庆大学,2013. [22] 屈会格. 污泥与煤粉混合物的燃烧特性与污染物生成规律的实验研究[D]. 杭州:浙江大学,2013. [23] CENNI R,FRANDSEN F,GERHARDT T,et al. Study on trace metal partitioning in pulverized combustion of bituminous coal and dry sewage sludge[J]. Waste Management,1998,18(6/7/8):433-444. [24] 姚洪,罗光前,徐明厚,等. 煤和污泥燃烧和气化过程中汞析出行为的研究[J]. 中国电机工程学报,2007(2):64-68. [25] 张成,王丹,李婷婷,等. 污泥与煤混燃的燃烧及重金属排放特性研究[C]//第九届锅炉专业委员会第二次学术交流会议,武汉. 2009:173-180. [26] 刘蕴芳,滕建标,苏耀明,等. 煤粉炉掺烧干化污泥的污染物排放研究[J]. 环境工程学报,2014(11):4969-4976. [27] 陈翀. 300MW燃煤锅炉协同处置干化污泥的试验研究[J]. 能源工程,2014(3):62-66. [28] KUPKA T,MANCINI M,IRMER M,et al. Investigation of ash deposit formation during co-firing of coal with sewage sludge, saw-dust and refuse derived fuel[J]. Fuel,2008,87(12):2824- 2837. [29] 屈会格,周昊,孔俊俊,等. 煤与污泥混合物燃烧特性与动力学研究[J]. 电站系统工程,2013,29(1):1-4. [30] 刘亮. 污泥混煤燃烧热解特性及其灰渣熔融性实验研究[D]. 长沙:中南大学,2011. [31] 曾成才. 烟煤掺烧污泥燃烧特性实验研究及分析[D]. 广州:华南理工大学,2014. [32] LI H,LI Y,JIN Y. Co-combustion analyses of coal and sewage sludge with high moisture content[J]. Energy Sources Part A-Recovery Utilization and Environmental Effects,2015,37(17):1896-1903. [33] 殷立宝,徐齐胜,胡志锋,等. 四角切圆燃煤锅炉掺烧印染污泥燃烧与NOx排放特性的数值模拟[J]. 动力工程学报,2015,35(3):178-185. [34] 楼波,王芳,彭晓君. 煤粉炉内掺混废水污泥燃烧的数值模拟与分析[J]. 华南理工大学学报(自然科学版),2010,38(10):153-156. [35] 张成,朱天宇,殷立宝,等. 100MW燃煤锅炉污泥掺烧试验与数值模拟[J]. 燃烧科学与技术,2015,21(2):114-123. [36] 杨丽,张含智,马树贵,等. 高水分褐煤煤粉锅炉掺烧淤泥的研究[J]. 云南电力技术,2013,41(3):100-102. [37] HILBER T,MAIER J,SCHEFFKNECHT G,et al. Advantages and possibilities of solid recovered fuel cocombustion in the european energy sector[J]. Journal of the Air & Waste Management Association,2007,57(10):1178-1189. [38] DUNNU G,MAIER J,GERHARDT A. Thermal utilization of solid recovered fuels in pulverized coal power plants and industrial furnaces as part of an integrated waste management concept[C]// Appropriate Technologies for Environmental Protection in the Developing World,2009:83-91. [39] WU H,GLARBORG P,FRANDSEN F J,et al. Co-combustion of pulverized coal and solid recovered fuel in an entrained flow reactor-general combustion and ash behavior[J]. Fuel,2011,90(5):1980-1991. [40] WU H,GLARBORG P,FRANDSEN F J,et al. Formation of fine particles in co-combustion of coal and solid recovered fuel in a pulverized coal-fired power station[J]. Proceedings of the Combustion Institute,2011,33:2845-2852. [41] WU H,GLARBORG P,FRANDSEN F J,et al. Trace elements in co-combustion of solid recovered fuel and coal[J]. Fuel Processing Technology,2013,105:212-221. [42] HILBER T,THORWARTH H,STACK-LARA V,et al. Fate of mercury and chlorine during SRF co-combustion[J]. Fuel,2007,86(12/13):1935-1946. [43] SARABER A. Co-combustion and its impact on fly ash quality;pilot-scale experiments[J]. Fuel Processing Technology,2012,104:105-114. [44] AGRANIOTIS M,NIKOLOPOULOS N,NIKOLOPOULOS A,et al. Numerical investigation of solid recovered fuels' co-firing with brown coal in large scale boilers-evaluation of different co-combustion modes[J]. Fuel,2010,89(12):3693-3709 |