1 |
Kermani M , Bina B , Movahedian H , et al. Biological phosphorus and nitrogen removal from wastewater using moving bed biofilm process[J]. Iranian Journal of Biotechnology, 2009, 7 (1): 19- 27.
URL
|
2 |
Zhang Mohe , Liu Guohua , Song Kai , et al. Biological treatment of 2, 4, 6-trinitrotoluene(TNT) red water by immobilized anaerobic-aerobic microbial filters[J]. Chemical Engineering Journal, 2015, 259, 876- 884.
doi: 10.1016/j.cej.2014.08.041
|
3 |
桂双林, 麦兆环, 敖子强, 等. 南方稀土冶炼废水的特点及其处理技术研究[J]. 环境科学与管理, 2017, 42 (7): 80- 84.
URL
|
4 |
Mondor M , Masse L , Ippersiel D , et al. Use of electrodialysis and reverse osmosis for the recovery and concentration of ammonia from swine manure[J]. Bioresource Technology, 2008, 99 (15): 7363- 7368.
doi: 10.1016/j.biortech.2006.12.039
|
5 |
Wang Yayi , Chen Jie , Zhou Shuai , et al. 16S rRNA gene high-throughput sequencing reveals shift in nitrogen conversion related microorganisms in a CANON system in response to salt stress[J]. Chemical Engineering Journal, 2017, 317, 512- 521.
doi: 10.1016/j.cej.2017.02.096
|
6 |
Guo Xuejun , Zeng Le , Li Xiaomei , et al. Ammonium and potassium removal for anaerobically digested wastewater using natural clinoptilolite followed by membrane pretreatment[J]. Journal of Hazardous Materials, 2008, 151 (1): 125- 133.
doi: 10.1016/j.jhazmat.2007.05.066
|
7 |
邢金良, 张岩, 陈昌明, 等. CEM-UF组合膜-硝化/反硝化系统处理低C/N废水及种群结构分析[J]. 环境科学, 2018, 39 (3): 1342- 1349.
URL
|
8 |
Gupta V K , Carrott P J M , Ribeiro Carrott M M L , et al. Low-cost adsorbents:Growing approach to wastewater treatment-A review[J]. Critical Reviews in Environmental Science and Technology, 2009, 39 (10): 783- 842.
doi: 10.1080/10643380801977610
|
9 |
陈天虎, 边佳, 鲍腾, 等. 沸石加气混凝土生物填料制备及其序批式脱氮水处理[J]. 中国环境科学, 2017, 37 (6): 2150- 2159.
URL
|
10 |
Li Guochao , Yang Tao , Chen Jie , et al. Experimental study on treatment of high ammonia nitrogen wastewater by internal circulation impinging current biofilm reactor[J]. Meteorological and Environmental Research, 2010, 39 (12): 5205- 5206.
|
11 |
Meng Hong , Peng Changsheng , Lu Shouci , et al. Study on the permselectivity of ion exchange membrane[J]. Rare Metals, 2002, 21 (4): 243- 249.
|
12 |
刘锋, 段骁, 肖宇, 等. 负载型贵金属催化剂在废水处理应用中的研究进展[J]. 贵金属, 2015, 36 (S1): 146- 151.
URL
|
13 |
潘婷, 刘红英, 任光远, 等. 高活性的非金属多孔氮掺杂碳纳米管还原及析氧反应催化剂[J]. 科学公报, 2016, 61 (11): 889- 896.
|
14 |
Kapalka A , Joss L , Anglada A . Direct and mediated electrochemical oxidation of ammonia on boron-doped diamond electrode[J]. Electrochemistry Communications, 2010, 12, 1714- 1717.
doi: 10.1016/j.elecom.2010.10.004
|
15 |
Youri G , Ori L . Revealing the mechanism of indirect ammonia electro-oxidation[J]. Electrochimica Acta, 2012, 63, 209- 219.
doi: 10.1016/j.electacta.2011.12.092
|
16 |
洪小松.催化湿式氧化法催化剂制备及处理染料废水的研究[D].南昌:南昌大学, 2012.
|
17 |
Xu Yin , Shao Henan , Ge Fei , et al. Mo-Cu-Fe-O novel catalytic materials for wet catalytic oxidation of dye wastewater at normal temperature and atmospheric pressure[J]. Catalytic Journal, 2017, 38 (10): 1719- 1725.
|
18 |
Qin Jiangyan , Aika K . Catalytic wet air oxidation of ammonia over alumina supported metals[J]. Applied Catalysis B:Environmental, 1998, 16 (3): 261- 268.
doi: 10.1016/S0926-3373(97)00082-9
|
19 |
Barbier J , Oliviero L , Renard B , et al. Catalytic wet air oxidation of ammonia over M/CeO2 catalysts in the treatment of nitrogen-containing pollutants[J]. Catalysis Today, 2002, 75 (1/2/3/4): 29- 34.
|
20 |
王子丹, SohaibH, 张诺伟, 等. PdNi/C低温高效催化湿式氧化无害化处理氨氮废水[J]. 厦门大学学报:自然科学版, 2018, (1): 32- 37.
URL
|
21 |
Suresh P , Judith Vijaya J , John Kennedy L . Photocatalytic degradation of textile dyeing wastewater through microwave synthesized of Zr-AC, Ni-AC and Zn-AC[J]. Transactions of Nonferrous Metals Society of China, 2015, 25 (12): 4216- 4225.
doi: 10.1016/S1003-6326(15)64072-9
|
22 |
张梦媚, 唐婉莹, 张婉, 等. 纳米TiO2的制备及对低氨氮含量废水的去除效果研究[J]. 水处理技术, 2016, (7): 65- 69.
URL
|
23 |
彭炳先, 王小力, 刘锐涵, 等. 太阳光照射浮石负载二氧化钛降解氨氮废水[J]. 应用化学, 2017, 34 (8): 946- 954.
URL
|
24 |
崔玉民. 负载贵金属的TiO2光催化剂的研究进展[J]. 贵金属, 2007, 28 (3): 62- 65.
URL
|
25 |
Eidenassmann S , Widoniak J , Maret G . Synthesis and characterization of porous and nonporous monodisperse colloidal TiO2 particles[J]. Cheminform, 2004, 35 (13): 535- 545.
URL
|
26 |
Anpo M , Takeuchi M . The design and development of highly reacti-ve titanium oxide photocatalysts operating under visible light irradiation[J]. Journal of Catalysis, 2003, 216 (1/2): 505- 516.
|
27 |
王军.改性纳米TiO2/无纺玄武岩纤维复合光催化剂降解氨氮废水的研究[D].天津:天津工业大学, 2017.
|
28 |
Dearden J C , Nicholson R M . Qsar study of the fate of pharmaceuticl chemicals in an aquatic environment[J]. Journal of Pharmacy and Pharmacology, 2011, 37 (S12): 71P.
|
29 |
Liu Shuting , Huang Jiao , Ye Ying , et al. Microwave enhanced Fenton process for the removal of methylene blue from aqueous solution[J]. Chemical Engineering Journal, 2013, 215/26, 586- 590.
URL
|
30 |
陈灿, 訾培建, 戴友芝, 等. 微波法处理高浓度氨氮废水[J]. 环境工程, 2011, 29 (6): 16- 19.
URL
|
31 |
Bo Longli , Quan Xie , Wang Xiaochang , et al. Preparation and characteristics of carbon-supported platinum catalyst and its application in the removal of phenolic pollutants in aqueous solution by microwave-assisted catalytic oxidation[J]. Journal of Hazardous Materials, 2008, 157 (1): 179- 186.
doi: 10.1016/j.jhazmat.2007.12.111
|
32 |
Carbajo M , Rivas F J , Beltrán F J , et al. Effects of different catalysts on the ozonation of pyruvic acid in water[J]. Ozone Science Engineering, 2006, 28 (4): 229- 235.
doi: 10.1080/01919510600709949
|
33 |
Ichikawa S , Mahardiani L , Kamiya Y . Catalytic oxidation of ammonium ion in water with ozone over metal oxide catalysts[J]. Catalysis Today, 2014, 232, 192- 197.
doi: 10.1016/j.cattod.2013.09.039
|
34 |
Kurniawan T A , Lo W H , Chan G Y S . Physico-chemical treatments for removal of recalcitrant contaminants from landfill leachate[J]. Water Sciences and Engineering Technology, 2008, 129 (1): 80- 100.
|
35 |
Wang Xiaohong , Guo Yun , Lu Guanzhong , et al. An excellent support of Pd catalyst for methane combustion:Thermal-stable Si-doped alumina[J]. Catalysis Today, 2007, 126 (3/4): 369- 374.
|
36 |
刘红丽, 吴龙华, 吴涛, 等. 超声催化氧化废水中氨氮的实验研究[J]. 化学工程师, 2012, (7): 35- 37.
URL
|
37 |
李保菊.改性Pt基催化材料的制备及其对氨氮的电催化氧化性能研究[D].南京:南京大学, 2014.
|
38 |
Rao N N , Somasekhar K M , Kaul S N , et al. Electrochemical oxidation of tannery wastewater[J]. Journal of Chemical Technology & Biotechnology, 2001, 76 (11): 1124- 1131.
URL
|
39 |
Ziese M , Vrejoiu I . Properties of manganite/ruthenate superlattices with ultrathin layers[J]. Phys. Status Solidi Rapid Res. Lett., 2013, 7 (4): 243- 257.
doi: 10.1002/pssr.201307007
|
40 |
Chen Lanju , Guo Shaohui , Zhao Dishun . Study on desulfurization of simulated gasoline catalyzed by supported metal oxide molecular sieve[J]. Chinese Journal of Chemical Engineering, 2007, (4): 520- 523.
|
41 |
Chen Yunnen , Wu Ye , Liu Chen , et al. Low-temperature conversion of ammonia to nitrogen in water with ozone over composite metal oxide catalyst[J]. Journal of Environmental Sciences, 2018, (4): 265- 273.
URL
|
42 |
卢雯婷, 陈敬超, 冯晶, 等. 贵金属催化剂的应用研究进展[J]. 稀有金属材料与工程, 2012, 41 (1): 184- 188.
URL
|
43 |
王圆媛, 徐航, 冯冬梅, 等. 低负载贵金属催化剂对二甲醚催化燃烧的催化活性[J]. 过程工程学报, 2011, 11 (1): 148- 152.
URL
|
44 |
Liu Jian , Zhao Zhen , Wang Jiqiu , et al. The highly active catalysts of nanometric CeO2-supported cobalt oxides for soot combustion[J]. Applied Catalysis B:Environmental, 2008, 84 (1/2): 185- 195.
URL
|