[1] |
Wang C, Liu T, Huang Y L, Wang G R, Wang J F. Promoter effects of Zn and Sn in the direct synthesis of methylchlorosilanes [J]. Industrial & Engineering Chemistry Research, 2013, 52(15): 5282-5286
|
[2] |
Tian L L, Wang J J, Gu X P, Feng L F, Shao Y G. Advances in synthetic technology of organosilicon monomer[J]. Modern Chemical Industry, 2004, 24(12): 23-26
|
[3] |
Belyakova L A, Varvarin A M, Grebenyuk A G, Lobanov V V. Reactions of methylchlorosilanes with a silica surface[J]. Russian Journal of Physical Chemistry, 2004,78(11): 1822-1825
|
[4] |
Lai Guoqiao(来国桥). Organic Silicon Chenistry and Technology(有机硅化学与工艺) [M]. Beijing: Chemical Industry Press, 2011: 92-134
|
[5] |
Seyferth D. Dimethyldichlorosilane and the direct synthesis of methylchlorosilanes. The key to the silicones industry [J]. Organometallics, 2001, 20(24): 4978-4992
|
[6] |
Xing Weihong(邢卫红), Zhong Zhaoxiang(仲兆祥), Xu Nanping(徐南平). A dust removal method of organochlorine silane production [P]:CN,101792460A. 2010-02-04
|
[7] |
Chen Guanghui(陈光辉), Wang Chunyan(王春燕), Li Jianlong(李建隆). Organic silicon monomer synthesis research progress of fluidized bed reactor [J]. Chemical Industry and Engineering Progress(化工进展), 2009, 28(9): 1501-1506
|
[8] |
Xu Nanping(徐南平), Xing Weihong(邢卫红), Zhao Yijiang(赵宜江). Inorganic Membrane Separation Technology and Application(无机膜分离技术与应用)[M]. Beijing: Chemical Industry Press, 2003: 1-8
|
[9] |
Tkachev A G,Tkacheva O N.High-temperature ceramic filter for furnace gas analyzer[J]. Glass and Ceramics,2013,69(11/12): 388-389
|
[10] |
Parham H S, Bates Y X, Zhu Y. A highly efficient and versatile carbon nanotube/ceramic composite filter[J]. Carbon,2013,54: 215-223
|
[11] |
Larbot A, Bertrand M, Marre S, Prouzet E. Performances of ceramic filters for air purificatio[J]. Separation and Purification Technology, 2003,32: 81-85
|
[12] |
Zhong Z X, Xing W H, Li X, Zhang F. Removal of organic aerosols from furnace flue gas by ceramic filters [J]. Industrial & Engineering Chemistry Research, 2013, 52(15): 5455-5461
|
[13] |
Simeone E, Siedlecki M, Nacken M, Heidenreich S, De J W. High temperature gas filtration with ceramic candles and ashes characterization during steam-oxygen blown gasification of biomass [J]. Fuel, 2013, 108: 99-111
|
[14] |
Xing Weihong(邢卫红), Jin Wanqin(金万勤), Chen Rizhi(陈日志), Zhong Zhaoxiang(仲兆祥), Xu Nanping(徐南平). Design and application of continuous ceramic membrane reactor [J]. CIESC Journal(化工学报), 2010, 61(7): 1666-1672
|
[15] |
Wang Yi(王毅), Peng Wenbo(彭文博), Xing Weihong(邢卫红). Membrane configuration selection of ceramic membrane for submerged bioreactor [J]. Membrane Science and Technology(膜科学与技术), 2009, 29(40): 80-84
|
[16] |
Medrano J A,Julian I,Garcia F R,Li K,Herguido J,Menendez M. Two-zone fluidized bed reactor (TZFBR) with palladium membrane for catalytic propane dehydrogenation: experimental performance assessment[J]. Industrial & Engineering Chemistry Research,2013,52(10):3723-3731
|
[17] |
Mahdi F, Mohsen A, Ali R, Mohammad R R. Enhancement of methanol, DME and hydrogen production via employing hydrogen permselective membranes in a novel integrated thermally double-coupled two-membrane reactor [J]. Journal of Natural Gas Science and Engineering, 2013, 14: 158-173
|
[18] |
Jiang X L, She F, Jiang H, Chen R Z, Xing W H, Jin W Q. Continuous phenol hydroxylation over ultrafine TS-1 in a side-stream ceramic membrane reactor [J]. Korean Journal of Chemical Engineering, 2013, 30(4): 852-859
|
[19] |
Li Z H, Chen R Z, Xing W H, Jin W Q, Xu N P. Continuous acetone ammoximation over TS-1 in a tubular membrane reactor [J]. Industrial & Engineering Chemistry Research, 2010, 49(14): 6309-6316
|
[20] |
Zhu N, Dong X L, Liu Z K, Zhang G R, Jin W Q, Xu N P. Toward highly-effective and sustainable hydrogen production: bio-ethanol oxidative steam reforming coupled with water splitting in a thin tubular membrane reactor [J]. Chemical Communications, 2012, 48(57): 7137-7139
|
[21] |
Roses L, Gallucci F, Manzolini G, Annaland M V S. Experimental study of steam methane reforming in a Pd-based fluidized bed membrane reactor[J]. Chemical Engineering Journal, 2013, 222: 307-320
|
[22] |
Rakib M A, Grace J R, Lim C J, Elnashaie S S E H. Modeling of a fluidized bed membrane reactor for hydrogen production by steam reforming of hydrocarbons[J].Industrial & Engineering Chemistry Research, 2011, 50(6): 3110-3129
|
[23] |
Xing Weihong(邢卫红), Wu Junwei(武军伟), Zhang Feng(张峰), Jin Wanqin(金万勤), Xu Nanping(徐南平). A fluidized bed membrane reactor and technology for synthesis of dimethyldichlorosilane [P]: CN, 103055769 A. 2012-12-24
|
[24] |
Luo W X, Wang G R, Wang J F. Surface morphology and catalytic activity of the contact mass in organosilane synthesis [J]. Chemical Engineering Communications, 2006, 193(6): 754-763
|
[25] |
Luo W X, Zhang G L, Wang G R, Wang J F. Effect of copper content on the performance of direct reaction between silicon and methylchloride [J]. Journal of Tsinghua University:Science & Technology, 2006, 11(2): 252-258
|
[26] |
Deng L, Wang J J, Chen R, Feng L F, Zhu J M. The direct synthesis of methylchlorosilanes in a fixed-bed reactor [J]. Chemical Reaction Engineering and Technology, 2006, 22(1): 58-62
|
[27] |
Li Xin(李鑫). Study on the application of ceramic membrane in gas-solid separation[D]. Nanjing: Nanjing Tech University, 2012
|