<listing id="l9bhj"><var id="l9bhj"></var></listing>
<var id="l9bhj"><strike id="l9bhj"></strike></var>
<menuitem id="l9bhj"></menuitem>
<cite id="l9bhj"><strike id="l9bhj"></strike></cite>
<cite id="l9bhj"><strike id="l9bhj"></strike></cite>
<var id="l9bhj"></var><cite id="l9bhj"><video id="l9bhj"></video></cite>
<menuitem id="l9bhj"></menuitem>
<cite id="l9bhj"><strike id="l9bhj"><listing id="l9bhj"></listing></strike></cite><cite id="l9bhj"><span id="l9bhj"><menuitem id="l9bhj"></menuitem></span></cite>
<var id="l9bhj"></var>
<var id="l9bhj"></var>
<var id="l9bhj"></var>
<var id="l9bhj"><strike id="l9bhj"></strike></var>
<ins id="l9bhj"><span id="l9bhj"></span></ins>
Volume 39 Issue 2
Feb.  2017
Turn off MathJax
Article Contents
LIU Jian, LIU Jian-hua, WU Bo-wei, SHEN Shao-bo, YUAN Guo-hua, PENG Ling-zhi. Comparison on the solid-state desilication kinetics of silicon manganese powder by microwave heating and conventional heating[J]. Chinese Journal of Engineering, 2017, 39(2): 208-214. doi: 10.13374/j.issn2095-9389.2017.02.007
Citation: LIU Jian, LIU Jian-hua, WU Bo-wei, SHEN Shao-bo, YUAN Guo-hua, PENG Ling-zhi. Comparison on the solid-state desilication kinetics of silicon manganese powder by microwave heating and conventional heating[J]. Chinese Journal of Engineering, 2017, 39(2): 208-214. doi: 10.13374/j.issn2095-9389.2017.02.007

Comparison on the solid-state desilication kinetics of silicon manganese powder by microwave heating and conventional heating

doi: 10.13374/j.issn2095-9389.2017.02.007
  • Received Date: 2016-04-13
  • The solid-state desilication kinetics of silicon manganese powder and Brazil manganese powder was investigated by microwave heating and conventional heating. During the two processes, Brazil manganese powder which reacted with silicon in silicon manganese was used as the desilication agent. The mixture was heated up to different temperatures and preserved heat for some time by microwave heating and conventional heating, respectively. The silicon content of desilication materials was measured and the apparent activation energy of desilication reaction was calculated. The results show that the single raw material and the mixture could be heated up in the microwave field in a short time. The desilication rate increases with the increase of heating temperature and holding time by both heating methods. The desilication rate and the reaction rate under the microwave field are significantly higher than those by conventional heating. Microwave heating can increase the rate of solid phase desilication. The restrictive step of solid-state desilication kinetics of silicon manganese powder and Brazil manganese powders by microwave heating is the diffusion step. The apparent activation energy of desilication reaction under the microwave field is 102.93 kJ·mol-1, but the apparent activation energy of desilication reaction by conventional heating is 180 kJ·mol-1. The microwave heating field can improve the kinetics condition of solid phase desilication, increase the reaction rate of solid phase desilication and reduce the activation energy of desilication reaction.

     

  • loading
  • [6]
    Bykov Y V, Rybakov K I, Semenov V E. High-temperature microwave processing of materials. J Phys D, 2001, 34(13):R55
    [8]
    Spasojević P, Jovanović J, Adnadjevic B. Unique effects of microwave heating on polymerization kinetics of poly (methyl methacrylate) composites. Mater Chem Phys, 2013, 141(2-3):882
    [12]
    Zhou S C, Bai C G. Microwave direct synthesis and thermoelectric properties of Mg2Si by solid-state reaction. Trans Nonferrous Met Soc China, 2011, 21(8):1785
    [13]
    Bednarz S, Bogdal D. The comparative study of the kinetics of knocvenagel condensation under microwave and conventional conditions//The Fifth International Electronic Conference on Synthetic Organic Chemistry (ECSOC-5). Basel, 2001:267
    [14]
    de Castro E R, Mourao M, Jermolovicius L A, et al. Carbothermal reduction of iron ore applying microwave energy. Steel Res Int, 2012, 83(2):131
    [18]
    Kyung W S, Jung K O. BaTiO3 particle formation mechanism under hydrothermal conditions. J Ceram Soc Jpn, 2000, 108(1260):691
    [20]
    Hancock J D, Sharp J H. Method of comparing solid-state kinetic data and its application to the decomposition of kaolinite, brucite, and BaCO3. J Am Ceram Soc, 1972, 55(2):74
  • 加載中

Catalog

    通訊作者: 陳斌, bchen63@163.com
    • 1. 

      沈陽化工大學材料科學與工程學院 沈陽 110142

    1. 本站搜索
    2. 百度學術搜索
    3. 萬方數據庫搜索
    4. CNKI搜索
    Article views (790) PDF downloads(17) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return
    久色视频