热态半焦和冷态半焦催化裂解煤焦油研究

刘殊远 汪印 武荣成 曾玺 许光文

引用本文: 刘殊远, 汪印, 武荣成, 曾玺, 许光文. 热态半焦和冷态半焦催化裂解煤焦油研究[J]. 燃料化学学报, 2013, 41(9): 1041-1049. shu
Citation:  LIU Shu-yuan, WANG Yin, WU Rong-cheng, ZENG Xi, XU Guang-wen. Research on coal tar catalytic cracking over hot in-situ chars[J]. Journal of Fuel Chemistry and Technology, 2013, 41(9): 1041-1049. shu

热态半焦和冷态半焦催化裂解煤焦油研究

    通讯作者: 汪印、许光文, Tel: 010-82544886, E-mail: yinwang@iue.ac.cn, gwxu@home.ipe.ac.cn。; 汪印、许光文, Tel: 010-82544886, E-mail: yinwang@iue.ac.cn, gwxu@home.ipe.ac.cn。
  • 基金项目:

    国家自然科学基金(51176197) (51176197)

    国家科技支撑项目(2012BAC03B05, 2010BAC66B01)。 (2012BAC03B05, 2010BAC66B01)

摘要: 对比研究了热态半焦(原位热解半焦)和冷态半焦(热解后温度降至常温的半焦)对煤焦油的催化裂解特性。结果表明,相同条件下,热态煤半焦比冷态煤半焦具有更高的催化裂解焦油能力。当裂解温度为1 100 ℃,热解气体在热态半焦层中的停留时间为1.2 s时,催化裂解后燃气中焦油含量可降至100 mg/m3。BET分析结果表明,热态半焦比冷态半焦具有更大的比表面积和更发达的微孔结构。同时,在不可避免经历相对明显的高温过程中,冷态半焦的碳微晶结构有序度增加,进而导致其活性有所降低。随着气体停留时间的延长或催化裂解温度的提高,燃气中焦油含量迅速降低,但热态半焦与冷态半焦催化裂解焦油的活性差异也变小。半焦催化裂解焦油后,活性明显降低,但使这种半焦与水蒸气发生部分气化反应后,其活性基本得到恢复。

English

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  • 收稿日期:  2012-12-24
  • 网络出版日期:  2013-02-28
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