热解条件对废旧电路板真空热解油的成分的影响

伍家麒, 孙水裕, 李神勇, 杨帆, 王逸. 热解条件对废旧电路板真空热解油的成分的影响[J]. 环境工程学报, 2014, 8(3): 1185-1190.
引用本文: 伍家麒, 孙水裕, 李神勇, 杨帆, 王逸. 热解条件对废旧电路板真空热解油的成分的影响[J]. 环境工程学报, 2014, 8(3): 1185-1190.
Wu Jiaqi, Sun Shuiyu, Li Shenyong, Yang Fan, Wang Yi. Effect of pyrolysis conditions on composition of vacuum pyrolysis oil from waste printed circuit board[J]. Chinese Journal of Environmental Engineering, 2014, 8(3): 1185-1190.
Citation: Wu Jiaqi, Sun Shuiyu, Li Shenyong, Yang Fan, Wang Yi. Effect of pyrolysis conditions on composition of vacuum pyrolysis oil from waste printed circuit board[J]. Chinese Journal of Environmental Engineering, 2014, 8(3): 1185-1190.

热解条件对废旧电路板真空热解油的成分的影响

  • 基金项目:

    广东省科技计划项目(2012B031000017)

    高等学校博士学科点项科研基金(20114420110005)

    广东省教育部产学研结合项目(2011B090400144)

    广东省重大科技专项资助(2010A080804002)

  • 中图分类号: X705

Effect of pyrolysis conditions on composition of vacuum pyrolysis oil from waste printed circuit board

  • Fund Project:
  • 摘要: 采用GC/MS检测,研究最终温度(400、500和600℃)和升温速率(5、10和15℃/min)对废旧电路板真空热解油的成分的影响。研究表明,最终温度过高(600℃)、升温速率较小(5℃/min)或较大(15℃/min)都不利于热解油的形成,反而增大不凝气的产量。升高最终温度会增强较低碳数物质的热解效果,产生更多的不凝气;但同时也会限制较高碳数物质的热解,出现较多的环化、聚合反应生成结构复杂的物质。升温速率较高(15℃/min),会产生大量不饱和物质,其在后续发生环化、聚合等反应,生成更多的C14~C18,C6~C9含量则大幅下降。从热解油产量和GC/MS检测结果看,升温速率为10℃/min、最终温度为500℃和恒温1 h,热解充分,热解油C6~C9含量高,有较高的综合利用价值。
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出版历程
  • 收稿日期:  2013-04-19
  • 刊出日期:  2014-03-01
伍家麒, 孙水裕, 李神勇, 杨帆, 王逸. 热解条件对废旧电路板真空热解油的成分的影响[J]. 环境工程学报, 2014, 8(3): 1185-1190.
引用本文: 伍家麒, 孙水裕, 李神勇, 杨帆, 王逸. 热解条件对废旧电路板真空热解油的成分的影响[J]. 环境工程学报, 2014, 8(3): 1185-1190.
Wu Jiaqi, Sun Shuiyu, Li Shenyong, Yang Fan, Wang Yi. Effect of pyrolysis conditions on composition of vacuum pyrolysis oil from waste printed circuit board[J]. Chinese Journal of Environmental Engineering, 2014, 8(3): 1185-1190.
Citation: Wu Jiaqi, Sun Shuiyu, Li Shenyong, Yang Fan, Wang Yi. Effect of pyrolysis conditions on composition of vacuum pyrolysis oil from waste printed circuit board[J]. Chinese Journal of Environmental Engineering, 2014, 8(3): 1185-1190.

热解条件对废旧电路板真空热解油的成分的影响

  • 1. 广东工业大学环境科学与工程学院, 广州 510006
基金项目:

广东省科技计划项目(2012B031000017)

高等学校博士学科点项科研基金(20114420110005)

广东省教育部产学研结合项目(2011B090400144)

广东省重大科技专项资助(2010A080804002)

摘要: 采用GC/MS检测,研究最终温度(400、500和600℃)和升温速率(5、10和15℃/min)对废旧电路板真空热解油的成分的影响。研究表明,最终温度过高(600℃)、升温速率较小(5℃/min)或较大(15℃/min)都不利于热解油的形成,反而增大不凝气的产量。升高最终温度会增强较低碳数物质的热解效果,产生更多的不凝气;但同时也会限制较高碳数物质的热解,出现较多的环化、聚合反应生成结构复杂的物质。升温速率较高(15℃/min),会产生大量不饱和物质,其在后续发生环化、聚合等反应,生成更多的C14~C18,C6~C9含量则大幅下降。从热解油产量和GC/MS检测结果看,升温速率为10℃/min、最终温度为500℃和恒温1 h,热解充分,热解油C6~C9含量高,有较高的综合利用价值。

English Abstract

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