调理脱水污泥的热解特性及动力学分析

徐新宇, 杨家宽, 宋健, 时亚飞, 虞文波, 郦超, 何姝, 吴旭, 梁莎. 调理脱水污泥的热解特性及动力学分析[J]. 环境化学, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103
引用本文: 徐新宇, 杨家宽, 宋健, 时亚飞, 虞文波, 郦超, 何姝, 吴旭, 梁莎. 调理脱水污泥的热解特性及动力学分析[J]. 环境化学, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103
XU Xinyu, YANG Jiakuan, SONG Jian, SHI Yafei, YU Wenbo, LI Chao, HE Shu, WU Xu, LIANG Sha. Pyrolysis characteristics and kinetics analysis of conditioned dewatered sewage sludge[J]. Environmental Chemistry, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103
Citation: XU Xinyu, YANG Jiakuan, SONG Jian, SHI Yafei, YU Wenbo, LI Chao, HE Shu, WU Xu, LIANG Sha. Pyrolysis characteristics and kinetics analysis of conditioned dewatered sewage sludge[J]. Environmental Chemistry, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103

调理脱水污泥的热解特性及动力学分析

  • 基金项目:

    中央高校基本科研业务费专项资金(2013TS071),煤燃烧国家重点实验室开放基金(FSKLCCA1604),教育部科学技术研究项目(113046A)资助.

Pyrolysis characteristics and kinetics analysis of conditioned dewatered sewage sludge

  • Fund Project: Supported by the Fundamental Research Funds for the Central Universities (2013TS071), the Foundation of State Key Laboratory of Coal Combustion(FSKLCCA1604), the Ministry of Education, Science and Technology Research Project (113046A).
  • 摘要: 利用TGA(Thermogravimetric analysis)热分析技术对污水处理厂原始污泥及调理脱水污泥进行了实验研究,获得了不同升温速率下污泥的TG(Thermogravimetric)和DTG失重曲线.实验发现,不同调理脱水污泥热解特性复杂,且热解动力学在不同转化率下对应的动力学反应也不同.并利用M-KAS(Kissinger-Akahira-Sunose)模型和Discrete DAEM(Discrete distribute activation energy model)模型对不同调理污泥进行了动力学参数研究.结果表明,污泥的非等温热解过程包含3个失重阶段;升温速率影响污泥热解特征温度,随着升温速率的提高,失重曲线向高温区滑移.利用上述模型计算的动力学参数变化趋势表明所采用的Fenton及赤泥复合调理对污泥热解特性有很大影响,Fenton调理有助于污泥EPS(Extracellular polymeric substances)破坏,影响热解反应中的形核过程,进而影响热解动力学变化趋势;赤泥调理后,赤泥更容易与破坏的污泥细小颗粒结合,增加了污泥热解反应数量,影响整个污泥热解过程.从计算结果可以看出污泥热解由多步反应组成,整个热解过程动力学参数不断变化.
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  • [1] 张强,邢智炜,刘欢,等.不同深度脱水污泥的热解特性及动力学分析[J]. 环境化学,2013,32(5):839-846.

    ZHANG Q,XING Z W,LIU H,et al. Pyrolysis characteristic and kinetic analysis of different deep dewatered sludges[J]. Environmental Chemistry,2013,32(5): 839-846(in Chinese).

    [2] 胡艳军,宁方勇,钟英杰,等.城市污水污泥热解特性及动力学规律研究[J]. 热能动力工程,2012,27(2):253-258.

    HU Y J,NING F Y,ZHONG Y J,et al. Study of the pyrolytic characeristics of and the dynamic law governing municipal sewage water and sludge[J]. Journal of Engineering for Thermal Energy & Power,2012,27(2): 253-258(in Chinese).

    [3] 刘文铁,王淑彦,陆慧林,等.污泥的热解动力学及机理研究[J].热能动力工程,2006,21(5):529-531.

    LIU W T,WANG S Y,LU H L,et al. An investigation of sludge pyrolytic dynamics and its mechanism[J]. Journal of Engineering for Thermal Energy & Power, 2006,21(5): 529-531(in Chinese).

    [4] 彭海军,李志光,夏兴良,等. 污泥热解残渣催化市政破膜污泥的热解作用[J]. 环境化学,2014,33(3):508-514.

    PENG H J,LI Z G,XIA X L,et al. Catalysis of sludge residual carbon to municipal disintegration-membrance sludge pyrolysis[J]. Environmental Chemistry,2014,33(3): 508-514(in Chinese).

    [5] ZHANG H,YANG J K,YU W B,et al. Mechanism of red mud combined with Fenton's reagent in sewage sludge conditioning[J]. Water Research,2014. 59: 239-247.
    [6] VYAZOVKIN S,BURNHAM A K,CRIADO J M,et al. ICTAC Kinetics Committee recommendations for performing kinetic computations on thermal analysis data[J]. Thermochimica Acta,2011. 520(1-2): 1-19.
    [7] STARINK M J. The determination of activation energy from linear heating rateexperiments: A comparison of the accuracy of isoconversion methods[J].Thermochimica Acta,2003.404(1-2): 163-176.
    [8] SCOTT S A,DENNIS J S,DAVIDSON J F,et al. An algorithm for determining the kinetics of devolatilisation of complex solid fuels from thermogravimetric experiments[J]. Chemical Engineering Science,2006,61(8): 2339-2348.
    [9] HU M,CHEN Z H,GUO D B,et al. Thermogravimetric study on pyrolysis kinetics of Chlorella pyrenoidosa and bloom-forming cyanobacteria[J]. Bioresource Technology,2015,177: 41-50.
    [10] CAO H L,XIN Y,WANG D L,et al. Pyrolysis characteristics of cattle manures using a discrete distributed activation energy model[J]. Bioresource Technology,2014,172: 219-225.
    [11] HU Z Q,CHEN Z H,LI G B,et al. Characteristics and kinetic studies of Hydrilla verticillata pyrolysis via thermogravimetric analysis[J]. Bioresource Technology,2015,194: 364-372.
    [12] ZHANG Q,LIU H,LIU P,et al. Pyrolysis characteristics and kinetic analysis of different dewatered sludge[J]. Bioresource Technology,2014,170: 325-330.
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出版历程
  • 收稿日期:  2015-12-21
  • 刊出日期:  2016-05-15
徐新宇, 杨家宽, 宋健, 时亚飞, 虞文波, 郦超, 何姝, 吴旭, 梁莎. 调理脱水污泥的热解特性及动力学分析[J]. 环境化学, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103
引用本文: 徐新宇, 杨家宽, 宋健, 时亚飞, 虞文波, 郦超, 何姝, 吴旭, 梁莎. 调理脱水污泥的热解特性及动力学分析[J]. 环境化学, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103
XU Xinyu, YANG Jiakuan, SONG Jian, SHI Yafei, YU Wenbo, LI Chao, HE Shu, WU Xu, LIANG Sha. Pyrolysis characteristics and kinetics analysis of conditioned dewatered sewage sludge[J]. Environmental Chemistry, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103
Citation: XU Xinyu, YANG Jiakuan, SONG Jian, SHI Yafei, YU Wenbo, LI Chao, HE Shu, WU Xu, LIANG Sha. Pyrolysis characteristics and kinetics analysis of conditioned dewatered sewage sludge[J]. Environmental Chemistry, 2016, 35(5): 972-981. doi: 10.7524/j.issn.0254-6108.2016.05.2015122103

调理脱水污泥的热解特性及动力学分析

  • 1.  华中科技大学环境科学与工程学院, 武汉, 430074;
  • 2.  华中科技大学煤燃烧国家重点实验室, 武汉, 430074;
  • 3.  宇星科技发展(深圳)有限公司, 深圳, 518057
基金项目:

中央高校基本科研业务费专项资金(2013TS071),煤燃烧国家重点实验室开放基金(FSKLCCA1604),教育部科学技术研究项目(113046A)资助.

摘要: 利用TGA(Thermogravimetric analysis)热分析技术对污水处理厂原始污泥及调理脱水污泥进行了实验研究,获得了不同升温速率下污泥的TG(Thermogravimetric)和DTG失重曲线.实验发现,不同调理脱水污泥热解特性复杂,且热解动力学在不同转化率下对应的动力学反应也不同.并利用M-KAS(Kissinger-Akahira-Sunose)模型和Discrete DAEM(Discrete distribute activation energy model)模型对不同调理污泥进行了动力学参数研究.结果表明,污泥的非等温热解过程包含3个失重阶段;升温速率影响污泥热解特征温度,随着升温速率的提高,失重曲线向高温区滑移.利用上述模型计算的动力学参数变化趋势表明所采用的Fenton及赤泥复合调理对污泥热解特性有很大影响,Fenton调理有助于污泥EPS(Extracellular polymeric substances)破坏,影响热解反应中的形核过程,进而影响热解动力学变化趋势;赤泥调理后,赤泥更容易与破坏的污泥细小颗粒结合,增加了污泥热解反应数量,影响整个污泥热解过程.从计算结果可以看出污泥热解由多步反应组成,整个热解过程动力学参数不断变化.

English Abstract

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