Please wait a minute...
J4  2012, Vol. 46 Issue (4): 584-589    DOI: 10.3785/j.issn.1008-973X.2012.04.002
能源与机械工程     
逆向涡流等离子体降解飞灰中二恶英的研究
倪明江, 程奎, 余量, 李晓东, 陆胜勇, 严建华
浙江大学 能源清洁利用国家重点实验室,浙江 杭州 310027
Removal of PCDD/Fs from fly ash using reverse vortex plasma
NI Ming-jiang, CHENG Kui, YU Liang, LI Xiao-dong, LU Sheng-yong, YAN Jian-hua
State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China
 全文: PDF  HTML
摘要:

利用氮气逆向涡流非平衡等离子体反应器,进行医疗垃圾焚烧飞灰中二恶英的降解.考察氮气逆向涡流非平衡等离子体放电特性,从而获得反应器稳定的工作条件.在实验过程中分别测量处理后飞灰中和尾气中的二恶英质量分数,分析利用氮气逆向涡流非平衡等离子体反应器降解飞灰中二恶英的效果,初步探索二恶英的降解机理.结果表明,切向进气体积流量是影响放电电弧特性的关键因素,增大切向进气体积流量,可以提高电弧放电的稳定性;逆向涡流等离子体对飞灰中二恶英有明确的降解作用,单位质量飞灰中PCDD/Fs总质量的平均降解率为49.6%,总毒性当量I-TEQ平均降解率为62.3%,飞灰中PCDFs比PCDDs更容易降解.

Abstract:

The plasma-induced destruction of polychlorinated dibenzo-p-dioxins and polychlorinated dibenzofurans (PCDD/Fs) in medical waste incinerator fly ash was analyzed using a nitrogen reverse vortex nonequilibrium plasma reactor. The mass fraction of the nitrogen reverse vortex discharge were analyzed in order to obtain a stable working condition. The mass fractions of PCDD/Fs in the flue gas and treated fly ash were measured and the degradation efficiency of PCDD/Fs was investigated. The destruction process of dioxin in medical waste incineration fly ash was studied. Results showed that the stability of discharge was depended on the tangential gas flow rate into the reactor, and it can be improved by increasing tangential gas flow rate. The discharge characteristics can be optimized with adding axial gas flow into the reactor. The dioxin contained in fly ash was destructed effectively by the reverse vortex discharge. The average decomposition efficiency of dioxin based on total mass fraction and ITEQ concentration was achieved up to 49.6% and 62.3%, respectively. The PCDFs were more easily decomposed than the PCDDs in the plasma reactor.

出版日期: 2012-05-17
:  X 773  
基金资助:

国家自然科学基金资助项目(50976099).

通讯作者: 严建华,男,教授,博导.     E-mail: yanjh@zju.edu.cn
作者简介: 倪明江(1949—),男,教授,博导,从事燃烧理论与技术、废弃物焚烧、生物质利用等的研究.E-mail: mjn@zju.edu.cn
服务  
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章  

引用本文:

倪明江, 程奎, 余量, 李晓东, 陆胜勇, 严建华. 逆向涡流等离子体降解飞灰中二恶英的研究[J]. J4, 2012, 46(4): 584-589.

NI Ming-jiang, CHENG Kui, YU Liang, LI Xiao-dong, LU Sheng-yong, YAN Jian-hua. Removal of PCDD/Fs from fly ash using reverse vortex plasma. J4, 2012, 46(4): 584-589.

链接本文:

http://www.zjujournals.com/eng/CN/10.3785/j.issn.1008-973X.2012.04.002        http://www.zjujournals.com/eng/CN/Y2012/V46/I4/584

[1] OLIE K, VERMEULEN P L, HUTZINGER O. ChlorodibenzopPCDD/Fs and chlorodibenzofurans are trace compounds of fly ash and flue gas of some municipal incinerators in the Netherlands [J]. Chemosphere, 1977, 6(8): 445-459.
[2] 陆胜勇,李晓东,章骥,等.基于主成分分析的垃圾焚烧炉运行和污染物排放分析[J].浙江大学学报:工学版,2006,40(11): 2002-2006.
LU Shengyong, LI Xiaodong, ZHANG Ji, et al. Principal componnent analysis on operation parameters and pollutant emission of municipal solid waste incinerator [J]. Journal of Zhejiang University: Engineering Science, 2006, 40(11): 2002-2006.
[3] Dioxin concentrations in residential soil, Paritutu, New Plymouth [EB/OL]. [2002-09-26]. http:∥www.mfe.govt.nz/pub/hazardous/taranaki-dioxin-report-sep02/appendix-d-sep02.pdf.
[4] LUNDIN L, MARKLUND S. Thermal degradation of PCDD/F in municipal solid waste ashes in sealed glass ampules [J]. Environmental Science Technology, 2005, 39(10): 3872-3877.
[5] 徐旭,陈彤,严建华,等.TiO2光催化降解垃圾焚烧炉飞灰中二恶英的实验研究[J].环境保护科学,2007,33(5): 1-3.
XU Xu, CHEN Tong, YAN Jianhua, et al. Experimental study on TiO2 photocatalytic degradation of dioxins in MSW fly ash [J]. Environmental Protection Science, 2007, 33(5): 1-3.
[6] YAN Jianhua, PENG Zheng, LU Shengyong, et al. Degradation of PCDD/Fs by mechanochemical treatment of fly ash from medical waste incineration [J]. Journal of Hazardous Materials, 2007, 147(12): 652-657.
[7] ZHOU Yuanxiang, YAN Ping, CHENG Zixia, et al. Application of nonthermal plasmas on toxic removal of dioxincontained fly ash [J]. Powder Technology, 2003, 135(SI): 345-353.
[8] MUTAFYARDIMCI O, SAVELIEV A V, FRIDMAN A, et a1.Thermal and nonthermal regimes of gliding arc discharge in air flow [J]. Journal of Applied Physics, 2000, 87(4): 1632-1641.

[9] CZERNICHOWSKI A, RANAIVOSOLOARIMANANA A. Zapping VOCs with a discontinuous electric arc [J]. Chemtech, 1996, 26(4): 45-49.
[10] YAN Jianhua, DU Changming, LI Xiaodong, et al. Degradation of phenol in aqueous solutions by gasliquid gliding arc discharges [J]. Plasma Chemistry and Plasma Processing, 2006, 26(1): 31-41.
[11] YU Liang, TU Xin, LI Xiaodong, et al. Destruction of acenaphthene, fluorene, anthracene and pyrene by a dc gliding arc plasma reactor [J]. Journal of Hazardous Materials, 2010, 180(13): 449-455.
[12] KALRA C S, CHO Y I, GUTSOL A, et al. Gliding arc in tornado using a reverse vortex flow [J]. Review of Scientific Instruments, 2005, 76(2): 110-117.
[13] 薄拯.滑动弧放电等离子体处理挥发性有机化合物基础研究[D].杭州:浙江大学,2008: 30-47.
BO Zheng. Fundamental research on processing of volatile organic compounds with gliding arc discharge [D]. Hangzhou: Zhejiang University, 2008: 30-47.
[14] GB184842001,危险废物焚烧污染控制标准[S].北京:中国环境科学出版社,2001.
[15] 陈彤.城市生活垃圾焚烧过程中二恶英的形成机理及控制技术研究[D].杭州:浙江大学,2006: 94-109.
CHEN Tong. Study on the formation mechanism and control of the dioxin among the process of incineration of MSW [D]. Hangzhou: Zhejiang University, 2006: 94-109.
[16] KOHNO H, BEREZIN A A, CHANG J S, et al. Destruction of volatile organic compounds used in a semiconductor industry by a capillary tube discharge reactor [J]. IEEE Transactions on Industry Application, 1998, 34(5): 953-966.
[17] 赵化桥.等离子体化学与工艺[M].合肥:中国科学技术大学出版社,1993: 13-15.

 

No related articles found!