ImageVerifierCode 换一换
格式:PDF , 页数:7 ,大小:913.13KB ,
资源ID:3137047      下载积分:10 金币
快捷下载
登录下载
邮箱/手机:
温馨提示:
快捷下载时,用户名和密码都是您填写的邮箱或者手机号,方便查询和重复下载(系统自动生成)。 如填写123,账号就是123,密码也是123。
特别说明:
请自助下载,系统不会自动发送文件的哦; 如果您已付费,想二次下载,请登录后访问:我的下载记录
支付方式: 支付宝    微信支付   
验证码:   换一换

加入VIP,免费下载
 

温馨提示:由于个人手机设置不同,如果发现不能下载,请复制以下地址【https://www.docduoduo.com/d-3137047.html】到电脑端继续下载(重复下载不扣费)。

已注册用户请登录:
账号:
密码:
验证码:   换一换
  忘记密码?
三方登录: 微信登录   QQ登录   微博登录 

下载须知

1: 本站所有资源如无特殊说明,都需要本地电脑安装OFFICE2007和PDF阅读器。
2: 试题试卷类文档,如果标题没有明确说明有答案则都视为没有答案,请知晓。
3: 文件的所有权益归上传用户所有。
4. 未经权益所有人同意不得将文件中的内容挪作商业或盈利用途。
5. 本站仅提供交流平台,并不能对任何下载内容负责。
6. 下载文件中如有侵权或不适当内容,请与我们联系,我们立即纠正。
7. 本站不保证下载资源的准确性、安全性和完整性, 同时也不承担用户因使用这些下载资源对自己和他人造成任何形式的伤害或损失。

版权提示 | 免责声明

本文(过硫酸盐氧化机理研究est.pdf)为本站会员(weiwoduzun)主动上传,道客多多仅提供信息存储空间,仅对用户上传内容的表现方式做保护处理,对上载内容本身不做任何修改或编辑。 若此文所含内容侵犯了您的版权或隐私,请立即通知道客多多(发送邮件至docduoduo@163.com或直接QQ联系客服),我们立即给予删除!

过硫酸盐氧化机理研究est.pdf

1、Persulfate Persistence underThermal Activation ConditionsRICHARD L. JOHNSON,*PAUL G. TRATNYEK, ANDREID OBRIEN JOHNSONDepartment of Environmental and Biomolecular Systems,Oregon Health fax: 503-748-1464;e-mail: rjohnsonebs.ogi.edu.Environ. Sci. Technol. 2008, 42, 9350935693509ENVIRONMENTAL SCIENCE (i

2、i)once soil NOD is met, reaction rates return to first-orderthermolysis values; and (iii) for each individual respike,disappearance of persulfate appeared to be pseudo-firstorder. Thus, the model results indicate that the rate ofpersulfate consumption by NOD proceeds in a well-behaved manner until t

3、he NOD is met, and based on thisbehavior we believe that the persulfate/NOD reaction (eq18) can be effectively modeled in groundwater systems.Persulfate Diffusion into Contaminant Source Zones.In many groundwater remediation contexts, contactbetween injected chemical oxidant and contaminantrequires

4、diffusion of the oxidant into low-permeabilitysource zones. For thermally activated persulfate, access todiffusion limited source zones may be limited becausepersulfate decomposition at moderate to high tempera-tures has half-lives on the order of hours to days (Sup-porting Information Figure S4, Ta

5、ble 1). The impact ofthis can be examined using a simple one-dimensionaldiffusion model. Initial and boundary conditions for themodel were (i) the diffusion zone was assumed to be in-finitely thick; (ii) initially there was no persulfate in thediffusion zone; (iii) the persulfate concentration at th

6、einterface between the advection-dominated and diffusionzones was maintained at 100 mM (200 mM oxidizingequivalents) throughout the simulations; (iv) the soil wasassumed to have an initial oxidant demand of 0.019 mmolof reducing equivalents per gram (i.e., the value determinedfor the soil in the res

7、pike experiments above); and (v) thesoil bulk density and porosity were assumed to be 1.6 gcm-3and 0.4, respectively.Effective diffusion coefficients used in the model wereadjusted to vary linearly with the absolute temperature(i.e., to follow the Stokes-Einstein equation and Wilke-Changcorrelation)

8、. Temperature-dependent values of the rateconstants for persulfate decomposition by eqs 17 and 18,determined from the batch experiments discussed above,are listed in Table 1. Diffusion and reaction were simulatedusing an explicit finite difference solution to the followingequations:S2O82-t)DMolec2S2

9、O82-x2-k1S2O82- -k4S2O82-NOD(21)NODt)-k4S2O82-NOD (22)where Dmolecis the effective molecular diffusion coefficient(Table 1), the persulfate concentration is expressed in molesof oxidizing equivalents per liter of water (i.e., twice the molarconcentration), and the aqueous NOD concentration iscalcula

10、ted as the oxidant demand per gram of soil times thebulk density of the soil divided by the porosity.Results of the diffusion modeling are shown in Figure4. The curves in the main figure are for persulfatedegradation by thermolysis only. They show that the depthof persulfate penetration at elevated

11、temperatures islimited, even in the absence of soil NOD. If the persulfate/NOD reaction is included, the resulting steady-state profilesare essentially identical to the thermolysis-only cases.However, the time required to reach steady state includingNOD are significantly longer than the thermolysis-

12、onlycase (Table 1).As discussed above, the lifetime of persulfate at elevatedtemperatures is short when compared to transport times.FIGURE 4. Calculated steady-state diffusion profiles forpersulfate in saturated soil without soil oxidant demand. Inset:calculated persulfate concentration profiles vs

13、time afterinjection of persulfate is stopped.9354 9 ENVIRONMENTAL SCIENCE Prentice-Hall: New York,1952.(2) Wardman, P. Reduction potentials of one-electron couplesinvolving free radicals in aqueous solution. J. Phys. Chem. Ref.Data 1989, 18, 16371657.(3) Steiner, N.; Eul, W. Peroxides, inorganic. In

14、 Kirk-OthmerEncyclopediaofChemicalTechnology; 5th ed.; Wiley: New York,2006; Vol 18,pp391-425.(4) Goulden, P. D.; Anthony, D. H. J. Kinetics of uncatalyzedperoxydisulfate oxidation of organic material in fresh water.Anal. Chem. 1978, 50, 953958.(5) Peyton, G. R. The free-radical chemistry of persulf

15、ate-basedtotal organic carbon analyzers. Mar. Chem. 1993, 41, 91103.(6) Technical and Regulatory Guidance for In Situ ChemicalOxidation of Contaminated Soil and Groundwater, Technical/Regulatory Guideline, 2nd ed.; Interstate Technology andRegulatory Council (ITRC): Washington, DC, 2005.(7) Huling,

16、S. G.; Pivetz, B. E. In-Situ Chemical Oxidation, Engi-neering Issue Paper, EPA/600/R-06/072; U.S. EnvironmentalProtection Agency: Cincinnati, OH, 2006.(8) Block, P. A.; Brown, R. A.; Robinson, D. Novel Activationtechnologies for sodium persulfate in situ chemical oxidation.In Proceedings of the Four

17、th International Conference onRemediationofChlorinatedandRecalcitrantCompounds,May24-27,2004,Monterey,CA, Battelle Press: Columbus, OH, 2004,2A-05.(9) House, D. A. Kinetics and mechanism of oxidations by per-oxydisulfate. Chem. Rev. 1962, 62, 185203.(10) Wilmarth, W. K.; Haim, A. Mechanisms of oxida

18、tion by per-oxydisulfate ion. In Peroxide Reaction Mechanisms; Edwards,J. O., Ed.; Interscience: New York, 1962; pp 175-225.(11) Huang, K. C.; Zhao, Z. Q.; Hoag, G. E.; Dahmani, A.; Block, P. A.Degradation of volatile organic compounds with thermallyactivated persulfate oxidation. Chemosphere2005, 6

19、1, 551560.(12) Liang, C. J.; Bruell, C. J.; Marley, M. C.; Sperry, K. L. Thermallyactivated persulfate oxidation of trichloroethylene (TCE) and1,1,1-trichloroethane (TCA) in aqueous systems and soil slurries.Soil Sediment. Contam. 2003, 12, 207228.(13) Liang, C. J.; Bruell, C. J.; Marley, M. C.; Spe

20、rry, K. L. Persulfateoxidation for in situ remediation of TCE. II. Activated by chelatedferrous ion. Chemosphere 2004, 55, 12251233.(14) Liang, C. J.; Bruell, C. J.; Marley, M. C.; Sperry, K. L. Persulfateoxidation for in situ remediation of TCE. I. Activated by ferrousion with and without a persulf

21、ate-thiosulfate redox couple.Chemosphere 2004, 55, 12131223.(15) Liang, C.; Wang, Z.-S.; Bruell, C. J. Influence of pH on persulfateoxidation of TCE at ambient temperatures. Chemosphere2007,66, 106113.(16) Waldemer, R. H.; Tratnyek, P. G.; Johnson, R. L.; Nurmi, J. T.Oxidation of chlorinated ethenes

22、 by heat activated persulfate:Kinetics and products. Environ. Sci. Technol. 2007, 31, 10101015.(17) Haselow, J. S.; Siegrist, R. L.; Crimi, M. L.; Jarosch, T. Estimatingthe total oxidant demand for in situ chemical oxidation design.Remediation 2003, 516.(18) Brown, R. A.; Robinson, D. Response to na

23、turally occurringorganic material: permanganate versus persulfate. In Pro-ceedings of the 4th International Conference on RemediationofChlorinatedandRecalcitrantCompounds,May,24-27,2004,Monterey, CA; Battelle Press: Columbus, OH, 2004; 2A.06/01-02A.06/08.(19) Dahmani, M. A.; Huang, K.; Hoag, G. E. S

24、odium persulfateoxidation for the remediation of chlorinated solvents (USEPASuperfund Innovative Technology Evaluation Program).Water, Air Soil Pollution 2006, 6, 127141.(20) Mumford, K. G.; Thomson, N. R.; Allen-King, R. M. Investigatingthe kinetic nature of natural oxidant demand during ISCO. InRe

25、mediationofChlorinatedandRecalcitrantCompounds-2002,Proceedingsofthe3rdInternationalConferenceonRemediationof Chlorinated and Recalcitrant Compound, May 20-23, 2002,Monterey, CA; Battelle Press: Columbus, OH, 2002; Paper 2C-37.(21) Mumford, K. G.; Thomson, N. R.; Allen-King, R. M. Bench-scale invest

26、igation of permanganate natural oxidant demandkinetics. Environ. Sci. Technol. 2005, 39, 28352840.(22) Jones, L.; Xu, X.; Thomson, N. R.; Waldemer, R.; Tratnyek,P. G. The impact of permanganate NOD kinetics on treatmentefficiency. In Remediation of Chlorinated and RecalcitrantCompounds-2006, Proceed

27、ings of the 5th International Con-ference on Remediation of Chlorinated and RecalcitrantCompounds, May 22-25, 2006, Monterey, CA; Battelle Press:Columbus, OH, 2006; d 33 ppr/31-d 33 ppr/38.(23) Hnning, J.; Broholm, M. M.; Bjerg, P. L. Quantification ofpotassium permanganate consumption and PCE oxida

28、tionin subsurface materials. J.Contam.Hydrol.2007, 90, 221239.(24) Urynowicz, M. A.; Balu, B.; Udayasankar, U. Kinetics of naturaloxidant demand by permanganate in aquifer solids. J.Contam.Hydrol. 2008, 96, 187194.(25) ASTM D7262-07, Standard Test Method for Estimating thePermanganate Natural Oxidan

29、t Demand of Soil and AquiferSolids; ASTM International: West Conshohocken, PA, 2007;04.09.(26) Barcelona, M. J.; Holm, T. R. Oxidation-reduction capacities ofaquifer solids. Environ. Sci. Technol. 1991, 25, 15651572.(27) Mikutta, R.; Kleber, M.; Kaiser, K.; Jahn, R. Organic matterremoval from soils

30、using hydrogen peroxide, sodium hypochlo-rite and disodium peroxodisulfate. SoilSci.Soc.Am.J.2005, 69,120135.(28) Kolthoff, I. M.; Miller, I. K. The chemistry of persulfate. I. Thekinetics and mechanism of the decomposition of the per-sulfate ion in aqueous medium. J. Am. Chem. Soc. 1951, 73,3055305

31、9.(29) Chandra Singh, U.; Venkatarao, K. Decomposition of peroxo-disulphate in aqueous alkaline solution. J. Inorg. Nucl. Chem.1976, 38, 541543.(30) McCallum, J. E. B.; Madison, S. A.; Alkan, S.; Depinto, R. L.;Wahl, R. U. R. Analytical studies on the oxidative degradationof the reactive textile dye

32、 Uniblue A.Environ.Sci.Technol.2000,34, 51575164.VOL. 42, NO. 24, 2008 / ENVIRONMENTAL SCIENCE Clifton, C. L. Kinetics of the self-reaction ofhydroxymethylperoxyl radicals.Chem.Phys.Lett.1993,205, 163167.(32) Banerjee, M.; Konar, R. S. Comment on the Paper Polymerizationof acrylonitrile initiated by

33、 K2S2O8-Fe(II) redox system.J.Polym.Sci., Part A: Polym. Chem. 1984, 22, 11931195.(33) Frigerio, N. A. An iodometric method for the macro- andmicrodetermination of peroxydisulfate. Anal. Chem. 1963, 35,412413.(34) Matthess, G. The Properties of Groundwater; Wiley: New York,1982.(35) Peyton, G. R.; LeFaivre, M. H.; Smith, M. A. In Situ AquiferReclamation by Chemical Means: A Feasibility Study, Hazardous;Water Research and Information Center, Illinois State WaterSurvey Division, Savoy, IL, 1988; HWRIC RR-028.ES80194629356 9 ENVIRONMENTAL SCIENCE & TECHNOLOGY / VOL. 42, NO. 24, 2008

本站链接:文库   一言   我酷   合作


客服QQ:2549714901微博号:道客多多官方知乎号:道客多多

经营许可证编号: 粤ICP备2021046453号世界地图

道客多多©版权所有2020-2025营业执照举报