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1.
采用零价铁(Fe0)还原降解土壤中的硝基苯,考察土壤理化性质对还原效果的影响。结果显示,当2 g土壤中NB含量约为2.5 ×10-6mol/g,铁粉用量为50 mg,土壤含水量为75%时,控温25℃条件下反应1 h,硝基苯在松砂土和中壤土中的还原率分别可达到82.9%和91.1%。硝基苯在2种土壤中的还原率表现出中壤土...  相似文献   

2.
在常温常压下利用零价铁(Fe0)还原土壤中的2-氯硝基苯(o-CNB),研究反应条件对还原率的影响以及反应产物在不同反应阶段的变化.GC-MS检测结果显示,o-CNB在还原过程中先生成2-氯亚硝基苯,最终生成2-氯苯胺.反应时间、Fe0用量、温度和土壤初始pH值等均会对o-CNB的还原率产生影响,其中土壤初始pH值控制在偏酸性、土壤温度较高时能显著提高其还原率.当o-CNB的初始浓度约为2.5×10-6 mol/g,Fe0加入量是25 mg/g时,经过4 h反应,o-CNB的还原率可达99%以上.此外,还初步探讨了Fe0还原o-CNB的反应机理.  相似文献   

3.
零价铁对土壤中对氯硝基苯的还原作用   总被引:1,自引:0,他引:1  
在常温常压下,利用零价铁(Fe0)还原土壤中的对氯硝基苯(p-CNB),研究反应产物随时间的变化以及反应条件对还原率的影响.实验结果表明,Fe0能够有效将土壤中的p-CNB还原成对氯苯胺(p-CAN),反应过程中先生成中间产物对氯亚硝基苯(p-CNSB),然后再进一步还原生成p-CAN.p-CNB还原率受到反应时间,土壤初始pH、温度、铁粉用量和土壤含水率等条件的影响.当p-CNB约为2.5×10-6mol/g,土壤初始pH为6.8,铁粉用量为50 mg,土壤含水率为75%时,在恒温生化培养箱中温度为(25±1)℃条件下,反应5 h后p-CNB还原率达到97.43%.  相似文献   

4.
土壤中零价铁还原3-氯硝基苯的作用   总被引:3,自引:2,他引:1  
利用零价铁在常温常压下对土壤中的3-氯硝基苯的还原,对反应物和产物随时间的变化及反应的各个影响因素进行了研究。实验结果表明,零价铁能够有效地将3-氯硝基苯还原为3-氯苯胺,反应过程中没有检测到脱氯产物。其反应速率随铁粉用量、反应体系含水量的增加以及反应温度的升高而升高,随土壤初始pH值的升高而降低。在土壤中3-氯硝基苯含量约为2.5×10-6 mol/g,铁粉使用量为25 mg/g,反应体系中含水量为0.75 mL/g,pH值为6.8时,在恒温生化培养箱(25±1)℃反应5 h后,3-氯硝基苯的还原率达到92.75%。  相似文献   

5.
采用盆钵实验,通过控制淹水、田间最大持水量和60%相对含水量3种水分条件系统研究施用活性污泥(AS)对不同质地土壤中DOM的产生消长规律及DDT降解的影响,旨在为农药污染土壤修复及农产品清洁生产提供理论依据。结果表明:1)不同水分条件下AS均能提高土壤中DOM的含量,且随添加比例增加而增加;2)不同水分条件下AS均能促进土壤中p,p'-DDT降解,淹水条件下添加1%~3%的AS使粘土、壤土和砂土中p,p'-DDT的降解率分别提高4.0%~45.0%、2.7%~48.9%和2.2%~35.4%;最大持水量条件下粘土、壤土和砂土中p,p'-DDT的降解率分别提高2.9%~40.9%、1.9%~46.9%和2.1%~34.3%;60%相对含水量条件下粘土、壤土和砂土中p,p'-DDT的降解率分别提高3.0%~40.9%、2.1%~45.0%和1.7%~31.6%;3)不同水分条件下,不同质地土壤中添加AS后DOC含量与p,p'-DDT含量呈显著正相关。上述结果表明不同水分条件下AS对p,p'-DDT降解的促进效果表现为淹水条件最大持水量60%相对含水量,p,p'-DDT在不同质地土壤中的降解速度表现为壤土粘土砂土。  相似文献   

6.
Pd/Fe催化脱氯水中PCE的动力学研究   总被引:1,自引:1,他引:0  
以GC-MS为分析方法,采用Pd/Fe双金属对水溶液中四氯乙烯(PCE)进行了催化还原脱氯处理,考察了PCE初始浓度、钯含量、Pd/Fe用量和溶液初始pH值等各因素对脱氯效果影响及还原动力学规律。结果表明,Pd/Fe双金属对PCE有较好的还原脱氯效率,反应遵循准一级反应动力学规律,以反应物PCE浓度为参照的反应速率常数K变化范围为0.019min^-1~0.16min^-1,对应的PCE半衰期从6min到36min,揭示反应有可能是在过量的Pd/Fe双金属表面进行。当PCE溶液初始浓度为1mmol/L,投加1.2g钯含量为0.03%的Pd/Fe双金属,在25℃下反应60min,PCE的脱氯率达到95%以上。增大钯含量和Pd/Fe用量可有效提高脱氯率,在初始pH值为弱酸性条件下有利于还原脱氯反应进行。  相似文献   

7.
混凝-Fenton氧化-Fe0还原预处理高浓度硝基苯生产废水   总被引:1,自引:1,他引:0  
采用混凝-Fenton氧化-Fe0还原工艺预处理高浓度硝基苯废水,考察各反应阶段硝基苯去除效果及影响因素。研究表明,聚铁混凝性能优于聚铝;初始COD为17 350 mg/L、硝基苯浓度为10 050 mg/L的废水,在pH=4,聚铁投加浓度3 300 mg/L时,COD和硝基苯去除率分别为63%和62%;混凝沉降后的上清液用Fenton试剂氧化,可在较宽pH(3~6)范围内降解硝基苯,当H2O2(30%)浓度为6 000 mg/L,Fe2+浓度为168 mg/L时,氧化效率最高;聚铁混凝-Fenton氧化后的出水用Fe0还原,最佳还原条件为:pH=3,Fe0浓度1 500 mg/L。原水经聚铁混凝-Fenton氧化-Fe0还原后,COD和硝基苯总去除率分别达90%和98%,总药剂成本约12.4元/t。处理后废水硝基苯浓度为168 mg/L,适宜进行后续的厌氧-好氧生物处理。  相似文献   

8.
纳米零价铁的制备及其去除水中对氯硝基苯的研究   总被引:6,自引:2,他引:4  
通过FeSO4与KBH4反应,利用液相还原法制备纳米零价铁颗粒(NZVI),用XRD、SEM和BET对其性能进行表征。在常温常压下利用纳米铁还原废水中的对氯硝基苯(p-CNB),探讨了反应条件对还原率的影响。结果表明,制备过程中碱性物质(NaOH)的添加可以明显减小颗粒粒径,增大比表面积,提高纳米铁还原反应的效率。NZVI对于对氯硝基苯有很好的去除效果,NZVI用量、p-CNB初始浓度和pH值均对其去除效率产生影响。在纳米铁投加量为1 g/L,pH=2的条件下,添加NaOH的纳米铁能在120 min内将质量浓度为50 mg/L的对氯硝基苯基本完全降解,降解率为98.8%。此外,还对NZVI还原对氯硝基苯的机理进行了初步探讨。  相似文献   

9.
为推动铁屑在治理受硝基酚类化合物污染土壤中的实际应用,常温(25±1℃)常压下,利用不同前处理方式处理的铁屑、还原铁粉对土壤中的对硝基苯酚(p-NP)进行了还原降解研究;分析了土壤部分理化性质对p-NP还原效果的影响;并对反应时间、铁屑用量和土壤含水量3个人工易控因素作了最优化选择。结果表明:铁屑和铁粉对p-NP还原降解效果影响的大小顺序为:酸洗铁屑还原铁粉水洗铁屑碱洗铁屑;适中的土壤含水量、偏酸性的土壤初始pH值及较高的土壤有机质含量均可显著提高铁屑对p-NP的还原率;正交实验结果显示反应时间对p-NP还原效果影响最大,铁屑用量次之,土壤含水量最小;处理1.5 g p-NP浓度约为1.3×10-5mol/g的模拟污染土壤的反应最优化条件为:酸洗铁屑用量26 mg,土壤含水量0.35 mL,反应时间130 m in,还原率可达到96.4%。  相似文献   

10.
温度和表面活性剂对菲在土壤中吸附的影响   总被引:1,自引:0,他引:1  
通过静态吸附实验,研究了北京地区土壤对菲的吸附行为,考察了温度和表面活性剂对菲吸附的影响.结果表明,6种土样对菲的吸附等温线均较好地符合Freundlich吸附模式,其吸附能力的大小顺序为:轻壤土>轻粘土>砂壤土>中壤土>重壤土>紧砂土;温度升高不利于菲在土壤中的吸附;十二烷基苯磺酸钠(LAS)和十六烷基三甲基澳化铵(CTAB)均利于菲在土壤表面的解吸,LAS和CTAB对菲的解吸率最高可达66.2%和31.8%,且LAS的解吸效果更好.  相似文献   

11.
以表面活性剂TritonX-100(TX-100)为洗脱剂,某有机氯农药(organochlorinepesticides,OCPs)污染场地土壤为对象,七氯、氯丹和灭蚁灵为目标污染物,研究微米Cu/Fe双金属对污染土壤洗脱液中OCPs的降解效果。考察了洗脱液中OCPs初始浓度、洗脱液pH值、微米零价铁加入量和cu负载量对Cu/Fe去除OCPs效果的影响。结果表明,微米Cu/Fe可以有效的去除土壤洗脱液中目标污染物。当微米零价铁加入量为1.0g(25g/L),cu负载量为1.0%,洗脱液pH值为6.89时,Cu/Fe对2号土壤洗脱液中七氯、γ-氯丹、α-氯丹和灭蚁灵的去除效果最好,去除率分别为100.0%、99.3%、80.8%和71.1%。洗脱液中OCPs初始浓度越低,微米零价铁加入量越大,Cu/Fe对OCPs去除率越高;偏酸性条件有利于Cu/Fe对γ-氯丹和灭蚁灵的去除,而α-氯丹在中性条件下去除效果最好;1号土壤和2号土壤洗脱液的最佳铜负载量分别为2.O%和1.0%。  相似文献   

12.
零价铁与厌氧微生物协同还原地下水中的硝基苯   总被引:1,自引:0,他引:1  
通过间歇式实验,考察了零价铁与厌氧微生物协同还原地下水中硝基苯的效果。实验结果表明,由零价铁腐蚀为厌氧微生物提供H2电子供体还原硝基苯的效果明显优于零价铁和微生物单独作用,硝基苯去除率分别提高21.8%和57.0%。弱酸性条件有利于协同反应进行,当初始pH为5.0和6.0时,4 d后硝基苯去除率比初始pH为7.0时的提高74.4%和35.2%。增加零价铁投加量可提高协同还原的效果,零价铁最佳投加量为250 mg/L。零价铁腐蚀产生的Fe2+无法作为电子供体被微生物利用,但可作为无机营养元素促进协同过程。由于零价铁产H2速率受表面覆盖物影响不明显,在地下水修复过程中可保证协同效果并延长零价铁的使用寿命。  相似文献   

13.
Zhou Q  Diao C  Sun Y  Zhou J 《Chemosphere》2012,86(10):994-1000
The growth, photosynthesis rate, and ultrastructure of Mirabilis jalapa L. as a newly-found remediation species under stress of nitrobenzene (NB) and its uptake and removal of NB by the plants were investigated. The results showed that M. jalapa plants could endure contaminated soils by lower than 10.0 mg NB kg−1 because there was no decrease in the total length of the plant roots, the maximum length of the hypocotyle, the length of the first seminal root, the height of the shoots and the dry biomass of the seedlings as well as the photosynthesis rate of the plants compared with those in the control. In particular, the growth of the plants could be significantly (< 0.01) enhanced by 0.1 mg NB kg−1 under unautoclaved and autoclaved soils. Ultrastructural observations on leaf cells of the plants found that these cells had smooth, clean and continuous cell membranes and cell walls, indicating that there was no obvious damage by NB in comparison with those in the control. Although the absorption of NB in shoots and roots of M. jalapa was weak, plant-promoted biodegradation of NB was considerable and the dominant contribution in the removal of NB from contaminated soils, suggesting the feasibility of M. jalapa applied to phytoremediation of NB contaminated soils.  相似文献   

14.
微生物的异化Fe(Ⅲ)还原是一种能够利用Fe(III)作为末端电子受体在无氧条件下氧化有机物的产能过程。结合这一特性,考察了在兼性厌氧/严格厌氧条件下Fe^0钝化膜作为Fe(111)源时的生物还原能力以及对N、P等营养元素的去除效果。结果表明,严格厌氧条件下微生物异化Fe(Ⅲ)还原能力较好,富集培养至7d,累计Fe(II)浓度达到最大,最大产生速率为98.69mg/(L·d),同时TP去除率高达97.1%以上。而体系对NH4-N、TN的去除相对滞后,培养至13d,去除率开始增大,最终分别达到86.6%和76.1%。这为装填有海绵铁+聚氨酯泡沫载体的SBBR中填料的原位再生问题提供了解决思路。  相似文献   

15.
The highly reactive iron nanoparticles (NPs) immobilized in nylon membrane were synthesized and characterized, and the reduction of nitrobenzene (NB) in groundwater by the NPs was investigated. Environmental scanning electron microscopy (ESEM) images showed that the NPs distributed homogeneously on the membrane surface without agglomeration. X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS) analyses revealed that the NPs immobilized in membrane were mainly composed of Fe-oxides rather than zero-valent iron. Thermogravimetric (TG) analysis suggested that the weight percentage of the immobilized NPs and the oxygen introduced to the reacted sample after 80min reaction were about 18.5% and 13%, respectively. Moreover, Fourier transform infrared (FTIR) analysis further demonstrated the changes on the membrane surface after thermal grafting, NPs immobilizing and reacting for 80min. Using the reactive NPs immobilized in nylon membrane, NB in groundwater was rapidly and quantitatively decreased by 68.9% just in the first 20min, the Fe(2+) associated with the iron NPs immobilized in PEG/nylon66 membrane was mainly responsible for this reduction. The reaction appeared to follow pseudo-first-order kinetics and the rate constants increased upon decreasing the pH value. The samples we prepared exhibited good corrosion resistance for humic acid (HA) but had a short-term performance for NB degradation. More so, the groundwater chemistry had a negative influence on the reactivity of membrane immobilized NPs.  相似文献   

16.
利用TAMⅢ等温微量量热仪研究不同浓度的石油污染对土壤微生物活性的影响。对大港油田不同石油污染程度的土壤样品(3683-5-1、西51-5、西15-14和8-13-6H-1)以及实验室配置的短时间内石油污染土壤(空白、0.5%、1.5%、2.5%和4.0%)进行了微量热检测。含油量升高,总放热量升高,生长速率常数降低,峰值功率先升高后降低,达到最大峰值功率的时间随着含油量的升高而延长。结果表明,石油污染会影响土壤微生物的活性,并且在低浓度时促进微生物的生长,石油浓度高时会抑制土壤中微生物的生长代谢。  相似文献   

17.
为了探明硝基苯(NB)对硫酸盐还原的影响,揭示相关过程机制,采用以丙酸盐为碳源和电子供体的序批式厌氧反应系统(水力停留时间为33 h),考察了碳硫比为0.63~5.0,NB浓度为2.5~50 mg/L条件下,系统的硫酸盐还原效能。研究结果表明,NB对硫酸盐还原过程存在抑制作用,当系统NB进水浓度低于30 mg/L时,NB对硫酸盐还原过程抑制并不显著,但当进水NB浓度达50 mg/L时,硫酸盐还原率由近100%迅速降至17%。对比实验结果进一步表明,NB初始浓度为16.5 mg/L条件下,硫酸盐的比还原速率和丙酸的比消耗速率分别为对照组的63%和52%。硫酸盐还原的抑制主要源自NB及其还原产物苯胺(AN)的生物毒性,但上述抑制作用可逆。  相似文献   

18.
采用自行研制的生物转鼓反应器(RDB)处理难溶于水的NO废气,为提高NO的传质系数和去除效率,实验考察了营养液中添加FeⅡ(EDTA)络合剂协同RDB以提高NO去除效率的过程。结果表明,当空床停留时间(EBRT)为0.96 min时,在营养液中添加FeⅡ(EDTA)至100 mg/L后,NO的去除效率从70.78%升至79.26%。未添加FeⅡ(EDTA)时NO去除率随营养液的增加下降,添加FeⅡ(EDTA)至100 mg/L后,去除率随营养液量的增加先上升后下降,且下降速率比上升速率大。随着营养液中FeⅡ(EDTA)浓度从0增加至500 mg/L,实验最佳温度从32.5℃升至47.5℃,但添加FeⅡ(ED-TA)至100 mg/L对实验的最适pH值没有太大影响。  相似文献   

19.
Although the chemical reduction and advanced oxidation processes have been widely used individually, very few studies have assessed the combined reduction/oxidation approach for soil remediation. In the present study, experiments were performed in spiked sand and historically contaminated soil by using four synthetic nanoparticles (Fe0, Fe/Ni, Fe3O4, Fe3???x Ni x O4). These nanoparticles were tested firstly for reductive transformation of polychlorinated biphenyls (PCBs) and then employed as catalysts to promote chemical oxidation reactions (H2O2 or persulfate). Obtained results indicated that bimetallic nanoparticles Fe/Ni showed the highest efficiency in reduction of PCB28 and PCB118 in spiked sand (97 and 79 %, respectively), whereas magnetite (Fe3O4) exhibited a high catalytic stability during the combined reduction/oxidation approach. In chemical oxidation, persulfate showed higher PCB degradation extent than hydrogen peroxide. As expected, the degradation efficiency was found to be limited in historically contaminated soil, where only Fe0 and Fe/Ni particles exhibited reductive capability towards PCBs (13 and 18 %). In oxidation step, the highest degradation extents were obtained in presence of Fe0 and Fe/Ni (18–19 %). The increase in particle and oxidant doses improved the efficiency of treatment, but overall degradation extents did not exceed 30 %, suggesting that only a small part of PCBs in soil was available for reaction with catalyst and/or oxidant. The use of organic solvent or cyclodextrin to improve the PCB availability in soil did not enhance degradation efficiency, underscoring the strong impact of soil matrix. Moreover, a better PCB degradation was observed in sand spiked with extractable organic matter separated from contaminated soil. In contrast to fractions with higher particle size (250–500 and <500 μm), no PCB degradation was observed in the finest fraction (≤250 μm) having higher organic matter content. These findings may have important practical implications to promote successively reduction and oxidation reactions in soils and understand the impact of soil properties on remediation performance.  相似文献   

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