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1.
UV/H2O2氧化联合Ca(OH)2吸收同时脱硫脱硝   总被引:1,自引:0,他引:1       下载免费PDF全文
刘杨先  张军  王助良 《化工学报》2012,63(10):3277-3283
在小型紫外光-鼓泡床反应器中,对UV/H2O2氧化联合Ca(OH)2吸收同时脱除燃煤烟气中NO与SO2的主要影响因素[H2O2浓度、紫外光辐射强度、Ca(OH)2浓度、NO浓度、溶液温度、烟气流量以及SO2浓度]进行了考察。采用烟气分析仪和离子色谱仪分别对尾气中的NO2和液相阴离子作了检测分析。结果显示:在本文所有实验条件下,SO2均能实现完全脱除。随着H2O2浓度、紫外光辐射强度和Ca(OH)2浓度的增加,NO的脱除效率均呈现先大幅度增加后轻微变化的趋势。NO脱除效率随烟气流量和NO浓度的增加均有大幅度下降。随着溶液温度和SO2浓度的增加,NO脱除效率仅有微小的下降。离子色谱分析表明,反应产物主要是SO42-和NO3-,同时有少量的NO2-产生。尾气中未能检测到有害气体NO2。  相似文献   

2.
采用实验方法研究了不同尺寸滴管炉反应器内H_2O_2热分解氧化NO特性。对比了不同H_2O_2蒸发条件对NO氧化率的影响规律。分析了气体温度、H_2O_2溶液浓度、H_2O_2:NO摩尔比、NO初始浓度及气体流量对NO氧化率的影响。检测了氧化产物并分析了产物的生成路径。结果表明:H_2O_2的快速蒸发是其热分解氧化NO的前提。减小H_2O_2液滴尺寸或液膜厚度可加速H_2O_2蒸发与分解,提高NO氧化率,扩宽NO氧化的温度范围。保证蒸发速率可削弱H_2O_2浓度对NO氧化率的影响。当H_2O_2:NO10时,NO氧化率随H_2O_2:NO的增加而增加;当H_2O_2:NO10时,NO氧化率几乎不随H_2O_2:NO变化。H_2O_2热分解对于较高浓度的NO具有更高的氧化效率。H_2O_2热分解氧化NO的主要产物为NO_2。HO_2·直接将NO氧化为NO_2,·OH则先将NO转化为HONO,然后进一步氧化为NO_2。  相似文献   

3.
采用实验方法研究了低成本环境友好型添加剂抗坏血酸(AA)对Fe2+/H2O2体系氧化NO气体及其对体系内H2O2分解的影响,分析了AA对体系氧化NO能力及H2O2分解的影响机制。研究结果表明:AA通过加速Fe3+向Fe2+的转化而促进Fe2+/H2O2体系对NO的氧化。[AA]0:[Fe2+]0对体系氧化NO的能力及H2O2的分解具有重要影响。综合考虑NO氧化脱除量及H2O2消耗量,合理的[AA]0:[Fe2+]0为1/3~1/2。AA的分次添加方式可大幅度提升体系氧化NO气体的能力。研究结果可望为发展基于H2O2为氧化剂的烟气NO绿色氧化技术提供理论基础。  相似文献   

4.
Fe2+/H2O2体系内各种自由基在氧化NO中的作用   总被引:1,自引:0,他引:1       下载免费PDF全文
Fe2+/H2O2体系可分解产生多种氧化性自由基, 主要包括O2-·、·OH和HO2·。本文实验研究了O2-·、·OH及HO2·在Fe2+/H2O2体系氧化NO气体过程中的作用。结果表明:在本实验条件下, O2-·对NO气体的氧化作用不明显;·OH及HO2·是该体系氧化NO气体的主要活性物质, 其中·OH的氧化作用更大。加快自由基的生成速率可以增强Fe2+/H2O2体系对NO气体的氧化能力, 但O2的生成速率同时加快。只有少量·OH及HO2·参与NO的氧化, ·OH与HO2·之间的快速反应是Fe2+/H2O2体系氧化NO过程中H2O2利用率低的主要原因。  相似文献   

5.
H2O2利用率低是Fe (Ⅱ)/H2O2氧化体系应用的瓶颈,自由基无效消耗是H2O2利用率低的主要原因之一。本文以烟气中NO氧化为技术背景,实验研究了Fe (Ⅱ)/H2O2体系内H2O2及各种自由基在氧化NO中的作用及自由基无效消耗路径。结果表明:H2O2直接氧化NO能力很弱;虽然·OH及HO2·均可以氧化NO,但·OH的氧化作用大于HO2·。氧化NO同时,绝大多数·OH及HO2·通过两者的快速复合反应而无效消耗,严重影响了H2O2利用率。因此,使用Fe (Ⅱ)/H2O2体系降解污染物过程中,应尽量避免·OH及HO2·两种自由基同时大量存在。  相似文献   

6.
以256 m2烧结机O3氧化烧结烟气中NO过程为研究对象,采用CFD数值模拟方法考察了含O3喷射气体与烧结烟气流动及NO低温氧化特性。通过与76步复杂反应机理的对比验证了11步简化机理的适用性,分析了反应温度、O3/NO摩尔比以及O3分布特性对NO氧化效率和不同价态NO x 转化率的影响规律。通过对简单结构反应器的模拟结果表明:NO3稳定性较差,烟道内主要氧化产物为NO2与N2O5;随反应温度升高,NO氧化效率基本保持不变,NO2转化率提高且提升速率逐渐增大而N2O5呈相反规律;随O3/NO摩尔比增大,NO氧化效率提高但提升速率逐渐减小,NO2转化率先增大后在摩尔比高于1.25时开始减小,而各工况均产生N2O5且生成量逐渐增大,其原因为射流核心区可提供高O3/NO摩尔比条件;通过优化O3分布器结构改善O3与烟气接触与混合条件,O3与NO摩尔比为1.0、停留时间为0.87 s时NO氧化率可提高约12.8%,摩尔比为2.0、停留时间为1.73 s时N2O5转化率可提高约15.6%。  相似文献   

7.
白志华  张军 《化工进展》2023,(9):4967-4973
针对当前Fenton氧化法脱除燃煤烟气中NO的过程中H2O2大量无效分解生成氧气的缺点,本文采用二乙烯三胺五亚甲基膦酸(DTPMPA)/Fenton系统进行氧化脱除NO的实验研究。结果表明:该系统在NO脱除效率为95.1%的情况下,H2O2无效分解占比降低至15.5%。DTPMPA浓度的增加抑制了H2O2无效分解,其浓度较低时促进NO脱除而浓度较高时抑制NO脱除;H2O2及Fe2+浓度的增加均对NO脱除及H2O2无效分解有一定的促进作用,但二者浓度过高时亦均对脱除NO有一定抑制作用;降低反应温度对NO脱除影响较小,但会削弱H2O2无效分解;SO2对NO的脱除及H2O2无效分解影响甚小。电子自旋共振技术和淬灭剂添加实验结果表明:DTPMPA的...  相似文献   

8.
为阐明H2O2/Fe2(MoO4)3体系脱硝过程中H2O2吸附分解及NO氧化行为,基于DFT方法首次计算了H2O2和NO分子单独及二者同时在Fe2(MoO4)3表面的吸附构型,并通过考察吸附能、Mulliken电荷及氧化路径等特性揭示H2O2催化分解和NO氧化的微观机制。结果表明:H2O2在Fe2(MoO4)3表面易分解为活性自由基,而NO则以分子形式吸附;H2O2和NO共吸附时,H2O2优先吸附于催化剂表面并随后分解,NO则分别被H2O2分解产...  相似文献   

9.
以亚甲基蓝(MB)作为目标污染物,实验研究了Fe2+/H2O2体系降解MB的活性物质,明确了主要反应条件对MB降解的影响特性。结果表明:HO2?没有直接降解MB的能力;Fe2+/H2O2体系对MB的降解能力主要来自于?OH;Fe2+/H2O2体系降解MB可分为快速反应阶段和匀速反应阶段。快速反应阶段的MB降解率随温度升高而下降。体系对MB降解能力随H2O2初始浓度增加呈现先升高后减弱的趋势,本实验条件下,最佳H2O2初始浓度为5 mmol·L-1。体系对MB降解能力随Fe2+初始浓度的增加而单调增加。MB降解速率随MB初始浓度的增加而增加,但MB降解率随其初始浓度呈现先增大后减小的趋势。保证?OH生成速率及其有效利用是提高体系氧化能力及H2O2利用率的关键。  相似文献   

10.
以稻壳为硅源,采用直接煅烧法制备白炭黑,以其为载体,采用共浸渍法制备Fe2O3/SiO2催化剂;并采用同样方法以商用二氧化硅为载体制备Fe2O3/C-SiO2催化剂,将二者用于催化H2O2预氧化NO的实验。探究不同工况(负载量、催化温度、H2O2汽化温度、H2O2流量和水汽浓度)对NO预氧化的影响,并对催化剂进行表征,分析其物理化学性质对催化性能的影响。结果表明,在负载量为50%、催化温度为140℃、H2O2汽化温度为120℃、H2O2流量为2.5mL/h时,达到最佳工况,NO氧化度能达到73%;在相同实验条件下Fe2O3/SiO2催化剂的预氧化效果要比Fe2O3/C-SiO2催化剂高20%左右。TPR结果表明载体可以降低活性组分的还原温度,减少活性组分的团聚;催化剂的晶相结构稳定,机械强度及热稳定性良好;ESR和XPS结果显示Fe2O3/SiO2催化剂的催化性能优于Fe2O3/C-SiO2催化剂,能够更好地催化分解H2O2产生·OH。  相似文献   

11.
A systematic mechanistic study of NO storage and reduction over Pt/Al2O3 and Pt/BaO/Al2O3 is carried out using Temporal Analysis of Products (TAP). NO pulse and NO/H2 pump-probe experiments at 350 °C on pre-reduced, pre-oxidized, and pre-nitrated catalysts reveal the complex interplay between storage and reduction chemistries and the importance of the Pt/Ba coupling. NO pulsing experiments on both catalysts show that NO decomposes to major product N2 on clean Pt but the rate declines as oxygen accumulates on the Pt. The storage of NO over Pt/BaO/Al2O3 is an order of magnitude higher than on Pt/Al2O3 showing participation of Ba in the storage even in the absence of gas phase O2. Either oxygen spillover or transient NO oxidation to NO2 is postulated as the first steps for NO storage on Pt/BaO/Al2O3. The storage on Pt/Ba/Al2O3 commences as soon as Pt–O species are formed. Post-storage H2 reduction provides evidence that a fraction of NO is not stored in close proximity to Pt and is more difficult to reduce. A closely coupled Pt/Ba interfacial process is corroborated by NO/H2 pump-probe experiments. NO conversion to N2 by decomposition is sustained on clean Pt using excess H2 pump-probe feeds. With excess NO pump-probe feeds NO is converted to N2 and N2O via the sequence of barium nitrate and NO decomposition. Pump-probe experiments with pre-oxidized or pre-nitrated catalyst show that N2 production occurs by the decomposition of NO supplied in a NO pulse or from the decomposition of NOx stored on the Ba. The transient evolution of the two pathways depends on the extent of pre-nitration and the NO/H2 feed ratio.  相似文献   

12.
The adsorption of HCN on, its catalytic oxidation with 6% O2 over 0.5% Pt/Al2O3, and the subsequent oxidation of strongly bound chemisorbed species upon heating were investigated. The observed N-containing products were N2O, NO and NO2, and some residual adsorbed N-containing species were oxidized to NO and NO2 during subsequent temperature programmed oxidation. Because N-atom balance could not be obtained after accounting for the quantities of each of these product species, we propose that N2 and was formed. Both the HCN conversion and the selectivity towards different N-containing products depend strongly on the reaction temperature and the composition of the reactant gas mixture. In particular, total HCN conversion reaches 95% above 250 °C. Furthermore, the temperature of maximum HCN conversion to N2O is located between 200 and 250 °C, while raising the reaction temperature increases the proportion of NOx in the products. The co-feeding of H2O and C3H6 had little, if any effect on the total HCN conversion, but C3H6 addition did increase the conversion to NO and decrease the conversion to NO2, perhaps due to the competing presence of adsorbed fragments of reductive C3H6. Evidence is also presented that introduction of NO and NO2 into the reactant gas mixture resulted in additional reaction pathways between these NOx species and HCN that provide for lean-NOx reduction coincident with HCN oxidation.  相似文献   

13.
The effect of oxygen concentration on the pulse and steady-state selective catalytic reduction (SCR) of NO with C3H6 over CuO/γ-Al2O3 has been studied by infrared spectroscopy (IR) coupled with mass spectroscopy studies. IR studies revealed that the pulse SCR occurred via (i) the oxidation of Cu0/Cu+ to Cu2+ by NO and O2, (ii) the co-adsorption of NO/NO2/O2 to produce Cu2+(NO3)2, and (iii) the reaction of Cu2+(NO3)2 with C3H6 to produce N2, CO2, and H2O. Increasing the O2/NO ratio from 25.0 to 83.4 promotes the formation of NO2 from gas phase oxidation of NO, resulting in a reactant mixture of NO/NO2/O2. This reactant mixture allows the formation of Cu2+(NO3)2 and its reaction with the C3H6 to occur at a higher rate with a higher selectivity toward N2 than the low O2/NO flow. Both the high and low O2/NO steady-state SCR reactions follow the same pathway, proceeding via adsorbed C3H7---NO2, C3H7---ONO, CH3COO, Cu0---CN, and Cu+---NCO intermediates toward N2, CO2, and H2O products. High O2 concentration in the high O2/NO SCR accelerates both the formation and destruction of adsorbates, resulting in their intensities similar to the low O2/NO SCR at 523–698 K. High O2 concentration in the reactant mixture resulted in a higher rate of destruction of the intermediates than low O2 concentration at temperatures above 723 K.  相似文献   

14.
H2O2 used in the photo-Fenton reaction with iron catalyst can accelerate the oxidation of Fe2+ to Fe3+ under UV irradiation and in the dark (in the so called dark Fenton process). It was proved that conversion of phenol under UV irradiation in the presence of H2O2 predominantly produces highly hydrophilic products and catechol, which can accelerate the rate of phenol decomposition. However, while H2O2 under UV irradiation could decompose phenol to highly hydrophilic products and dihydroxybenzenes in a very short time, complete mineralization proceeded rather slowly. When H2O2 is used for phenol decomposition in the presence of TiO2 and Fe–TiO2, decrease of OH radicals formed on the surface of TiO2 and Fe–TiO2 has been observed and photodecomposition of phenol is slowed down. In case of phenol decomposition under UV irradiation on Fe–C–TiO2 photocatalyst in the presence of H2O2, marked acceleration of the decomposition rate is observed due to the photo-Fenton reactions: Fe2+ is likely oxidized to Fe3+, which is then efficiently recycled to Fe2+ by the intermediate products formed during phenol decomposition, such as hydroquinone (HQ) and catechol.  相似文献   

15.
Effect of additives, In2O3, SnO2, CoO, CuO and Ag, on the catalytic performance of Ga2O3–Al2O3 prepared by sol–gel method for the selective reduction of NO with propene in the presence of oxygen was studied. As for the reaction in the absence of H2O, CoO, CuO and Ag showed good additive effect. When H2O was added to the reaction gas, the activity of CoO-, CuO- and Ag-doped Ga2O3–Al2O3 was depressed considerably, while an intensifying effect of H2O was observed for In2O3- and SnO2-doped Ga2O3–Al2O3. Of several metal oxide additives, In2O3-doped Ga2O3–Al2O3 showed the highest activity for NO reduction by propene in the presence of H2O. Kinetic studies on NO reduction over In2O3–Ga2O3–Al2O3 revealed that the rate-determining step in the absence of H2O is the reaction of NO2 formed on Ga2O3–Al2O3 with C3H6-derived species, whereas that in the presence of H2O is the formation of C3H6-derived species. We presumed the reason for the promotional effect of H2O as follows: the rate for the formation of C3H6-derived species in the presence of H2O is sufficiently fast compared with that for the reaction of NO2 with C3H6-derived species in the absence of H2O. Although the retarding effect of SO2 on the activity was observed for all of the catalysts, SnO2–Ga2O3–Al2O3 showed still relatively high activity in the lower temperature region.  相似文献   

16.
倪金雷  彭若帆  童少平  马淳安 《化工学报》2015,66(10):3950-3956
研究了不同物相TiO2对H2O2/O3氧化效能的影响,目标有机物为羟基自由基探针化合物乙酸。结果表明,在初始pH为7.0和10.0时,加入TiO2反而降低了H2O2/O3的氧化效率,其中锐钛矿TiO2比金红石TiO2的减弱作用更为明显。当初始pH为3.0时,金红石TiO2能显著提高H2O2/O3的氧化效率,但锐钛矿TiO2影响不明显。机理分析表明,H2O2浓度及其衰减速率与乙酸的去除效率有很大的相关性。在pH为7.0和10.0时,两种物相TiO2均能加快H2O2的分解,其中锐钛矿TiO2作用更为显著。此条件下HO2-能有效引发臭氧分解产生羟基自由基,故H2O2过快分解反而降低了乙酸的去除效果。在pH为3.0时,H2O2去质子化反应困难,故O3/H2O2氧化效率极低,H2O2浓度也几乎不变。加入TiO2能明显提高H2O2的分解速率,相比金红石TiO2,锐钛矿TiO2使H2O2在5 min内基本分解完毕,但其对H2O2/O3氧化效率几乎没有影响。饱和臭氧水分解速度的批处理实验也有相似的结果。由此可见,合适引发剂浓度可能是保证臭氧类高级氧化技术较高效率的关键,否则只会导致氧化剂的无效过快分解。利用氯化硝基四氮唑蓝法对比分析了酸性条件下H2O2/O3、锐钛矿TiO2/H2O2/O3和金红石TiO2/H2O2/O3体系产生超氧自由基(·O2-)的量,其大小顺序为:H2O2/O3< 金红石TiO2/H2O2/O3< 锐钛矿TiO2/H2O2/O3,这与前面结果吻合很好。  相似文献   

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