首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到6条相似文献,搜索用时 0 毫秒
1.
粉煤灰提铝中间产物合成4A分子筛对氨氮的吸附行为研究   总被引:2,自引:0,他引:2  
采用粉煤灰提铝中间产物合成4A分子筛,利用XRD、SEM、热重分析、化学成分分析、阳离子交换容量对4A分子筛进行表征.考察吸附时间、pH、分子筛投加量、氨氮初始浓度、共存阳离子对其吸附性能的影响,研究其对模拟废水中氨氮的吸附效果,并结合准二级动力学方程、吸附等温线研究吸附性能和机理.结果表明,初始浓度为50 mg·L~(-1)、4A分子筛投加量为5 g·L~(-1)、pH值为6~9、吸附时间为80 min时氨氮去除率可达71.34%;随着氨氮初始浓度升高,其去除率降低,吸附容量增加;共存阳离子Na~+、K~+、Ca~(2+)对NH_4~+有强烈的竞争吸附,Mg~(2+)无明显竞争作用.吸附过程符合准二级动力学方程和Freundlich模型.Langmuir吸附等温线显示最大吸附容量为20 mg·g~(-1).  相似文献   

2.
High silica zeolite Y has been positively evaluated to clean-up water polluted with sulfonamides, an antibiotic family which is known to be involved in the antibiotic resistance evolution. To define possible strategies for the exhausted zeolite regeneration,the efficacy of some chemico-physical treatments on the zeolite loaded with four different sulfonamides was evaluated. The evolution of photolysis, Fenton-like reaction, thermal treatments, and solvent extractions and the occurrence in the zeolite pores of organic residues eventually entrapped was elucidated by a combined thermogravimetric(TGA–DTA), diffractometric(XRPD), and spectroscopic(FT-IR) approach. The chemical processes were not able to remove the organic guest from zeolite pores and a limited transformation on embedded molecules was observed. On the contrary, both thermal treatment and solvent extraction succeeded in the regeneration of the zeolite loaded from deionized and natural fresh water. The recyclability of regenerated zeolite was evaluated over several adsorption/regeneration cycles, due to the treatment efficacy and its stability as well as the ability to regain the structural features of the unloaded material.  相似文献   

3.
镧改性粉煤灰合成沸石的同步脱氨除磷研究   总被引:8,自引:2,他引:8       下载免费PDF全文
以火电厂固废粉煤灰为主要原料,采用改良水热法研制合成了低成本的P型沸石,对其进行了稀土镧改性处理,以强化其脱氮除磷能力.实验研究了改性镧离子浓度、投加量、pH值对同步去除氨氮和磷的影响;运用XRD和SEM分析技术对合成沸石进行了表征.结果表明,在改性镧离子浓度0.5%、pH值为4~8、投加量为10g/L时,改性后的合成沸石对氨氮和磷的去除率分别达到90%,95%以上.改性后的合成沸石对氨氮及磷的吸附动力学数据符合伪二级方程.Langmuir方程能更好地描述氨氮及磷在改性合成沸石上的等温吸附行为,氨氮和磷的Langmuir最大吸附量分别为3.94,1.65mg/g.  相似文献   

4.
采用粉煤灰合成沸石的方法既经济又环保,在乙酸乙酯吸附领域中具有巨大应用前景.遵循节能减排、废物再利用的环保原则,探索了3种不同Si/Al比的粉煤灰、结晶温度、结晶时间和碱浓度4个因素对合成NaY沸石的影响.XRD、氮气吸脱附实验及ICP结果表明,Si/Al比和水热结晶温度对高比表面积NaY沸石的合成影响最大.Si/Al比在1左右的粉煤灰合成的沸石比表面积较低,且晶形中存在大量的NaA沸石,而Si/Al比在2左右的粉煤灰合成了高比表面积且纯度较高的NaY沸石;3种粉煤灰均在65 ℃下合成NaY沸石,但在105 ℃下完全转化为方钠石.实验优化结果表明,最优合成条件为采用Si/Al为2左右的粉煤灰,在2 mol·L-1碱浓度、65 ℃水热温度下结晶12 h.该条件下合成的NaY沸石比表面积高达654.86 m2·g-1(比表面积最高的粉煤灰源沸石之一),是原粉煤灰比表面积的22倍左右,对乙酸乙酯的吸附量也由15.4 mg·g-1增至108.2 mg·g-1.  相似文献   

5.
研究了以CaCl2为配料对粉煤灰进行焙烧活化,焙烧熟料水洗后,用硫酸溶液浸取以回收粉煤灰中氧化铝的方法,并考察了焙烧温度和时间、CaCl2加量、硫酸浓度和浸取时间等因素对氧化铝回收率的影响.采用添加CaCl2焙烧的方法,可高效率破坏粉煤灰中的刚玉和莫来石,生成能被无机酸分解的物相,如钙铝黄长石、硅铝酸钙等.结果表明,按CaCl2:粉煤灰=0.8的比例加入CaCl2,于900℃焙烧30min,熟料经水洗涤后,按照每g粉煤灰~30mmol硫酸的量加入1~4mol/L的硫酸溶液,常温浸取30min,氧化铝浸出率可达95%以上.  相似文献   

6.
Zeolite synthesized from fly ash (ZFA) without modification is not efficient for the purification of NH4+ and phosphate at low concentrations that occur in real effluents, despite the high potential removal capacity. To develop an effective technique to enhance the removal efficiency of ammonium and phosphate at low concentrations, ZFA was modified with acid treatment and the simultaneous removal of ammonium and phosphate in a wide range of concentration was investigated. It was seen that when compared with untreated ZFA, only the treatment by 0.01 mol/L of H2SO4 significantly improved the removal efficiency of ammonium at low initial concentrations. The behavior was well explained by the pH effect. Treatment by more concentrated H2SO4 led to the deterioration of the ZFA structure and a decrease in the cation exchange capacity. Treatment by 0.01 mol/L H2SO4 improved the removal efficiency of phosphate by ZFA at all initial P concentrations, while the treatment by concentrated H2SO4 (≥0.9 mol/L) resulted in a limited maximum phosphate immobilization capacity (PIC). It was concluded that through a previous mild acid treatment (e.g. 0.01 mol/L of H2SO4), ZFA can be used in the simultaneous removal of NH4+ and P at low concentrations simulating real effluent.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号