中国有色金属学报
中國有色金屬學報
중국유색금속학보
THE CHINESE JOURNAL OF NONFERROUS METALS
2013年
7期
2019-2025
,共7页
黄铜矿%浸出%超声强化%动力学模型
黃銅礦%浸齣%超聲彊化%動力學模型
황동광%침출%초성강화%동역학모형
chalcopyrite%leaching%ultrasonic wave intensifying%kinetic model
为解决低品位硫化铜矿难浸的问题,对黄铜矿进行超声波强化浸出实验。通过测量溶液黏度、表面张力、电导率、溶氧度以及铜浸出率,考察超声波对浸出液性质的改变以及对铜矿石浸出的影响。结果表明,超声波可以降低溶浸液的表面张力和黏度,增加溶浸液的电导率和溶氧度,从而加快反应速度。超声波作用下Cu的浸出率与对照实验相比提高了5.6%~14.8%。对浸出前后的矿石表面进行电镜扫描发现,超声波可以防止黄铜矿浸出过程中钝化膜的形成,加快浸出过程。引入超声强化浸出反应速度常数Kc,建立超声强化浸出反应动力学模型。根据浸出反应的动力学模型对超声波强化浸出机理进行分析。
為解決低品位硫化銅礦難浸的問題,對黃銅礦進行超聲波彊化浸齣實驗。通過測量溶液黏度、錶麵張力、電導率、溶氧度以及銅浸齣率,攷察超聲波對浸齣液性質的改變以及對銅礦石浸齣的影響。結果錶明,超聲波可以降低溶浸液的錶麵張力和黏度,增加溶浸液的電導率和溶氧度,從而加快反應速度。超聲波作用下Cu的浸齣率與對照實驗相比提高瞭5.6%~14.8%。對浸齣前後的礦石錶麵進行電鏡掃描髮現,超聲波可以防止黃銅礦浸齣過程中鈍化膜的形成,加快浸齣過程。引入超聲彊化浸齣反應速度常數Kc,建立超聲彊化浸齣反應動力學模型。根據浸齣反應的動力學模型對超聲波彊化浸齣機理進行分析。
위해결저품위류화동광난침적문제,대황동광진행초성파강화침출실험。통과측량용액점도、표면장력、전도솔、용양도이급동침출솔,고찰초성파대침출액성질적개변이급대동광석침출적영향。결과표명,초성파가이강저용침액적표면장력화점도,증가용침액적전도솔화용양도,종이가쾌반응속도。초성파작용하Cu적침출솔여대조실험상비제고료5.6%~14.8%。대침출전후적광석표면진행전경소묘발현,초성파가이방지황동광침출과정중둔화막적형성,가쾌침출과정。인입초성강화침출반응속도상수Kc,건립초성강화침출반응동역학모형。근거침출반응적동역학모형대초성파강화침출궤리진행분석。
In order to solve the difficulties in leaching low grade copper sulfide, the chalcopyrite leaching experiment intensified by ultrasonic wave was carried out. The effects of ultrasonic wave on the property change of the leaching solution and the leaching of copper ore were investigated by measuring the surface tension, solution viscosity, electric conductivity, dissolvability of oxygen and leaching rate of Cu. The results show that by the effect of ultrasonic wave the surface tension and viscosity decrease, whereas the electric conductivity and dissolvability of oxygen increase. Thus, the reaction velocity is speeded up. Under the conditions of ultrasonic wave, the leaching rate of Cu increases by 5.6%?14.8%compared with that of the control test. The ore-particle surfaces before and after leaching were observed by SEM. It is found that ultrasonic wave can effectively prevent from forming the passivating film on the surface of ore-particle during the leaching process, and then accelerate the leaching process. A kinetics model of leaching reaction intensified by ultrasonic wave was established by introducing intensified reaction rate constant Kc. The leaching mechanism intensified by ultrasonic wave was analyzed according to the kinetics models.