高鐵閃鋅礦中銦、鎘的綜合利用研究
[Abstract]:High iron sphalerite is a unique indium-zinc resource in China, rich in zinc, iron, indium, tin, copper, cadmium, silver and other metals. How to realize its clean and efficient comprehensive utilization is an important problem faced by the indium-zinc metallurgical industry. The combined recovery process realizes the comprehensive recovery of zinc and indium resources, but there are still some key technological problems: the loss of indium in water-quenched slag during reduction smelting is still large, and the direct yield of copper-bearing pig iron is low; the high content of cadmium and zinc in the smelting process can not be treated, resulting in the loss of cadmium resources; the purified indium products are single, and the added value is low. In order to solve these problems, a new process for comprehensive utilization of indium and cadmium resources in high-iron polymetallic zinc concentrate is proposed. Firstly, the behavior of elements in reduction smelting of high-iron sphalerite is studied. Secondly, the feasibility of mixed smelting of zinc and lead is studied theoretically and experimentally by ab initio molecular dynamics simulation. In this paper, a new process of vacuum distillation for the treatment of zinc with high cadmium content produced by atmospheric distillation was studied. Finally, the experimental study on the purification of indium was carried out. The direct yield of 64.45%, tin 13.55% and silver 32%; 2. 14.87% indium enters water-quenched slag and copper-bearing pig iron, 80.93% cadmium enters water-quenched slag, 11.62% copper enters water-quenched slag, 63.85% copper enters copper-bearing pig iron, 60% iron enters copper-bearing pig iron, 11% iron enters water-quenched slag, 83.62% lead enters crude zinc. (2) Aiming at reducing smelting. In the process of reduction smelting, the feasibility of adding lead to enrich indium was studied by ab initio molecular dynamics simulation (AIMD), and the interaction between ZnInPb and ZnInPb was determined. The influence of lead content on indium distribution in reduction smelting process was investigated. 1) The simulation results of PbnInn, PbnZnn, ZnnInn clusters show that the binding force between atoms in binary clusters is Pb-InPb-ZnZn-In, Zn12In6Pb2 clusters (In: Pb = 3:1), Zn14In2Pb4 clusters (In: Pb = 1:2), Zn12In2Pb6 (In: Pb = 1:3) Pb 4 clusters and Zn15InPb4 (In: Pb = 1:4) clusters. Ming: Zn atoms in ternary clusters are unstable, dynamics simulation shows that Zn atoms in the clusters are separated from the clusters; In-Pb binding force is the best in Zn12In2Pb6 (In: Pb = 1:3), and in-Pb binding force is the weakest in Zn15InPb4; Ab initio molecular dynamics simulation of Zn106In11Pb11 ternary alloy shows that the interaction force between in-Pb atoms is stronger than that between Zn-In, Zn-Pb.2) using Pb and Zn. The enrichment rate of indium in crude zinc was studied by changing the ratio of lead to zinc (In: Pb~3:1,1:2,1:3,1:4). The results show that the enrichment rate of indium in crude zinc can be increased with the increase of lead content in furnace, and the loss of indium in slag discarded during reduction smelting can be reduced. The concentration of lead in reduction smelting is 0.18-0.2% (In: Pb~1:3). (3) In: Pb ratio is 1:3. The results show that: (1) The content of indium in copper-bearing pig iron can be reduced from 573.28g/t to 100g/t with the increase of lead content in furnace, and the recovery rate of indium can be increased. (3) A vacuum distillation-fractional condensation process for high cadmium zinc produced in Pyrometallurgical smelting was proposed. The results show that low temperature slow evaporation is beneficial to the vacuum distillation and purification of zinc-cadmium alloy. Refined cadmium of 4N can be obtained by three times vacuum distillation at 30Pa, 673K and 30min. (4) The experimental results of regional smelting purification of indium show that most impurities in indium are concentrated in the tail of ingot during regional smelting, and the impurities in the melting zone can be fully condensed by reducing the zone smelting speed and increasing the number of zone smelting. The purity of indium was 99.9991% after 10 passes of regional smelting and purification under the condition of 1mn/min regional melting speed. The high-temperature reduction smelting process of high-indium high-iron sphalerite was improved in this study. Indium was enriched during reduction smelting, by-product high-cadmium zinc was vacuum treated, and indium was purified by regional smelting. The research of process has realized the comprehensive and efficient recovery of indium and cadmium resources in sphalerite.
【學(xué)位授予單位】:昆明理工大學(xué)
【學(xué)位級別】:博士
【學(xué)位授予年份】:2017
【分類號】:TF803
【相似文獻(xiàn)】
相關(guān)期刊論文 前10條
1 王群;吳亨魁;胡熙庚;;亞硫酸鹽對銅活化的閃鋅礦及鐵閃鋅礦抑制作用的研究[J];中南礦冶學(xué)院學(xué)報;1985年03期
2 余潤蘭,邱冠周,胡岳華,覃文慶;乙黃藥在鐵閃鋅礦表面的吸附機(jī)理[J];金屬礦山;2004年12期
3 吳伯增,邱冠周,覃文慶,陳建明;丁黃藥體系鐵閃鋅礦的浮選行為與電化學(xué)研究[J];礦冶工程;2004年06期
4 童雄;周慶華;何劍;饒峰;;鐵閃鋅礦的選礦研究概況[J];金屬礦山;2006年06期
5 童雄;何劍;饒峰;劉四清;周慶華;;云南都龍高鐵閃鋅礦的活化試驗研究[J];礦冶工程;2006年04期
6 童雄;劉四清;周慶華;何劍;;含銦高鐵閃鋅礦的活化[J];有色金屬;2007年01期
7 巨佳;王吉坤;;鐵閃鋅礦的浸出研究現(xiàn)狀[J];濕法冶金;2009年04期
8 班進(jìn)榮;顧幗華;胡可婷;;鐵閃鋅礦的Leptospirillum ferrooxidans菌浸出及電化學(xué)性能(英文)[J];Transactions of Nonferrous Metals Society of China;2013年02期
9 唐三川 ,鮑超 ,孫建鄂;鐵閃鋅礦氧化動力學(xué)研究[J];礦冶工程;1986年04期
10 吳志祥;;鐵閃鋅礦浮選中鉛的回收[J];有色金屬(選礦部分);1993年04期
相關(guān)會議論文 前3條
1 李榮興;俞小花;謝剛;彭建蓉;楊大錦;林艷;;從高銦高鐵閃鋅礦加壓浸出液中萃取銦的工藝研究[A];2010年全國冶金物理化學(xué)學(xué)術(shù)會議專輯(下冊)[C];2010年
2 馮林永;謝克強;楊顯萬;王吉坤;;鐵閃鋅礦氧壓浸出熱力學(xué)[A];2006年全國冶金物理化學(xué)學(xué)術(shù)會議論文集[C];2006年
3 李存兄;鄧志敢;魏昶;徐紅勝;李興彬;李e,
本文編號:2231674
本文鏈接:http://sikaile.net/shoufeilunwen/gckjbs/2231674.html