Abstract:There is a small amount of large grain gold in the heavy sand, leading to the nonuniformity of gold grade, which increases the difficulty for determination of gold content. In this paper, the conventional sampling mode was improved based on the screening pretreatment method. The uniformity of gold content in sieved sample was greatly improved, thus enhancing the sampling representativeness. Through exploring the change rule of grain size and shape of gold particles in the sample grinding process, the grinding conditions were optimized, the screening treatment effect was improved, thereby improving the determination accuracy of heavy sand sample. The experiments showed that the gold content of in sieved sample was determined by multiple fire assay-gravimetric method (hereinafter referred to as fire assay) after screening pretreatment of heavy sand, and the minimum relative standard deviation (RSD) was 1.10%, which was obviously lower than that without screening pretreatment (i.e., 9.66%). 2-3 sieved samples and total samples on sieve were used for determination, then the average gold content in sample was calculated. It could effectively improve the determination accuracy of gold content in heavy sand, and also avoid the cost waste caused by multiple determination to obtain the average value. The factors of screening difficulty, sample mass on sieve and the uniformity of sieved sample were considered comprehensively. The optimal sieving parameter was 200 mesh (74 μm). When 500 g of sample was ground for 7 h in rod mill, giant grain gold and coarse grain gold would be ruptured and passed the sieve, deteriorating the uniformity of sieved sample. The grinding extent of sample could not be too high in order to guarantee the uniformity of sieved sample. The loss of sample and gold was little in screening pretreatment process, and it had little influence on the accuracy of determination results. The proposed method was applicable for the fire assay testing laboratories.
郝明阳, 芦新根, 陈永红, 赵凯. 基于过筛预处理提高重砂中金量的测定准确性探讨[J]. 冶金分析, 2024, 44(3): 77-83.
HAO Mingyang, LU Xin′gen, CHEN Yonghong, ZHAO Kai. Discussion on the improvement of determination accuracy of gold content in heavy sand based on screening pretreatment. , 2024, 44(3): 77-83.
[1] 张福元,张广安,徐娟,等.铋试金富集检测废汽车尾气催化剂中的钯[J].分析化学,2020,48(11):1590-1596. ZHANG Fuyuan,ZHANG Guang′an,XU Juan,et al.Determination of palladium in spent automobile exhaust catalysts by bismuth fire assay preconcentration[J].Chinese Journal of Analytical Chemistry,2020,48(11):1590-1596. [2] 董国臣,李景朝,张虹,等.自然重砂的应用现状与前景[J].资源与产业,2015,17(2):1-7. DONG Guochen,LI Jingchao,ZHANG Hong,et al.Application and outlook of heavy minerals[J].Resources & Industries,2015,17(2):1-7. [3] 张武雪,刘明霞,徐伯骏.金山店杂岩体含金性研究——重砂微金测试应用[J].地球科学,1995(2):156-158. ZHANG Wuxue,LIU Mingxia,XU Bojun.On gold-bearing nature of complex rock in Jinshandian-Applying trace analysis of gold to heavy sand[J].Earth Science,1995(2):156-158 [4] 王楠,周宇,任士远,等.分离富集技术在痕量贵金属分析中的应用与进展[J].冶金分析,2022,42(12):12-22. WANG Nan,ZHOU Yu,REN Shiyuan,et,al.Application and progress of separation and enrichment technology in the analysis of trace precious metal[J].Metallurgical Analysis,2022,42(12):12-22. [5] 郭家凡,来新泽,王琳,等.火试金反应原理及熔渣影响因素探究[J].冶金分析,2022,42(12):1-11. GUO Jiafan,LAI Xinze,WANG Lin,et al.Disussion on the reaction principle of fire assay and the influencing factors of slag[J].Metallurgical Analysis,2022,42(12):1-11. [6] 马婉仙.重砂测量与分析[M].北京:地质出版社,1990. [7] 李景超.自然重砂资料应用技术要求[M].北京:地质出版社,2010. [8] 赵凯,芦新根,李正旭,等.硝酸除杂-火试金重量法测定高杂铜阳极泥中的金量[J].云南冶金,2022,51(6):117-121. ZHAO Kai,LU Xin′gen,LI Zhengxu,et al.Determination on gold content in high impurity copper anode slime by nitric acid purification-fire-assay gravimetric method[J].Yunnan Metallurgy,2022,51(6):117-121. [9] 陈永红,孟宪伟,王立臣.2019—2020年中国金分析测定的进展[J].黄金,2022,43(1):105-112. CHEN Yonghong,MENG Xianwei,WANG Lichen.Progress of gold analysis and determination in China during 2019-2020[J].Gold,2022,43(1):105-112. [10] 张玉德,蔡忠文,张选冬.火试金重量法测定含银催化剂中银含量[J].有色矿冶,2020,36(5):54-56. ZHANG Yude,CAI Zhongwen,ZHANG Xuandong.Determination of silver content in catalyst containing silver by fire assay gold gravimetric method[J].Non-Ferrous Mining and Metallurgy,2020,36(5):54-56.