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通过α粒子放射自显影术定量研究铜(铁)-硫化物矿物加工过程中的放射性核素分布和迁移。

Quantification of radionuclide distribution and migration during Cu-(Fe)-sulphide mineral processing by alpha particle autoradiography.

机构信息

Institute for Photonics & Advanced Sensing (IPAS) and School of Physical Sciences, University of Adelaide, Adelaide, 5005, Australia; Australian Research Council (ARC), Research Hub for Australian Copper-Uranium, Australia.

Institute for Photonics & Advanced Sensing (IPAS) and School of Physical Sciences, University of Adelaide, Adelaide, 5005, Australia; Australian Research Council (ARC), Research Hub for Australian Copper-Uranium, Australia.

出版信息

J Environ Radioact. 2021 Mar;228:106514. doi: 10.1016/j.jenvrad.2020.106514. Epub 2020 Dec 23.

Abstract

Understanding the movement of radionuclides (RNs) between different mineral hosts during processing of base metal ores is critical for accurate modelling of RN deportment and optimisation of processes designed to reduce or eliminate RNs. Here, we demonstrate that spatially resolving quantitative alpha particle autoradiography combined with backscatter electron imaging and energy dispersive X-ray spectroscopy (EDS) can establish the correlation between alpha-emitting RNs (notably Ra and Po, daughters of the abundant U decay series) and certain minerals, in different stages of processing. This is achieved by locating the RNs to a specific mineral grain, the species of which can subsequently be identified using EDS. The mineralogy of RN-associated grains can then be compared with the mineral suite and relative abundances of the species within the sample, by relating how often each mineral is associated with alpha decay-events. In the processing of uranium-bearing copper ores, migration of alpha-emitting RN daughters of the U series were observed, and these RNs were demonstrated to correlate strongly with barite, bornite and covellite over other coexisting minerals.

摘要

理解在贱金属矿石加工过程中,放射性核素(RNs)在不同矿物宿主之间的迁移,对于准确模拟 RN 的迁移行为和优化旨在减少或消除 RNs 的工艺至关重要。在这里,我们证明了空间分辨定量α粒子放射自显影结合背散射电子成像和能量色散 X 射线光谱(EDS)可以在不同的加工阶段建立与某些矿物之间发射α粒子的放射性核素(特别是 Ra 和 Po,大量 U 衰变系列的子体)的相关性。这是通过将 RNs 定位到特定的矿物颗粒来实现的,随后可以使用 EDS 来识别该矿物颗粒的种类。然后可以通过比较每种矿物与α衰变事件的关联频率,将与 RN 相关的颗粒的矿物学与样品中的矿物组合和物质的相对丰度进行比较。在含铀铜矿的加工过程中,观察到 U 系发射α粒子的 RN 子体的迁移,并且已经证明这些 RN 与重晶石、斑铜矿和辉铜矿密切相关,而与其他共存矿物关系不大。

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