Micro-algae Engineering Research Group, School of Chemical Engineering, University of Adelaide, North Terrace Campus, 5005 South Australia, Australia.
Environ Sci Pollut Res Int. 2013 Feb;20(2):950-6. doi: 10.1007/s11356-012-1006-x. Epub 2012 Jun 9.
The stringent regulations for discharging acid mine drainage (AMD) has led to increased attention on traditional or emerging treatment technologies to establish efficient and sustainable management for mine effluents. To assess new technologies, laboratory investigations on AMD treatment are necessary requiring a consistent supply of AMD with a stable composition, thus limiting environmental variability and uncertainty during controlled experiments. Additionally, biotreatment systems using live cells, particularly micro-algae, require appropriate nutrient availability. Synthetic AMD (Syn-AMD) meets these requirements. However, to date, most of the reported Syn-AMDs are composed of only a few selected heavy metals without considering the complexity of actual AMD. In this study, AMD was synthesised based on the typical AMD characteristics from a copper mine where biotreatment is being considered using indigenous AMD algal-microbes. Major cations (Ca, Na, Cu, Zn, Mg, Mn and Ni), trace metals (Al, Fe, Ag, Na, Co, Mo, Pb and Cr), essential nutrients (N, P and C) and high SO(4) were incorporated into the Syn-AMD. This paper presents the preparation of chemically complex Syn-AMD and the challenges associated with combining metal salts of varying solubility that is not restricted to one particular mine site. The general approach reported and the particular reagents used can produce alternative Syn-AMD with varying compositions. The successful growth of indigenous AMD algal-microbes in the Syn-AMD demonstrated its applicability as appropriate generic media for cultivation and maintenance of mining microorganisms for future biotreatment studies.
严格的酸性矿山排水(AMD)排放标准使得人们对传统或新兴的处理技术更加关注,以便对矿山废水建立有效的可持续管理。为了评估新技术,有必要对 AMD 处理进行实验室研究,这需要稳定组成的 AMD 的持续供应,从而在受控实验中限制环境的可变性和不确定性。此外,使用活细胞(特别是微藻)的生物处理系统需要适当的养分供应。人工合成 AMD(Syn-AMD)满足这些要求。然而,迄今为止,大多数报告的 Syn-AMD 仅由几种选定的重金属组成,而没有考虑实际 AMD 的复杂性。在这项研究中,根据正在考虑使用本地 AMD 藻类微生物进行生物处理的铜矿中 AMD 的典型特征,合成了 AMD。主要阳离子(Ca、Na、Cu、Zn、Mg、Mn 和 Ni)、痕量金属(Al、Fe、Ag、Na、Co、Mo、Pb 和 Cr)、必需营养素(N、P 和 C)和高浓度 SO(4)被纳入到 Syn-AMD 中。本文介绍了化学组成复杂的 Syn-AMD 的制备方法,以及结合具有不同溶解度的金属盐所带来的挑战,这些方法并不局限于特定的矿山。所报道的一般方法和特定试剂的使用可以产生具有不同组成的替代 Syn-AMD。本地 AMD 藻类微生物在 Syn-AMD 中的成功生长表明,它可作为适合未来生物处理研究的培养和维持采矿微生物的通用培养基。