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Acid tolerance of an acid mine drainage bioremediation system based on biological sulfate reduction

机译:基于生物硫酸盐还原的酸性矿山排水生物修复系统的耐酸性

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The acid tolerance response of an AMD bioremediation system based on sulfate reduction was investigated. Efficient sulfate reduction was observed with a maximum sulfate reduction rate of 12.3±0.8mgL~(-1)d~(-1) and easily available organic carbon was released during high acid treatment with an initial pH of 2.0. The rapid increase in sulfate reduction was observed when the extreme acid treatment with an initial pH of 1.0 was stopped. Column experiment on acid shock showed that efficient sulfate reduction was maintained while precipitation of Cu or Zn still occurred during extreme or high acid shock. More than 98% of Cu and 85% of Zn were removed in the high acid column experiment with influent pH of 2.0. The majority bacteria in the remediation system used for high acid drainage belonged to genera Clostridiaceae, Eubacterium, Pseudobutyrivibrio, and Clostridium. These findings showed high acid tolerance of the straw remediation system.
机译:研究了基于硫酸盐还原的AMD生物修复系统的耐酸反应。观察到有效的硫酸盐还原,最大硫酸盐还原速率为12.3±0.8mgL〜(-1)d〜(-1),并且在初始pH为2.0的高酸处理过程中释放了易于利用的有机碳。当终止初始pH为1.0的强酸处理时,观察到硫酸盐还原的快速增加。酸冲击色谱柱实验表明,在极度或高度酸冲击条件下,硫酸盐仍可有效还原,而铜或锌仍会沉淀。在进水pH值为2.0的高酸色谱柱实验中,去除了98%以上的Cu和5%的Zn。用于高酸排放的修复系统中的大多数细菌属于梭菌科,真细菌,假丁酸弧菌和梭菌属。这些发现表明秸秆修复系统具有很高的耐酸性。

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