利用裂缝页岩天然富集的耐盐微生物优化反渗透反排水处理

M. Cahalan, D. Moskal, Cimon Song, Jianhang Wu
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引用次数: 0

摘要

水力压裂作业后回收的返排水由于其巨大的产量和有毒的化学成分而引起了严重的环境问题。传统的废水处理方法不能用于反排水处理,因为其高浓度的不可生物降解的溶解固体。因此,已经开发出替代技术来解决这个问题。反渗透(RO)处理就是这样一个例子。然而,在反排水中发现瓜尔胶凝胶剂阻碍了反渗透膜的渗透性和水通量,从而降低了这一理想的环保技术的效率和实用性。此前,由于高盐度(以高总溶解固体含量为特征)对微生物活性的抑制作用,在反渗透处理之前,曾尝试使用活性污泥降解瓜尔胶的生物溶液,但成功率有限。为了解决这一问题,最近发现的几种天然富集于裂缝页岩中的细菌和古细菌可以通过基因改造来降解高盐条件下的瓜尔胶。这些微生物天生耐盐,在高盐条件下也能茁壮成长,这使它们成为针对反排水中各种化学添加剂进行基因改造的主要目标。在这里,我们提供了一个概念验证模型,利用这些微生物选择性地靶向瓜尔胶降解,以提高反渗透处理的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of reverse osmosis flowback water treatment using halotolerant microbes naturally enriched in fractured shales
Flowback water recovered after hydraulic fracturing operations poses a serious environmental concern due to the sheer quantity produced and its toxic chemical composition. Traditional methods of wastewater treatment cannot be used for flowback water treatment due to its high concentration of non-biodegradable dissolved solids. Consequently, alternative technology has been developed to address this problem. Reverse osmosis (RO) treatment is one such example. However, guar gum gelling agents found in flowback water impede membrane permeability and water flux rate of RO, consequently decreasing the efficiency and practicality of this desirable, environment-friendly technology. Previously, a biological solution using activated sludge to degrade guar gum prior to RO treatment was attempted with limited success due to the inhibitory effects of hypersalinity (characterized by high total dissolved solids content) on microbial activity. To solve this problem, several recently discovered strains of bacteria and archaea found to be naturally enriched in fractured shales may be utilized through genetic modification to degrade guar gum under hypersaline conditions. These microbes are naturally halotolerant and thrive under hypersaline conditions, making them prime targets for genetic modification targeting various chemical additives in flowback water. Here, we provide a proof of concept model using these microbes to selectively target guar gum degradation to improve the efficiency of RO treatment.
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