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Biodegradation of artificial monolayers applied to water storages to reduce evaporative loss

机译:应用于蓄水层的人工单层生物降解以减少蒸发损失

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Repeat applications of an artificial monolayer to the interfacial boundary layer of large agricultural water storages during periods of high evaporative demand remains the most commercially feasible water conservation strategy. However, the interfacial boundary layer (or microlayer) is ecologically distinct from subsurface water, and repeat monolayer applications may adversely affect microlayer processes. In this study, the natural cleansing mechanisms operating within the microlayer were investigated to compare the biodegradability of two fatty alcohol (C16OH and C18OH) and one glycol ether (C18E1) monolayer compound. The C16OH and C18OH compounds were more susceptible to microbial degradation, but the C18E1 compound was most susceptible to indirect photodegradation. On clean water the surface pressure and evaporation reduction achieved with a compressed C18E1 monolayer was superior to the C18OH monolayer, but on brown water the surface pressure dropped rapidly. These results suggest artificial monolayers are readily degraded by the synergy between photo and microbial degradation. The residence time of C18OH and C18E1 monolayers on clear water is sufficient for cost-effective water conservation. However, the susceptibility of C18E1 to photodegradation indicates the application of this monolayer to brown water may not be cost-effective.
机译:在高蒸发需求期间,将人工单层重复应用于大型农业水库的界面边界层仍然是最商业可行的节水策略。但是,界面边界层(或微层)在生态学上与地下水是不同的,重复的单层应用可能会对微层过程产生不利影响。在这项研究中,研究了在微层中起作用的天然清洁机理,以比较两种脂肪醇(C16OH和C18OH)和一种乙二醇醚(C18E1)单层化合物的生物降解性。 C16OH和C18OH化合物对微生物降解更敏感,但C18E1化合物对间接光降解最敏感。在纯净水上,通过压缩的C18E1单层实现的表面压力和蒸发减少优于C18OH单层,但在棕色水上,表面压力迅速下降。这些结果表明,人工单层很容易通过光降解和微生物降解之间的协同作用而降解。 C18OH和C18E1单层在透明水上的停留时间足以节省成本。但是,C18E1对光降解的敏感性表明,将该单层膜应用于褐色水可能并不划算。

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