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基于亲水-亲脂平衡(HLD)概念和 Box-Behnken 设计的生物基燃油泄漏修复分散剂。

Bio-based dispersants for fuel oil spill remediation based on the Hydrophilic-Lipophilic Deviation (HLD) concept and Box-Behnken design.

机构信息

International Programs in Hazardous Substance and Environmental Management, Graduate School, Chulalongkorn University, Bangkok, Thailand; Research Program on Remediation Technologies for Petroleum Contamination, Center of Excellent on Hazardous Substance Management (HSM), Chulalongkorn University, Bangkok, Thailand.

Faculty of Environment and Resource Studies, Mahidol University, Nakhon Pathom, Thailand.

出版信息

Environ Pollut. 2021 Sep 15;285:117378. doi: 10.1016/j.envpol.2021.117378. Epub 2021 May 18.

Abstract

The high density and viscosity of fuel oil leads to its prolonged persistence in the environment and causes widespread contamination. Dispersants with a low environmental impact are necessary for fuel oil spill remediation. This study aimed to formulate bio-based dispersants by mixing anionic biosurfactant (lipopeptides from Bacillus subtilis GY19) with nonionic oleochemical surfactant (Dehydol LS7TH). The synergistic effect of the anionic-nonionic surfactant mixture produced a Winsor Type III microemulsion, which promoted petroleum mobilization. The hydrophilic-lipophilic deviation (HLD) equations for ionic and nonionic surfactant mixtures were compared, and it was found that the ionic equation was applicable for the calculation of lipopeptides and Dehydol LS7TH concentrations. The best formula contained 6.6% w/v lipopeptides and 11.9% w/v Dehydol LS7TH in seawater, and its dispersion effectiveness for bunker fuels A and C was 92% and 78%, respectively. The application of bio-based dispersants in water sources was optimized by Box-Behnken design. The efficiency of the bio-based dispersant was affected by the dispersant-to-oil ratios (DORs) but not by the water salinity. A suitable range of DORs for different oil contamination levels could be identified from the response surface plot. The dispersed fuel oil was further degraded by adding an oil-degrading bacterial consortium to the chemically enhanced water accommodated fractions (CEWAFs). After 7 days of incubation, the concentration of fuel oil was reduced from 3692 mg/L to 356 mg/L (88% removal efficiency). On the other hand, the abiotic control removed less than 40% fuel oil from the CEWAFs. This bio-based dispersant had an efficiency comparable to that of a commercial dispersant. The process of dispersant formulation and optimization could be applied to other surfactant mixtures.

摘要

燃料油密度大、黏度高,在环境中持久存在,造成广泛污染。有必要开发对环境影响低的分散剂,以修复燃油泄漏。本研究旨在通过混合阴离子生物表面活性剂(枯草芽孢杆菌 GY19 的脂肽)和非离子油基表面活性剂(脱水山梨醇单月桂酸酯 LS7TH)来配制生物基分散剂。阴离子-非离子表面活性剂混合物的协同作用产生了 Winsor 型 III 微乳液,促进了石油的迁移。比较了离子和非离子表面活性剂混合物的亲水-亲油偏差(HLD)方程,发现离子方程适用于脂肽和脱水山梨醇单月桂酸酯 LS7TH 浓度的计算。最佳配方为海水中含有 6.6%w/v 脂肽和 11.9%w/v 脱水山梨醇单月桂酸酯 LS7TH,对燃料油 A 和 C 的分散效果分别为 92%和 78%。通过 Box-Behnken 设计优化生物基分散剂在水源中的应用。分散剂与油的比值(DOR)影响生物基分散剂的效率,但水盐度没有影响。从响应面图可以确定不同油污染水平的合适 DOR 范围。将化学强化水可容纳馏分(CEWAFs)中添加的石油降解细菌混合物添加到生物基分散剂中,进一步降解分散的燃料油。培养 7 天后,燃料油浓度从 3692mg/L 降低到 356mg/L(去除效率 88%)。另一方面,非生物对照从 CEWAFs 中去除的燃料油不到 40%。该生物基分散剂的效率可与商业分散剂相媲美。分散剂配方和优化的过程可应用于其他表面活性剂混合物。

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