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Biosurfactant as a Promoter of Methane Hydrate Formation: Thermodynamic and Kinetic Studies

机译:生物表面活性剂促进甲烷水合物形成:热力学和动力学研究

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摘要

Natural gas hydrates (NGHs) are solid non-stoichiometric compounds often regarded as a next generation energy source. Successful commercialization of NGH is curtailed by lack of efficient and safe technology for generation, dissociation, storage and transportation. The present work studied the influence of environment compatible biosurfactant on gas hydrate formation. Biosurfactant was produced by Pseudomonas aeruginosa strain A11 and was characterized as rhamnolipids. Purified rhamnolipids reduced the surface tension of water from 72 mN/m to 36 mN/m with Critical Micelle Concentration (CMC) of 70 mg/l. Use of 1000 ppm rhamnolipids solution in C type silica gel bed system increased methane hydrate formation rate by 42.97% and reduced the induction time of hydrate formation by 22.63% as compared to water saturated C type silica gel. Presence of rhamnolipids also shifted methane hydrate formation temperature to higher values relative to the system without biosurfactant. Results from thermodynamic and kinetic studies suggest that rhamnolipids can be applied as environment friendly methane hydrate promoter.
机译:天然气水合物(NGHs)是固体非化学计量化合物,通常被视为下一代能源。 NGH的成功商业化由于缺乏用于发电,分离,储存和运输的高效和安全技术而受到限制。本工作研究了环境相容性生物表面活性剂对天然气水合物形成的影响。生物表面活性剂由铜绿假单胞菌菌株A11产生,并被表征为鼠李糖脂。纯化的鼠李糖脂使临界胶束浓度(CMC)为70 mg / l,使水的表面张力从72 mN / m降低至36 mN / m。与水饱和的C型硅胶相比,在C型硅胶床系统中使用1000 ppm鼠李糖脂溶液可将甲烷水合物的生成速率提高42.97%,并将水合物生成的诱导时间减少22.63%。鼠李糖脂的存在也将甲烷水合物的形成温度相对于没有生物表面活性剂的系统转移到更高的值。热力学和动力学研究的结果表明鼠李糖脂可以用作环境友好的甲烷水合物促进剂。

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