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首页> 外文期刊>Journal of Advances in Biology & Biotechnology >Nannochloropsis gaditana and Dunaliella salina as Feedstock for Biodiesel Production: Lipid Production and Biofuel Quality
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Nannochloropsis gaditana and Dunaliella salina as Feedstock for Biodiesel Production: Lipid Production and Biofuel Quality

机译:Nannochloropsis gaditana和Dunaliella salina作为生物柴油生产的原料:脂质生产和生物燃料质量

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Introduction: Microalgal lipids have a wide range of applications, from biodiesel manufacture in the energy industry to the production of polyunsaturated fatty acids for the pharmaceutical industry. Microalgal lipid productivity and quality, however, vary greatly depending on cultivation parameters. Aims: In this study, we investigated the potential of two marine microalgae, Nannochloropsis gaditana and Dunaliella salina , to be used as feedstock for biodiesel production. Methodology: A Taguchi Lsub4/sub orthogonal array design was applied to understand the effects of sodium acetate (0 or 2 g Lsup?1/sup), sodium bicarbonate (0 or 2 g Lsup?1/sup), and sodium nitrate (25 or 75 mg Lsup?1/sup) concentrations on biomass and lipid productivities. Fatty acid methyl ester (FAME) profiles of microalgal lipids obtained under the best conditions were determined, and FAME results were used to predict biodiesel properties. Results: Both carbon sources (sodium acetate and sodium bicarbonate) improved biomass productivity. Lipid productivity was enhanced only by sodium acetate. The highest lipid productivities obtained were 10.25 ± 1.02 and 12.12 ± 0.28 mg Lsup?1/sup daysup?1/sup for N. gaditana and D. salina , respectively. Palmitic (C16:0), stearic (C18:1), oleic (C18:1), linoleic (C18:2), lauric (C12:0), and myristic (C14:0) acids were the major components of D. salina oil. The major fatty acids in N. gaditana oil were C16:0, C18:0, and C18:1. Conclusion: The great differences in FAME profiles resulted in different biodiesel properties. Biodiesel from N. gaditana oil was predicted to have a higher cetane number (73.20) than that derived from D. salina oil (59.59). D. salina oil biodiesel, however, was predicted to have better properties than N. gaditana oil biodiesel, including lower cloud point (0.46°C) and cold filter plugging point (?7.27°C).
机译:简介:微藻类脂质具有广泛的应用范围,从能源行业的生物柴油生产到制药行业的多不饱和脂肪酸生产。但是,微藻类脂的生产率和质量会根据培养参数的不同而有很大差异。目的:在这项研究中,我们调查了两种海洋微藻(Nannochloropsis gaditana和杜氏藻)用作生物柴油生产原料的潜力。方法:采用Taguchi L 4 正交阵列设计来了解乙酸钠(0或2 g L ?1 ),碳酸氢钠(0或2 g L ?1 )和硝酸钠(25或75 mg L ?1 )浓度对生物量和脂质生产力的影响。确定了在最佳条件下获得的微藻类脂的脂肪酸甲酯(FAME)谱,并将FAME结果用于预测生物柴油的性质。结果:两种碳源(乙酸钠和碳酸氢钠)均提高了生物质生产率。仅乙酸钠可提高脂质生产率。对于加迪纳猪笼草和盐生石楠,获得的最高脂质生产率分别为10.25±1.02和12.12±0.28 mg L ?1 天?1 。棕榈酸(C16:0),硬脂酸(C18:1),油酸(C18:1),亚油酸(C18:2),月桂酸(C12:0)和肉豆蔻酸(C14:0)是D的主要成分。盐油。加迪纳塔猪油中的主要脂肪酸为C16:0,C18:0和C18:1。结论:FAME谱图的巨大差异导致了不同的生物柴油特性。据预测,来自加迪纳塔猪油的生物柴油的十六烷值(73.20)要比来自达里纳河油的生物柴油(59.59)更高。然而,据预测,盐藻油生物柴油具有比加迪纳塔氏油生物柴油更好的性能,包括较低的浊点(0.46℃)和冷滤器堵塞点(7.27℃)。

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