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首页> 外文期刊>Energy Conversion & Management >Enhanced FAME production using green catalyst with superior profile from the isolated halophilic Aphanothece halophytica grown in raceway ponds
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Enhanced FAME production using green catalyst with superior profile from the isolated halophilic Aphanothece halophytica grown in raceway ponds

机译:使用绿色催化剂提高FAME的生产效率,绿色催化剂来自于跑道池中生长的分离的嗜盐盐生无影藻

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The unprecedented use of fossil fuels necessitates the research community to find clean, safe, renewable and sustainable energy source. One such promising source is microalgal biofuel, which can mitigate the environmental concerns and energy crisis due to its closed carbon cycle. Selection of proper strain and optimization of the culture conditions to maximize the lipid productivity is very important for successful economical biodiesel conversion process. One such robust halophilic species identified was Aphanothece halophytica with rich lipid productivity. They were cultivated in different media and optimized on lab scale as well as in large scale using raceway ponds to produce sufficient biomass for algal oil extraction. The biodiesel conversion process parameters were then optimized by multi-variant response surface methodology (RSM). The free fatty acid (FFA) content of the raw algal oil was only 0.51% which enables direct conversion by transesterification. Eco-friendly, natural white clam shell was calcinated to obtain CaO, which was recovered and reused for three times effectively. The maximum biodiesel yield of around 99 vol% was obtained for the oil/methanol ratio of 0.32(v/v) using calcinated CaO for 6 wt% of raw feed while stirring at 400 rpm at a temperature of 70 degrees C for 85 min. The GC MS analysis of the algal biodiesel confirmed the presence of saturated and unsaturated fatty acids in balanced proportion to provide better oxidation stability and good combustion characteristics. Other biodiesel properties were analyzed and found to be within the standards specified by EN and ASTM for automotive application without any engine modification.
机译:化石燃料的空前使用使研究界必须找到清洁,安全,可再生和可持续的能源。一种这样有希望的来源是微藻生物燃料,由于其封闭的碳循环,它可以减轻环境问题和能源危机。选择合适的菌株并优化培养条件以最大程度地提高脂质生产率对于成功的经济生物柴油转化过程非常重要。鉴定出的一种这样的健壮的嗜盐物种是具有丰富的脂质生产力的盐生假单胞菌。它们在不同的培养基上进行培养,并在实验室规模以及使用水道池进行大规模优化后,可以产生足够的生物质用于藻油提取。然后,通过多变量响应面方法(RSM)优化生物柴油转化过程的参数。粗藻油中的游离脂肪酸(FFA)含量仅为0.51%,可以通过酯交换反应直接转化。煅烧环保的天然白色蛤壳以获得CaO,将其回收并有效地重复使用三遍。使用煅烧的CaO占原料的6 wt%,同时在70℃的温度下以400 rpm的转速搅拌85分钟,可获得0.399(v / v)的油/甲醇比,最大生物柴油产率约为99 vol%。藻类生物柴油的GC MS分析证实了饱和脂肪酸和不饱和脂肪酸的存在比例均衡,以提供更好的氧化稳定性和良好的燃烧特性。分析其他生物柴油的性能,发现其在EN和ASTM规定的用于汽车应用的标准内,而未进行任何发动机改装。

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