首页> 外文期刊>Bioenergy research >Energy Demands of Nitrogen Supply in Mass Cultivation of Two Commercially Important Microalgal Species, Chlorella vulgaris and Dunaliella tertiolecta
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Energy Demands of Nitrogen Supply in Mass Cultivation of Two Commercially Important Microalgal Species, Chlorella vulgaris and Dunaliella tertiolecta

机译:两种商业上重要的微藻物种小球藻和杜氏杜氏藻的大规模培养中氮供应的能源需求。

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摘要

Mass culture of microalgae is a potential alternative to cultivation of terrestrial crops for bioenergy production. However, microalgae require nitrogen fertiliser in quantities much higher than plants, and this has important consequences for the energy balance of these systems. The effect of nitrogen fertiliser supplied to microalgal bubble-column photobioreactor cultures was investigated using different nitrogen sources (nitrate, urea, ammonium) and culture conditions (air, 12% CO2). In 20 L cultivations, maximum biomass productivity for Chlorella vulgaris cultivated using nitrate and urea was 0.046 and 0.053 g L−1 day−1, respectively. Maximum biomass productivity for Dunaliella tertiolecta cultivated using nitrate, urea and ammonium was 0.033, 0.038 and 0.038 g L−1 day−1, respectively. In intensive bubble-column photobioreactors using 12% CO2, maximum productivity reached 0.60 and 0.83 g L−1 day−1 for C. vulgaris and D. tertiolecta, respectively. Recycling of nitrogen within the photobioreactor system via algal exudation of nitrogenous compounds and bacterial activity was identified as a potentially important process. The energetic penalty incurred by supply of artificial nitrogen fertilisers, phosphorus, power and CO2 to microalgal photobioreactors was investigated, although analysis of all energy burdens from biomass production to usable energy carriers was not conducted. After subtraction of the power, nitrogen and phosphorus energy burdens, maximum net energy ratios for C. vulgaris and D. tertiolecta cultivated in bubble columns were 1.82 and 2.10. Assuming CO2 was also required from a manufactured source, the net energy ratio decreased to 0.09 and 0.11 for C. vulgaris and D. tertiolecta, so that biomass production in this scenario was unsustainable. Although supply of nitrogen is unlikely to be the most energetically costly factor in sparged photobioreactor designs, it is still a very significant penalty. There is a need to optimise both cultivation strategies and recycling of nitrogen in order to improve performance. Data are supported by measurements including biochemical properties (lipid, protein, heating value) and bacterial number by epifluorescence microscopy.
机译:微藻的大规模培养是种植陆生作物以生产生物能源的潜在替代方法。但是,微藻需要的氮肥数量要比植物高得多,这对这些系统的能量平衡具有重要意义。使用不同的氮源(硝酸盐,尿素,铵)和培养条件(空气,12%CO2)研究了氮肥对微藻气泡柱光生物反应器培养物中氮肥的影响。在20 L的栽培中,使用硝酸盐和尿素栽培的小球藻的最大生物量生产力分别为0.046和0.053 g L-1·day-1。使用硝酸盐,尿素和铵盐培养的杜氏杜氏藻的最大生物量生产力分别为0.033、0.038和0.038 g L-1·day-1。在使用12%CO2的密集型气泡柱光生物反应器中,寻常小球藻(C. vulgaris)和D. tertiolecta的最大生产率分别达到0.60和0.83 g L-1 day-1。通过藻类渗出含氮化合物和细菌活性,在光生物反应器系统中回收氮被认为是潜在的重要过程。尽管没有对从生物质生产到可用的能源载体的所有能源负担进行分析,但对通过向微藻光生物反应器供应人造氮肥,磷,电力和CO2所产生的能量损失进行了调查。减去功率,氮和磷的能量负荷后,在鼓泡塔中栽培的寻常小球藻和小球藻的最大净能量比为1.82和2.10。假设还需要从制造的源中获取CO2,那么寻常型梭状芽胞杆菌和D.tertiolecta的净能量比分别降至0.09和0.11,因此在这种情况下生物质的生产是不可持续的。尽管在鼓泡的光生物反应器设计中,氮的供应不太可能是最耗能的因素,但它仍然是一个非常重大的损失。需要同时优化栽培策略和氮循环以改善性能。数据通过测量得到支持,包括生化特性(脂质,蛋白质,热值)和落射荧光显微镜检查的细菌数。

著录项

  • 来源
    《Bioenergy research》 |2012年第3期|669-684|共16页
  • 作者单位

    1.School of Ocean Sciences College of Natural Sciences Bangor University Askew Street Menai Bridge Anglesey LL59 5AB UK 2.Finnish Environment Institute (SYKE) Marine Centre PO Box 140 00251 Helsinki Finland;

    3.Department of Chemistry and Bioengineering Tampere University of Technology P.O. Box 541 33101 Tampere Finland;

    3.Department of Chemistry and Bioengineering Tampere University of Technology P.O. Box 541 33101 Tampere Finland;

    1.School of Ocean Sciences College of Natural Sciences Bangor University Askew Street Menai Bridge Anglesey LL59 5AB UK 2.Finnish Environment Institute (SYKE) Marine Centre PO Box 140 00251 Helsinki Finland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Algae Photobioreactor Nitrogen fertiliser Energy balance Biofuel;

    机译:藻类光生物反应器氮肥能量平衡生物燃料;

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