微藻的大规模培养:2。大物种脉冲蓝光概念。

IF 2.7 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BioTech Pub Date : 2023-05-17 DOI:10.3390/biotech12020040
Hans Chr Eilertsen, Jo Strømholt, John-Steinar Bergum, Gunilla Kristina Eriksen, Richard Ingebrigtsen
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摘要

如果要大规模种植光自养微藻,并在新的“绿色未来”中找到自己的位置,就必须实施特殊的优化措施,以降低生产成本。因此,与照明有关的问题应成为主要焦点,因为驱动生物质合成的是光子在时间和空间上的可用性。此外,需要人工照明(例如,led)将足够的光子传输到大型光生物反应器中包含的密集藻类培养物中。在本研究项目中,我们通过短期产氧和7天的批量培养实验,评估了在大硅藻和小硅藻培养物上施加蓝光降低照明光能的潜力。我们的研究结果表明,与较小的硅藻细胞相比,较大的硅藻细胞允许更多的光穿透生长。PAR (400-700 nm)扫描对小生物体积(平均7070 μm3)细胞的生物体积特异性吸光度是大生物体积(平均18703 μm3)细胞的两倍。大细胞的干重(DW)与生物体积比比比小细胞低17%,导致小细胞的DW比吸光度比大细胞高1.75倍。在相同的最大光强下,蓝色100 Hz方形闪烁光在O2生产和批量实验中产生的生物体积与蓝色线性光相同。因此,我们建议,在未来,应该更多地关注于光生物反应器的光学问题的研究,而细胞的大小和闪烁的蓝光应该是这方面的核心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Mass Cultivation of Microalgae: II. A Large Species Pulsing Blue Light Concept.

If mass cultivation of photoautotrophic microalgae is to gain momentum and find its place in the new "green future", exceptional optimizations to reduce production costs must be implemented. Issues related to illumination should therefore constitute the main focus, since it is the availability of photons in time and space that drives synthesis of biomass. Further, artificial illumination (e.g., LEDs) is needed to transport enough photons into dense algae cultures contained in large photobioreactors. In the present research project, we employed short-term O2 production and 7-day batch cultivation experiments to evaluate the potential to reduce illumination light energy by applying blue flashing light to cultures of large and small diatoms. Our results show that large diatom cells allow more light penetration for growth compared to smaller cells. PAR (400-700 nm) scans yielded twice as much biovolume-specific absorbance for small biovolume (avg. 7070 μm3) than for large biovolume (avg. 18,703 μm3) cells. The dry weight (DW) to biovolume ratio was 17% lower for large than small cells, resulting in a DW specific absorbance that was 1.75 times higher for small cells compared to large cells. Blue 100 Hz square flashing light yielded the same biovolume production as blue linear light in both the O2 production and batch experiments at the same maximum light intensities. We therefore suggest that, in the future, more focus should be placed on researching optical issues in photobioreactors, and that cell size and flashing blue light should be central in this.

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来源期刊
BioTech
BioTech Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
3.70
自引率
0.00%
发文量
51
审稿时长
11 weeks
期刊最新文献
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