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首页> 外文期刊>Iranica Journal of Energy and Environment >Chlorella vulgaris as a Model Organism for Microgravity Cultivation in a CubeSat
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Chlorella vulgaris as a Model Organism for Microgravity Cultivation in a CubeSat

机译:小球藻vulgaris作为微型栽培的模型生物体在立方体中

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Chlorella vulgaris is one of the most common and characterized algae genus with several applications, including carbon sequestration, biofuel, food production and wastewater treatment. Chlorella sp. are considered suitable to be used as model organisms in space research due to their cultivation flexibility. Many studies have been carried out to ensure better conditions for supporting human life on long-term missions in deep space or on planetary surfaces, minimizing the need for resupplies. Regardless of the resilience of the genus Chlorella to space conditions has already been demonstrated, model organisms are useful in the improvement of new technologies. This research aimed to develop the culture conditions and a monitoring system for C. vulgaris, under microgravity, using an image capture device for CubeSats. The image acquisition system consisted of a digital microscope, with remote access, a Single Board Computer, a monitoring computer, and an image processing algorithm. Three microalgae colonies, under laboratory conditions, were evaluated in real time (every 30 minutes) using the size of the colonies as a parameter for evaluating growth rates. The highest microalgae biomass production for the three monitored colonies (C1-C3) was: increase of 28% for C1 after 90 h; 21% for C2 after 84 h; and 36% for C3 after 120 h. The results indicated that the system was able to monitor the growth of microalgae colonies. A specific support is being developed, which allows the installation of this image acquisition system for algae cultivation in a CubeSat, for future studies of algae growth in real microgravity conditions.
机译:小球藻是最常见和特征的藻类属,包括几种应用,包括碳封存,生物燃料,食品生产和废水处理。小球藻SP。被认为是由于它们的培养灵活性而被用作空间研究中的模型生物。已经进行了许多研究,以确保在深空或行星表面的长期任务中支持人类生活的更好条件,最大限度地减少重新抱的需求。无论小球藻属到空间条件的韧带都已证明,模型生物可用于改善新技术。该研究旨在利用用于立方体的图像捕获装置,在微重力下,在微重力下开发培养条件和用于C.Vulgaris的监测系统。图像采集系统由数字显微镜组成,具有远程访问,单板计算机,监控计算机和图像处理算法。使用菌落的大小作为评估生长速率的参数,实际(每30分钟)在实验室条件下(每30分钟)评估三种微藻菌落。三种监测菌落(C1-C3)的最高微藻生物量产生:90小时后C1增加28%; 84小时后C2的21%; 120小时后C3的36%。结果表明该系统能够监测微藻菌落的生长。正在开发特定的支持,这允许在立方体中安装这种图像采集系统进行藻类栽培,以便在真实的微匍匐条件下的藻类生长的未来研究。

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