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一种用于监测微藻连续培养过程中pH值、溶解氧和藻类密度的低成本系统。

A low-cost system for monitoring pH, dissolved oxygen and algal density in continuous culture of microalgae.

作者信息

Nguyen Dung Kim, Nguyen Huy Quang, Dang Huyen Thuy T, Nguyen Viet Quoc, Nguyen Linh

机构信息

Faculty of Engineering, Vietnam National University of Agriculture, Hanoi 10000, Viet Nam.

Institute of Innovation, Science and Sustainability, Federation University, Churchill, VIC 3842, Australia.

出版信息

HardwareX. 2022 Aug 27;12:e00353. doi: 10.1016/j.ohx.2022.e00353. eCollection 2022 Oct.

DOI:10.1016/j.ohx.2022.e00353
PMID:36082147
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9445390/
Abstract

In a continuous and closed system of culturing microalgae, constantly monitoring and controlling pH, dissolved oxygen (DO) and microalgal density in the cultivation environment are paramount, which ultimately influence on the growth rate and quality of the microalgae products. Apart from the pH and DO parameters, the density of microalgae can be used to contemplate what light condition in the culture chamber is or when nutrients should be supplemented, which both also decide productivity of the cultivation. Moreover, the microalgal density is considered as an indicator indicating when the microalgae can be harvested. Therefore, this work proposes a low-cost monitoring equipment that can be employed to observe pH, DO and microalgal density over time in a culture environment. The measurements obtained by the proposed monitoring device can be utilized for not only real-time observations but also controlling other sub-systems in a continuous culture model including stirring, ventilating, nutrient supplying and harvesting, which leads to more efficiency in the microalgal production. More importantly, it is proposed to utilize the off-the-shelf materials to fabricate the equipment with a total cost of about 513 EUR, which makes it practical as well as widespread. The proposed monitoring apparatus was validated in a real-world closed system of cultivating a microalgae strain of . The obtained results indicate that the measurement accuracies are 0.3%, 3.8% and 8.6% for pH, DO and microalgae density quantities, respectively.

摘要

在微藻连续封闭培养系统中,持续监测和控制培养环境中的pH值、溶解氧(DO)和微藻密度至关重要,这最终会影响微藻产品的生长速率和质量。除了pH值和溶解氧参数外,微藻密度可用于推断培养室的光照条件或何时应补充营养物质,这两者也决定了培养的生产力。此外,微藻密度被视为微藻何时可以收获的指标。因此,这项工作提出了一种低成本的监测设备,可用于在培养环境中随时间观察pH值、溶解氧和微藻密度。所提出的监测设备获得的测量结果不仅可用于实时观察,还可用于控制连续培养模型中的其他子系统,包括搅拌、通风、营养供应和收获,从而提高微藻生产效率。更重要的是,建议使用现成的材料制造该设备,总成本约为513欧元,这使其既实用又具有广泛的应用前景。所提出的监测装置在实际的封闭微藻培养系统中得到了验证。所得结果表明,pH值、溶解氧和微藻密度测量的准确度分别为0.3%、3.8%和8.6%。

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