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使用微型光学传感器对酵母发酵进行在线碳平衡。

On-line carbon balance of yeast fermentations using miniaturized optical sensors.

机构信息

Institute for Process Control, Mannheim University of Applied Sciences, Paul-Wittsack-Str. 10, 68163 Mannheim, Germany.

出版信息

J Biosci Bioeng. 2012 Mar;113(3):399-405. doi: 10.1016/j.jbiosc.2011.10.016. Epub 2011 Nov 21.

DOI:10.1016/j.jbiosc.2011.10.016
PMID:22100900
Abstract

Monitoring of microbiological processes using optical sensors and spectrometers has gained in importance over the past few years due to its advantage in enabling non-invasive on-line analysis. Near-infrared (NIR) and mid-infrared (MIR) spectrometer set-ups in combination with multivariate calibrations have already been successfully employed for the simultaneous determination of different metabolites in microbiological processes. Photometric sensors, in addition to their low price compared to spectrometer set-ups, have the advantage of being compact and are easy to calibrate and operate. In this work, the detection of ethanol and CO(2) in the exhaust gas during aerobic yeast fermentation was performed by two photometric gas analyzers, and dry yeast biomass was monitored using a fiber optic backscatter set-up. The optical sensors could be easily fitted to the bioreactor and exhibited high robustness during measuring. The ethanol content of the fermentation broth was monitored on-line by measuring the ethanol concentration in the fermentation exhaust and applying a conversion factor. The vapor/liquid equilibrium and the associated conversion factor strongly depend on the process parameter temperature but not on aeration and stirring rate. Dry yeast biomass was determined in-line by a backscattering signal applying a linear calibration. An on-line balance with a recovery rate of 95-97% for carbon was achieved with the use of three optical sensors (two infrared gas analyzers and one fiber optic backscatter set-up).

摘要

近年来,由于能够进行非侵入式在线分析,光学传感器和分光计在微生物过程监测方面的重要性日益增加。近红外(NIR)和中红外(MIR)分光计组合与多元校准已经成功用于同时确定微生物过程中不同代谢物的浓度。与分光计相比,光度计除了价格低廉外,还具有体积小巧、易于校准和操作的优点。在这项工作中,通过两个光度气体分析仪检测好氧酵母发酵过程中废气中的乙醇和 CO(2),并使用光纤背向散射装置监测干酵母生物量。光学传感器可以轻松安装在生物反应器上,并且在测量过程中具有很高的稳定性。通过测量发酵废气中的乙醇浓度并应用转换因子,可以在线监测发酵液中的乙醇含量。汽/液平衡和相关的转换因子强烈依赖于过程参数温度,而与通气和搅拌速率无关。通过应用线性校准的背散射信号,可以在线确定干酵母生物量。使用三个光学传感器(两个红外气体分析仪和一个光纤背向散射装置),实现了碳的在线平衡和回收率为 95-97%。

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