富氧空气及曝气参数变化对酵母菌繁殖性能的影响

IF 2.5 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Frontiers in chemical engineering Pub Date : 2023-05-18 DOI:10.3389/fceng.2023.1193230
A. Beugholt, D. Geier, T. Becker
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引用次数: 0

摘要

食品和饮料行业中的各种酵母应用需要以高产率和一致的质量进行单独和可重复的酵母繁殖。酵母繁殖的一个质量决定参数是有效曝气以避免氧气耗尽。因此,本工作研究了三个重要的曝气参数:气流、脉冲时间和氧气浓度,以了解它们对酵母繁殖的影响。传播子的充气涉及相变,相变是梯度驱动的过程,并且可以在液体介质和气泡之间以更高的梯度加速。在这项研究中,使用膜过滤器产生的富氧空气以一种简单且经济高效的方式为系统充气,而不需要昂贵的技术气体使用。在中试规模的反应器中进行了传播实验,该反应器配备了用于提高ingas中氧气浓度的膜过滤系统和用于代表性监测该过程的在线传感器。膜过滤系统是基于压缩空气中氮气的分离,从而实现富氧。使用富氧空气进行繁殖曝气显示出更高的氧气转移到培养基中,并且对于脉冲曝气,由高细胞数引起的氧气消耗引起的厌氧过程时间平均减少7.4%。此外,我们使用不同的氧气浓度进行曝气,对溶解氧进行控制测量。本研究的主要目的是提出一种新的、价格合理的繁殖曝气优化方法,使用膜过滤来富集工艺空气。结果表明,ingas氧浓度越高,细胞计数越高,对细胞活力没有负面影响。因此,我们的研究表明,使用富氧空气降低了脉冲曝气的频率,从而阻碍了泡沫的形成,这是酵母繁殖过程的一个限制因素。
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Improvement of Saccharomyces propagation performance through oxygen-enriched air and aeration parameter variation
A variety of yeast applications in the food and beverage industry require individual and reproducible yeast propagation at high yields and consistent quality. One quality-determining parameter for yeast propagation is effective aeration to avoid oxygen depletion. Therefore, this work investigated three important aeration parameters: airflow, pulse time, and oxygen concentration, for their influence on yeast propagation. The aeration of a propagator involves phase transitions which are gradient-driven processes and can be accelerated with higher gradients between the liquid medium and the gas bubbles. In this study, oxygen-enriched air generated with membrane filters was used to aerate the system in an easy and cost-efficient way without the need for expensive technical gas usage. Propagation experiments were carried out in a pilot-scale reactor equipped with a membrane filter system for enhanced oxygen concentrations in ingas and online sensors for representative monitoring of the process. The membrane filter system is based on the separation of nitrogen in compressed air, leading to oxygen enrichment. Using oxygen-enriched air for propagation aeration showed higher oxygen transfer into the medium and the anaerobic process time caused by oxygen depletion due to high cell numbers was reduced by an average of 7.4% for pulsed aeration. Additionally, we conducted experiments with controlled measures of dissolved oxygen using different oxygen concentrations for aeration. The main objective of this study is to present a new and affordable optimization of propagation aeration using membrane filtration to enrich process air. The results showed increased cell counts for higher ingas oxygen concentrations and no negative impact on cell vitality was observed. Hence, our investigations showed that using oxygen-enriched air reduced the frequency of pulsed aeration, thus hindering foam formation, a limiting factor of the yeast propagation process.
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CiteScore
3.50
自引率
0.00%
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审稿时长
13 weeks
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