氦气和空化对酵母生命过程的影响

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引用次数: 0

摘要

本研究的目的是研究空化和氦气同时作用对水中酿酒酵母(Saccharomyces cerevisiae)活力的影响。研究气相环境下水系统空化处理过程中细胞数的变化。以酿酒酵母型酵母菌为试验微生物。研究采用新鲜制备的蒸馏水,用微生物环向其中引入酵母细胞。模型介质的体积在玻璃反应器中用自来水冷却,其温度为298±1k。该过程的总持续时间为2小时。空化源为频率为22 kHz、功率为35 W的超声波发生器UZDN-2T。在整个过程中,试验用水充满了气体。测试气体是氦。单位体积试验水中的微生物数量由培养皿中营养培养基上的菌落总数确定,并以菌落形成单位(CFU)表达。在实验部分,提出了空化条件下同时供气氦气的酵母细胞含量水处理工艺。在氦气和空化作用的共同作用下,酵母净水的效率得到了证实。根据一级动力学反应方程,计算了微生物破坏的有效速率常数。研究了空化条件下酵母的生存能力和水系统中氦气的鼓泡。计算并比较了不同处理方式下酵母菌污染水在两小时内的破坏细胞比例。在初始微生物水污染为4.2·103 CFU/cm3的条件下,He/空化联合作用30 min后,水培养基中的酿酒酵母数量明显减少,破坏细胞比例(Dd)达到40.48%。水处理90分钟后NMend = 100 CFU/cm3,对应水的净净度> 97%。最终的结果是几乎纯净的水,可以将处理过的水排放到自然水中。所得结果表明,在实验条件下,所研究的微生物对水进行了密集的空化净化。描述了所研究气体性质对水中微生物污染物破坏过程的影响。
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The Influence of Helium And Cavitation on the Yeast Life Process
Purpose of the study is to іnvestigate the simultaneous effect of cavitation and helium on the viability of yeast of the genus Saccharomyces cerevisiae in water. To study the change in the number of cells during cavitation treatment of the water system in the gas atmosphere. Methods. Yeast of Saccharomyces cerevisiae type were used as test microorganisms. Freshly prepared distilled desaerated water was used for the research, to which yeast cells were introduced with a microbiological loop. The volume of the model medium was cooled in a glass reactor with tap water, the temperature of which corresponded to 298 ± 1 K. The total duration of the process was 2 hours. The cavitation source was an ultrasonic generator UZDN-2T with frequency of 22 kHz and power of 35 W. The test water was bubbled with gas throughout the process. The test gas was helium. The number of microorganisms per unit volume of test water was determined by the total number of colonies on the nutrient medium on Petri dishes and expressed in colony-forming units (CFU). Results. In the experimental part of the work the process of water treatment with the content of yeast cells under cavitation conditions with simultaneous supply of helium is proposed. The efficiency of water purification from yeast as a result of the combined action of helium/cavitation has been established. The value of the effective rate constant of microorganisms destruction according to the kinetic reaction equation of the first order is calculated. The viability of yeast under cavitation conditions and bubbling of helium through the water system has been studied. The proportion of destroyed cells during the two-hour action of yeast-contaminated water at different treatment regimes was calculated and compared. An active decrease in the number of Saccharomyces cerevisiae in the aqueous medium at the beginning of the process with the achievement of the proportion of destroyed cells (Dd) 40.48% after 30 min of combined He/cavitation action at the initial microbiological water contamination of 4.2 · 103 CFU/cm3. NMend = 100 CFU/cm3 after 90 minutes of water treatment, that corresponds to the water purification degree > 97%. The end result is almost pure water, which allows to discharge treated water into natural water. Conclusions. The obtained results indicate intensive cavitation purification of water from the studied microorganisms in the experimental conditions. The influence of the studied gas nature on the process of destruction of microbiological contaminants in water is described.
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