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Comparative analysis of mixing distribution in aerobic stirred bioreactor for simulated yeasts and fungus broths

机译:有氧搅拌生物反应器中模拟酵母和真菌肉汤混合分布的比较分析

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The study on mixing distribution for an aerobic stirred bioreactor and simulated (solutions of carboxymethylcellulose sodium salt), yeasts (S. cerevisiae) and fungus (P. chrysogenum pellets and free mycelia) broths indicated the significant variation of mixing time on the bioreactor height. The experiments suggested the possibility to reach a uniform mixing in whole bulk of the real broths for a certain value of rotation speed or biomass concentration domain. For S. cerevisiae broths the optimum rotation speed increased to 500 rpm with the biomass accumulation from 40 to 150 g/l d.w. Irrespective of their morphology, for fungus cultures the existence of optimum rotation speed (500 rpm) has been recorded only for biomass concentration below 24 g/l d.w. The influence of aeration rate depends on the apparent viscosity/biomass concentration and on the impellers and sparger positions. By increasing the apparent viscosity for simulated broths, or biomass amount for real broths, the shape of the curves describing the mixing time variation is significantly changed for all the considered positions. The intensification of the aeration induced the increase of mixing time, which reached a maximum value, decreasing then, due to the flooding phenomena. This variation became more pronounced at higher viscosities for simulated broths, at higher yeasts concentration, and at lower pellets or filamentous fungus concentration, respectively. By means of the experimental data and using MATLAB software, some mathematical correlations for mixing time have been proposed for each broth and considered position inside the bioreactor. These equations offer a good agreement with the experiment, the maximum deviation being +/-7.3% for S. cerevisiae broths.
机译:有氧搅拌生物反应器的混合分布和模拟(羧甲基纤维素钠盐溶液),酵母菌(酿酒酵母)和真菌(产黄青霉球菌和游离菌丝体)肉汤的混合分布研究表明,混合时间在生物反应器高度上有显着变化。实验表明,对于一定速度的旋转速度或生物质浓度域,可以在整个真实肉汤中实现均匀混合。对于酿酒酵母肉汤,最佳旋转速度增加到500 rpm,生物质积累从40到150 g / ld.w。不论它们的形态如何,对于真菌培养物,仅对于低于24 g / l d.w的生物质浓度,就存在最佳旋转速度(500 rpm)的记录。曝气速率的影响取决于表观粘度/生物质浓度以及叶轮和喷射器的位置。通过增加模拟肉汤的表观粘度或真实肉汤的生物量,描述混合时间变化的曲线的形状对于所有考虑的位置都会发生显着变化。曝气的加剧引起混合时间的增加,混合时间达到最大值,然后由于溢流现象而减小。对于模拟肉汤,在较高的酵母浓度下,在较低的沉淀或丝状真菌浓度下,这种变化在较高的粘度下变得更加明显。通过实验数据并使用MATLAB软件,已经为每个培养液和生物反应器内部的考虑位置提出了一些混合时间的数学相关性。这些方程与实验很好地吻合,酿酒酵母肉汤的最大偏差为+/- 7.3%。

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