首页> 外文OA文献 >Definition and validation of operating equations for poly(vinyl alcohol)-poly(lactide-co-glycolide) microfiltration membrane-scaffold bioreactors.
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Definition and validation of operating equations for poly(vinyl alcohol)-poly(lactide-co-glycolide) microfiltration membrane-scaffold bioreactors.

机译:聚乙烯醇-聚丙交酯-乙交酯乙交酯微滤膜支架生物反应器的操作方程式的定义和验证。

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摘要

The aim of this work is to provide operating data for biodegradable hollow fiber membrane bioreactors. The physicochemical cell culture environment can be controlled with the permeate flowrate, so this aim necessitates the provision of operating equations that enable end-users to set the pressures and feed flowrates to obtain their desired culture environment. In this paper, theoretical expressions for the pure water retentate and permeate flowrates, derived using lubrication theory, are compared against experimental data for a single fiber poly(vinyl alcohol)-poly(lactide-co-glycolide) crossflow module to give values for the membrane permeability and slip. Analysis of the width of the boundary layer region where slip effects are important, together with the sensitivity of the retentate and permeate equations to the slip parameter, show that slip is insignificant for these membranes, which have a mean pore diameter of 1.1 microm. The experimental data is used to determine a membrane permeability, of k = 1.86 x 10(-16) m(2), and to validate the model. It was concluded that the operating equation that relates the permeate to feed ratio, c, lumen inlet flowrate, Q (l,in), lumen outlet pressure, P (1), and ECS outlet pressure, P (0), is P(1) - P(0) = Q(l),in (Ac + B) where A and B are constants that depend on the membrane permeability and geometry (and are given explicitly). Finally, two worked examples are presented to demonstrate how a tissue engineer can use Equation (1) to specify operating conditions for their bioreactor.
机译:这项工作的目的是为可生物降解的中空纤维膜生物反应器提供操作数据。物理化学细胞培养环境可通过渗透液流速来控制,因此该目的需要提供操作方程式,使最终用户能够设置压力和进料流速以获得所需的培养环境。在本文中,将使用润滑理论得出的纯净水截留物和渗透物流速的理论表达式与单纤维聚(乙烯醇)-聚(丙交酯-乙交酯)错流组件的实验数据进行比较,以得出膜渗透性和滑移。分析滑动作用很重要的边界层区域的宽度,以及渗余物和渗透物方程对滑动参数的敏感性,表明对于这些膜的滑动微不足道,这些膜的平均孔径为1.1微米。实验数据用于确定k = 1.86 x 10(-16)m(2)的膜渗透率,并验证模型。得出的结论是,将渗透物与进料比c,管腔入口流量Q(l,in),管腔出口压力P(1)和ECS出口压力P(0)相关联的操作方程为P( 1)-P(0)= Q(l),在(Ac + B)中,其中A和B是取决于膜渗透率和几何形状的常数(并明确给出)。最后,给出了两个工作示例,以演示组织工程师如何使用公式(1)为其生物反应器指定操作条件。

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