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Submerged Osmotic Processes: Design and Operation to Mitigate Mass Transfer Limitations

机译:水下渗透过程:减轻传质限制的设计和操作

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摘要

Submerged forward osmosis (FO) is of high interest for bioreactors, such as osmotic membrane bioreactor, microalgae photobioreactor, food or bioproduct concentration where pumping through pressurized modules is a limitation due to viscosity or breakage of fragile components. However, so far, most FO efforts have been put towards cross flow configurations. This study provides, for the first time, insights on mass transfer limitations in the operation of submerged osmotic systems and offer recommendations for optimized design and operation. It is demonstrated that operation of the submerged plate and frame FO module requires draw circulation in the vacuum mode (vacuum assisted osmosis) that is in favor of the permeation flux. However, high pressure drops and dead zones occurring in classical U-shape FO draw channel strongly disadvantage this design; straight channel design proves to be more effective. External concentration polarization (ECP) is also a crucial element in the submerged FO process since mixing of the feed solution is not as optimized as in the cross flow module unless applying intense stirring. Among the mitigation techniques tested, air scouring proves to be more efficient than feed solution circulation. However, ECP mitigation methodology has to be adapted to application specificities with regards to combined/synergetic effects with fouling mitigation.
机译:对于生物反应器,例如渗透膜生物反应器,微藻类光生物反应器,食品或生物产品浓度,浸入式正向渗透(FO)引起了人们的极大兴趣,其中由于粘性或易碎成分的破坏,通过加压模块的泵送受到限制。但是,到目前为止,大多数FO努力都集中在错流配置上。这项研究首次提供了对渗透系统运行中传质限制的见解,并为优化设计和运行提供了建议。已证明浸入式板框式FO模块的操作需要在真空模式下进行抽气循环(真空辅助渗透),这有利于渗透通量。但是,在传统的U型FO抽气通道中出现的高压降和死区严重不利于该设计。直通道设计被证明是更有效的。外部浓差极化(ECP)也是浸入式FO工艺中的关键因素,因为除非进行强烈搅拌,否则进料溶液的混合不会像错流模块那样优化。在所测试的缓解技术中,空气净化比进料溶液循环更有效。但是,ECP缓解方法必须适应与结垢缓解的组合/协同效应有关的应用程序特殊性。

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