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Three-phase microfluidic reactor networks - Design, modeling and application to scaled-out nanoparticle-catalyzed hydrogenations with online catalyst recovery and recycle

机译:三相微流体反应器网络 - 用刀源性催化剂回收和再循环进行缩放纳米粒子催化氢化的设计,建模和应用

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摘要

We present a design framework for the robust, self-regulating long-term operation of parallelized multiphase microfluidic reactor networks without the use of any active flow control elements. A fluidic circuit-based design scheme is developed for the feed manifolds in a general multiphase microfluidic reactor network where an inline, fluidic capacitance element allows autonomous damping of periodic and aperiodic flow disturbances, in combination with a fluidic resistance-based strategy for even flow distribution into the network. A dynamic model for the fluidic capacitance element is derived, numerically solved and validated with experiments on model time varying feed flows. This model sheds new light on important network-level design considerations for stable long-term operation. Finally, our design scheme is applied to present the first demonstration of a robust eight-fold parallelized three-phase segmented-flow reactor network for platinum nanoparticle-catalyzed hydrogenation of nitrobenzene, a model substrate, at an approximately constant substrate conversion of 80% under ambient conditions, with continuous online recovery and recycle of the colloidal catalyst phase over five hours of operation. (C) 2016 Elsevier Ltd. All rights reserved.
机译:我们为强大,自调节了并联多相微流体反应堆网络的强大,自调节长期操作的设计框架,而无需使用任何主动流量控制元件。用于均线,流体电容元件的一般多相微流体反应器网络中的进料歧管的进料歧管的进料歧管开发了一种流体电容元件,甚至流动性电阻的策略结合流体阻力进入网络。导出流体电容元件的动态模型,用模型时间变化流动的实验进行了数值求解和验证。这款模型对重要的网络级设计考虑来揭示了稳定的长期运行。最后,我们的设计方案用于呈现强大的八倍并行化三相分段 - 流动反应器网络的第一次证明硝基苯催化硝基苯催化氢化硝基苯,模型底物,在近似恒定的底物转化率下环境条件,连续在线回收和胶体催化剂阶段的循环率超过5小时的操作。 (c)2016 Elsevier Ltd.保留所有权利。

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