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Design and application of a millistructured heat exchanger reactor for an energy-efficient process

机译:高效节能的毫米结构换热器的设计与应用

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Flow chemistry in milli- and microstructured reactors exhibits great potential for process intensification. In the present work, this potential has been demonstrated through the process development for a solvent-free production process including a Michael addition and following product purification. Process simulation was used to maximize the material and energy efficiency of the overall process by recycling unconverted reactants and a catalyst (water) and by utilizing heat from the exothermic reaction to substitute external energy supply in the heat demanding process steps. As a proof-of-concept experiment, millistructured equipment was designed, manufactured and tested at a laboratory scale. A three-stream counter-current heat exchanger for reactant preheating and a plate heat exchanger reactor with zigzag reaction channels were investigated regarding the maximum transfer of reaction heat available for further process steps via a heat carrier cycle. The experiments showed stable reactor control in steady state operation and efficient heat transfer with a small driving temperature difference at the outlet of the heat exchanger reactor. (C) 2016 Elsevier B.V. All rights reserved.
机译:毫微结构反应器和微结构反应器中的流化学显示出巨大的工艺强化潜力。在目前的工作中,这种潜力已经通过无溶剂生产工艺的开发得到了证明,该工艺包括迈克尔加成反应和随后的产品纯化。通过循环未转化的反应物和催化剂(水)并利用放热反应产生的热量来替代需热量的工艺步骤中的外部能量供应,使用了过程模拟来最大化整个过程的材料和能源效率。作为概念验证实验,在实验室规模设计,制造和测试了毫米波设备。研究了用于反应物预热的三股逆流换热器和带有锯齿形反应通道的板式换热器,研究了通过载热循环可用于其他工艺步骤的反应热的最大传递。实验表明,稳态操作中的反应堆控制稳定,换热反应器出口处的驱动温差小,传热效率高。 (C)2016 Elsevier B.V.保留所有权利。

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