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Direct contact membrane distillation module scale-up calculations: Choosing between convective and conjugate approaches

机译:直接接触膜蒸馏模块放大计算:在对流和共轭方法之间选择

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摘要

Membrane distillation (MD) process technology is swiftly moving to industrial prototyping where efficient scale-up calculations are crucial to shorten product development cycle. The aim of this numerical investigation is to suggest the best modeling strategy that will enable to innovate; modify or check new direct contact MD (DCMD) module designs or operation in a timely manner. Two main modeling strategies are presented, namely convective and conjugate approaches. For a given flat module, it is shown that replacing the permeate side by a modified convection boundary condition that accounts for every known resistance to heat transfer gives similar results in the feed side as a coupled conjugate approach where the membrane, with a modified thermal conductivity, is part of the computational domain. The two methods are compared for different module lengths in terms of permeate flux and temperature distribution. Simulation time reports show the important gain in CPU time when using the convective approach while retaining desired calculation accuracy during scale-up. Furthermore, investigations were carried out to assess the effect of 3D inlet and outlet effects. Results for a laboratory scale module suggest that the convective approach can be safely used during early design stages and scale-up of single modules in the range of high permeate fluxes, while the conjugate approach has to be used for an accurate prediction of permeate temperatures needed in heat recovery strategy and equipment design.
机译:膜蒸馏(MD)工艺技术迅速转向工业原型,其中有效的扩展计算对于缩短产品开发周期至关重要。这种数值调查的目的是建议能够创新的最佳建模策略;以及时修改或检查新的直接联系MD(DCMD)模块设计或操作。提出了两种主要建模策略,即对流和共轭方法。对于给定的扁平模块,示出了通过修改的对流边界条件替换渗透物侧,该反对边界条件占据每个已知的传热的电阻,其作为膜的耦合缀合物方法具有类似的导热性的耦合缀合物方法。具有改进的导热率,是计算域的一部分。在渗透通量和温度分布方面,将两种方法与不同的模块长度进行比较。仿真时间报告显示使用对流方法时CPU时间的重要增益,同时在扩展过程中保留所需的计算精度。此外,进行了调查以评估3D入口和出口效应的影响。实验室规模模块的结果表明,在高渗透通量范围内的早期设计阶段和单个模块的鳞片中可以安全地使用对流方法,而共轭方法必须用于精确预测所需的渗透温度的准确预测在热回收战略和设备设计中。

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