【24h】

Finite Element method based Multi objective Topology optimization for Enhanced mixing with reduced pressure drop

机译:基于有限元方法的多目标拓扑优化,可在降低压降的情况下增强混合

获取原文

摘要

Rapid mixing in microchannels plays a significant role in chemical, biological and medical analysis fields. Microchannels are widely used for chemical and biochemical reactions because of their high surface to volume ratio. However, the rate of mixing of two or more chemical reagents is less as the flow through the micro-channel is highly laminar. Thus, two reactive fluids are predominantly parallel when they flow along the length of the channel. Generally, obstacles or surface modifications are made in the flow path which induces chaotic advection in the fluids. Considerable amount of research has been done in the past in developing different types of surface modifications to enhance the chaotic mixing. But, the intricate nature of fluid flow phenomenon makes it difficult to design the surface modification suitable to achieve the maximum rapid mixing. The present work aims at designing micromixers with the objective of obtaining rapid mixing with reduced pressure drop. A topology optimization algorithm is illustrated in the present manuscript for the design of optimal micromixer configuration. Finite element based optimization for surface modification of micromixer is developed using porosity of the channel as the control variable. In the present work, the optimisation solver works over two objectives. One is to increase the mixing in the channel and the second is to reduce the pressure drop. Numerical experiments are done to test the algorithm to obtain the optimal surface modification to achieve maximum rapid mixing between the two fluids. The results show that rapid mixing is achieved with the modified topology obtained using the code.
机译:微通道中的快速混合在化学,生物和医学分析领域中发挥着重要作用。微通道因其高的表面体积比而被广泛用于化学和生化反应。然而,由于通过微通道的流动是高度层流的,两种或多种化学试剂的混合速率较小。因此,当两种反应性流体沿着通道的长度流动时,它们主要是平行的。通常,在流动路径中进行障碍或表面改性,这会引起流体中的混沌对流。过去在开发不同类型的表面改性以增强混沌混合方面已经进行了大量研究。但是,流体流动现象的复杂性质使得难以设计适合于实现最大快速混合的表面改性。本工作旨在设计微型混合器,其目的是在降低的压降下实现快速混合。本手稿中说明了一种拓扑优化算法,用于设计最佳的微混合器配置。基于通道的孔隙率作为控制变量,开发了基于有限元的微混合器表面改性优化方法。在当前的工作中,优化求解器可以实现两个目标。一种是增加通道中的混合,第二种是减少压降。进行了数值实验以测试该算法以获得最佳的表面改性,以实现两种流体之间的最大快速混合。结果表明,使用该代码获得的修改后的拓扑可以实现快速混合。

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号