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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Direct Simulation Based Model-Predictive Control of Flow Maldistribution in Parallel Microchannels
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Direct Simulation Based Model-Predictive Control of Flow Maldistribution in Parallel Microchannels

机译:基于直接仿真的并行微通道流量分布不均的模型预测控制

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Flow maldistribution, resulting from bubbles or other particulate matter, can lead to drastic performance degradation in devices that employ parallel microchannels for heat transfer. In this work, direct numerical simulations of fluid flow through a prescribed parallel microchannel geometry are performed and coupled with active control of actuated microvalves to effectively identify and reduce flow maldistribution. Accurate simulation of fluid flow through a set of three parallel microchannels is achieved utilizing a fictitious-domain representation of immersed objects such as microvalves and artificially introduced bubbles. Flow simulations are validated against experimental results obtained for flow through a single high-aspect ratio microchannel, flow around an oscillating cylinder, and flow with a bubble rising in an inclined channel. Results of these simulations compare very well to those obtained experimentally, and validate the use of the solver for the parallel microchannel configuration of this study. System identification techniques are employed on numerical simulations of fluid flow through the geometry to produce a lower dimensional model that captures the essential dynamics of the full nonlinear flow, in terms of a relationship between valve angles and the exit flow rate for each channel. A model-predictive controller is developed, which employs this reduced order model to identify flow maldistribution from exit flow velocities and to prescribe actuation of channel valves to effectively redistribute the flow. Flow simulations with active control are subsequently conducted with artificially introduced bubbles. The model-predictive control methodology is shown to adequately reduce flow maldistribution by quickly varying channel valves to remove bubbles and to equalize flow rates in each channel.
机译:由气泡或其他颗粒物质引起的流量分配不均会导致采用平行微通道进行热传递的设备性能急剧下降。在这项工作中,对通过规定的平行微通道几何形状的流体流动进行直接数值模拟,并与主动微阀的主动控制相结合,以有效地识别和减少流量分配不均。通过使用诸如微型阀和人工引入的气泡之类的沉浸物体的虚拟域表示,可以精确地模拟通过一组三个平行微通道的流体流动。针对通过单个高纵横比微通道,围绕摆动圆柱体的流动以及气泡在倾斜通道中上升的流动所获得的实验结果,对流动模拟进行了验证。这些仿真的结果与通过实验获得的结果非常好,并验证了该求解器在本研究的并行微通道配置中的使用。系统识别技术用于流经该几何体的流体的数值模拟,以生成一个低维模型,该模型捕获了每个通道的阀角和出口流速之间关系的全非线性流的基本动态。开发了一种模型预测控制器,该控制器使用此降阶模型从出口流速中识别出流量分配不均,并规定了通道阀的致动以有效地重新分配流量。随后采用人工引入的气泡进行具有主动控制的流动模拟。模型预测控制方法显示出可以通过快速改变通道阀以消除气泡并均衡每个通道中的流速来充分减少流量分配不均。

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