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Fluid flow and heat transfer in cavities with inlet and outlet ports: Effect of flow oscillation and application to design of microvalves.

机译:带入口和出口的型腔中的流体流动和传热:流动振荡的影响以及在微阀设计中的应用。

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摘要

A Computational Fluid Dynamics (CFD) code is developed and tested to solve the two-dimensional form of the Navier-Stokes and energy equations. The flow field and heat transfer in a square cavity with inlet and outlet ports is investigated thoroughly. The effect of introducing a constant and oscillating inlet velocity on the forced convection in a square cavity is studied. As a practical application of the generic problems studied, a three-dimensional model of a piezoelectrically-actuated microvalve is presented.; The effects of the Reynolds number, the ports width, and position of the outlet port on the steady-state fluid flow and heat transfer in a sealed cavity have been studied in great detail. The trends of the pressure drop, local and mean Nusselt numbers are elucidated for a wide range of operating conditions. It is concluded that placing the outlet port in parallel to the inlet port reduces the pressure drop significantly, whereas placing the outlet port at the corners of the cavity increases the heat transfer rate in the cavity.; The transient evolution and periodic characteristic of the flow in a cavity with an oscillating inlet velocity have been studied. To maximize heat transfer and minimize pressure drop, the location of the inlet and outlet ports are chosen based on the result of the previous study. A detailed discussion of the effects of the Reynolds number and the frequency of the oscillating velocity is presented. The results indicate that both the flow and thermal fields reach their periodic states after a certain period of time. The results show that heat transfer rate greatly increases when the period of the oscillating inlet velocity is close to convective time scale of the cavity (St ≈ 1).; Computational modeling of liquid flow in a NASA JPL (Jet Propulsion Library) piezoelectrically-actuated microvalve is discussed. The three-dimensional velocity and pressure fields are obtained for different deflections. By changing the mass flow rate at the inlet, the pressure drop between the inlet and outlet ports is found and a loss coefficient is determined for every deflection. The predicted pressure drop values are compared to the experimental data for water flow within the microvalve. A correlation is presented for the mass flow rate versus the pressure drop coefficient. The results show that the pressure drop increases exponentially by decrease of the deflection.
机译:开发并测试了计算流体动力学(CFD)代码,以解决Navier-Stokes和能量方程的二维形式。彻底研究了带有入口和出口的方腔中的流场和传热。研究了引入恒定且振荡的入口速度对方腔中强制对流的影响。作为所研究的一般问题的实际应用,提出了压电致动微型阀的三维模型。研究了雷诺数,端口宽度和出口位置对密封腔内稳态流体流动和传热的影响。在广泛的工作条件下,阐明了压降,局部和平均努塞尔数的趋势。结论是,将出口平行于入口放置可显着减小压降,而将出口放置在空腔的拐角处可增加空腔中的传热速率。研究了入口速度振荡的腔体内流动的瞬态演化和周期性特征。为了最大程度地提高热传递并减小压降,请根据之前的研究结果选择入口和出口的位置。提出了雷诺数和振​​荡速度频率的影响的详细讨论。结果表明,在一定时间后,流场和热场均达到其周期性状态。结果表明,当振荡入口速度的周期接近空腔的对流时间尺度时,传热速率大大提高(St≈ 1)。讨论了NASA JPL(喷气推进库)压电致动微型阀中液体流动的计算模型。获得了针对不同挠度的三维速度和压力场。通过改变入口处的质量流率,可以找到入口和出口之间的压降,并确定每个挠度的损耗系数。将预测的压降值与微型阀内水流的实验数据进行比较。给出了质量流量与压降系数的相关性。结果表明,压降随着挠度的减小呈指数增长。

著录项

  • 作者

    Saeidi, Seyed Mahdi.;

  • 作者单位

    Auburn University.;

  • 授予单位 Auburn University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 203 p.
  • 总页数 203
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:42:34

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