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Study of the cooling effects of nanofluids on electronic components and a sensitivity analysis of the most influential variable on the heat transfer.

机译:研究纳米流体对电子元件的冷却效果,以及对传热影响最大的变量的敏感性分析。

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摘要

In the past decade, there has been a significant increase in the amount of research being done on nanofluids, which are fluids containing minute concentrations of particles. Several experimental and computational studies have shown nanofluids have enhanced thermo-physical properties compared to pure fluid. The properties include thermal conductivity, specific heat, viscosity, and overall heat transfer ability. This makes nanofluids attractive for use in a wide range of heat transfer applications, some of which include electronic cooling, solar energy, and fluidized bed reactors.;This project computationally simulates a single particle flowing through a channel. The motion of the particle is described by the two-dimensional momentum equations. These include forces due to gravity, drag, lift, and Brownian motion. The heat transfer which occurs during the movement of the particle through the channel is modeled using the transient energy equation which includes the Lagrangian term, conduction, and history term. For this project, the original first-order integrodifferential energy equation is transformed into a second-order ordinary differential equation. This helped reduce the computational time up to an order of 10--15.;The simulations using water as the working fluid show a great deal of particle movement up and down in the channel. The overall heat transfer due to convection and the aggitation from the particle using various concentrations of particles was up to 400% more than pure water. The simulations conducted with oil as the working fluid had similar heat transfer capabilities, but the motion of the particle was very limited. This could be due to the higher viscosity of oil.;The last portion of this project included a sensitivity analysis to determine which variables have the largest influence on the overall heat transfer capabilities of the nanofluid. The four analyses conducted for the water simulations showed that the Brownian motion has the biggest impact on the overall heat transfer. Further research is being continued to study the same project with oil as the working fluid to determine if there is a difference in the most influential variable compared to result found for water.
机译:在过去的十年中,对纳米流体的研究数量有了显着增加,纳米流体是一种含有微小浓度颗粒的流体。几项实验和计算研究表明,与纯流体相比,纳米流体具有增强的热物理性质。这些性质包括热导率,比热,粘度和总传热能力。这使纳米流体吸引了广泛的传热应用,其中包括电子冷却,太阳能和流化床反应器。;该项目通过计算模拟了单个粒子流经通道的情况。粒子的运动由二维动量方程式描述。这些包括由于重力,阻力,升力和布朗运动引起的力。使用包含拉格朗日项,传导率和历史项的瞬态能量方程对在颗粒通过通道运动期间发生的热传递进行建模。对于本项目,将原始的一阶积分微分能量方程转换为二阶常微分方程。这有助于将计算时间减少到10--15的数量级。使用水作为工作流体的模拟显示了通道中大量的粒子上下运动。使用各种浓度的颗粒,由于对流和来自颗粒的凝聚而产生的总热量传递比纯水高出400%。以油为工作流体进行的模拟具有类似的传热能力,但是颗粒的运动非常有限。这可能是由于油的粘度较高。该项目的最后一部分包括敏感性分析,以确定哪些变量对纳米流体的整体传热能力影响最大。对水模拟进行的四项分析表明,布朗运动对整体传热影响最大。继续进行进一步的研究,以油作为工作流体来研究同一项目,以确定与水的结果相比,最有影响力的变量是否存在差异。

著录项

  • 作者

    Lingo, Stephanie E.;

  • 作者单位

    The University of Texas at San Antonio.;

  • 授予单位 The University of Texas at San Antonio.;
  • 学科 Engineering Chemical.;Engineering Mechanical.;Nanoscience.
  • 学位 M.S.
  • 年度 2011
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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