首页> 外文会议>International Conference on Microchannels and Minichannels; 20050613-15; Toronto(CA) >DEVELOPMENT OF AN EXPERIMENTAL FACILITY FOR INVESTIGATING SINGLE-PHASE LIQUID FLOW IN MICROCHANNELS
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DEVELOPMENT OF AN EXPERIMENTAL FACILITY FOR INVESTIGATING SINGLE-PHASE LIQUID FLOW IN MICROCHANNELS

机译:用于研究微通道中单相液体流动的实验设备的开发

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摘要

An experimental facility is developed to investigate single-phase liquid heat transfer and pressure drop in a variety of microchannel geometries. The facility is capable of accurately measuring the fluid temperatures, heater surface temperatures, heat transfer rates, and the differential pressure in a test section. A microchannel test section with a silicon substrate is used to demonstrate the capability of the experimental facility. A copper resistor is fabricated on the backside of the silicon to provide heat input. Several other small copper resistors are used with a four point measurement technique to acquire the heater temperature and calculate surface temperatures. A transparent Pyrex cover is bonded to the chip to form the microchannel flow passages. The details of the experimental facility are presented. The experimental facility is intended to support the collection of fundamental data in microchannel flows. It has the capability of optical visualization using a traditional microscope to see dyes and particles. It also has the capability to perform micro-particle image velocimetry in the microchannels to detect the flow field occurring in the microchannel geometries. The experimental uncertainties have been carefully evaluated in selecting the equipment used in the experimental facility. The thermohydraulic performance of microchannels will be studied as a function of channel geometry, heat flux and liquid flow rate. Some preliminary results for a test section, with a channel width of 100 micrometers, a depth of 200 micrometers, and a fin thickness of 40 micrometers are presented.
机译:开发了一个实验设施,以研究各种微通道几何形状中的单相液体传热和压降。该设备能够准确地测量测试部分中的流体温度,加热器表面温度,传热速率和压差。具有硅衬底的微通道测试部分用于证明实验设备的功能。在硅的背面制作了一个铜电阻,以提供热量输入。其他一些小型铜电阻也采用四点测量技术来获取加热器温度并计算表面温度。透明的耐热玻璃盖被粘合到芯片上,以形成微通道流动通道。介绍了实验设备的详细信息。实验设施旨在支持微通道流中基本数据的收集。它具有使用传统显微镜进行光学可视化的能力,可以查看染料和颗粒。它还具有在微通道中执行微粒图像测速的能力,以检测在微通道几何形状中发生的流场。在选择实验设备中使用的设备时,已经仔细评估了实验的不确定性。将研究微通道的热工液压性能与通道几何形状,热通量和液体流速的关系。给出了一些测试部分的初步结果,这些部分的通道宽度为100微米,深度为200微米,翅片厚度为40微米。

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