首页> 外文会议>International Conference on Nanochannels, Microchannels and Minichannels; 20070618-20; Puebla(MX) >FLOW BOILING IN MINICHANNELS UNDER NORMAL, HYPER AND MICROGRAVITY : LOCAL HEAT TRANSFER ANALYSIS USING INVERSE METHODS
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FLOW BOILING IN MINICHANNELS UNDER NORMAL, HYPER AND MICROGRAVITY : LOCAL HEAT TRANSFER ANALYSIS USING INVERSE METHODS

机译:正常,超高温和微重力下微量通道的沸腾:使用逆方法的局部传热分析

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The objective presented in this paper is. Here to provide basic knowledge on the systems of biphasic cooling in mini and microchannels during hyper and mierogravity. The experimental activities are performed in the frame of the MAP Boiling project founded by ESA. The main aspect of this paper is to present the use of inverse methods to estimate local flow boiling heat transfers coefficient in minichannels. To observe the influence of gravity level on the fluid flow and to take data measurements, an experimental setup is designed with two identical channels; one for the visualization and the other one for the acquisition of data. These two devices enable us to study the influence of gravity on the temperatures and pressures measurements. The two minichannels are modeled as a rectangular rod made up of three materials; a layer of polycarbonate~R (λ=0,2 W.m~(-1).K~(-1)) used as insulator, a cement rod (λ=0,83 W.m~(-1).K~(-1)) instrumented with 21 λ-type thermocouples and in the middle a layer of inconel~R (λ=10,8 W.m~(-1).K~(-1)) in which the minichannel is engraved. Pressures and temperatures measurements are carried out simultaneously at various levels of the minichannel. Above the channel, we have a set of temperatures and pressures gauges and inside the cement rod, 5 heating wires providing a power of 11 W. The K-type thermocouples sensors enable us to acquire the temperature in various locations (x, y and z) of the device. With these temperatures and the knowledge of the boundary conditions, we are able to solve the problem using inverse methods and to obtain local heat flux and local surface temperatures on several locations. All the results on hydrodynamics and pressure drop will be provided in a second paper in the same congress.
机译:本文提出的目标是。此处提供有关超重力和超重力期间微型通道和微通道中双相冷却系统的基础知识。实验活动是在ESA建立的MAP沸腾项目的框架中进行的。本文的主要方面是提出使用逆方法来估计微通道中的局部流动沸腾传热系数。为了观察重力水平对流体流动的影响并进行数据测量,设计了具有两个相同通道的实验装置。一个用于可视化,另一个用于数据采集。这两个设备使我们能够研究重力对温度和压力测量的影响。这两个微型通道被建模为由三种材料制成的矩形杆。用作绝缘体的一层聚碳酸酯〜R(λ= 0,2 Wm〜(-1).K〜(-1)),水泥棒(λ= 0,83 Wm〜(-1).K〜(- 1))装有21个λ型热电偶,并在中间刻有inconel〜R(λ= 10.8 Wm〜(-1).K〜(-1))层,其中刻有小通道。在微型通道的各个级别上同时进行压力和温度测量。在通道上方,我们有一组温度和压力计,在水泥棒内,有5条加热线提供11 W的功率。K型热电偶传感器使我们能够获取各个位置(x,y和z的温度) )的设备。有了这些温度并了解了边界条件,我们就能使用逆方法解决问题,并在多个位置获得局部热通量和局部表面温度。有关流体动力学和压降的所有结果将在同一大会的第二篇论文中提供。

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