The Effects of Working Fluid on the Heat Transport Capacity of a Microheat Pipe

Author:

Sugumar D.1,Tio Kek-Kiong2

Affiliation:

1. Center for Material and Fiber Innovation, Deakin University, Waurn Ponds, 3217 Victoria, Australia

2. Faculty of Engineering and Technology, Multimedia University, Bukit Beruang, 75450 Melaka, Malaysia

Abstract

The effects of the thermophysical properties of the working fluid on the performance of a microheat pipe of triangular cross section are investigated. For this purpose, five different working fluids are selected: water, hepthane, ammonia, methanol, and ethanol. For operating temperatures ranging from 20°Cto100°C, it is found that the behavior of the heat transport capacity is dominated by a property of the working fluid, which is equal to the ratio of the surface tension and dynamic viscosity σ∕μl. This property has the same dimension as velocity and can be interpreted as a measure of the working fluid’s rate of circulation, which can be provided by capillarity after overcoming the effect of viscosity. Of the five working fluids selected, ammonia is preferable for operating temperatures below 50°C since it yields the highest heat transport capacity; however, water is the preferred working fluid for temperatures above 50°C.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference21 articles.

1. Principles and Prospects of Micro Heat Pipes;Cotter

2. Steady-State Modeling and Testing of a Micro Heat Pipe;Babin;ASME J. Heat Transfer

3. Experimental Investigation of Micro Heat Pipes Fabricated in Silicon Wafers;Peterson;ASME J. Heat Transfer

4. Thermal Analysis of a Micro Heat Pipe;Khrustalev;ASME J. Heat Transfer

5. Analytical Prediction of the Axial Dryout Point for Evaporating Liquids in Triangular Microgrooves;Ha;ASME J. Heat Transfer

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