An Experimental Investigation Into the Relationship Between Temperature-Time History and Surface Roughness in the Spray Quenching of Aluminum Parts

Author:

Bernardin John D.1,Mudawar Issam1

Affiliation:

1. Boiling and Two-Phase Flow Laboratory, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907

Abstract

Repeated heat-quench cycles of Al-1100 samples resulted in increased surface roughness and corresponding shifts in the temperature-time cooling curve towards shorter overall quench periods. Three different types of initial surface roughness were applied to the test samples: polished, particle blasted, and milled finishes. For each of the three test surfaces, cooling curve shifts during repeated heat-quench cycles were accompanied by surface roughening, the shift was smallest with the milled sample. The surface roughness was examined with the aid of scanning electron microscopy, surface contact profilometry, and X-ray photoelectron spectroscopy. Surface profiles obtained via the profilometer revealed, on a relative basis, significant changes in surface roughness on the polished and particle blasted surfaces but not on the milled (roughest) surface. The roughening was the result of (a) hydrogen diffusion associated with oxidation, (b) oxidation buildup, and, to a lesser extent, (c) expulsion of impurities along dendrite boundaries. The hydrogen diffusion caused localized pressure buildup within the surface and along grain boundaries resulting in the formation of both microscopic (1 to 10 μm) features on the polished and particle blasted surfaces and relatively large (20 to 1000 μm) bumps and blisters on the particle blasted surface. It is shown how these wide spectrum surface roughness features affect cooling rate by (a) raising the Leidenfrost temperature separating the film and transition boiling regimes, (b) increasing the number of boiling sites on the quenched surface, and (c) altering the impact dynamics of the spray drops.

Publisher

ASME International

Subject

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

Reference17 articles.

1. Anderson T. M. , and MudawarI., 1989, “Microelectronic Cooling by Enhanced Pool Boiling of a Dielectric Fluorocarbon Liquid,” ASME Journal of Heat Transfer, Vol. 111, pp. 752–759.

2. Baumeister, K. J., Henry, R. E., and Simon, F. F., 1970, “Role of the Surface in the Measurement of the Leidenfrost Temperature,” Augmentation of Convective Heat and Mass Transfer, A. E. Bergles, and R. L. Webb, eds., The American Society of Mechanical Engineers, New York, pp. 91–101.

3. Baumeister, K. J., and Simon, F. F., 1973, “Leidenfrost Temperature-Its Correlation for Liquid Metals, Cryogens, Hydrocarbons, and Water,” ASME Journal of Heat Transfer, pp. 166–173.

4. Bernardin, J. D., 1993, “Intelligent Heat Treatment of Aluminum Alloys: Material, Surface Roughness, and Droplet-Surface Interaction Characteristics,” Masters thesis, School of Mechanical Engineering, Purdue University, West Lafayette, Indiana.

5. Bradfield W. S. , 1966, “Liquid-Solid Contact in Stable Film Boiling,” I & E C Fundamentals, Vol. 5, pp. 200–204.

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