Abrasive waterjet (AWJ) machining is one of the recent non-traditional methods starting to be used widely in industry for material removal of different materials. The cutting performance of AWJ is achieved by a very high speed, small-scale erosion process. In this paper, a modified form of Finnie's
A two-fluid model of abrasive waterjet
β Scribed by Ruihe Wang; Mingbo Wang
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 831 KB
- Volume
- 210
- Category
- Article
- ISSN
- 0924-0136
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β¦ Synopsis
Waterjet flow added with abrasive solid particles, the so called abrasive waterjet, can enhance its performance for cutting various materials from soft food products to very hard titanium alloys. In this study, a theoretical analysis is conducted in order to develop a flow model for the abrasive waterjet. The main concern is whether the abrasive particles can be treated as a pseudo-fluid phase. A two-fluid model is developed based on the fundamental laws of conservation. A control volume method is used to discretize the equations, and a phase-coupled SIMPLE algorithm is adopted to solve the pressure-velocity coupling equations. The quasi two-dimensional flow field outside a conventional nozzle used in abrasive waterjet is analyzed and computed to validate the model. Good agreement is observed comparing the numerical results with the experimental measurements.
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This paper presents an attempt to model the abrasive waterjet (AWJ) turning process considering material removal from the circumference of a rotating cylindrical specimen. The methodology involves the use of Finnie's theory of erosion to estimate the volume of material removed by the impacting abras
Abrasive waterjet (AWJ) peening is a new mechanical surface treatment process envisioned for use on metal orthopedic implants. The process utilizes an abrasive waterjet to simultaneously texture and work harden the surface of a metal substrate through controlled hydrodynamic erosion. In this study,