Numerical Determination of the Equivalent Sand Roughness of a Turbopump’s Surface and Its Roughness Influence on the Pump Characteristics

Author:

Torner Benjamin1ORCID,Duong Duc Viet1,Wurm Frank-Hendrik1

Affiliation:

1. Institute of Turbomachinery, University of Rostock, Albert-Einstein Str. 2, 18059 Rostock, Germany

Abstract

The correct computation of flows over rough surfaces in technical systems, such as in turbomachines, is a significant issue for proper simulations of their performance data. Once the flow over rough surfaces is adequately computed in these machines, simulations become more trustworthy and can replace experimental prototyping. Roughness modelling approaches are often implemented in a solver to account for roughness effects in flow simulations. In these approaches, the equivalent sand roughness ks must be defined as a characteristic parameter of the rough surface. However, it is difficult to determine the corresponding ks-value for a surface roughness. In this context, this paper shows a novel and time-efficient numerical method, the discrete porosity method (DPM), which can be used to determine the ks-value of a rough surface. Applying this method, channel flow simulations were performed with an irregularly distributed cast iron surface from a turbopumps volute. After identifying the fully rough regime, the equivalent sand roughness was determined and a match with ks-values from literature data was found. Subsequently, the established ks-value for cast iron was used in a turbopump simulation with rough walls. The performance data of the pump were validated by experiments and a good agreement between the experimental and simulated performance data was found.

Funder

Industrial Collective Research

Forschungskuratorium Maschinenbau e.V.

Publisher

MDPI AG

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering

Reference54 articles.

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2. Martelli, F., and Díaz, R.V. (2015, January 23–26). Analysis of Losses in Centrifugal Pumps with Low Specific Speed with Smooth and Rough Walls. Proceedings of the 11th European Conference on Turbomachinery, Madrid, Spain.

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5. Das in Wandnähe gültige Geschwindigkeitsgesetz turbulenter Strömungen;Rotta;Ing.-Arch.,1950

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