Impact characteristics and erosion mechanism of solid particles in a centrifugal pump

Author:

Li Wei,Yang Yi,Wu Pu,Ji Leilei,Liu Mingjiang,Qi Handong,Li Shuo

Abstract

To study the impact and erosion mechanism of solid particles in centrifugal pumps, the standard kε turbulence model and SIMPLE algorithm are adopted in this paper. Based on the discrete phase model (DPM) of the Lagrange method and McLaury erosion model, the flow impact characteristics and erosion mechanism of solid particles impacting the surface of flow passage components in a single-stage centrifugal pump were numerically simulated, and the test data were compared with the numerical simulation results of the external characteristics of the pump in clean water. The results show that the erosion mechanism of the pressure surface of the blade is mostly the impact erosion caused by high-speed particles with large impact angles, and the impact angle and impact velocity are larger near the tail of the pressure surface. The impact angle of solid particles on the shroud and hub is relatively small, but the erosion mechanism is still impact erosion. The erosion mechanism of the volute wall is mostly the cutting friction erosion caused by the low-velocity particles with small impact angles, and it is only impacted by the particles with large angles near the volute tongue, which is impact erosion. Overall, the average impact angle and impact velocity of the particles on the pressure surface of the blade are higher than those on the volute, so the erosion of the pressure surface is more serious than that of the volute in theory. The research results have certain theoretical reference value for improving the wear resistance of a centrifugal pump.

Publisher

Frontiers Media SA

Subject

Economics and Econometrics,Energy Engineering and Power Technology,Fuel Technology,Renewable Energy, Sustainability and the Environment

Reference12 articles.

1. Erosion characteristics of centrifugal pumps based on E/CRC erosion model[J];Fen;J. Harbin Eng. Univ.,2021

2. Research status and prospect of solid liquid pump two phase flow and wear[J];Hebing;China South. Agric. Mach.,2018

3. Prediction model for energy conversion characteristics during transient processes in a mixed-flow pump;Li

4. Study on the trajectory of tip leakage vortex and energy characteristics of mixed-flow pump under cavitation conditions;Li;Ocean Engineering

5. Effect of particle size on flow in stator and rotor cascades of guide vane type centrifugal pump[J];Rennian;J. drainage irrigation Mach. Eng. (JDIME),2017

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