The objective of this work is to study the particle-laden fluid-structure interaction within an Abrasive Water Jet Cutting Nozzle. Such coupling is needed to study the erosion phenomena caused by the abrasive particles inside the nozzle. So far, the erosion in the nozzle was predicted only through the number of collisions, using only a simple DEM+CFD[1] coupling. To improve these predictions, we extend our model to a 6-way Eulerian-Lagrangian momentum coupling with DEM+CFD+FEM to account for deformations and vibrations in the nozzle. ...
The prediction of fan and compressor blade erosion owing to particle ingestion poses a challenging p...
The multiphase flows inside the two abrasive waterjet (AWJ) nozzles with different abrasive inlet tu...
Summarization: The present study focuses on the erosion mechanism observed during abrasive water jet...
The objective of this work is to study the particle-laden fluid-structure interaction within an Abra...
The objective of this work is to study the particle‐induced erosion within a nozzle for abrasive cut...
The high-speed water jet is the momentum source in an Abrasive Water Jet Cutting Nozzle. This moment...
In Abrasive Waterjet (AWJ) machining, the nozzle is the most critical component that influences the ...
In this work, a numerical approach to study erosion phenomena inside a focusing tube for Abrasive Wa...
The objective of this work is to analyze particle-induced erosion within a nozzle for abrasive water...
In this work, a numerical approach to predict the behavior of a pure water jet developing inside a n...
Summarization: The utilization of abrasive waterjet (AWJ) cutting/drilling, and in particular its ap...
The nozzle of the Abrasive Waterjet (AWJ) machine is the most critical component that consequently a...
International audienceThe increasing use of high-pressure water jets in the industry for machining m...
Computational Fluid Dynamics (CFD) softwares have been prevalent in Abrasive Waterjet (AWJ) Modellin...
A computational fluid dynamic (CFD) model for the ultrahigh velocity abrasive waterjet (AWJ) is esta...
The prediction of fan and compressor blade erosion owing to particle ingestion poses a challenging p...
The multiphase flows inside the two abrasive waterjet (AWJ) nozzles with different abrasive inlet tu...
Summarization: The present study focuses on the erosion mechanism observed during abrasive water jet...
The objective of this work is to study the particle-laden fluid-structure interaction within an Abra...
The objective of this work is to study the particle‐induced erosion within a nozzle for abrasive cut...
The high-speed water jet is the momentum source in an Abrasive Water Jet Cutting Nozzle. This moment...
In Abrasive Waterjet (AWJ) machining, the nozzle is the most critical component that influences the ...
In this work, a numerical approach to study erosion phenomena inside a focusing tube for Abrasive Wa...
The objective of this work is to analyze particle-induced erosion within a nozzle for abrasive water...
In this work, a numerical approach to predict the behavior of a pure water jet developing inside a n...
Summarization: The utilization of abrasive waterjet (AWJ) cutting/drilling, and in particular its ap...
The nozzle of the Abrasive Waterjet (AWJ) machine is the most critical component that consequently a...
International audienceThe increasing use of high-pressure water jets in the industry for machining m...
Computational Fluid Dynamics (CFD) softwares have been prevalent in Abrasive Waterjet (AWJ) Modellin...
A computational fluid dynamic (CFD) model for the ultrahigh velocity abrasive waterjet (AWJ) is esta...
The prediction of fan and compressor blade erosion owing to particle ingestion poses a challenging p...
The multiphase flows inside the two abrasive waterjet (AWJ) nozzles with different abrasive inlet tu...
Summarization: The present study focuses on the erosion mechanism observed during abrasive water jet...