Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

A Comparison of Smoothed Particle Hydrodynamics (SPH) and Coupled SPH-FEM Methods for Modeling Machining

View through CrossRef
Abstract Smoothed Particle Hydrodynamics (SPH), a particle-based, meshless method originally developed for modeling astrophysical problems, is being increasingly used for modeling fluid mechanics and solid mechanics problems. Due to its advantages over grid-based methods in the handling of large deformations and crack formation, the method is increasingly being applied to model material removal processes. However, SPH method is computationally expensive. One way to reduce the computational time is to partition the domain into two parts where, the SPH method is used in one segment undergoing large deformations and material separation and in the second segment, the conventional finite element (FE) mesh is used. In this work, the accuracy of this SPH-FEM approach is investigated in the context of orthogonal cutting. The high deformation zone (where chips form and curl) is meshed with the SPH method, while the rest of the workpiece is modeled using the FE method. At the interface, SPH particles are coupled with FE mesh for smooth transfer of stress and displacement. The boundary conditions are applied to tool and FE zone of the workpiece. For comparison purposes, a fully-SPH model (workpiece fully discretized by SPH) is also developed. This is followed by a comparison of the results from the coupled SPH-FE model with the SPH model. A comparison of the chip profile, the cutting force, the von Mises stress and the damage parameter show that the coupled SPH-FE model reproduces the SPH model results accurately. However, the SPH-FE model takes almost 40% less time to run, a significant gain over the SPH model. Similar reduction in computation time is observed for in a micro-cutting application (depth of cut of 300 nm). Based on these results, it is concluded that coupling SPH with FEM in machining models decreases simulation time significantly while still producing accurate results. This observation suggests that three-dimensional machining problems can be modeled using the combined SPH-FEM approach without sacrificing accuracies.
Title: A Comparison of Smoothed Particle Hydrodynamics (SPH) and Coupled SPH-FEM Methods for Modeling Machining
Description:
Abstract Smoothed Particle Hydrodynamics (SPH), a particle-based, meshless method originally developed for modeling astrophysical problems, is being increasingly used for modeling fluid mechanics and solid mechanics problems.
Due to its advantages over grid-based methods in the handling of large deformations and crack formation, the method is increasingly being applied to model material removal processes.
However, SPH method is computationally expensive.
One way to reduce the computational time is to partition the domain into two parts where, the SPH method is used in one segment undergoing large deformations and material separation and in the second segment, the conventional finite element (FE) mesh is used.
In this work, the accuracy of this SPH-FEM approach is investigated in the context of orthogonal cutting.
The high deformation zone (where chips form and curl) is meshed with the SPH method, while the rest of the workpiece is modeled using the FE method.
At the interface, SPH particles are coupled with FE mesh for smooth transfer of stress and displacement.
The boundary conditions are applied to tool and FE zone of the workpiece.
For comparison purposes, a fully-SPH model (workpiece fully discretized by SPH) is also developed.
This is followed by a comparison of the results from the coupled SPH-FE model with the SPH model.
A comparison of the chip profile, the cutting force, the von Mises stress and the damage parameter show that the coupled SPH-FE model reproduces the SPH model results accurately.
However, the SPH-FE model takes almost 40% less time to run, a significant gain over the SPH model.
Similar reduction in computation time is observed for in a micro-cutting application (depth of cut of 300 nm).
Based on these results, it is concluded that coupling SPH with FEM in machining models decreases simulation time significantly while still producing accurate results.
This observation suggests that three-dimensional machining problems can be modeled using the combined SPH-FEM approach without sacrificing accuracies.

Related Results

Hybrid Finite Element–Smoothed Particle Hydrodynamics Modelling for Optimizing Cutting Parameters in CFRP Composites
Hybrid Finite Element–Smoothed Particle Hydrodynamics Modelling for Optimizing Cutting Parameters in CFRP Composites
Carbon-fibre-reinforced plastic (CFRP) is increasingly being used in various applications including aerospace, automotive, wind energy, sports, and robotics, which makes the precis...
ISFAA : Implicit SPH for astrophysical apllications
ISFAA : Implicit SPH for astrophysical apllications
Computational simulation is one of the basic techniques of modern Astrophysics. The long-term time astrophysical processes cannot be treated with explicit approaches because that t...
AxisSPH:devising and validating an axisymmetric smoothed particle hydrodynamics code
AxisSPH:devising and validating an axisymmetric smoothed particle hydrodynamics code
A two-dimensional axisymmetric implementation of the smoothed particle hydrodynamics (SPH) technique, called for short AxisSPH, has been described in this thesis, along with a numb...
Turbulent models of shallow-water equations-based smoothed particle hydrodynamics
Turbulent models of shallow-water equations-based smoothed particle hydrodynamics
The depth-averaged models such as those based on the shallow water equations (SWEs) are commonly used to simulate the large-scale flows with engineering importance. The smoothed pa...
On Smoothed Finite Element Methods
On Smoothed Finite Element Methods
The paper presents an overview of the smoothed finite element methods (S-FEM) which are formulated by combining the existing standard FEM with the strain smoothing techniques used ...
Study of the weakly-compressible SPH method for improving pressure distribution of violent fluid-structure impact flows
Study of the weakly-compressible SPH method for improving pressure distribution of violent fluid-structure impact flows
Abstract When a traditional Weakly-Compressible Smoothed Particle Hydrodynamics (WCSPH) model is used to simulate free surface flow with a large Reynolds number, an ...
Computer simulation of two‐dimensional linear‐shaped charge jet using smoothed particle hydrodynamics
Computer simulation of two‐dimensional linear‐shaped charge jet using smoothed particle hydrodynamics
PurposeThe purpose of this paper is to investigate the formation process of linear‐shaped charge jet using the smoothed particle hydrodynamics (SPH). Different material yield model...
Smoothed Particle Hydrodynamics in Astrophysics
Smoothed Particle Hydrodynamics in Astrophysics
This review discusses smoothed particle hydrodynamics (SPH) in the astrophysical context, with a focus on inviscid gas dynamics. The particle-based SPH technique allows an intuitiv...

Back to Top