Simulating Soil–Disc Plough Interaction Using Discrete Element Method–Multi-Body Dynamic Coupling
Abstract
:1. Introduction
2. Materials and Methods
2.1. DEM and DEM-MBD Coupling Simulations
Property | Value | Source |
---|---|---|
The density of sand particles (kg m−3) | 2600 | [20] |
The density of steel (kg m−3) | 7865 | [21] |
Shear modulus of soil (Pa) | 1 × 107 | [22] |
Shear modulus of steel (Pa) | 7.9 × 1010 | [21] |
Poisson’s ratio of soil | 0.3 | [23] |
Poisson’s ratio of steel | 0.3 | [24] |
Yield strength of the soil (Pa) | 1.16 × 106 | The default value in EDEM |
Coefficient of friction (soil–soil) | 0.5 | Direct shear test |
Coefficient of friction (soil–steel) | 0.5 | Direct shear test |
Coefficient of rolling friction (soil–soil) | 0.15 | Calibrated by the angle of repose test |
Coefficient of rolling friction (soil–steel) | 0.05 | Inclined surface test |
Cohesive energy density between soil–soil (N m−2) | 2000 | Calibrated by the angle of the repose test |
Particle size distribution | 0.5–2 | Selected based on the PSD of soil |
2.2. Field Tests
3. Results
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
a | Indices for sphere or implement |
Ac | Contact area, (m2) |
b | Indices for sphere or implement |
e | Coefficient of restitution |
Fc | Cohesion force, (N) |
Fdn | Normal damping force, (N) |
Fdt | Tangential damping force, (N) |
Fn | Normal total contact force, (N) |
Fsn | Normal contact force, (N) |
Fst | Tangential contact force, (N) |
Ft | Tangential total contact force, (N) |
I | Moment of inertia, (kg m2) |
K1 | Stiffness for loading, (N m−1) |
K2 | Stiffness for unloading/reloading, (N m−1) |
M | Moment, (N m) |
Mr | Moment due to rolling friction, (N m) |
m | Mass, (kg) |
meq | Equivalent mass (kg) |
nc | Damping factor |
nk | Stiffness factor |
r | Radius (m) |
req | Equivalent radius, (m) |
rcon | Perpendicular distance of contact point from the centre of mass, (m) |
R | Rotational acceleration, (rad s−2) |
Uabn | Normal component of the relative displacement, (m) |
Uabt | Tangential component of the relative displacement, (m) |
Ůabn | Normal component of the relative velocity, (m s−1) |
Ůabt | Tangential component of the relative velocity, (m s−1) |
U0 | Residual overlap, (m) |
Ü | Translational acceleration, (m s−2) |
Y | Yield strength (MPa) |
Greek letters | |
µ | Coefficient of friction |
μr | Coefficient of rolling friction |
λθ | Unit vector of angular velocity |
ξ | Cohesion energy density (J m−3) |
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Sieve Size (mm) | Percentage Retained (%) |
---|---|
2.36 | 7.2 |
1.18 | 10.6 |
0.6 | 20.2 |
0.3 | 39.0 |
0.15 | 19.6 |
0.075 | 3.2 |
<0.075 | 0.2 |
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Ucgul, M. Simulating Soil–Disc Plough Interaction Using Discrete Element Method–Multi-Body Dynamic Coupling. Agriculture 2023, 13, 305. https://doi.org/10.3390/agriculture13020305
Ucgul M. Simulating Soil–Disc Plough Interaction Using Discrete Element Method–Multi-Body Dynamic Coupling. Agriculture. 2023; 13(2):305. https://doi.org/10.3390/agriculture13020305
Chicago/Turabian StyleUcgul, Mustafa. 2023. "Simulating Soil–Disc Plough Interaction Using Discrete Element Method–Multi-Body Dynamic Coupling" Agriculture 13, no. 2: 305. https://doi.org/10.3390/agriculture13020305
APA StyleUcgul, M. (2023). Simulating Soil–Disc Plough Interaction Using Discrete Element Method–Multi-Body Dynamic Coupling. Agriculture, 13(2), 305. https://doi.org/10.3390/agriculture13020305