An Investigation on the Vortex Effect of a CALM Buoy under Water Waves Using Computational Fluid Dynamics (CFD)
Abstract
:1. Introduction
2. Theoretical Model
2.1. Motion Forces, Drag and Damping Formulation
2.1.1. Buoy Model Assumptions
- The body of the CALM buoy model is cylindrically shaped;
- The buoy has a circular skirt attached to it;
- The skirt is made from solid plates with thin thickness;
- The skirt is devoid of perforations, except where fairleads or mooring lines are attached;
- Viscous contributions of damping from skin friction can be neglected;
- It is assumed that the linear radiation-diffraction computations can be utilised to obtain the CALM buoy’s damping and added masses in the following: linear heave, linear surge, and linear pitch;
- It is assumed that the drag loads on the CALM buoy’s bilges are very small;
- It is assumed that the drag loads on the CALM buoy’s skirt can influence the quadratic pitch and heave damping contributions;
- The local fluid velocity around the skirt’s circumferential area utilised in computing these damping contributions. This is conducted by considering the CALM buoys’ velocity, but ignoring the flow’s disturbance due to the buoy’s presence and the wave orbital motions;
- It is assumed that the CALM buoy hull is positioned in X-Z axes, and subject to a flow direction;
- The buoy has 6 degrees of freedom (6DoFs) as illustrated in Figure 3. The buoy is considered typically as a single system, and as a floating buoy with a rigid body.
2.1.2. Added Mass & Damping Coefficients
2.1.3. Load Computations on Buoy’s Skirt
2.1.4. Viscous Damping Load Computations
2.1.5. Damping Computations on Buoy
2.1.6. Force Computations on Buoy
2.2. FSI Formulation & Governing Equations
2.2.1. Newton’s 2nd Law of Motion
2.2.2. Navier-Stokes Equations
2.2.3. Continuity Equations
2.2.4. Morison’s Equations
3. Numerical Model
3.1. Model Description
3.2. CFD Model
3.3. Mesh Details
3.4. Solution Method
3.5. Boundary Conditions
3.6. Materials & Fluid Structure Interaction
4. Result and Discussion
4.1. Results of Flow Vorticity around Buoy
4.2. Results of Vortex Effect from the Flow Regimes
4.3. Results of Pressure, Velocity and Wall Shear Profiles on the Buoy
4.4. Results of Turbulence Streamlines
4.5. Results of Viscous Damping
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
2D | Two Dimensional |
3D | Three Dimensional |
6DoF | Six Degrees of Freedom |
AS | Area of the skirt |
ABS | American Bureau of Shipping |
API | American Petroleum Institute |
ASME | American Society of Mechanical Engineers |
CALM | Catenary Anchor Leg Mooring |
CB | Cylindrical Buoy |
CD | Dimensionless Drag Coefficient |
CFD | Computational Fluid Dynamics |
CMS | Conventional Mooring Systems |
Cv | Viscous damping |
DB | Diameter of the buoy |
DS | Diameter of the skirt |
DNVGL | Det Norkse Veritas & Germanischer Lloyd |
EU | European Union |
FANS | Finite Element Model |
FD | drag force |
FD | frequency domain |
FEM | Finite-Analytic Navier-Stokes |
FFK | Froude-Kyrov force |
FH | Hydrodynamic force of the fluid |
FOS | Floating Offshore Structure |
FPSO | Floating Production Storage and Offloading |
FSI | Fluid Structure Interaction |
FSO | Floating Storage and Offloading |
ID | Inner Diameter |
IEFG | Interpolating Element Free Galerkin |
ISOPE | International Society of Offshore and Polar Engineering |
JIP | Joint Industry Project |
LF | Low Frequency |
LHS | Left Hand Side |
MSL | Mean Sea Level |
OD | Outer Diameter |
PLEM | Pipeline End Manifold |
RAO | Response Amplitude Operator |
RHS | Right Hand Side |
Rs | Representative radius of skirt |
SALM | Single Anchor Leg Moorings |
SON | Standards Organisation of Nigeria |
SPM | Single Point Mooring |
VIM | Vortex-Induced Motion |
VoF | Volume of Fluid |
WF | Wave Frequency |
WIM | Wave-Induced Motion |
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Parameters | Under-Relaxation Factor |
---|---|
Pressure | 0.3 |
Density | 1 |
Body Forces | 1 |
Momentum | 0.7 |
Turbulent Kinetic Energy | 0.8 |
Turbulent Dissipation Rate | 0.8 |
Turbulent Viscosity | 1 |
Turbent Intensity | 5% |
Turbulent Viscosity Ratio | 10 |
Parameters | Constants |
---|---|
Cmu | 0.09 |
CI-Epsilon | 1.44 |
C2-Epsilon | 1.92 |
TKE Prandtl Number | 1 |
TDR Prandtl Number | 1.3 |
Parameters | Zone Type |
---|---|
81,313 mixed cells or elements | zone 2, binary |
81,313 cell partition ids | zone 2, 2 partitions, binary |
121,833 2D interior faces | zone 1, binary |
560 2D wall faces | zone 5, binary |
140 2D velocity-inlet faces | zone 6, binary |
140 2D pressure-outlet faces | zone 7, binary |
63 2D wall faces | zone 8, binary |
41,423 nodes | binary |
41,423 node flags | binary |
Parameters | Value | Unit |
---|---|---|
Inlet Velocity | 1 | m/s |
Outlet Pressure | 0 | Pa |
Wall | 0 | Pa |
Domain | Boundaries | Boundary Type |
---|---|---|
Surface Body | Boundary: Buoy | Type: Wall |
Boundary: Inlet | Type: Velocity-Inlet | |
Boundary: Outlet | Type: Pressure-Outlet | |
Boundary: Symmetry 1 | Type: Symmetry | |
Boundary: Symmetry 2 | Type: Symmetry | |
Boundary: Wall | Type: Wall |
Parameters | Value | Unit |
---|---|---|
Area | 1 | m2 |
Density of Air | 1.225 | Kg/m3 |
Density of Water | 998.2 | Kg/m3 |
Depth | 1 | m |
Length | 1 | m |
Atm. air Pressure | 0 | Pa |
Temperature | 288.16 | K |
Velocity of Air | 70 | m/s |
Viscosity of Air | 1.7894 × 10−5 | Kg/m.s |
Viscosity of Water | 0.001003 | Kg/m.s |
Parameters | Value | Unit |
---|---|---|
Buoy Diameter (D1) | 10 | m |
Horizontal Height of boundary near inlet to centre of buoy (H4) | 60 | m |
Horizontal Height of boundary near outlet (H5) | 80 | m |
Vertical height of boundary from top wall to centre of buoy (V2) | 35 | m |
Vertical height of boundary from top wall to centre of buoy (V3) | 35 | m |
Model | Metacentric Height (m) | Buoy Diameter (m) | Buoy Skirt Diameter (m) | Buoy Skirt Width (m) | Responses ** |
---|---|---|---|---|---|
A1 | 0.25 | 10.00 | 13.90 | 0.1 | LF + WF |
A2 | 0.25 | 10.00 | 13.90 | 0.2 | LF + WF |
A3 | 0.25 | 10.00 | 13.90 | 0.3 | LF + WF |
B1 | 0.25 | 10.00 | 13.90 | 0.4 | LF + WF |
B2 | 0.25 | 10.00 | 13.90 | 0.5 | LF + WF |
B3 | 0.25 | 10.00 | 14.90 | 1.0 | LF + WF |
C1 | 0.25 | 10.00 | 15.90 | 1.5 | LF + WF |
C2 | 0.25 | 10.00 | 16.90 | 2.0 | LF + WF |
C3 | 0.25 | 10.00 | 17.90 | 2.5 | LF + WF |
D1 | 0.25 | 10.00 | 13.90 | 1.5 | LF + WF |
D2 | 0.50 | 10.00 | 13.90 | 1.5 | LF + WF |
D3 | 0.75 | 10.00 | 13.90 | 1.5 | LF + WF |
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Amaechi, C.V.; Ye, J. An Investigation on the Vortex Effect of a CALM Buoy under Water Waves Using Computational Fluid Dynamics (CFD). Inventions 2022, 7, 23. https://doi.org/10.3390/inventions7010023
Amaechi CV, Ye J. An Investigation on the Vortex Effect of a CALM Buoy under Water Waves Using Computational Fluid Dynamics (CFD). Inventions. 2022; 7(1):23. https://doi.org/10.3390/inventions7010023
Chicago/Turabian StyleAmaechi, Chiemela Victor, and Jianqiao Ye. 2022. "An Investigation on the Vortex Effect of a CALM Buoy under Water Waves Using Computational Fluid Dynamics (CFD)" Inventions 7, no. 1: 23. https://doi.org/10.3390/inventions7010023
APA StyleAmaechi, C. V., & Ye, J. (2022). An Investigation on the Vortex Effect of a CALM Buoy under Water Waves Using Computational Fluid Dynamics (CFD). Inventions, 7(1), 23. https://doi.org/10.3390/inventions7010023