Analysis of FPSO Motion Response under Different Wave Spectra
Abstract
:1. Introduction
2. Mathematical Model
2.1. Time Domain Model of Wave–Body Interaction
2.1.1. Coordinate System
2.1.2. Governing Equation
2.1.3. Boundary Condition
- 1.
- Free water surface boundary conditions
- 2.
- Body surface and seafloor fixed wall boundary conditions
- 3.
- Incident boundary condition
2.1.4. Initial Condition
2.1.5. Motion Equation
2.2. Mathematical Model of Irregular Waves
2.2.1. Ocean Wave Spectra
- 1.
- The ITTC two-parameters spectrum
- 2.
- The JONSWAP spectrum
- 3.
- The Ochi-Hubble spectrum
2.2.2. A Simulation Method of the Long-Crested Irregular Waves
2.2.3. A Simulation Method of the Short-Crested Irregular Waves
3. Numerical Model and Verification of FPSO
3.1. Model Parameters of FPSO
3.2. Verification of Time Step and Grid Convergence
3.3. Damping Matrix
3.4. The Validation of Numerical Model
4. The Impact of Irregular Waves on FPSO under Different Wave Spectra
4.1. Simulation and Verification of Irregular Waves
4.1.1. Operating Conditions
4.1.2. Long-Crested Irregular Waves
4.1.3. Short-Crested Irregular Waves
4.2. The Effect of Long-Crested Waves on FPSO under Different Wave Spectra
4.2.1. Analysis of the Time History of FPSO Motion Response
4.2.2. Analysis of the Frequency Spectrum of FPSO Motion Response
4.2.3. Analysis of the Significant Value of FPSO Motion Response
4.2.4. Analysis of the Range of FPSO Motion Response
4.3. The Effect of Short-Crested Waves on FPSO under Different Wave Spectra
4.3.1. Analysis of the Time History of FPSO Motion Response
4.3.2. Analysis of the Frequency Spectrum of FPSO Motion Response
4.3.3. Analysis of the Significant Value of FPSO Motion Response
4.3.4. Analysis of the Range of FPSO Motion Response
5. Conclusions
- 1.
- When the incident wave is the long-crested irregular wave, the spectral peak frequencies of the motion spectrum under three types of wave spectra is mainly near the spectral peak frequencies of the incident wave or near the natural frequencies of the vessel. Under two types of sea conditions, the heave and roll motions of FPSO under three types of wave spectra increase with the increase of the incident angle, reaching the peak value at an incident angle of 90°. The pitch motion increases first and then decreases with the increase in the incident angle, reaching the peak value at an incident angle of 30°. The significant values and ranges of heave and roll motions under JONSWAP spectrum are larger than those under the other two wave spectra. When the incident angle is 0° and 30°, the significant values and ranges of pitch motion under JONSWAP spectrum are the largest, and the range difference compared with the pitch motion under the other two wave spectra reaches about 6°. The significant values and ranges of pitch motion under the three types of wave spectra are basically the same when the incident angle is 60°.
- 2.
- When the incident wave is the short-crested irregular wave, the spectral peak frequencies of the motion spectrum under three types of wave spectra is mainly located near the spectral peak frequencies of incident wave or near the natural frequencies of the vessel, presenting a bimodal spectrum with the main peak near the incident wave frequency and the secondary peak near the natural frequency of the vessel. Under both types of sea conditions, the heave and roll motions of FPSO under three types of wave spectra increase with the increase in incident angle and reach the peak value at an incident angle of 90°. The pitch motion decreases with the increase in incident angle, and the motion amplitude of FPSO in short-crested waves is smaller than that in long-crested waves. In the fourth-level sea state, the significant values of FPSO’s heave motion are essentially the same under three different wave spectra, and the ranges of motion are also similar. In the fifth-level sea state, when the incident angle is 60°, the significant values and ranges of FPSO’s heave motion under JONSWAP spectrum are larger than the other two wave spectra, with a difference in amplitude of 0.41 m and a difference in moving range of about 2.0 m. Under both sea states, there are significant differences in the roll motion of the FPSO under the three wave spectra at incident angles of 30°, 60° and 90°. In the fourth level sea state, the FPSO’s roll motion with the significant values and ranges occurs under the JONSWAP spectrum with an incident angle of 30°, while under the Ochi-Hubble spectrum, the FPSO’s roll motion with the significant values and ranges occurs with incident angles of 60° and 90°. In fifth level sea state, the FPSO’s roll motion with the significant values and ranges occurs under the JONSWAP spectrum with incident angles of 30° and 60°, while under the Ochi-Hubble spectrum, the FPSO’s roll motion with the significant values and ranges occurs with an incident angle of 90°. The significant values and ranges of pitch motions of the FPSO under the three wave spectra are basically similar.
Author Contributions
Funding
Informed Consent Statement
Conflicts of Interest
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Units | Value | |
---|---|---|
Length overall | m | 112 |
Length between perpendiculars | m | 109 |
Breath | m | 28 |
Draft | m | 9 |
Displacement | t | 24,610 |
Longitudinal center of gravity (to the stern of the ship) | m | 51 |
Vertical center of gravity (to the hull baseline) | m | 7.2 |
Roll radius of inertia | m | 8.037 |
Pitch radius of inertia | m | 28.149 |
Yaw radius of inertia | m | 29.027 |
Ocean Wave Spectra | The Significant Wave Height | The Spectral Peak Period | The Peak Elevation Parameter |
---|---|---|---|
ITTC two-parameters spectra | 3.6 m/2.0 m | 10.59 s/9.84 s | / |
JONSWAP spectra | 3.3 | ||
Ochi-Hubble spectra | / |
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Sun, L.; Yang, X.-Q.; Bu, S.-X.; Zheng, W.-T.; Ma, Y.-X.; Jiao, Z.-L. Analysis of FPSO Motion Response under Different Wave Spectra. J. Mar. Sci. Eng. 2023, 11, 1467. https://doi.org/10.3390/jmse11071467
Sun L, Yang X-Q, Bu S-X, Zheng W-T, Ma Y-X, Jiao Z-L. Analysis of FPSO Motion Response under Different Wave Spectra. Journal of Marine Science and Engineering. 2023; 11(7):1467. https://doi.org/10.3390/jmse11071467
Chicago/Turabian StyleSun, Lei, Xing-Quan Yang, Shu-Xia Bu, Wen-Tao Zheng, Yu-Xiang Ma, and Zi-Lu Jiao. 2023. "Analysis of FPSO Motion Response under Different Wave Spectra" Journal of Marine Science and Engineering 11, no. 7: 1467. https://doi.org/10.3390/jmse11071467
APA StyleSun, L., Yang, X. -Q., Bu, S. -X., Zheng, W. -T., Ma, Y. -X., & Jiao, Z. -L. (2023). Analysis of FPSO Motion Response under Different Wave Spectra. Journal of Marine Science and Engineering, 11(7), 1467. https://doi.org/10.3390/jmse11071467