Offshore Structural Reliability Assessment by Probabilistic Procedures—A Review
Abstract
:1. Introduction
2. Overview of the Offshore Structural Assessment
2.1. Structural Reliability Analysis for Fixed Offshore Platforms
2.2. Determination on the Wave Force Procedure
2.3. Analysing Hydrodynamic Wave Load-Induced Offshore Structural Responses
2.3.1. Numerical Simulation Analysis
2.3.2. Short-Term and Long-Term Analysis
3. Probabilistic Approaches for Fixed Offshore Structural Response Analyses
3.1. Probability Domain Methods
3.2. Frequency Domain Methods
3.3. Time Domain Methods
4. Overall Review of the Probabilistic Domains on Offshore Structural Assessment
5. Conclusions
- The fundamental principle of the design and analysis of offshore structures is that it enables their stability over design life to be maintained. It follows from the non-linear behaviourof fixed offshore platforms that they involve a considerable number of major uncertainties pertaining to the techniques of structural analysis, the mathematical models for the structural behaviour, the loading mechanism, and the response to the parameters concerned.
- The probabilistic approach has been shown to have several benefits compared to the deterministic approach. It offers, in particular, a clear framework for calibrating code design practices like the evolving load and resistance factor design (LRFD) methods. This will explain a decrease in the safety factors associated with the individual components through a clear reflection of the distinctive aspect of the wave environments and hydrodynamic response.
- There are three fields in which the response properties can be built on the basis of the probabilistic method;the probability, frequency, and time domain. The principal challenge in probabilistic analysis is the randomness of stochastic waves. An exact model for predicting extreme responses is important as awareness is necessary if the structural design of the offshore is to be optimised.
- With regard to design structural analysis, establishing a practicable technique that combines the latest short-term and long-term non-linear analysis methods with the conventional design wave methods seems desirable in a manner compatible with the reliability analysis.
- The long-term probability distribution, which is then required to analyse fatigue concerning the structural extreme during its service life, is needed to analyse the first excursion failure. It can be accomplished by transforming their respective short-term distributions into a long-term wave environment.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
API | American Petroleum Institute |
API RP 2A | API Standard according to the Recommended Practice (RP) of 2A |
CPU | Computer Processing Unit |
EVR100 | 100-Year Extreme Responses |
FFTrf and FFTrfa | Randomization of Wave Component Frequency |
FFT | Fast Fourier Transform |
HAWC2 | Horizontal Axis Wind Turbine Simulation Code 2nd Generation |
PM | Pierson-Moskowitz Spectrum |
POF | Probability of Failure |
RSR | Reserve Strength Ratio |
SACS | Structural Analysis Computer Software |
SRA | Structural Reliability Analysis |
USFOS | Ultimate Strength for Offshore Structural Software |
Nomenclature
peak frequency | Hz | |
function of failure | – | |
wave height | m | |
significant wave height | m | |
load distribution (model) | N or Nm | |
the smallest simulated extreme value | – | |
total number of simulation records (simulated responses) | – | |
annual average number of sample data | – | |
probability distribution (model) | – | |
cumulative probability of return periods | – | |
resistance distribution (model) | N or Nm | |
wave period | s | |
zero up-crossing wave period | s | |
specific return periods | – |
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Author (Year) | Method | Findings | Limitations |
---|---|---|---|
Burrows R. (1977 & 1983) | Second and Fourth Statistical Moment (SFSM) |
|
|
Najafian G., Burrows R., Tickell R.G., Metcalfe A.V. (2002) | An efficient sampling technique known as Simple Sampling Techniques (SST) |
|
|
Najafian G. (2007) | Principal Component Techniques (PCT) |
|
|
Author (Year) | Method | Findings | Limitations |
---|---|---|---|
Olagnon M., Prevosto M., Joubert P. (1988) | Non-linear spectral calculation based on Volterra kernels |
|
|
Li X.-M., Quek S.-T., Koh C.-G. (1995) | Volterra series |
|
|
Tognarelli M.A., Zhao J., Rao K.B., Kareem A. (1997) | Volterra functional series |
|
|
Naess and Pisano (1997) | Exact computation of probability density functions |
|
|
Kareem A., Hsieh C.C., Tognarelli M.A. (1998) | Stokes’ perturbation expansion solution |
|
|
Zheng X.Y., Liaw C.Y. (2004) | Cumulant spectral analysis |
|
|
Ersdal G. (2005) | Stokes’ analysis + USFOS |
|
|
Marzocca P. Nicholsb J.M., Milanesea A., Seaverb M., Trickeyb S.T., (2008) | Volterra functional series-spectrum analysis |
|
|
Carassale and Kareem (2009) | Improved version of Volterra frequency-response functions |
|
|
Agarwal and Manuel (2011) | Second-order wave analysis + FAST software |
|
|
Norouzi M., Nikolaidis E. (2012) | Extended probabilistic re-analysis method |
|
|
Ebrahimian (2014) | Probability incremental wave analysis (PIWA) |
|
|
Chen (2014) | Second-order wave analysis |
|
|
Natarajan (2014) | Second-order wave analysis + HAWC2 Software |
|
|
Kim O. (2015) | NARX-based quadratic Volterra series |
|
|
Merigaud A., Ringwood J.V. (2016) | Nonlinear frequency-domain (NLFD) |
|
|
Author (Year) | Method | Findings | Limitations |
---|---|---|---|
Orkin, G., Folck, R., Startzman, R. (1978) | The Conventional Time Simulation (CTS) or so-called Monte Carlo Time Simulation (MCTS) |
|
|
Tromans, P. S., Anaturk, A. R., Hagemeijer, P. (1991) | New Wave Theory |
|
|
Taylor P. H., Jonathan P., Harland L. A. (1997) | Constrained time domain simulation |
|
|
Cassidy M.J., Taylor, P.H., Taylor, RE., Houlsby, G. T. (2001 & 2002) | Constrained New Wave (CNW) |
|
|
Naess, A., Gaidai, O., Haver, S. (2007) | Linear extrapolation technique |
|
|
Najafian G. (2007a & 2007b) | Finite-memory nonlinear system (FMNS) |
|
|
Mohd Zaki N.I., Najafian G. (2008) | Finite-memory nonlinear system (FMNS) |
|
|
Abu Husain M.K., Najafian G. (2010) | Efficient time simulation (ETS) |
|
|
Mohd Zaki N.I., Abu Husain M.K., Mallahzadeh H., Najafian G. (2013) | Modified Finite-Memory Nonlinear System Modelling (FMNS) |
|
|
Lambert L L.A., Najafian G., Copper J.E., Abu Husain M.K., Mohd Zaki N.I. (2013) | Efficient Threshold Upcrossing (ETU) |
|
|
Mallahzadeh H., Wang Y., Abu Husain M.K., Mohd Zaki N.I., Najafian G. (2014) | ETS-Relationship (ETS-RTS) |
|
|
Gaspar B., Naess A., Leira B.J., Soares C.G. (2014) | Montel Carlo Based Method & Finite Element Structural Models |
|
|
Aarland Y (2015) | An equal area principle (EAP) to generate waves instead of FFT method |
|
|
Johari M. B., Abu Husain M.K. (2017) | Optimization of ETS |
|
|
Mukhlas N. A., Mohd Zaki N.I., Abu Husain M.K. (2020) | FMNS using non-linear wave theory |
|
|
Syed Ahmad, S.Z.A, Abu Husain M.K., Mohd Zaki N.I. (2021) | ETS-Regression Procedure |
|
|
Domains | Authors (Year) | Methods | Wave Model | Structural Analysis | Time Period | Current Impact | ||||
---|---|---|---|---|---|---|---|---|---|---|
L | NL | RQS | RDYN | ST | LT | P | NP | |||
Probability | Burrows R. (1977; 1983) | Second and fourth statistical moment | / | / | / | / | / | |||
Najafian et. al. (2002) | Simple sampling techniques | / | / | / | / | |||||
Najafian (2007) | Principle component techniques | / | / | / | / | |||||
Frequency | Olagnon et. al. (1988) | Nonlinear spectral calculation based on Volterra kernels | / | / | ||||||
Li et. al. (1995) | Volterra series (VS) | / | / | / | ||||||
Tognarelli et. al. (1997) | Volterra functional series | / | / | |||||||
Naess and Pisano (1997) | Exact computation of Probability Density Functions | / | / | / | / | / | ||||
Kareem et. al. (1998) | Stokes’ perturbation expansion solution | / | / | / | / | / | / | |||
Zheng and Liaw (2004) | Cumulant spectral analysis | / | / | / | ||||||
Ersdal (2005) | Stokes’ analysis + USFOS | / | / | / | / | / | ||||
Carassale and Kareem (2009) | Improved version of Volterra frequency-response functions | / | ||||||||
Agarwal & Manuel (2011) | Second-order wave analysis + FAST software | / | / | / | / | |||||
Norouzi and Nikolaidis (2012) | Extended Probabilistic Re-analysis method | / | / | / | / | |||||
Ebrahimian (2014) | Probability incremental wave analysis | / | ||||||||
Chen (2014) | Second-order wave analysis | / | / | / | / | |||||
Natarajan (2014) | Second-order wave analysis + HAWC2 Software | / | / | / | / | |||||
Kim (2015) | NARX-based quadratic VS | / | / | / | / | |||||
Merigaud and Ringwood (2016) | Nonlinear frequency-domain (NLFD) | / | / | / | ||||||
Time | Orkin et. al. (1978) | Monte Carlo Time Simulation | / | / | ||||||
Tromans et. al. (1991) | NewWave Theory | / | / | |||||||
Taylor et. al. (1997) | Constrained time domain simulation | / | / | / | / | |||||
Cassidy et. al. (2001 and 2002) | Constrained New Wave (CNW) | / | / | / | / | / | / | / | / | |
Naess et. al. (2007) | Linear extrapolation technique | / | / | |||||||
Time | Najafian (2007) and Mohd Zaki and Najafian (2008) | Finite-memory nonlinear system (FMNS) | / | / | / | / | / | / | / | |
Abu Husain and Najafian (2010) | Efficient Time Simulation (ETS) | / | / | / | / | / | / | / | ||
Mohd Zaki et. al. (2013) | Modified FMNS | / | / | / | / | / | / | / | ||
Lambert et. al. (2013) | Efficient Threshold Upcrossing (ETU) | / | / | |||||||
Mallazadeh et. al. (2014) | ETS–Relationship Time Simulation (ETS-RTS) | / | / | |||||||
Gaspar et. al. (2014) | Montel Carlo Based Metho–Finite Element Models | / | / | / | ||||||
Aarland (2015) | Preferring EAP to generate waves instead of FFT method | / | / | |||||||
Johari (2017) | Optimization of ETS | / | / | / | / | / | ||||
Mukhlas et al. (2020) | FMNS using nonlinear wave theory | / | / | / | / | / | / | / | ||
Syed Ahmad et al. (2021) | ETS-Regression Procedure | / | / | / | / | / | / |
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Syed Ahmad, S.Z.A.; Abu Husain, M.K.; Mohd Zaki, N.I.; Mukhlas, N.A.; Mat Soom, E.; Azman, N.U.; Najafian, G. Offshore Structural Reliability Assessment by Probabilistic Procedures—A Review. J. Mar. Sci. Eng. 2021, 9, 998. https://doi.org/10.3390/jmse9090998
Syed Ahmad SZA, Abu Husain MK, Mohd Zaki NI, Mukhlas NA, Mat Soom E, Azman NU, Najafian G. Offshore Structural Reliability Assessment by Probabilistic Procedures—A Review. Journal of Marine Science and Engineering. 2021; 9(9):998. https://doi.org/10.3390/jmse9090998
Chicago/Turabian StyleSyed Ahmad, Sayyid Zainal Abidin, Mohd Khairi Abu Husain, Noor Irza Mohd Zaki, Nurul Azizah Mukhlas, Ezanizam Mat Soom, Nurul Uyun Azman, and Gholamhossein Najafian. 2021. "Offshore Structural Reliability Assessment by Probabilistic Procedures—A Review" Journal of Marine Science and Engineering 9, no. 9: 998. https://doi.org/10.3390/jmse9090998
APA StyleSyed Ahmad, S. Z. A., Abu Husain, M. K., Mohd Zaki, N. I., Mukhlas, N. A., Mat Soom, E., Azman, N. U., & Najafian, G. (2021). Offshore Structural Reliability Assessment by Probabilistic Procedures—A Review. Journal of Marine Science and Engineering, 9(9), 998. https://doi.org/10.3390/jmse9090998