SLWR Design and Configuration Optimization Considering Strength, Interference, Wave and Slugging Fatigue Responses
EVENT: OTC
9 May 2024
This paper focuses on the optimization design and analysis for a SLWR to meet strength, interference, fatigue design criteria considering extreme environmental loads and all fatigue sources while maintaining economic feasibility. OrcaFlex (Orcina 2022) is utilized to conduct strength, interference, and fatigue analyses for a series of riser configurations. To enhance analysis efficiency and reduce computational time, wave fatigue analyses are performed in the frequency domain.
Strength analysis results, obtained through nonlinear finite element simulations, are crucial for assessing the feasibility of proposed configurations. These results offer valuable insights into key parameters, such as the riser pipe size, hang-off angle, hang-off location on the vessel, sag bend and hog bend elevations, and azimuth angle. Among these parameters, sag bend height and arch height are identified as pivotal in defining the SLWR configuration. Total fatigue damages, encompassing installation fatigue damage, vortex induced vibration (VIV) and heave induced vibration (HVIV) fatigue damage, wave-induced vessel motion fatigue (WIF) damage, and slugging fatigue damage, are calculated. Mitigation methods based on the fatigue damage results are discussed.
SLWRs offer the advantage of reducing the payloads to the vessel while effectively mitigating critical stress and potential compressive forces at TDP. The slugging fatigue damage can be of significant concern when dealing with slug flow conditions. This paper introduces an enhanced and more efficient method for the development of SLWR configurations. Implementing this method, the buoyancy section length can be optimized. This, in return, leads to substantial reductions in project costs, making SLWRs a more economically viable choice.
Authors
Kevin Man
Principal Engineer

About
Kevin is a principal engineer with 19 over years’ post-graduate experiences in offshore industry including FEED through detailed design. Experienced in the global finite element analysis of risers (top tension risers, steel catenary risers, steel lazy wave risers, flexible risers) and local FEA. Broad based responsibilities in offshore engineering with experiences in analysis and engineering design of riser systems, hydrodynamics, motion analysis, mooring analysis, strength, fatigue analysis, ECA and structural design.
Expertise
Insights
Fengjie Yin
Technical Advisor - Fracture Mechanics
Fengjie Yin
Technical Advisor - Fracture Mechanics
Insights
Peimin Cao
Genesis Energies
Yifei Zeng
ExxonMobil Technology and Engineering Company
Michael Firmian
ExxonMobil Technology and Engineering Company
Mainak Hore
ExxonMobil Services & Technology Private Limited