Ship Repair & Maintenance is a window into vessel lifecycle management, focusing on the latest technical advancements, regulatory requirements, and best practices in maintenance and repair operations.
Topics such as condition-based and predictive maintenance, hull integrity, corrosion control and propulsion system overhauls will be explored, in addition to the application of digital tools in maintenance diagnostics and planning. Ship Repair & Maintenance will also follow market trends and the distribution of work across the world.
As physical and numerical modelling techniques become increasingly sophisticated, understanding the limitations of conventional scaling approaches is attracting renewed attention across marine hydrodynamics. Advances in the investigation of nonlinear wave phenomena, seakeeping behaviour, and sloshing effects are driving the development of enhanced testing methodologies, improving confidence in the translation of model-scale results to full-scale vessel performance.
Accurately predicting ship motions and wave-induced loads remains a central challenge in seakeeping analysis, particularly as vessel operations extend into more demanding environments. Growing emphasis on nonlinear simulation techniques is improving understanding of large-amplitude motions and load responses, supporting the development of more realistic assessment methods for vessel performance, safety, and structural design.
Accurately predicting slamming loads remains essential for the design of high-speed craft and novel hull forms operating in demanding sea conditions. Advances in computational fluid dynamics are providing deeper insight into complex water-entry phenomena, enabling more reliable assessment of impact pressures and hydrodynamic loads while supporting the development of safer and more resilient marine structures.
Confidence in numerical ship hydrodynamics is growing as advances in CFD enable increasingly detailed prediction of resistance, wake fields, and free-surface effects. Ongoing efforts to quantify numerical uncertainty and improve full-scale correlation are helping to strengthen the role of virtual towing tanks in ship performance assessment, supporting more reliable and efficient design development.
Accurate assessment of ship operability depends on a realistic understanding of the environmental conditions vessels encounter throughout their service life. Growing availability of long-term measured wave data is enabling more sophisticated operability analyses, revealing the limitations of traditional wave-atlas approaches and supporting better-informed decisions during ship design, procurement, and mission planning.
Wave energy technologies are attracting increasing interest as the maritime sector explores new pathways for renewable energy generation and ocean-based power systems. Innovative concepts that harness vessel motions and internal water dynamics are expanding the range of available solutions, with growing focus on improving energy capture efficiency and better exploiting the complex interactions between waves and floating structures.
Accurate prediction of roll damping remains a longstanding challenge in the design and operation of offshore floating structures, particularly as developments move into harsher environments and deeper waters. Improved understanding of the hydrodynamic influence of appendages and flow-memory effects is advancing motion prediction techniques, supporting more reliable assessment of offshore vessel performance, safety, and long-term operability.
Accurate prediction of vessel motions remains fundamental to seakeeping assessment, particularly as designers seek to better understand ship behaviour in increasingly demanding operating conditions. Continuing advances in time-domain and nonlinear analysis are improving the representation of heave and pitch responses, helping to refine motion prediction methods and support more reliable performance evaluations during ship design.
Reliable prediction of roll damping is essential for assessing vessel motions and operability, particularly for ships and offshore structures exposed to challenging sea conditions. Advances in numerical modelling and experimental validation are improving understanding of viscous damping effects, supporting more accurate motion-response predictions and enhancing confidence in seakeeping and stability assessments.
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