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.
Brazil’s first domestically developed submarine simulator marks a significant step in national maritime engineering capability. Built within the University of São Paulo’s Numerical Offshore Tank, the platform combines vessel manoeuvring theory and advanced numerical modelling to support submarine analysis, training, research, and future technology development independently and at national scale.
Accurately predicting submarine behaviour during turning manoeuvres remains a critical design challenge. Comparing coefficient-based modelling, computational fluid dynamics, and free-running tests, researchers found CFD closely matched measured control-surface demands while simpler methods overpredicted requirements. The findings improve understanding of out-of-plane loads and support more effective submarine control-system design today globally.
Future submarine design is increasingly shaped by sustainability and climate resilience. By embedding environmental considerations from concept through disposal, designers can reduce lifecycle impacts without compromising capability. The analysis highlights collaborative approaches spanning customers, shipyards, suppliers, and engineers, demonstrating how sustainable principles can enhance performance, flexibility, and long-term value today.
Delta-wing autonomous underwater gliders could extend reconnaissance endurance while improving underwater efficiency. Using CFD analysis across multiple NACA-based hull configurations, researchers evaluated lift, drag, and longitudinal stability characteristics. The work identifies promising low-power designs capable of covering greater distances, enhancing stealthy ocean-data collection and submarine support missions globally today ahead.
Advances in battery technology are creating new opportunities for naval ships and submarines. Seeking higher energy density longer service life improved reliability and lower lifecycle costs designers are assessing proven maritime electrification solutions. The challenge lies in adopting these capabilities while maintaining rigorous safety assurance operational resilience and future readiness.
Finite-element simulations are improving understanding of submarine survivability during training-torpedo impacts. Validated against experimental data, the analysis assessed pressure-hull responses at different strike speeds and found only limited permanent deformation at higher velocities. The results suggest operational capability would remain unaffected, helping reduce risk and inform safer training practices today.
An all-electric submarine concept is challenging traditional underwater operations. Designed to recharge through offshore wind infrastructure and operate without conventional fuels, the Renewable concept explores long-endurance battery propulsion for regional missions. The study highlights innovative energy integration, operational feasibility, and emerging possibilities for lower-emission naval capabilities ahead in coming decades.
In the late 19th and early 20th centuries the frames of a steel ship were stood up on the keel like those of a wooden ship, and the plates attached later. Frames had to be shaped to match the curves of the hull design. Each one was heated in a forge and then hammered or jacked to match the shape of its template. In late 19th century, it was not easy fairing the hull. Flexible sticks, called battens, were used for fairing the lines, i.e. checking the
Predicting submarine manoeuvring behaviour is a critical foundation of lifecycle safety management. By improving understanding of vessel response and control characteristics, designers can better assess operational risks, support safety assurance, and inform safer decisions throughout design, operation, maintenance and capability evolution for submarines operating in demanding underwater environments worldwide today.
Realistic testing methods are advancing wind-powered vessel development. Using a sensor-rich scale model of Oceanbird, researchers gathered high-quality manoeuvring and aerodynamic data in free-sailing conditions. The work demonstrates improved evaluation of sailing ship behaviour, including zigzag performance, while strengthening validation techniques for future wind-assisted and fully wind-powered designs globally today.
Rondout Riverport 2040 presents a vision for transforming Hudson Valley waterfronts through sustainable maritime commerce, heritage preservation and clean technology innovation. By linking communities, businesses and working ports, the strategy promotes economic vitality, equitable transition beyond fossil fuels, regional collaboration and resilient long-term prosperity for Kingston, Esopus residents and stakeholders.
Wind-tunnel research is refining the performance of rotating-cylinder propulsion systems. Detailed aerodynamic measurements revealed spanwise flow effects, drag growth, and interactions between adjacent cylinders that reduce thrust efficiency at certain wind angles. The findings improve understanding of rotor-sail behaviour, supporting more accurate designs and enhanced wind-assisted vessel performance worldwide today.
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