Ferries & Fast Craft focuses on vessel design, performance optimisation, and operational technologies shaping high-speed and passenger transport sectors. You can expect topics such as hull design and hydrodynamics, propulsion systems including hybrid and electric solutions, lightweight and innovative new materials, and advanced navigation and safety systems.
Gain insights into regulatory compliance and efficiency improvements in the unseen workhorses of the maritime industry.
Damage stability remains a defining challenge for ro-ro vessel safety, where flooding of large vehicle decks can rapidly compromise survivability. Comparative assessment of subdivision arrangements identifies the configurations most effective at improving stability, while introducing a critical deck-height concept that highlights how seemingly subtle design choices can have decisive consequences during flooding events.
Human performance is often the decisive factor that determines whether a minor incident becomes a major maritime disaster. By modelling crews as active safety barriers within a vessel’s defence system, an innovative reliability-based approach provides new insight into emergency response effectiveness, supporting improved accident analysis, risk evaluation, and crew training strategies.
As high-speed vessels increasingly rely on gas turbine propulsion, maintaining reliability while controlling lifecycle costs is becoming a critical operational challenge. A multi-parameter diagnostic approach combining vibration analysis, thermography, tribology, borescopy, and emissions monitoring offers a pathway to predictive maintenance, enabling earlier fault detection, improved asset availability, and more cost-effective maintenance strategies.
As maritime safety frameworks evolve, designers are increasingly turning to data-driven risk assessment to understand the consequences of rare but high-impact collision events. By combining probabilistic scenario modelling with advanced finite-element simulation, a quantitative approach to tanker collision risk enables more realistic evaluation of structural damage, environmental exposure, and economic losses, supporting risk-informed ship design and safety decision-making.
Environmental performance is becoming a defining factor in ship design, with emissions, fuel costs, noise, and other impacts placing growing pressure on operators to improve efficiency. While hull-form gains may be incremental, significant opportunities lie in optimising hull-propeller interactions and operational strategies, highlighting how smarter design and voyage management can deliver both economic and environmental benefits.
Understanding how people maintain balance at sea is proving more complex than traditional safety assumptions suggest. Controlled motion-platform testing reveals that stepping is a common and proactive response to vessel movement rather than a last resort, highlighting important implications for human-performance modelling, workplace safety, and the design of maritime operating environments.
As emissions regulations tighten and pressure grows to improve air quality from shipping, alternative approaches to engine emissions control are gaining attention. Advanced modelling of direct ammonia injection demonstrates significant potential for NOx reduction, highlighting both the promise and operational complexity of emerging in-cylinder emissions technologies for future marine propulsion systems.
Structural efficiency remains a central challenge in marine engineering, where grillage systems must withstand complex combinations of bending and compression loads. A new analytical approach simplifies the prediction of structural behaviour and buckling response, achieving strong agreement with finite-element analysis while offering a practical framework for assessing strength, stability, and load transfer in reinforced structures.
As vessels operate closer to critical speed regimes, understanding wave generation becomes increasingly important for efficiency, performance, and environmental impact. Revisiting classic wave-pattern theory with modern numerical techniques provides fresh insight into how deep- and shallow-water wave fields evolve, revealing the distinctive behaviours that emerge near critical operating conditions and their influence on wake characteristics.
Human factors have long been recognised as a major contributor to maritime accidents, yet translating that understanding into ship design remains an ongoing challenge. Analysis of regulations, standards, and design guidance reveals widespread recognition of human-centred design principles, while highlighting gaps in consistency and enforcement that continue to limit their practical adoption across the industry.
As shipbuilding moves toward greater automation and precision, digital approaches are transforming traditional plate-forming processes. By combining thermo-mechanical simulation with experimental validation, advanced line-heating models can accurately predict deformation and residual stresses, supporting automated manufacturing, improved forming accuracy, and more consistent production outcomes in modern shipyards.
As shipbuilding and offshore fabrication projects grow in scale and complexity, success increasingly depends on managing coordination across diverse stakeholders, disciplines, and project phases. By examining lessons from manufacturing and major engineering programmes, this work highlights the value of more integrated, systems-level approaches to improve communication, adaptability, and overall project performance.
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