Warship Technology delivers in-depth analysis of advanced naval systems, platforms, and integration strategies shaping modern maritime defence capabilities.
Look out for topics such as combat management systems, radar and sensor integration, propulsion advancements, survivability and stealth technologies, and the growing role of autonomy and artificial intelligence in naval operations.
Gain insight into the technologies underpinning next-generation warships, along with the practicalities of design, integration, and lifecycle support within complex naval environments.
Understanding surfaced submarine performance is vital for safe and efficient operations. Experimental towing-tank trials on a generic submarine generated hydrodynamic load and flow-field data, revealing the effects of wave-making resistance, bow-wave forces, and pitching moments. The findings support improved seakeeping prediction, powering assessments, and validation of advanced numerical models today.
Reference designs are emerging as powerful tools for managing submarine procurement complexity. Running alongside acquisition programmes, they help balance requirements, assess trade-offs, and contain the risks of costly design changes. By supporting informed customer decisions and affordable capability development, the approach improves programme stability, confidence, and long-term outcomes, overall success.
Submarine concept design demands early decisions within a tightly constrained solution space. Examining around twenty interdependent design choices, this analysis highlights how submarine synthesis differs from surface ship development, requiring greater precision, balance, and systems integration from the outset. The findings underscore the sophistication of modern underwater vehicle architecture today.
Process automation is transforming submarine pressure-hull design. By integrating optimisation software, finite-element analysis, and automated engineering workflows, designers rapidly evaluated weight, operating-depth, and collapse-strength trade-offs. The approach uncovered improvements unlikely through manual methods alone, while highlighting the growing importance of expert interpretation in data-rich design environments for future submarine programmes.
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
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