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This paper presents a modified evolutionary structural optimisation (ESO) algorithm for optimal design of damage tolerant structures.
The design of damage tolerance critical composite structures is inherently more complicated than the practices developed for metal structure.
The ability of the structure to continue to carry load after damage and the subsequent propensity of the damage to propagate are important considerations for the design of damage tolerant composite structures.
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The results have implications concerning the design of damage-tolerant coated systems consisting of a brittle film on a brittle substrate.
The present investigation may be useful in designing of damage sensors, fracture sensors, ML-based safety management monitoring system, fuse-system for army warheads, milling machine, etc.
Advances in damage suppression methods were also described, including optimization of processing parameters, tool design of low damage, and other methods such as rotary ultrasonic elliptical machining.
Design of safe damage tolerance critical composite structure involves the process of trading different features to produce a balanced result.
In this study, a finite element method (FEM) and computed tomography (CT) integrated design of multiscale damage analysis was used to measure the micro-defect distributions from the magnesium-based alloy tubular component (AZ31B) formed by the hydroforming process.
One of the most recent trends in earthquake-resistant design of structures – damage control when these are subjected to severe earthquakes – led to the development of an innovative repairable fuse device for dissipative beam-to-column connections in moment resistant steel frames with composite beams.
In the last decade, a high level of interest in proposing and design of low-damage structural systems have been observed among the researchers and the professional engineers.
To choose the best RSM design for damage detection, the effects of design of experiment (DOE) to the damage detectability is investigated.
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