Composite materials have become widespread for use in aircraft load bearing structures due to their ability of reducing structural mass without compromising the required stiffness, strength and safety requirements in the face of aerodynamic, inertial and thermal service loads. This work has addressed with success the development and validation of such an integrated lightweight-design framework applied to a representative composite aircraft load-carrying structure. The workflow exploits SIMP topology optimization and parametric modelling as well as Kriging and support vector regression surrogate models, Latin hypercube sampling and a multi-island genetic algorithm, to screen the low mass design space subject to stress, deformation, buckling and manufacture ability constraints. The optimized FE model contained 2.15M elements. It predicts a max prinicpal stress of 263.4MPa,a stress margin of 4.18, and a tip deflection of 1.24 mm under the 2.0 mm limit, and the minimum buckling factor was 3.47. The prototype test recorded maximum stress at 257.6 MPa, and thermal deflection of 1.27 mm while deviation between simulations and testing remained below 6%. In general, the above results indicate that the surrogate model based optimization coupled by the manufacturing feedback will be able to relate the aircraft composite structure design, fabrication and validation, and can be used as a realistic benchmark for digital engineering analysis of light-weight aircraft structures.
The lightweight design of an aircraft engine pylon requires an efficient structural layout capable of accommodating multiple load cases. An integrated lightweight design framework combining multi-load topology optimization and size optimization is developed. The three-field SIMP method with a weighted-compliance object...
Wei Yuan, Lei Li, Yi-Ru Ren et al.· Aerospace· 0 citations
Reducing structural weight in commercial aviation is a primary challenge for efficiency. This study introduces a design framework optimizing a Fowler flap bracket using topology optimization (TO) tailored for additive manufacturing (AM) constraints. Rather than expensive fluid simulations, the methodology utilizes anal...
Mehmet Ali Bayrak, Okan Bakbak· Journal of Polytechnic· 0 citations
The structural design and optimization of an industrial lift platform through the application of composite profiles, specifically sandwich structures, to enhance performance characteristics compared to conventional metallic (steel)designs. The primary goal is to significantly reduce the platform's overall weight withou...
Mayur S. Awale, S. Gawade· International Journal of Adv...· 0 citations
The performance of modern high-speed aircraft is intrinsically linked to structural mass. As a key component that generates lift, the shape and lightweight of the wing are crucial for improving aircraft performance. This study employs the bi-directional evolutionary structural optimization (BESO) method to perform topo...
Lei Zhou, Wei Wang, Quanwei Gong et al.· SAE technical paper series· 0 citations
This study presents a manufacturability-oriented aerodynamic design workflow for a 10 kW horizontal-axis wind turbine blade. Thirty-five NACA-series airfoils were screened using the Robust Envelope Minimax with Smoothness (REMUS) framework, which ranks candidates according to regret, robustness, drag-bucket width, and...
Ilyass Bougaa, Nissrine El Allami, L. Tenghiri· Wind Engineering : The Inter...· 0 citations
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