Review Article

An Example of Multidisciplinary Work in Aviation: Radome Design

Volume: 1 Number: 1 May 28, 2025
EN

An Example of Multidisciplinary Work in Aviation: Radome Design

Abstract

Radome structures are essential in contemporary aerospace and defense systems, safeguarding radar equipment while facilitating the effective transmission of electromagnetic waves. This assessment offers a multidisciplinary analysis of radome design, concentrating on the incorporation of materials engineering, structural mechanics, aerodynamics, and electromagnetic efficiency. Particular focus is placed on composite materials featuring low dielectric constants, metamaterials, and frequency selective surfaces (FSS), which enhance RF transparency and lower radar cross-section (RCS). The influence of structural shapes on aerodynamic resistance and high-speed mechanical strength is examined, along with typical failure modes due to environmental stressors like temperature changes, humidity, and UV radiation. Sophisticated numerical techniques like the Finite Element Method (FEM), Finite-Difference Time-Domain (FDTD), and Method of Moments (MoM) are examined for electromagnetic analysis, whereas Computational Fluid Dynamics (CFD) evaluates aerodynamic properties and flow dynamics. Furthermore, the document emphasizes recent advancements in combined optimization approaches and design software tools that concurrently tackle electromagnetic, mechanical, and aerodynamic needs. These methods encompass multidisciplinary design optimization (MDO) frameworks, topology optimization, and design iterations supported by machine learning. By merging these viewpoints, the research provides a comprehensive strategy for radome design and seeks to facilitate the advancement of next-generation aerospace systems with superior performance, lower detectability, and increased structural durability.

Keywords

Radome Design, Electromagnetic Performance, Multidisciplinary Optimization, Frequency Selective Surface (FSS), Radar Cross Section (RCS), Stealth Technology

References

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APA
Durukan, S. M., Öz, Y., Kardaş, A., Çakır, T. B., İvenç, A., Erdoğan, N., Kocaman, M., & Uyaner, M. (2025). An Example of Multidisciplinary Work in Aviation: Radome Design. Journal of Dynamics, Energy and Utility, 1(1), 39-67. https://izlik.org/JA47PM39EW
AMA
1.Durukan SM, Öz Y, Kardaş A, et al. An Example of Multidisciplinary Work in Aviation: Radome Design. JDEU. 2025;1(1):39-67. https://izlik.org/JA47PM39EW
Chicago
Durukan, Salman Murat, Yeşim Öz, Ahmet Kardaş, et al. 2025. “An Example of Multidisciplinary Work in Aviation: Radome Design”. Journal of Dynamics, Energy and Utility 1 (1): 39-67. https://izlik.org/JA47PM39EW.
EndNote
Durukan SM, Öz Y, Kardaş A, Çakır TB, İvenç A, Erdoğan N, Kocaman M, Uyaner M (May 1, 2025) An Example of Multidisciplinary Work in Aviation: Radome Design. Journal of Dynamics, Energy and Utility 1 1 39–67.
IEEE
[1]S. M. Durukan et al., “An Example of Multidisciplinary Work in Aviation: Radome Design”, JDEU, vol. 1, no. 1, pp. 39–67, May 2025, [Online]. Available: https://izlik.org/JA47PM39EW
ISNAD
Durukan, Salman Murat - Öz, Yeşim - Kardaş, Ahmet - Çakır, Tuğba Burcu - İvenç, Ahmet - Erdoğan, Nursev - Kocaman, Mustafa - Uyaner, Mesut. “An Example of Multidisciplinary Work in Aviation: Radome Design”. Journal of Dynamics, Energy and Utility 1/1 (May 1, 2025): 39-67. https://izlik.org/JA47PM39EW.
JAMA
1.Durukan SM, Öz Y, Kardaş A, Çakır TB, İvenç A, Erdoğan N, Kocaman M, Uyaner M. An Example of Multidisciplinary Work in Aviation: Radome Design. JDEU. 2025;1:39–67.
MLA
Durukan, Salman Murat, et al. “An Example of Multidisciplinary Work in Aviation: Radome Design”. Journal of Dynamics, Energy and Utility, vol. 1, no. 1, May 2025, pp. 39-67, https://izlik.org/JA47PM39EW.
Vancouver
1.Salman Murat Durukan, Yeşim Öz, Ahmet Kardaş, Tuğba Burcu Çakır, Ahmet İvenç, Nursev Erdoğan, Mustafa Kocaman, Mesut Uyaner. An Example of Multidisciplinary Work in Aviation: Radome Design. JDEU [Internet]. 2025 May 1;1(1):39-67. Available from: https://izlik.org/JA47PM39EW