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Article

Multi-Load Topology Optimization Design for the Structural Safety Maintenance of Low- and Intermediate-Level Radioactive Waste Packaging Containers in the Case of a Collision

1
Advanced Mobility Components Group, Korea Institute of Industrial Technology, Daegu 42994, Republic of Korea
2
Department of Nanomechatronics Engineering, Pusan National University, Pusan 46241, Republic of Korea
3
Department of Aviation Maintenance & Mechanical Engineering, Changshin University, Changwon-si 51352, Republic of Korea
*
Authors to whom correspondence should be addressed.
Materials 2024, 17(16), 4130; https://doi.org/10.3390/ma17164130
Submission received: 26 July 2024 / Revised: 17 August 2024 / Accepted: 18 August 2024 / Published: 20 August 2024
(This article belongs to the Special Issue Advances in Hybrid Structure Manufacturing Technology)

Abstract

This paper presents an optimized design approach using nonlinear dynamic analysis and finite element methods to ensure the structural integrity of square-shaped containers made from ductile cast iron for intermediate- and low-level radioactive waste packaging. Ductile cast iron, with its spherical graphite structure, effectively distributes stress throughout the material, leading to a storage capacity increase of approximately 18%. Considering the critical need for containers that maintain integrity under extreme conditions like earthquakes, the design focuses on mitigating stress concentrations at the corners of square structures. Nonlinear dynamic analyses were conducted in five drop directions: three specified by ASTM-D5276 standards and two additional directions to account for different load patterns. Fractures were observed in four out of the five scenarios. For each direction where fractures occurred, equivalent loads causing similar displacement fields were applied to linear static models, which were then used for multi-load topology optimization. Three optimized models were derived, each increasing the volume by 1.4% to 1.6% compared to the original model, and the design that best met the structural integrity requirements during drop scenarios was selected. To further enhance the optimization process, weights were assigned to different load conditions based on numerical analysis results, balancing the impact of maximum stress, average stress, and plastic deformation energy. The final model, with its increased storage capacity and enhanced structural integrity, offers a practical solution for radioactive waste management, overcoming limitations in previous designs by effectively addressing complex load conditions.
Keywords: topology optimization; structural safety maintenance; finite element method; low- and intermediate-level radioactive waste container; collision topology optimization; structural safety maintenance; finite element method; low- and intermediate-level radioactive waste container; collision

Share and Cite

MDPI and ACS Style

Lee, J.-I.; Park, S.-W.; Song, H.-J.; Cho, Y.-J.; Kim, D.-W.; Ko, D.-C.; Jang, J.-S. Multi-Load Topology Optimization Design for the Structural Safety Maintenance of Low- and Intermediate-Level Radioactive Waste Packaging Containers in the Case of a Collision. Materials 2024, 17, 4130. https://doi.org/10.3390/ma17164130

AMA Style

Lee J-I, Park S-W, Song H-J, Cho Y-J, Kim D-W, Ko D-C, Jang J-S. Multi-Load Topology Optimization Design for the Structural Safety Maintenance of Low- and Intermediate-Level Radioactive Waste Packaging Containers in the Case of a Collision. Materials. 2024; 17(16):4130. https://doi.org/10.3390/ma17164130

Chicago/Turabian Style

Lee, Jeong-In, Sang-Wook Park, Hye-Jin Song, Yong-Jae Cho, Dong-Whan Kim, Dae-Cheol Ko, and Jin-Seok Jang. 2024. "Multi-Load Topology Optimization Design for the Structural Safety Maintenance of Low- and Intermediate-Level Radioactive Waste Packaging Containers in the Case of a Collision" Materials 17, no. 16: 4130. https://doi.org/10.3390/ma17164130

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