Open Access

Research on structural performance enhancement strategies for lightweight building materials based on topology optimisation

 and   
Nov 29, 2024

Cite
Download Cover

Allen, E., & Iano, J. (2019). Fundamentals of building construction: materials and methods. John Wiley & Sons.Search in Google Scholar

Rybak-Niedziółka, K., Starzyk, A., Łacek, P., Mazur, Ł., Myszka, I., Stefańska, A., ... & Langie, K. (2023). Use of waste building materials in architecture and urban planning—a review of selected examples. Sustainability, 15(6), 5047.Search in Google Scholar

Ismail, Z. A. (2021). Planning the maintenance of green building materials for sustainable development: a building information modelling approach. Journal of Financial Management of Property and Construction, 26(1), 141-157.Search in Google Scholar

Tyflopoulos, E., Tollnes, F. D., Steinert, M., & Olsen, A. (2018). State of the art of generative design and topology optimization and potential research needs. DS 91: Proceedings of NordDesign 2018, Linköping, Sweden, 14th-17th August 2018.Search in Google Scholar

Liu, S., Li, Q., Liu, J., Chen, W., & Zhang, Y. (2018). A realization method for transforming a topology optimization design into additive manufacturing structures. Engineering, 4(2), 277-285.Search in Google Scholar

Meng, L., Zhang, W., Quan, D., Shi, G., Tang, L., Hou, Y., ... & Gao, T. (2020). From topology optimization design to additive manufacturing: Today’s success and tomorrow’s roadmap. Archives of Computational Methods in Engineering, 27, 805-830.Search in Google Scholar

Stoiber, N., & Kromoser, B. (2021). Topology optimization in concrete construction: a systematic review on numerical and experimental investigations. Structural and Multidisciplinary Optimization, 64(4), 1725-1749.Search in Google Scholar

Donofrio, M. (2016). Topology optimization and advanced manufacturing as a means for the design of sustainable building components. Procedia Engineering, 145, 638-645.Search in Google Scholar

Tajs-Zielińska, K., & Bochenek, B. (2021). Multi-domain and multi-material topology optimization in design and strengthening of innovative sustainable structures. Sustainability, 13(6), 3435.Search in Google Scholar

Hou, J., Meng, X., & Dewancker, B. J. (2021). A numerical study on the effect of phase-change material (PCM) parameters on the thermal performance of lightweight building walls. Case Studies in Construction Materials, 15, e00758.Search in Google Scholar

Long, X., Zhang, W., Li, Y., & Zheng, L. (2017). Thermal performance improvement of lightweight buildings integrated with phase change material: An experimental and simulation study. Advances in Mechanical Engineering, 9(6), 1687814017702082.Search in Google Scholar

Li, Y., Wang, Y., Meng, X., Zhang, W., & Long, E. (2017). Research on thermal performance improvement of lightweight buildings by integrating with phase change material under different climate conditions. Science and Technology for the Built Environment, 23(2), 285-295.Search in Google Scholar

Tyburec, M., Doškář, M., Zeman, J., & Kružík, M. (2022). Modular-topology optimization of structures and mechanisms with free material design and clustering. Computer Methods in Applied Mechanics and Engineering, 395, 114977.Search in Google Scholar

Craveiro, F., Almeida, H., Bártolo, H., Bártolo, P. J., & Duarte, J. P. (2017). Topology and material optimization of architectural components. In Challenges for Technology Innovation: An Agenda for the Future (pp. 71-76). CRC Press.Search in Google Scholar

Goli, A., Alaghmandan, M., & Barazandeh, F. (2021). Parametric structural topology optimization of high-rise buildings considering wind and gravity loads. Journal of Architectural Engineering, 27(4), 04021038.Search in Google Scholar

Afolabi, A., Fagbenle, O., & Mosaku, T. (2017). IT management of building materials’ planning and control processes using web-based technologies. In Recent Advances in Information Systems and Technologies: Volume 2 5 (pp. 12-19). Springer International Publishing.Search in Google Scholar

Li, S., Yuan, S., Zhu, J., Wang, C., Li, J., & Zhang, W. (2020). Additive manufacturing-driven design optimization: Building direction and structural topology. Additive Manufacturing, 36, 101406.Search in Google Scholar

Tajs-Zielińska, K., & Bochenek, B. (2017, October). Topology optimization-engineering contribution to architectural design. In IOP Conference Series: Materials Science and Engineering (Vol. 245, No. 8, p. 082057). IOP Publishing.Search in Google Scholar

Zegard, T., Hartz, C., Mazurek, A., & Baker, W. F. (2020). Advancing building engineering through structural and topology optimization. Structural and Multidisciplinary Optimization, 62(2), 915-935.Search in Google Scholar

Vantyghem, G., De Corte, W., Steeman, M., & Boel, V. (2019). Density-based topology optimization for 3D-printable building structures. Structural and Multidisciplinary Optimization, 60, 2391-2403.Search in Google Scholar

Li, Y., Ding, J., Zhang, Z., Zhou, X., Makvandi, M., Yuan, P. F., & Xie, Y. M. (2023). Practical application of multi-material topology optimization to performance-based architectural design of an iconic building. Composite Structures, 325, 117603.Search in Google Scholar

Tyflopoulos, E., & Steinert, M. (2020). Topology and parametric optimization-based design processes for lightweight structures. Applied Sciences, 10(13), 4496.Search in Google Scholar

Yan, X., Bao, D., Zhou, Y., Xie, Y., & Cui, T. (2022). Detail control strategies for topology optimization in architectural design and development. Frontiers of Architectural Research, 11(2), 340-356.Search in Google Scholar

Lingfeng Li,Qiong Pan,Xiaoya Zhai & Falai Chen. (2024). Tailored Functionally Graded Materials design and concurrent topology optimization with implicit fields. Computer Methods in Applied Mechanics and Engineering(PA),117371-117371.Search in Google Scholar

Antonio Campo. (2024). Inclusion of unsteady heat conduction in regular bodies subject to uniform surface heat flux in a heat transfer course. International Journal of Mechanical Engineering Education(4),580-598.Search in Google Scholar

Wyeth Gibson,Justin T Mulvey,Swetamber Das,Serxho Selmani,Jovany G Merham,Alexander M Rakowski... & Joseph P Patterson. (2024). Observing the Dynamics of an Electrochemically Driven Active Material with Liquid Electron Microscopy. ACS nanoSearch in Google Scholar

Minh Ngoc Nguyen & Dongkyu Lee. (2024). Design of the multiphase material structures with mass, stiffness, stress, and dynamic criteria via a modified ordered SIMP topology optimization. Advances in Engineering Software103592-.Search in Google Scholar

Language:
English