과제정보
이 논문은 2019년도 정부(과학기술정보통신부)의 제원으로 한국연구재단(NRF-2022R1A2 C1003776)에 의해 수행되었습니다.
참고문헌
- Bendsoe, M. P., & Kikuchi, N., "Generating optimal topologies in structural design using a homogenization method", Computer Methods in Applied Mechanics and Engineering, Vol.71, No.2, pp.197-224, 1988, doi: 10.1016/0045-7825(88)90086-2
- Liu, P., Kang, Z., & Luo, Y., "Two-scale concurrent topology optimization of lattice structures with connectable microstructures", Additive Manufacturing, Vol.36, pp.101427, 2020, doi: 10.1016/j.compstruct.2021.114224
- Vatanabe, S. L., Paulino, G. H., & Silva, E. C. N., "Design of functionally graded piezo-composites using topology optimization and homogenization-Toward effective energy harvesting materials", Computer Methods in Applied Mechanics and Engineering, Vol.266, pp.205-218, 2013, doi: 0.1016/j.cma.2013.07.003 https://doi.org/10.1016/j.cma.2013.07.003
- Tavakoli, R, "Optimal design of multiphase composites under elastodynamic loading", Computer Methods in Applied Mechanics and Engineering, Vol.300, pp.265-293, 2016, doi: 10.1016/j.cma.2015.11.026
- Wu, S., Zhang, Y., & Liu, S., "Transient thermal dissipation efficiency based method for topology optimization of transient heat conduction structures", International Journal of Heat and Mass Transfer, Vol.170, 2021, doi: 10.1016/j.ijheatmasstransfer.2021.121004
- Shobeiri, V., "The topology optimization design for cracked structures", Engineering Analysis with Boundary Elements, Vol.58, pp.26-38, 2015, doi: /10.1016/j.enganabound.2015.03.002
- Banh, T. T., & Lee, D., "Multi-material topology optimization design for continuum structures with crack patterns", Composite Structures, Vol.186, pp.193-209, 2018, doi:10.1016/j.compstruct.2017.11.088
- Nguyen, A. P., & Banh, T. T., "Design of multiphase carbon fiber reinforcement of crack existing concrete structures using topology optimization", Steel and Composite Structures, An International Journal, Vol.29, pp.635-645, 2018, doi: 10.12989/scs.2018.29.5.635
- Thomsen, J., "Topology optimization of structures composed of one or two materials", Journal of Structural Optimization, Vol.5, No.1, pp.108-115, 1992, doi: 10.1007/BF01744703
- Huang, X., & Xie, Y. M., "Bi-directional evolutionary topology optimization of continuum structures with one or multiple materials", Computational Mechanics,, Vol.43, pp.393-401, 2009, doi: 10.1007/s00466-008-0312-0
- Lukaszewska, E., Fragiacomo, M., & Johnsson, H., "Laboratory Tests and Numerical Analyses of Prefabricated Timber-Concrete Composite Floors", Eng.- ASCE Vol.136(1), pp.46-55, 2010, doi:10.1061/(ASCE)ST.1943-541X.0000080
- Szumigala. M., Szumigala. E., and Polus. L., "Laboratory Tests of New Connectors for Timber-Concrete Composite Structures", Eng. Transactions, Vol.66, No.22, pp.161-173, 2018.
- Szumigala, M., Szumigala, E., & Polus, L. "An analysis of the load-bearing capacity of timber-concrete composite beams with profiled sheeting", Civil and Environmental Engineering Reports, Vol.27, No.4, pp.143-156, 2017, doi: 10.1515/ceer-2017-0057
- Hassanieh, A., Valipour, H. R., & Bradford, M. A., "Experimental and analytical behaviour of steel-timber composite connections", Constr. Build. Mater., Vol.118, pp.63-75, 2016a, doi:10.1016/j.conbuildmat.2016.05.052
- Hassanieh, A., Valipour, H. R., & Bradford, M. A., Experimental and numerical study of steel-timber composite (STC) beams. Journal of Constructional Steel Research, Vol.122, pp.367-378, 2016b, doi: 10.1016/j.jcsr.2016.04.005
- Hassanieh, A., Valipour, H. R., Bradford, M. A., & Sandhaas, C., "Modelling of steel-timber composite connections: Validation of finite element model and parametric study", Engineering Structures Vol.138, pp.35-49, 2017a, doi: 10.1016/j.engstruct.2017.02.016
- Hassanieh, A., Valipour, H. R., & Bradford, M. A., "Composite connections between CLT slab and steel beam: Experiments and empirical models", Journal of Constructional Steel Research, Vol.138, pp.823-836, 2017b, doi: 10.1016/j.jcsr.2017.09.002
- Szumigala, M., Chybinski, M., & Polus, L., "Preliminary Analysis of the Alumini- numtimber Composite Beams", Civil and Environmental Eng. Reports, Vol.27m No.4, pp.131-141, 2017, doi: 10.1515/ceer-2017-0056
- Rodacki. K., "The load-bearing capacity of timber-glass composite I-beams made with polyurethane adhesives", Civil and Environmental Eng. Reports, Vol.27, No.44, pp.105-120, 2017, doi: 10.1515/ceer-2017-0054
- Stiemer, S., Tesfamariam, S., Karacabeyli, E., & Propovski, M.., "Development of steel- wood hybrid systems for buildings under dynamic loads", In Proceedings of the 7th International Specialty Conference on Behavior of Steel Structures in Seismic Areas (STESSA), Santiago, Chile, Vol.911, 2012.
- Scotta, R., Trutalli, D., Fiorin, L., Pozza, L., Marchi, L., & De Stefani, L., "Light Steel-Timber Frame with Composite and Plaster Bracing Panels", Materials, Vol.8, pp.7354-7370, 2015, doi: 10.3390/ma8115386
- Tavakoli, R., & Mohseni, S. M., "Alternating active-phase algorithm for multimaterial topology optimization problems: a 115-line MATLAB implementation", Structural and Multidisciplinary Optimization, Vol.49, pp. 621-642, 2014, doi: 10.1007/s00158-013-0999-1
- ANSI (American national standards institute), National Design Specification (NDS) Supplement: Design Values for Wood Construction, 2018 Edition. American Wood Council..
- Do, D. T., Nguyen-Xuan, H., & Lee, J., "Material optimization of tri-directional functionally graded plates by using deep neural network and isogeometric multimesh design approach", Applied Mathematical Modelling, Vol.87, pp.501-533, 2020, doi:10.1016/j.apm.2020.06.002
- Sigmund, O., "A 99 line topology optimization code written in Matlab", Structural and multidisciplinary optimization,. Vol.21, pp.120-127, 2001, 10.1007/s001580050176