@article{Seo2026Floating,
  author = {Seo JH},
  title = {Floating offshore substations for offshore wind energy: A review of design challenges, structural integrity, and standardisation gaps},
  journal = {Ocean Engineering},
  year = {2026},
  volume = {363, Part 1},
  pages = {126528},
  doi = {10.1016/j.oceaneng.2026.126528},
  keywords = {Floating offshore wind, Review}
}

@article{Kim2026value,
  author = {Kim DK, Sung SH, Song SW, Kim SJ, Prabowo AR, Kim S, Seo JH, Ringsberg JW},
  title = {A SHAP value method for ultimate strength prediction of stiffened panel: A data-driven tool in engineering},
  journal = {Ocean Engineering},
  year = {2026},
  volume = {343, Part 1},
  pages = {123159},
  doi = {10.1016/j.oceaneng.2025.123159},
  keywords = {Ultimate strength, Stiffened panels, Machine learning}
}

@article{Ou2025Seakeeping,
  author = {Ou B, Cerik BC, Huang L},
  title = {Seakeeping analysis of catamaran and barge floats for floating solar arrays: A CFD study with experimental validation},
  journal = {Ocean Engineering},
  year = {2025},
  volume = {326},
  pages = {120970},
  doi = {10.1016/j.oceaneng.2025.120970},
  keywords = {Floating solar, Hydrodynamics}
}

@article{Huang2025Developing,
  author = {Huang L, Elzaabalawy H, Sarhaan M, Sherif A, Ding H, Ou B, Yang D, Cerik BC},
  title = {Developing reliable floating solar systems on seas: A review},
  journal = {Ocean Engineering},
  year = {2025},
  volume = {322},
  pages = {120525},
  doi = {10.1016/j.oceaneng.2025.120525},
  keywords = {Floating solar, Review}
}

@article{Cerik2024Recent,
  author = {Cerik BC, Huang L},
  title = {Recent advances in mechanical analysis and design of dynamic power cables for floating offshore wind turbines},
  journal = {Ocean Engineering},
  year = {2024},
  volume = {311, Part 1},
  pages = {118810},
  doi = {10.1016/j.oceaneng.2024.118810},
  keywords = {Dynamic power cables, Floating offshore wind, Review}
}

@article{Gausden2024Singleuse,
  author = {Gausden A, Cerik BC},
  title = {Single-use vape batteries: investigating their potential as ignition sources in waste and recycling streams},
  journal = {Batteries},
  year = {2024},
  volume = {10(7)},
  pages = {236},
  doi = {10.3390/batteries10070236},
  keywords = {Battery safety}
}

@article{Cerik2023Fracture,
  author = {Cerik BC, Choung J},
  title = {Fracture prediction of steel-plated structures under low-velocity impact},
  journal = {Journal of Marine Science and Engineering},
  year = {2023},
  volume = {11(4)},
  pages = {699},
  doi = {10.3390/jmse11040699},
  keywords = {Ductile fracture, Impact damage}
}

@article{Kim2023Effect,
  author = {Kim H, Cerik BC, Choung J},
  title = {Effect of hull inelasticity on whipping responses by underwater explosions},
  journal = {Ships and Offshore Structures},
  year = {2023},
  volume = {18(4)},
  pages = {558–566},
  doi = {10.1080/17445302.2022.2067415},
  keywords = {Underwater explosion, Naval structures, Hull girder}
}

@article{Kim2022Effects,
  author = {Kim H, Cerik BC, Choung J},
  title = {Effects of fracture models on structural damage and acceleration in naval ships due to underwater explosions},
  journal = {Ocean Engineering},
  year = {2022},
  volume = {266},
  pages = {112930},
  doi = {10.1016/j.oceaneng.2022.112930},
  keywords = {Underwater explosion, Naval structures, Ductile fracture}
}

@article{Cerik2021Fracture,
  author = {Cerik BC, Choung J},
  title = {Fracture estimation in ship collision analysis—strain rate and thermal softening effects},
  journal = {Metals},
  year = {2021},
  volume = {11(9)},
  pages = {1402},
  doi = {10.3390/met11091402},
  keywords = {Ductile fracture, Collision and grounding}
}

@article{Cerik2021Evaluation,
  author = {Cerik BC, Lee K, Choung J},
  title = {Evaluation of localized necking models for fracture prediction in punch-loaded steel panels},
  journal = {Journal of Marine Science and Engineering},
  year = {2021},
  volume = {9(2)},
  pages = {117},
  doi = {10.3390/jmse9020117},
  keywords = {Localised necking, Ductile fracture, Material testing}
}

@article{Cerik2020Progressive,
  author = {Cerik BC, Choung J},
  title = {Progressive collapse analysis of intact and damaged ships under unsymmetrical bending},
  journal = {Journal of Marine Science and Engineering},
  year = {2020},
  volume = {8(12)},
  pages = {988},
  doi = {10.3390/jmse8120988},
  keywords = {Ultimate strength, Hull girder}
}

@article{Park2020Comparative,
  author = {Park SJ, Cerik BC, Choung J},
  title = {Comparative study on ductile fracture prediction of high-tensile strength marine structural steels},
  journal = {Ships and Offshore Structures},
  year = {2020},
  volume = {15(sup1)},
  pages = {208–219},
  doi = {10.1080/17445302.2020.1743552},
  keywords = {Ductile fracture, Material testing}
}

@article{Cerik2020Ratedependent,
  author = {Cerik BC, Choung J},
  title = {Rate-dependent combined necking and fracture model for predicting ductile fracture with shell elements at high strain rates},
  journal = {International Journal of Impact Engineering},
  year = {2020},
  volume = {146},
  pages = {103697},
  doi = {10.1016/j.ijimpeng.2020.103697},
  keywords = {Ductile fracture, Localised necking, Impact damage}
}

@article{Cerik2020Ductile,
  author = {Cerik BC, Choung J},
  title = {Ductile fracture behavior of mild and high-tensile strength shipbuilding steels},
  journal = {Applied Sciences},
  year = {2020},
  volume = {10(20)},
  pages = {7034},
  doi = {10.3390/app10207034},
  keywords = {Ductile fracture, Material testing}
}

@article{Topa2020useful,
  author = {Topa A, Cerik BC, Kim DK},
  title = {A useful manufacturing guide for rotary piercing seamless pipe by ALE method},
  journal = {Journal of Marine Science and Engineering},
  year = {2020},
  volume = {8(10)},
  pages = {756},
  doi = {10.3390/jmse8100756},
  keywords = {Manufacturing}
}

@article{Cerik2020localized,
  author = {Cerik BC, Park SJ, Choung J},
  title = {Use of localized necking and fracture as a failure criterion in ship collision analysis},
  journal = {Marine Structures},
  year = {2020},
  volume = {73},
  pages = {102787},
  doi = {10.1016/j.marstruc.2020.102787},
  keywords = {Localised necking, Ductile fracture, Collision and grounding}
}

@article{Cerik2020prediction,
  author = {Cerik BC, Choung J},
  title = {On the prediction of ductile fracture in ship structures with shell elements at low temperatures},
  journal = {Thin-Walled Structures},
  year = {2020},
  volume = {151},
  pages = {106721},
  doi = {10.1016/j.tws.2020.106721},
  keywords = {Ductile fracture, Low temperature}
}

@article{Li2020damage,
  author = {Li M, Kefal A, Cerik BC, Oterkus E},
  title = {Dent damage identification in stiffened cylindrical structures using inverse Finite Element Method},
  journal = {Ocean Engineering},
  year = {2020},
  volume = {198},
  pages = {106944},
  doi = {10.1016/j.oceaneng.2020.106944},
  keywords = {Structural health monitoring, Cylindrical shells, Impact damage}
}

@article{Park2019Ductile,
  author = {Park SJ, Lee K, Cerik BC, Choung J},
  title = {Ductile fracture prediction of EH36 grade steel based on Hosford–Coulomb model},
  journal = {Ships and Offshore Structures},
  year = {2019},
  volume = {14(sup1)},
  pages = {219–230},
  doi = {10.1080/17445302.2019.1565300},
  keywords = {Ductile fracture, Material testing}
}

@article{Cerik2019Revisiting,
  author = {Cerik BC, Ringsberg JW, Choung J},
  title = {Revisiting MARSTRUCT benchmark study on side-shell collision with a combined localized necking and stress-state dependent ductile fracture model},
  journal = {Ocean Engineering},
  year = {2019},
  volume = {187},
  pages = {106173},
  doi = {10.1016/j.oceaneng.2019.106173},
  keywords = {Collision and grounding, Localised necking, Ductile fracture}
}

@article{Cerik2019Modeling,
  author = {Cerik BC, Park B, Park SJ, Choung J},
  title = {Modeling, testing and calibration of ductile crack formation in grade DH36 ship plates},
  journal = {Marine Structures},
  year = {2019},
  volume = {66},
  pages = {27–43},
  doi = {10.1016/j.marstruc.2019.03.003},
  keywords = {Ductile fracture, Material testing}
}

@article{Cerik2019Simulation,
  author = {Cerik BC, Lee K, Park SJ, Choung J},
  title = {Simulation of ship collision and grounding damage using Hosford-Coulomb fracture model for shell elements},
  journal = {Ocean Engineering},
  year = {2019},
  volume = {173},
  pages = {415–432},
  doi = {10.1016/j.oceaneng.2019.01.004},
  keywords = {Collision and grounding, Ductile fracture}
}

@article{Noh2018Lateral,
  author = {Noh MH, Cerik BC, Han D, Choung J},
  title = {Lateral impact tests on FH32 grade steel stiffened plates at room and sub-zero temperatures},
  journal = {International Journal of Impact Engineering},
  year = {2018},
  volume = {115},
  pages = {36–47},
  doi = {10.1016/j.ijimpeng.2018.01.007},
  keywords = {Impact damage, Low temperature, Stiffened panels, Material testing}
}

@article{Cerik2018Ultimate,
  author = {Cerik BC},
  title = {Ultimate longitudinal compressive strength of steel plates with lateral patch load induced plastic deformation},
  journal = {Thin-Walled Structures},
  year = {2018},
  volume = {122},
  pages = {416–424},
  doi = {10.1016/j.tws.2017.10.030},
  keywords = {Ultimate strength, Impact damage}
}

@article{Cerik2017Large,
  author = {Cerik BC},
  title = {Large inelastic deformation of aluminium alloy plates in high-speed vessels subjected to slamming},
  journal = {Journal of Marine Science and Technology},
  year = {2017},
  volume = {22(2)},
  pages = {301–312},
  doi = {10.1007/s00773-016-0411-0},
  keywords = {Slamming, Aluminium structures}
}

@article{Cerik2017Damage,
  author = {Cerik BC},
  title = {Damage assessment of marine grade aluminium alloy-plated structures due to air blast and explosive loads},
  journal = {Thin-Walled Structures},
  year = {2017},
  volume = {110},
  pages = {123–132},
  doi = {10.1016/j.tws.2016.10.021},
  keywords = {Blast loading, Aluminium structures}
}

@article{Cerik2016comparative,
  author = {Cerik BC, Shin HK, Cho S-R},
  title = {A comparative study on damage assessment of tubular members subjected to mass impact},
  journal = {Marine Structures},
  year = {2016},
  volume = {46},
  pages = {1–29},
  doi = {10.1016/j.marstruc.2015.11.002},
  keywords = {Impact damage, Cylindrical shells}
}

@article{Cerik2015Ultimate,
  author = {Cerik BC},
  title = {Ultimate strength of locally damaged steel stiffened cylinders under axial compression},
  journal = {Thin-Walled Structures},
  year = {2015},
  volume = {95},
  pages = {138–151},
  doi = {10.1016/j.tws.2015.07.004},
  keywords = {Ultimate strength, Cylindrical shells, Impact damage}
}

@article{Cerik2015resistance,
  author = {Cerik BC, Shin HK, Cho S-R},
  title = {On the resistance of steel ring-stiffened cylinders subjected to low-velocity mass impact},
  journal = {International Journal of Impact Engineering},
  year = {2015},
  volume = {84},
  pages = {108–123},
  doi = {10.1016/j.ijimpeng.2015.04.011},
  keywords = {Impact damage, Cylindrical shells, Material testing}
}

@article{Cerik2013Numerical,
  author = {Cerik BC, Cho S-R},
  title = {Numerical investigation on the ultimate strength of stiffened cylindrical shells considering residual stresses and shakedown},
  journal = {Journal of Marine Science and Technology},
  year = {2013},
  volume = {18(4)},
  pages = {524–534},
  doi = {10.1007/s00773-013-0224-3},
  keywords = {Ultimate strength, Cylindrical shells}
}

@article{Cerik2013Probabilistic,
  author = {Cerik BC, Shin HK, Cho S-R},
  title = {Probabilistic ultimate strength analysis of submarine pressure hulls},
  journal = {International Journal of Naval Architecture and Ocean Engineering},
  year = {2013},
  volume = {5(1)},
  pages = {101–115},
  doi = {10.2478/IJNAOE-2013-0120},
  keywords = {Ultimate strength, Structural reliability, Naval structures}
}
