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20264 papers

  1. 38.

    Seo JH, Lim JS, Shim KS, Song JW

    CableDyn: curvature-resolving implicit finite-element analysis of mooring lines and dynamic power cables for floating offshore wind

    Ocean Engineering

    In press

  2. 37.

    Ou B, Seo JH, Qin Q, Huang L

    Wave-structure interaction of offshore floating solar array: Uniform and hybrid floaters

    Journal of Energy Infrastructure: 100025

    DOI10.1016/j.jei.2026.100025Open access

  3. 36.
  4. 35.

    Kim DK, Sung SH, Song SW, Kim SJ, Prabowo AR, Kim S, Seo JH, Ringsberg JW

    A SHAP value method for ultimate strength prediction of stiffened panel: A data-driven tool in engineering

    Ocean Engineering 343, Part 1: 123159

    DOI10.1016/j.oceaneng.2025.123159

20252 papers

  1. 34.
  2. 33.

    Huang L, Elzaabalawy H, Sarhaan M, Sherif A, Ding H, Ou B, Yang D, Cerik BC

    Developing reliable floating solar systems on seas: A review

    Ocean Engineering 322: 120525

    DOI10.1016/j.oceaneng.2025.120525Open access

20242 papers

  1. 32.

    Cerik BC, Huang L

    Recent advances in mechanical analysis and design of dynamic power cables for floating offshore wind turbines

    Ocean Engineering 311, Part 1: 118810

    DOI10.1016/j.oceaneng.2024.118810Open access

  2. 31.

20233 papers

  1. 30.

    Cerik BC, Choung J

    Fracture prediction of steel-plated structures under low-velocity impact

    Journal of Marine Science and Engineering 11(4): 699

    DOI10.3390/jmse11040699Open access

  2. 29.

    Kim H, Cerik BC, Choung J

    Effect of hull inelasticity on whipping responses by underwater explosions

    Ships and Offshore Structures 18(4): 558–566

    DOI10.1080/17445302.2022.2067415

  3. 28.

    Seo JH, Park KS, Cha I, Choung J

    Engineering Critical Assessement for an Independent Type-B LNG Cargo Tank

    Journal of the Society of Naval Architects of Korea 60(4): 213–221

    DOI10.3744/snak.2023.60.4.213

20221 paper

  1. 27.

    Kim H, Cerik BC, Choung J

    Effects of fracture models on structural damage and acceleration in naval ships due to underwater explosions

    Ocean Engineering 266: 112930

    DOI10.1016/j.oceaneng.2022.112930

20213 papers

  1. 26.

    Kim H, Seo JH, Choung J

    A Study on Inelastic Whipping Responses in a Navy Ship by Underwater Explosion

    Journal of the Society of Naval Architects of Korea 58(6): 400–406

    DOI10.3744/snak.2021.58.6.400

  2. 25.

    Cerik BC, Choung J

    Fracture estimation in ship collision analysis—strain rate and thermal softening effects

    Metals 11(9): 1402

    DOI10.3390/met11091402Open access

  3. 24.

    Cerik BC, Lee K, Choung J

    Evaluation of localized necking models for fracture prediction in punch-loaded steel panels

    Journal of Marine Science and Engineering 9(2): 117

    DOI10.3390/jmse9020117Open access

20208 papers

  1. 23.

    Cerik BC, Choung J

    Progressive collapse analysis of intact and damaged ships under unsymmetrical bending

    Journal of Marine Science and Engineering 8(12): 988

    DOI10.3390/jmse8120988Open access

  2. 22.

    Park SJ, Cerik BC, Choung J

    Comparative study on ductile fracture prediction of high-tensile strength marine structural steels

    Ships and Offshore Structures 15(sup1): 208–219

    DOI10.1080/17445302.2020.1743552

  3. 21.

    Cerik BC, Choung J

    Rate-dependent combined necking and fracture model for predicting ductile fracture with shell elements at high strain rates

    International Journal of Impact Engineering 146: 103697

    DOI10.1016/j.ijimpeng.2020.103697

  4. 20.

    Cerik BC, Choung J

    Ductile fracture behavior of mild and high-tensile strength shipbuilding steels

    Applied Sciences 10(20): 7034

    DOI10.3390/app10207034Open access

  5. 19.

    Topa A, Cerik BC, Kim DK

    A useful manufacturing guide for rotary piercing seamless pipe by ALE method

    Journal of Marine Science and Engineering 8(10): 756

    DOI10.3390/jmse8100756Open access

  6. 18.

    Cerik BC, Park SJ, Choung J

    Use of localized necking and fracture as a failure criterion in ship collision analysis

    Marine Structures 73: 102787

    DOI10.1016/j.marstruc.2020.102787

  7. 17.

    Cerik BC, Choung J

    On the prediction of ductile fracture in ship structures with shell elements at low temperatures

    Thin-Walled Structures 151: 106721

    DOI10.1016/j.tws.2020.106721

  8. 16.

    Li M, Kefal A, Cerik BC, Oterkus E

    Dent damage identification in stiffened cylindrical structures using inverse Finite Element Method

    Ocean Engineering 198: 106944

    DOI10.1016/j.oceaneng.2020.106944Open access

20196 papers

  1. 15.

    Park SJ, Lee K, Cerik BC, Choung J

    Ductile fracture prediction of EH36 grade steel based on Hosford–Coulomb model

    Ships and Offshore Structures 14(sup1): 219–230

    DOI10.1080/17445302.2019.1565300

  2. 14.
  3. 13.

    Park SJ, Lee K, Cerik BC, Choung J

    Comparative Study on Various Ductile Fracture Models for Marine Structural Steel EH36

    Journal of Ocean Engineering and Technology 33(3): 259–271

    DOI10.26748/ksoe.2019.038Open access

  4. 12.

    Cerik BC, Park B, Park SJ, Choung J

    Modeling, testing and calibration of ductile crack formation in grade DH36 ship plates

    Marine Structures 66: 27–43

    DOI10.1016/j.marstruc.2019.03.003

  5. 11.

    Cerik BC, Lee K, Park SJ, Choung J

    Simulation of ship collision and grounding damage using Hosford-Coulomb fracture model for shell elements

    Ocean Engineering 173: 415–432

    DOI10.1016/j.oceaneng.2019.01.004

  6. 10.

    Park SJ, Lee K, Cerik BC, Kim Y, Choung J

    Ductile Fracture of a Marine Structural Steel based on HC-DSSE Combined Fracture Strain Formulation

    Journal of the Society of Naval Architects of Korea 56(1): 82–93

    DOI10.3744/snak.2019.56.1.082

20182 papers

  1. 9.

    Noh MH, Cerik BC, Han D, Choung J

    Lateral impact tests on FH32 grade steel stiffened plates at room and sub-zero temperatures

    International Journal of Impact Engineering 115: 36–47

    DOI10.1016/j.ijimpeng.2018.01.007

  2. 8.

20172 papers

  1. 7.

    Cerik BC

    Large inelastic deformation of aluminium alloy plates in high-speed vessels subjected to slamming

    Journal of Marine Science and Technology 22(2): 301–312

    DOI10.1007/s00773-016-0411-0

  2. 6.

20161 paper

  1. 5.

    Cerik BC, Shin HK, Cho S-R

    A comparative study on damage assessment of tubular members subjected to mass impact

    Marine Structures 46: 1–29

    DOI10.1016/j.marstruc.2015.11.002

20152 papers

  1. 4.

    Cerik BC

    Ultimate strength of locally damaged steel stiffened cylinders under axial compression

    Thin-Walled Structures 95: 138–151

    DOI10.1016/j.tws.2015.07.004

  2. 3.

    Cerik BC, Shin HK, Cho S-R

    On the resistance of steel ring-stiffened cylinders subjected to low-velocity mass impact

    International Journal of Impact Engineering 84: 108–123

    DOI10.1016/j.ijimpeng.2015.04.011

20132 papers

  1. 2.

    Cerik BC, Cho S-R

    Numerical investigation on the ultimate strength of stiffened cylindrical shells considering residual stresses and shakedown

    Journal of Marine Science and Technology 18(4): 524–534

    DOI10.1007/s00773-013-0224-3

  2. 1.

    Cerik BC, Shin HK, Cho S-R

    Probabilistic ultimate strength analysis of submarine pressure hulls

    International Journal of Naval Architecture and Ocean Engineering 5(1): 101–115

    DOI10.2478/IJNAOE-2013-0120Open access