Stress-Strain Assessment of Honeycomb Sandwich Panel Subjected to Uniaxial Compressive Load

被引:9
作者
Corigliano, Pasqualino [1 ]
Palomba, Giulia [1 ]
Crupi, Vincenzo [1 ]
Garbatov, Yordan [2 ]
机构
[1] Univ Messina, Dept Engn, I-98166 Messina, Italy
[2] Univ Tecn Lisboa, Ctr Marine Technol & Engn CENTEC, Inst Super Tecn, P-1049001 Lisbon, Portugal
关键词
ultimate strength; aluminium honeycomb sandwich; marine structures; uniaxial axial compressive load; buckling; light-weight structures; ULTIMATE STRENGTH; STIFFENED PLATES;
D O I
10.3390/jmse11020365
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
The ship hull structure is composed of plates and stiffened panels. Estimating the maximum load-carrying capacity, or the ultimate strength, of these structural components is fundamental. One of the main challenges nowadays is the implementation of new materials and technologies to enhance the structural integrity, economy, safety and environmentally friendly design of the ship's hull structure. A new design solution may be represented by aluminium alloy honeycomb sandwich structures, both as plane panels or stiffened ones, which are characterised by excellent impact-absorption capabilities and a high stiffness-to-weight ratio. Still, their response to some conditions typical of ship structural design needs to be deeply investigated. Axial compressive loading is one of the most critical conditions that could impact the structural integrity of such light-weight solutions. Hence, the uniaxial compressive behaviour of aluminium honeycomb sandwich structures has to be deeply investigated to promote their integration in ship structural design. Within this context, the present work performs an experimental and numerical study of a honeycomb sandwich panel subjected to uniaxial compressive loads. The results will help develop models for predicting the uniaxial compressive load-carrying capacity of hybrid honeycomb sandwiches of aluminium alloy design.
引用
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页数:12
相关论文
共 37 条
[21]  
Nguyen T.T.T., 2022, SANDWICH COMPOSITES, P277
[22]   Full-scale collapse testing of a steel stiffened plate structure under cyclic axial-compressive loading [J].
Paik, Jeom Kee ;
Lee, Dong Hun ;
Noh, Sung Hwan ;
Park, Dae Kyeom ;
Ringsberg, Jonas W. .
STRUCTURES, 2020, 26 :996-1009
[23]   Aluminium honeycomb sandwich as a design alternative for lightweight marine structures [J].
Palomba, G. ;
Epasto, G. ;
Sutherland, L. ;
Crupi, V .
SHIPS AND OFFSHORE STRUCTURES, 2022, 17 (10) :2355-2366
[24]   Static and Fatigue Full-Scale Tests on a Lightweight Ship Balcony Overhang with Al/Fe Structural Transition Joints [J].
Palomba, Giulia ;
Corigliano, Pasqualino ;
Crupi, Vincenzo ;
Epasto, Gabriella ;
Guglielmino, Eugenio .
JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2022, 10 (10)
[25]   Cost, Energy Efficiency and Carbon Footprint Analysis of Hybrid Light-Weight Bulk Carrier [J].
Palomba, Giulia ;
Marchese, Simone Scattareggia ;
Crupi, Vincenzo ;
Garbatov, Yordan .
JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2022, 10 (07)
[26]   Structural Analysis of a Barge Midship Section Considering the Still Water and Wave Load Effects [J].
Salazar-Dominguez, Cristian M. ;
Hernandez-Hernandez, Jose ;
Rosas-Huerta, Edna D. ;
Iturbe-Rosas, Gustavo E. ;
Herrera-May, Agustin L. .
JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2021, 9 (01) :1-21
[27]  
SANDCORe Co-Ordination Action, 2013, BEST PRACTICE GUIDE
[28]  
Schlesinger ME, 2014, ALUMINUM RECYCLING, 2ND EDITION, P1
[29]  
Smith C., 1977, Proceedings of the International Symposium on Practical Design in Shipbuilding, P73
[30]  
Timoshenko StephenP., 1985, THEORY ELASTIC STABI, VSecond