Experimental and numerical investigation of conventional and stiffened re-entrant cell structures under compression

被引:9
作者
Ozturk, Mitat [1 ]
Baran, Tarik [1 ]
Tatlier, Mehmet Seha [2 ]
机构
[1] Osmaniye Korkut Ata Univ, Dept Civil Engn, TR-80000 Osmaniye, Turkey
[2] Osmaniye Korkut Ata Univ, Dept Mech Engn, TR-80000 Osmaniye, Turkey
关键词
Re-entrant cellular structures; Auxetic; Energy absorption; Negative Poisson's ratio; Nonlinear crushing response; NEGATIVE POISSONS RATIO; COMPLIANT MICROMECHANISMS; SANDWICH PANELS; FOAM MATERIALS; HONEYCOMB; DESIGN; MECHANICS; BEHAVIOR; HOMOGENIZATION; FABRICATION;
D O I
10.1007/s40430-022-03889-x
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A classical re-entrant cell is a type of metamaterial known as auxetic. While the most unusual and advantageous feature of auxetic materials is that they have negative Poisson's ratios, having low stiffness-as seen in the classical re-entrant cell-may be a drawback. A study was conducted to increase the stiffness of the classical re-entrant cell while maintaining the negative Poisson's ratio. This paper reports the nonlinear experimental and numerical works of three re-entrant cells one of which is a well-known classical re-entrant cell, and the latter two were modified based on classical re-entrant cell. In the work, the cellular structure specimens were fabricated with a 3D printer using polylactic acid (PLA) material and crushing tests were conducted until the full crush phase. The specimens were also modelled using solid finite elements considering wall-to-wall frictional contacts and analysed. The linear mechanical properties of the cells were also determined by employing analytical expressions that were developed for modified cells. Thus, both the theoretical and the nonlinear numerical results were validated using experiments. In conclusion, the modified cells exhibited an increase in stiffness, energy absorption capacity, and plasticity, compared to the classical re-entrant cell. All benefits and drawbacks of the modifications to achieve stiff cells are reported in this paper.
引用
收藏
页数:22
相关论文
共 89 条
[1]   Auxetic materials [J].
Alderson, A. ;
Alderson, K. L. .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2007, 221 (G4) :565-575
[2]   Compressive properties of 3D printed auxetic structures: experimental and numerical studies [J].
Alomarah, Amer ;
Masood, Syed H. ;
Sbarski, Igor ;
Faisal, Batool ;
Gao, Zhanyuan ;
Ruan, Dong .
VIRTUAL AND PHYSICAL PROTOTYPING, 2020, 15 (01) :1-21
[3]  
[Anonymous], 2018, AC RES MECH REL 18 1
[4]  
[Anonymous], 2014, Standard Test Methods for Chemical Analysis of Stainless, Heat-Resisting, Maraging, and Other Similar Chromium-Nickel-Iron Alloys
[5]  
Ashby M.F., 1997, Cellular Solids: Structure and Properties, V2
[6]   A complete description of bi-dimensional anisotropic strain-gradient elasticity [J].
Auffray, N. ;
Dirrenberger, J. ;
Rosi, G. .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2015, 69-70 :195-206
[7]   Auxetic anti-tetrachiral materials: Equivalent elastic properties and frequency band-gaps [J].
Bacigalupo, Andrea ;
De Bellis, Maria Laura .
COMPOSITE STRUCTURES, 2015, 131 :530-544
[8]   Homogenization of periodic hexa- and tetrachiral cellular solids [J].
Bacigalupo, Andrea ;
Gambarotta, Luigi .
COMPOSITE STRUCTURES, 2014, 116 :461-476
[9]   In-plane elasticity of a strengthened re-entrant honeycomb cell [J].
Baran, Tarik ;
Ozturk, Mitat .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2020, 83
[10]   A novel centresymmetric honeycomb composite structure [J].
Bezazi, A ;
Scarpa, F ;
Remillat, C .
COMPOSITE STRUCTURES, 2005, 71 (3-4) :356-364