Mechanical Response of 3D Printed Bending-Dominated Ligament-Based Triply Periodic Cellular Polymeric Solids

被引:0
作者
Aliaa M. Abou-Ali
Oraib Al-Ketan
Reza Rowshan
Rashid Abu Al-Rub
机构
[1] Khalifa University of Science and Technology,Mechanical Engineering Department, Masdar Institute
[2] New York University Abu Dhabi,Core Technology Platforms Division
[3] Khalifa University of Science and Technology,Aerospace Engineering Department
来源
Journal of Materials Engineering and Performance | 2019年 / 28卷
关键词
additive manufacturing; advanced characterization; static mechanical;
D O I
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中图分类号
学科分类号
摘要
Lightweight materials with complex structures such as cellular solids (or foams) have proven to possess desirable properties, specifically in terms of its stiffness, strength, and thermal conductivity, among other mechanical and thermal performance aspects while the density is reduced. The fabrication of such attractive yet complex materials has become possible due to the witnessed advancements in fabrication techniques. However, a major challenge in adapting cellular solids in mechanical design is choosing the appropriate lattice design. Therefore, this paper focuses on studying the compressive mechanical behavior of four different types of cellular solids with topologies based on the mathematically known triply periodic minimal surfaces (TPMS); namely, Diamond (D), I-WP (IWP), Gyroid (G), and Fisher-Koch C(Y) (CY). These cellular materials are 3D printed using the powder bed fusion selective laser sintering technique out of Nylon thermoplastic polymer at various relative densities. The effects of the number of unit cells, type of the ligament-based TPMS architecture, and relative density on the stiffness, yield strength, ultimate strength, and toughness are thoroughly investigated. The results indicated that the effect of the architecture is stronger when the relative density is decreased. Also, the analyses showed that all the tested architectures were bending dominated implying that it could be best applied in shock absorbing and vibration mitigation applications.
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页码:2316 / 2326
页数:10
相关论文
共 189 条
[1]  
Ashby M(2006)The properties of foams and lattices Philos. Trans. R. Soc. Lond. A: Math. Phys. Eng. Sci. 364 15-30
[2]  
Deshpande V(2001)Foam Topology: Bending Versus Stretching Dominated Architectures Acta Mater. 49 1035-1040
[3]  
Ashby M(2008)Relating Cellular Structure of Open Solid Food Foams to Their Young’s Modulus: Finite Element Calculation Int. J. Solids Struct. 45 2881-2896
[4]  
Fleck N(2000)Cellular Solids, Structure and Properties Mater. Sci. Technol. 16 233-161
[5]  
Guessasma S(2014)Numerical Investigation on Mechanical Properties of Cellular Lattice Structures Fabricated by Fused Deposition Modeling Int. J. Mech. Sci. 88 154-435
[6]  
Babin P(1990)Method of Stochastic Simulation Modeling of the Structure, Calculation, and Optimization of the Physicomechanical Characteristics of Foam Plastics Mech. Compos. Mater. 25 429-280
[7]  
Della Valle G(2002)Physicomechanical Characteristics of Spray-on Rigid Polyurethane Foams at Normal and Low Temperatures Mech. Compos. Mater. 38 273-1032
[8]  
Dendievel R(2018)Determination of Strain Rate Sensitivity of Micro-struts Manufactured Using the Selective Laser Melting Method J. Mater. Eng. Perform. 27 1016-252
[9]  
Lee W(2015)A Computationally Efficient Modeling Approach for Predicting Mechanical Behavior of Cellular Lattice Structures J. Mater. Eng. Perform. 24 245-3635
[10]  
Ravari MK(1998)Heat Transfer in Open-Cell Metal Foams Acta Mater. 46 3619-1326