Additively manufactured composite lattices: A state-of-the-art review on fabrications, architectures, constituent materials, mechanical properties, and future directions
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[1] Ganesh P. Borikar,et al. Additively Manufactured Lattice Structures and Materials: Present Progress and Future Scope , 2023, International Journal of Precision Engineering and Manufacturing.
[2] J. Jeng,et al. Reducing Mechanical Anisotropy in Material Extrusion Process using Bioinspired Architectured Lattice Structures , 2023, Additive Manufacturing.
[3] Pai Zheng,et al. Reusability and energy absorption behavior of 4D printed continuous fiber-reinforced auxetic composite structures , 2023, Composites Part A: Applied Science and Manufacturing.
[4] Aamer Nazir,et al. Evaluating flexural response of additively manufactured functionally graded surface-based lattice structured cantilever beams , 2023, The International Journal of Advanced Manufacturing Technology.
[5] Yuansheng Cheng,et al. Mechanical characteristics and foam filling enhancement mechanism of polymeric periodic hybrid structures under uniaxial compression , 2023, Materials & Design.
[6] N. Pugno,et al. 3D printed architected lattice structures by material jetting , 2023, ArXiv.
[7] Jingchao Jiang,et al. Multi-material additive manufacturing: A systematic review of design, properties, applications, challenges, and 3D Printing of materials and cellular metamaterials , 2023, Materials & Design.
[8] Qing Li,et al. Additively manufactured materials and structures: A state-of-the-art review on their mechanical characteristics and energy absorption , 2023, International Journal of Mechanical Sciences.
[9] S. Hiremath,et al. Experimental and FEM study on the in-plane and out-plane loaded reversible dual-material bio-inspired lattice structures with improved energy absorption performance , 2023, Composite Structures.
[10] S. Ahzi,et al. A novel dual-nozzle 3D printing method for continuous fiber reinforced composite cellular structures , 2023, Composites Communications.
[11] J. Dear,et al. Comparison of different quasi-static loading conditions of additively manufactured composite hexagonal and auxetic cellular structures , 2022, International Journal of Mechanical Sciences.
[12] Fanghang Deng,et al. Liquid metal lattice materials with simultaneously high strength and reusable energy absorption , 2022, Applied Materials Today.
[13] Zhenyu Fang,et al. A Review on Microstructural Formations of Discontinuous Fiber-Reinforced Polymer Composites Prepared via Material Extrusion Additive Manufacturing: Fiber Orientation, Fiber Attrition, and Micro-Voids Distribution , 2022, Polymers.
[14] J. Jeng,et al. Supportless Lattice Structure for Additive Manufacturing of Functional Products and the Evaluation of Its Mechanical Property at Variable Strain Rates , 2022, Materials.
[15] S. Ahzi,et al. 3D printed continuous fiber reinforced composite lightweight structures: A review and outlook , 2022, Composites Part B: Engineering.
[16] Yanju Liu,et al. A compliant robotic grip structure based on shape memory polymer composite , 2022, Composites Communications.
[17] G. Wen,et al. Review on lattice structures for energy absorption properties , 2022, Composite Structures.
[18] Aamer Nazir,et al. WSdesign: a mathematical design method for generating uniform and functionally gradient/hybrid wave springs, fabricated using additive manufacturing processes , 2022, The International Journal of Advanced Manufacturing Technology.
[19] Zafer Kazancı,et al. Energy Absorption Enhancement of Additively Manufactured Hexagonal and Re-Entrant (Auxetic) Lattice Structures by Using Multi-Material Reinforcements , 2022, SSRN Electronic Journal.
[20] Z. Deng,et al. Stretching-dominated truss lattice materials: elastic anisotropy evaluation, control, and design , 2022, Composite Structures.
[21] S. Advani,et al. A review on self‐healing polymers and polymer composites for structural applications , 2022, Polymer Composites.
[22] Guangbin Yu,et al. Topological and Mechanical Properties of Different Lattice Structures Based on Additive Manufacturing , 2022, Micromachines.
[23] Yi-zhou Zhou,et al. Defect control in digital light processing of high-solid-loading ceramic core , 2022, Ceramics International.
[24] Gul Jamil Shah,et al. Design for Additive Manufacturing and Investigation of Surface-Based Lattice Structures for Buckling Properties Using Experimental and Finite Element Methods , 2022, Materials.
[25] A. du Plessis,et al. Laser Powder Bed Fusion of Polyamide-composite for Antibacterial Applications: Characterization and Properties , 2022, Materials Today Communications.
[26] Seyed Hamid Reza Sanei,et al. Void Content Reduction in 3D Printed Glass Fiber-Reinforced Polymer Composites through Temperature and Pressure Consolidation , 2022, Journal of Composites Science.
[27] K. Cao,et al. Advances in Atomic Layer Deposition , 2022, Nanomanufacturing and Metrology.
[28] H. Kim,et al. 3D printed continuous carbon fiber reinforced thermoplastic composite sandwich structure with corrugated core for high stiffness/load capability , 2022, Composite Structures.
[29] Wen-sheng Hou,et al. Design of a biomimetic graded TPMS scaffold with quantitatively adjustable pore size , 2022, Materials & Design.
[30] F. Calignano,et al. Photopolymerization of Ceramic Resins by Stereolithography Process: A Review , 2022, Applied Sciences.
[31] Aamer Nazir,et al. Mechanical Performance of Lightweight-Designed Honeycomb Structures Fabricated Using Multijet Fusion Additive Manufacturing Technology. , 2022, 3D printing and additive manufacturing.
[32] Jiawei Feng,et al. Triply periodic minimal surface (TPMS) porous structures: from multi-scale design, precise additive manufacturing to multidisciplinary applications , 2022, International Journal of Extreme Manufacturing.
[33] J. Jeng,et al. Multi-material additive manufacturing with lightweight closed-cell foam-filled lattice structures for enhanced mechanical and functional properties , 2022, Additive Manufacturing.
[34] Dazhong Wu,et al. Design and Fabrication of Architected Multi-Material Lattices with Tunable Stiffness, Strength, and Energy Absorption , 2022, Materials & Design.
[35] Guangyong Sun,et al. Additively manufactured fiber-reinforced composites: a review of mechanical behavior and opportunities , 2022, Journal of Materials Science & Technology.
[36] T. Tancogne-Dejean,et al. Ceramic/polymer microlattices: Increasing specific energy absorption through sandwich construction , 2022, Extreme Mechanics Letters.
[37] J. Plocher,et al. Additive manufacturing with fibre-reinforcement – design guidelines and investigation into the influence of infill patterns , 2022, Rapid Prototyping Journal.
[38] Y. Wang,et al. Fabrication strategy for joints in 3D printed continuous fiber reinforced composite lattice structures , 2022, Composites Communications.
[39] R. Pipes,et al. A machine learning approach to determine the elastic properties of printed fiber-reinforced polymers , 2022, Composites Science and Technology.
[40] Rashid K. Abu Al-Rub,et al. On Stiffness, Strength, Anisotropy, and Buckling of 30 Strut‐Based Lattices with Cubic Crystal Structures , 2021, Advanced Engineering Materials.
[41] R. Schwaiger,et al. Coatings for Core–Shell Composite Micro‐Lattice Structures: Varying Sputtering Parameters , 2021, Advanced Engineering Materials.
[42] B. Woods,et al. A Review of Composite Lattice Structures , 2021, Composite Structures.
[43] Kun Zhou,et al. Machine Learning‐Evolutionary Algorithm Enabled Design for 4D‐Printed Active Composite Structures , 2021, Advanced Functional Materials.
[44] Po-Tsung Lee,et al. Advanced Atomic Layer Deposition Technologies for Micro-LEDs and VCSELs , 2021, Nanoscale Research Letters.
[45] I. Fidan,et al. Review on Additive Manufacturing of Multi-Material Parts: Progress and Challenges , 2021, Journal of Manufacturing and Materials Processing.
[46] Jinwoo Lee,et al. Auxetic Structures for Tissue Engineering Scaffolds and Biomedical Devices , 2021, Materials.
[47] Lixiao Li,et al. 3D printed polymeric formwork for lattice cementitious composites , 2021 .
[48] M. Koç,et al. Vat photopolymerization of polymers and polymer composites: Processes and applications , 2021, Additive Manufacturing.
[49] M. Mahardika,et al. A Review on Reinforcement Methods for Polymeric Materials Processed Using Fused Filament Fabrication (FFF) , 2021, Polymers.
[50] Cheng Qiu,et al. A deep learning-based composite design strategy for efficient selection of material and layup sequences from a given database , 2021, Composites Science and Technology.
[51] Yanju Liu,et al. Temperature-dependent mechanical response of 4D printed composite lattice structures reinforced by continuous fiber , 2021, Composite Structures.
[52] L. Krstulović-Opara,et al. Development of novel hybrid TPMS cellular lattices and their mechanical characterisation , 2021 .
[53] D. Barletta,et al. Review on modeling techniques for powder bed fusion processes based on physical principles , 2021, Additive Manufacturing.
[54] I. Maskery,et al. Combinational design of heterogeneous lattices with hybrid region stiffness tuning for additive manufacturing , 2021 .
[55] E. Yilmaz,et al. Influence of types and shapes of 3D printed polymeric lattice on ductility performance of cementitious backfill composites , 2021, Construction and Building Materials.
[56] Aamer Nazir,et al. The Effect of Functional Gradient Material Distribution and Patterning on Torsional Properties of Lattice Structures Manufactured Using MultiJet Fusion Technology , 2021, Materials.
[57] Kenan Song,et al. 3D printing for polymer/particle-based processing: A review , 2021 .
[58] M. K. Pandit,et al. Impact analysis of hierarchical honeycomb core sandwich structures , 2021, Composite Structures.
[59] Xia Liu,et al. Multi-bionic mechanical metamaterials: a composite of FCC lattice and bone structures , 2021, International Journal of Mechanical Sciences.
[60] S. Shi,et al. Compression and flexural properties of rigid polyurethane foam composites reinforced with 3D-printed polylactic acid lattice structures , 2021, Composite Structures.
[61] M. Tehrani,et al. Effects of void content on flexural properties of additively manufactured polymer composites , 2021 .
[62] V. Deshpande,et al. Energy absorption and self-sensing performance of 3D printed CF/PEEK cellular composites , 2021 .
[63] Adithya Challapalli,et al. Inverse machine learning framework for optimizing lightweight metamaterials , 2021 .
[64] Jianping Shi,et al. The recent development of vat photopolymerization: a review , 2021, Additive Manufacturing.
[65] J. Lewis,et al. Architected Multimaterial Lattices with Thermally Programmable Mechanical Response , 2021, Advanced Functional Materials.
[66] Tatsuya Matsumi,et al. Fabrication of Ti-Alloy Powder/Solid Composite with Uniaxial Anisotropy by Introducing Unidirectional Honeycomb Structure via Electron Beam Powder Bed Fusion , 2021, Crystals.
[67] Alok Sutradhar,et al. Design of Hierarchical Architected Lattices for Enhanced Energy Absorption , 2021, Materials.
[68] Jianguang Fang,et al. Machine learning based topology optimization of fiber orientation for variable stiffness composite structures , 2021 .
[69] A. Tamer,et al. The State of the Art of Material Jetting—A Critical Review , 2021, Polymers.
[70] F. Safari,et al. 3D printing of continuous fiber reinforced composites: A review of the processing, pre- and post-processing effects on mechanical properties , 2021, Polymers and Polymer Composites.
[71] C. Furtado,et al. A methodology to generate design allowables of composite laminates using machine learning , 2021, International Journal of Solids and Structures.
[72] J. Plocher,et al. Learning from nature: Bio-inspiration for damage-tolerant high-performance fibre-reinforced composites , 2021, Composites Science and Technology.
[73] Tingting Liu,et al. Design optimization of multimorphology surface-based lattice structures with density gradients , 2021, The International Journal of Advanced Manufacturing Technology.
[74] R. Schwaiger,et al. A review of coated nano- and micro-lattice materials , 2021, Journal of Materials Research.
[75] Liang Gao,et al. Full-scale topology optimization for fiber-reinforced structures with continuous fiber paths , 2021 .
[76] Yanju Liu,et al. Bending performance and failure behavior of 3D printed continuous fiber reinforced composite corrugated sandwich structures with shape memory capability , 2021, Composite Structures.
[77] P. Hazell,et al. Biomimetic armour design strategies for additive manufacturing: A review , 2021, Materials & Design.
[78] C. Emmelmann,et al. Material modeling of Ti–6Al–4V alloy processed by laser powder bed fusion for application in macro-scale process simulation , 2021, Materials Science and Engineering: A.
[79] R. Ritchie,et al. Architected cellular materials: A review on their mechanical properties towards fatigue-tolerant design and fabrication , 2021, Materials Science and Engineering: R: Reports.
[80] J. J. Andrew,et al. Impact behavior of nanoengineered, 3D printed plate-lattices , 2021 .
[81] G. D. Goh,et al. Emerging metallic systems for additive manufacturing: In-situ alloying and multi-metal processing in laser powder bed fusion , 2021 .
[82] B. Šavija,et al. Cementitious composites reinforced with 3D printed functionally graded polymeric lattice structures: Experiments and modelling , 2021, Additive Manufacturing.
[83] Wesley A. Chapkin,et al. Mechanical behavior and energy dissipation of infilled, composite Ti-6Al-4V trusses , 2021, Materials & Design.
[84] L. Valdevit,et al. Mechanical performance of 3D printed interpenetrating phase composites with spinodal topologies , 2021, Composite Structures.
[85] Wolfgang Wenzel,et al. Challenges and limits of mechanical stability in 3D direct laser writing , 2021, Nature Communications.
[86] M. Pagáč,et al. A Review of Vat Photopolymerization Technology: Materials, Applications, Challenges, and Future Trends of 3D Printing , 2021, Polymers.
[87] Yanju Liu,et al. Compression behavior and energy absorption of 3D printed continuous fiber reinforced composite honeycomb structures with shape memory effects , 2021 .
[88] Ubaidillah,et al. A review on the fused deposition modeling (FDM) 3D printing: Filament processing, materials, and printing parameters , 2021 .
[89] E. MacDonald,et al. 3D printing of a continuous fiber-reinforced composite based on a coaxial Kevlar/PLA filament , 2021, Composites and Advanced Materials.
[90] Kavita Mathur,et al. Tensile properties of 3D printed continuous fiberglass reinforced cellular composites , 2020, The Journal of The Textile Institute.
[91] Zafer Kazancı,et al. Analysis of additively manufactured (3D printed) dual-material auxetic structures under compression , 2020 .
[92] B. Bednarcyk,et al. Bioinspired multilayered cellular composites with enhanced energy absorption and shape recovery , 2020 .
[93] Richard L. Watson,et al. Additive manufacturing of metamaterials: A review , 2020 .
[94] H. Ke,et al. Mechanical Properties and Shape Memory Effect of 4D Printed Cellular Structure Composite with a Novel Continuous Fiber-Reinforced Printing Path , 2020 .
[95] Q. Qin,et al. 3D printing of chiral carbon fiber reinforced polylactic acid composites with negative Poisson's ratios , 2020 .
[96] R. Tao,et al. 4D printed multi-stable metamaterials with mechanically tunable performance , 2020 .
[97] Thomas J. Wallin,et al. Machine learning generative models for automatic design of multi-material 3D printed composite solids , 2020 .
[98] M. Brojan,et al. Lightweight 3D printed Ti6Al4V-AlSi10Mg hybrid composite for impact resistance and armor piercing shielding , 2020 .
[99] Shukantu Dev Nath,et al. An Overview of Additive Manufacturing of Polymers and Associated Composites , 2020, Polymers.
[100] Xueliang Xiao,et al. 3D printing of continuous fiber reinforced diamond cellular structural composites and tensile properties , 2020, Composite Structures.
[101] Lifeng Wang,et al. Enhancing indentation and impact resistance in auxetic composite materials , 2020 .
[102] Jiping Lu,et al. Design and Optimization of Lattice Structures: A Review , 2020, Applied Sciences.
[103] Jigang Huang,et al. A Review of Stereolithography: Processes and Systems , 2020, Processes.
[104] M. Tarfaoui,et al. Experimental investigation on the dynamic behavior of 3D printed CF-PEKK composite under cyclic uniaxial compression , 2020, Composite Structures.
[105] L. Lamberti,et al. 3D printed biodegradable composites: An insight into mechanical properties of PLA/chitosan scaffold , 2020 .
[106] Z. You,et al. Large deformation and energy absorption of additively manufactured auxetic materials and structures: A review , 2020 .
[107] L. Lessard,et al. 3D‐Printed Wood‐Fiber Reinforced Architected Cellular Composites , 2020, Advanced Engineering Materials.
[108] B. Šavija,et al. Cementitious cellular composites with auxetic behavior , 2020, Cement and Concrete Composites.
[109] Jian Song,et al. 3D printing of titanium-coated gradient composite lattices for lightweight mandibular prosthesis , 2020 .
[110] T. Do,et al. FDM-Based 3D Printing of Polymer and Associated Composite: A Review on Mechanical Properties, Defects and Treatments , 2020, Polymers.
[111] Yu-Chin Chan,et al. Deep Generative Modeling for Mechanistic-based Learning and Design of Metamaterial Systems , 2020, Computer Methods in Applied Mechanics and Engineering.
[112] B. Patterson,et al. Impact of filler composition on mechanical and dynamic response of 3-D printed silicone-based nanocomposite elastomers , 2020 .
[113] Kavita Mathur,et al. Impact resistance and failure mechanism of 3D printed continuous fiber-reinforced cellular composites , 2020 .
[114] M. Arjmand,et al. Mechanical properties of extruded glass fiber reinforced thermoplastic polyolefin composites , 2020, Polymer Composites.
[115] Zhenhua Zhang,et al. An overview of impact resistance of auxetic lattice structure , 2020, Journal of Physics: Conference Series.
[116] D. Tan,et al. Atomic Layer Deposition for Polypropylene Film Engineering—A Review , 2020, Macromolecular Materials and Engineering.
[117] L. Ye,et al. 3D printed continuous CF/PA6 composites: Effect of microscopic voids on mechanical performance , 2020 .
[118] A. Zolfagharian,et al. Reversible energy absorbing meta-sandwiches by FDM 4D printing , 2020, International Journal of Mechanical Sciences.
[119] Hong Xiao,et al. Investigation on process parameters of 3D printed continuous carbon fiber-reinforced thermosetting epoxy composites , 2020 .
[120] Daniel Therriault,et al. Multi‐Material 3D and 4D Printing: A Survey , 2020, Advanced science.
[121] Qi Zhang,et al. 3d printed continuous fiber reinforced composite auxetic honeycomb structures , 2020 .
[122] Yong Wang,et al. A machine learning-based method to design modular metamaterials , 2020, Extreme Mechanics Letters.
[123] Liang Gao,et al. Topological design of sandwich structures with graded cellular cores by multiscale optimization , 2020 .
[124] M. Brojan,et al. Perspectives of metal-diamond composites additive manufacturing using SLM-SPS and other techniques for increased wear-impact resistance , 2020 .
[125] Xuan Zhang,et al. Design, Fabrication, and Mechanics of 3D Micro-/Nanolattices. , 2020, Small.
[126] Yuan Chen,et al. 3D-printed short carbon fibre reinforced perforated structures with negative Poisson's ratios: Mechanisms and design , 2020 .
[127] Heang Kuan Joel Tan,et al. Process–Structure–Properties in Polymer Additive Manufacturing via Material Extrusion: A Review , 2020, Critical Reviews in Solid State and Materials Sciences.
[128] V. Laude,et al. Light-weight shell-lattice metamaterials for mechanical shock absorption , 2020 .
[129] D. Fang,et al. Dynamic compressive behavior of a modified additively manufactured rhombic dodecahedron 316L stainless steel lattice structure , 2020 .
[130] M. Leary,et al. PolyJet 3D Printing of Composite Materials: Experimental and Modelling Approach , 2020 .
[131] F. Jiang,et al. Investigations on the Mechanical Response of Gradient Lattice Structures Manufactured via SLM , 2020 .
[132] Dawei Li,et al. Anisotropic design and optimization of conformal gradient lattice structures , 2020, Comput. Aided Des..
[133] K. Markandan,et al. Enhanced mechanical properties of 3D printed graphene-polymer composite lattices at very low graphene concentrations , 2020, Composites Part A: Applied Science and Manufacturing.
[134] Enrique Cuan-Urquizo,et al. Mechanical characterization of 3D printed, non-planar lattice structures under quasi-static cyclic loading , 2020 .
[135] A. Seyam,et al. A critical review on 3D printed continuous fiber-reinforced composites: History, mechanism, materials and properties , 2020 .
[136] Z. Uddin,et al. On the physical, chemical, and neutron shielding properties of polyethylene/boron carbide composites , 2020, Radiation Physics and Chemistry.
[137] J. Plocher,et al. Mechanical Performance of Additively Manufactured Fiber-Reinforced Functionally Graded Lattices , 2019, JOM.
[138] F. Martina,et al. Design for Additive Manufacturing , 2019 .
[139] Jianzhong Fu,et al. Mechanical and self-monitoring behaviors of 3D printing smart continuous carbon fiber-thermoplastic lattice truss sandwich structure , 2019, Composites Part B: Engineering.
[140] M. Bessa,et al. Bayesian Machine Learning in Metamaterial Design: Fragile Becomes Supercompressible , 2019, Advanced materials.
[141] Wenfeng Hao,et al. Failure analysis of 3D printed glass fiber/PA12 composite lattice structures using DIC , 2019, Composite Structures.
[142] Lai-fei Cheng,et al. Strengthening three‐dimensional printed ultra‐light ceramic lattices , 2019, Journal of the American Ceramic Society.
[143] Rashid K. Abu Al-Rub,et al. Multifunctional Mechanical Metamaterials Based on Triply Periodic Minimal Surface Lattices , 2019, Advanced Engineering Materials.
[144] O. Kylián,et al. Magnetron Sputtering of Polymeric Targets: From Thin Films to Heterogeneous Metal/Plasma Polymer Nanoparticles , 2019, Materials.
[145] F. Antonov,et al. Composite 3D printing for the small size unmanned aerial vehicle structure , 2019, Composites Part B: Engineering.
[146] Ajeet Kumar,et al. A state-of-the-art review on types, design, optimization, and additive manufacturing of cellular structures , 2019, The International Journal of Advanced Manufacturing Technology.
[147] Amir A. Zadpoor,et al. Ultra-programmable buckling-driven soft cellular mechanisms , 2019, Materials Horizons.
[148] Y. Xie,et al. Comparison of Mechanical Properties and Energy Absorption of Sheet-Based and Strut-Based Gyroid Cellular Structures with Graded Densities , 2019, Materials.
[149] Seunghwa Ryu,et al. Designing tough isotropic structural composite using computation, 3D printing and testing , 2019, Composites Part B: Engineering.
[150] Ihtisham Ali,et al. Tailoring strength and modulus by 3D printing different continuous fibers and filled structures into composites , 2019, Advanced Composites and Hybrid Materials.
[151] Dichen Li,et al. Impregnation and interlayer bonding behaviours of 3D-printed continuous carbon-fiber-reinforced poly-ether-ether-ketone composites , 2019, Composites Part A: Applied Science and Manufacturing.
[152] Wenzhao Zhou,et al. Stereolithographic 3D Printing-Based Hierarchically Cellular Lattices for High-Performance Quasi-Solid Supercapacitor , 2019, Nano-micro letters.
[153] S. S. Ray,et al. A comprehensive review of recent developments in 3D printing technique for ceramic membrane fabrication for water purification , 2019, RSC Advances.
[154] Ang Li,et al. 4D Printing of Recyclable Lightweight Architectures Using High Recovery Stress Shape Memory Polymer , 2019, Scientific Reports.
[155] Y. Tao,et al. A case study: Mechanical modeling optimization of cellular structure fabricated using wood flour-filled polylactic acid composites with fused deposition modeling , 2019, Composite Structures.
[156] L. Marșavina,et al. Influence of Manufacturing Parameters on Mechanical Properties of Porous Materials by Selective Laser Sintering , 2019, Materials.
[157] Zengguang Liu,et al. A critical review of fused deposition modeling 3D printing technology in manufacturing polylactic acid parts , 2019, The International Journal of Advanced Manufacturing Technology.
[158] D. Mohr,et al. Smooth-shell metamaterials of cubic symmetry: Anisotropic elasticity, yield strength and specific energy absorption , 2019, Acta Materialia.
[159] Feng Cheng,et al. Probabilistic Representation and Inverse Design of Metamaterials Based on a Deep Generative Model with Semi‐Supervised Learning Strategy , 2019, Advanced materials.
[160] F. Scarpa,et al. Shear Stiffness and Energy Absorption of Auxetic Open Cell Foams as Sandwich Cores , 2018, physica status solidi (b).
[161] A. A. Zadpoor,et al. Multi-material 3D printed mechanical metamaterials: Rational design of elastic properties through spatial distribution of hard and soft phases , 2018, Applied Physics Letters.
[162] Chee Kai Chua,et al. 3D‐Printed Mechanical Metamaterials with High Energy Absorption , 2018, Advanced Materials Technologies.
[163] Ignaas Verpoest,et al. Voids in fiber-reinforced polymer composites: A review on their formation, characteristics, and effects on mechanical performance , 2018, Journal of Composite Materials.
[164] Jian Song,et al. Metal-coated hybrid meso-lattice composites and their mechanical characterizations , 2018, Composite Structures.
[165] Y. L. Yap,et al. Recent Progress in Additive Manufacturing of Fiber Reinforced Polymer Composite , 2018, Advanced Materials Technologies.
[166] Lifeng Wang,et al. Enhanced fracture toughness in architected interpenetrating phase composites by 3D printing , 2018, Composites Science and Technology.
[167] Akira Todoroki,et al. 3D printing of composite sandwich structures using continuous carbon fiber and fiber tension , 2018, Composites Part A: Applied Science and Manufacturing.
[168] Lei Jiang,et al. Effect of phosphorus content on mechanical properties of polymeric nickel composite materials with a diamond-structure microlattice , 2018, RSC advances.
[169] C. Leung,et al. Micromechanical modeling of crack-bridging relations of hybrid-fiber Strain-Hardening Cementitious Composites considering interaction between different fibers , 2018, Construction and Building Materials.
[170] Ryan L. Karkkainen,et al. Microstructure and mechanical properties of three dimensional-printed continuous fiber composites , 2018, Journal of Composite Materials.
[171] L. Valdevit,et al. HYBRID HOLLOW MICROLATTICES WITH UNIQUE COMBINATION OF STIFFNESS AND DAMPING , 2018 .
[172] A. Bandyopadhyay,et al. Additive manufacturing of multi-material structures , 2018, Materials Science and Engineering: R: Reports.
[173] Huajian Gao,et al. Three-Dimensional High-Entropy Alloy-Polymer Composite Nanolattices That Overcome the Strength-Recoverability Trade-off. , 2018, Nano letters.
[174] A. A. Zadpoor,et al. Multimaterial Control of Instability in Soft Mechanical Metamaterials , 2018, Physical Review Applied.
[175] T. Tancogne-Dejean,et al. Stiffness and specific energy absorption of additively-manufactured metallic BCC metamaterials composed of tapered beams , 2018, International Journal of Mechanical Sciences.
[176] A. Kashani,et al. Additive manufacturing (3D printing): A review of materials, methods, applications and challenges , 2018, Composites Part B: Engineering.
[177] V. G. Belardi,et al. Structural analysis and optimization of anisogrid composite lattice cylindrical shells , 2018 .
[178] Yanyu Chen,et al. Exploiting negative Poisson's ratio to design 3D-printed composites with enhanced mechanical properties , 2018 .
[179] Kristina Shea,et al. Architected Lattices with High Stiffness and Toughness via Multicore–Shell 3D Printing , 2018, Advanced materials.
[180] A. Schroer,et al. Evaluating sputter deposited metal coatings on 3D printed polymer micro-truss structures , 2018 .
[181] J. Wheeler,et al. Deformation behavior and energy absorption capability of polymer and ceramic-polymer composite microlattices under cyclic loading , 2018 .
[182] Rashid K. Abu Al-Rub,et al. Nature‐Inspired Lightweight Cellular Co‐Continuous Composites with Architected Periodic Gyroidal Structures , 2018 .
[183] Dichen Li,et al. 3D printed continuous fibre reinforced composite corrugated structure , 2018 .
[184] Yingguang Li,et al. A novel free-hanging 3D printing method for continuous carbon fiber reinforced thermoplastic lattice truss core structures , 2018 .
[185] Hongti Zhang,et al. High‐Entropy Alloy (HEA)‐Coated Nanolattice Structures and Their Mechanical Properties , 2018 .
[186] Christopher B. Williams,et al. Insights into the mechanical properties of several triply periodic minimal surface lattice structures made by polymer additive manufacturing , 2017, Polymer.
[187] Carlos García,et al. Mechanical properties of ceramic structures based on Triply Periodic Minimal Surface (TPMS) processed by 3D printing , 2017 .
[188] J. Greer,et al. Three-dimensional nano-architected scaffolds with tunable stiffness for efficient bone tissue growth. , 2017, Acta biomaterialia.
[189] M. Woytasik,et al. Inkjet‐Printing: A New Fabrication Technology for Organic Transistors , 2017 .
[190] Bo Zhao,et al. Design and analysis of strut-based lattice structures for vibration isolation , 2017 .
[191] R. Al-rub,et al. Mechanical properties of periodic interpenetrating phase composites with novel architected microstructures , 2017 .
[192] Jean-Philippe Pernot,et al. Lattice structure lightweight triangulation for additive manufacturing , 2017, Comput. Aided Des..
[193] Abdul-Ghani Olabi,et al. On the crashworthiness performance of thin-walled energy absorbers: Recent advances and future developments , 2017 .
[194] Yufeng Zheng,et al. Atomic layer deposited ZrO2 nanofilm on Mg-Sr alloy for enhanced corrosion resistance and biocompatibility. , 2017, Acta biomaterialia.
[195] K. McDonnell,et al. Fabrication of Continuous Carbon, Glass and Kevlar fibre reinforced polymer composites using Additive Manufacturing , 2017 .
[196] Caterina Balletti,et al. 3D printing: State of the art and future perspectives , 2017 .
[197] Dattaji K. Shinde,et al. A Review paper on 3D-Printing Aspects and Various Processes Used in the 3D-Printing , 2017 .
[198] Chee Kai Chua,et al. Fundamentals and applications of 3D printing for novel materials , 2017 .
[199] Fernando Fraternali,et al. Dimensional accuracy analysis of coupled fused deposition modeling and vapour smoothing operations for biomedical applications , 2017 .
[200] T. Desai,et al. Osteogenic cell functionality on 3-dimensional nano-scaffolds with varying stiffness , 2017 .
[201] Markus J. Buehler,et al. Advanced Structural Materials by Bioinspiration , 2017 .
[202] Manish K. Tiwari,et al. High-resolution 3D printing for healthcare underpinned by small-scale fluidics , 2017 .
[203] Woo Soo Kim,et al. Three-dimensionally printed cellular architecture materials: perspectives on fabrication, material advances, and applications , 2017 .
[204] Dichen Li,et al. 3D printing for continuous fiber reinforced thermoplastic composites: mechanism and performance , 2017 .
[205] Xin Wang,et al. 3D printing of polymer matrix composites: A review and prospective , 2017 .
[206] R. Raghavan,et al. Micromechanics of Amorphous Metal/Polymer Hybrid Structures with 3D Cellular Architectures: Size Effects, Buckling Behavior, and Energy Absorption Capability. , 2017, Small.
[207] Liu Tengfei,et al. Recycling and remanufacturing of 3D printed continuous carbon fiber reinforced PLA composites , 2017 .
[208] Wai Yee Yeong,et al. Performance evaluation of ProJet multi-material jetting 3D printer , 2017 .
[209] Ying He,et al. Delta DLP 3D printing with large size , 2016, 2016 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS).
[210] X. Loh,et al. Recent progress of atomic layer deposition on polymeric materials. , 2016, Materials science & engineering. C, Materials for biological applications.
[211] R. Hague,et al. A mechanical property evaluation of graded density Al-Si10-Mg lattice structures manufactured by selective laser melting , 2016 .
[212] T. Schaedler,et al. Architected Cellular Materials , 2016 .
[213] Albert Folch,et al. The upcoming 3D-printing revolution in microfluidics. , 2016, Lab on a chip.
[214] Bankim Chandra Ray,et al. Mechanical Performance of CNT-Filled Glass Fiber/Epoxy Composite in In-Situ Elevated Temperature Environments Emphasizing the Role of CNT Content , 2016 .
[215] Rashid K. Abu Al-Rub,et al. Mechanical properties of 3D printed interpenetrating phase composites with novel architectured 3D solid-sheet reinforcements , 2016 .
[216] A. Todoroki,et al. Three-dimensional printing of continuous-fiber composites by in-nozzle impregnation , 2016, Scientific Reports.
[217] George Constantinides,et al. On the conical indentation response of elastic auxetic materials: Effects of Poisson's ratio, contact friction and cone angle , 2016 .
[218] Wesley J. Cantwell,et al. The fabrication and mechanical properties of novel composite lattice structures , 2016 .
[219] Z. Eckel,et al. Additive manufacturing of polymer-derived ceramics , 2016, Science.
[220] W. Cong,et al. Additive manufacturing of carbon fiber reinforced thermoplastic composites using fused deposition modeling , 2015 .
[221] D. Pasini,et al. Snapping Mechanical Metamaterials under Tension , 2015, Advanced materials.
[222] Alex J. Zelhofer,et al. Resilient 3D hierarchical architected metamaterials , 2015, Proceedings of the National Academy of Sciences.
[223] J. R. Raney,et al. Multistable Architected Materials for Trapping Elastic Strain Energy , 2015, Advanced materials.
[224] L. Valdevit,et al. Push-to-pull tensile testing of ultra-strong nanoscale ceramic–polymer composites made by additive manufacturing , 2015 .
[225] Brian N. Turner,et al. A review of melt extrusion additive manufacturing processes: II. Materials, dimensional accuracy, and surface roughness , 2015 .
[226] Omar Ahmed Mohamed,et al. Optimization of fused deposition modeling process parameters: a review of current research and future prospects , 2015, Advances in Manufacturing.
[227] Ben Wang,et al. Designable dual-material auxetic metamaterials using three-dimensional printing , 2015 .
[228] T. Osaka,et al. 30years of electroless plating for semiconductor and polymer micro-systems , 2015 .
[229] Maria Farsari,et al. Direct laser writing , 2015 .
[230] E. Saiz,et al. Bioinspired structural materials. , 2014, Nature materials.
[231] L. Murr,et al. Influence of cell shape on mechanical properties of Ti-6Al-4V meshes fabricated by electron beam melting method. , 2014, Acta biomaterialia.
[232] OxmanNeri,et al. Gemini: Engaging Experiential and Feature Scales Through Multimaterial Digital Design and Hybrid Additive–Subtractive Fabrication , 2014 .
[233] K. Akamatsu,et al. Electroless nickel plating on polymer particles. , 2014, Journal of colloid and interface science.
[234] J. Greer,et al. Strong, lightweight, and recoverable three-dimensional ceramic nanolattices , 2014, Science.
[235] J. Lewis,et al. 3D‐Printing of Lightweight Cellular Composites , 2014, Advanced materials.
[236] Lorenzo Valdevit,et al. Energy dissipation mechanisms in hollow metallic microlattices , 2014 .
[237] Howon Lee,et al. Ultralight, ultrastiff mechanical metamaterials , 2014, Science.
[238] CianchettiMatteo,et al. Soft Robotics Technologies to Address Shortcomings in Today's Minimally Invasive Surgery: The STIFF-FLOP Approach , 2014 .
[239] Souri Banerjee,et al. On the mechanical properties of hierarchical lattices , 2014 .
[240] J. Greer,et al. Mechanical characterization of hollow ceramic nanolattices , 2014, Journal of Materials Science.
[241] S. Hengsbach,et al. High-strength cellular ceramic composites with 3D microarchitecture , 2014, Proceedings of the National Academy of Sciences.
[242] Damiano Pasini,et al. Mechanical properties of lattice materials via asymptotic homogenization and comparison with alternative homogenization methods , 2013 .
[243] Frank Greer,et al. Fabrication and deformation of three-dimensional hollow ceramic nanostructures. , 2013, Nature materials.
[244] Lorenzo Valdevit,et al. Microlattices as architected thin films: Analysis of mechanical properties and high strain elastic recovery , 2013 .
[245] David W. Rosen,et al. Heuristic optimization method for cellular structure design of light weight components , 2013 .
[246] H. Wadley,et al. Mechanical response of carbon fiber composite sandwich panels with pyramidal truss cores , 2013 .
[247] Yong-Wei Zhang,et al. Size-dependent deformation of nanocrystalline Pt nanopillars. , 2012, Nano letters.
[248] L. Gibson. The hierarchical structure and mechanics of plant materials , 2012, Journal of The Royal Society Interface.
[249] Fabrizio Scarpa,et al. Deployable auxetic shape memory alloy cellular antenna demonstrator: design, manufacturing and modal testing , 2012 .
[250] L. Valdevit,et al. Characterization of nickel-based microlattice materials with structural hierarchy from the nanometer to the millimeter scale , 2012 .
[251] Martin Lévesque,et al. Direct-write fabrication of freestanding nanocomposite strain sensors , 2012, Nanotechnology.
[252] Y. Pei,et al. Intrinsic and extrinsic size effects in the deformation of metallic glass nanopillars , 2012 .
[253] L. Valdevit,et al. Ultralight Metallic Microlattices , 2011, Science.
[254] R. Ritchie. The conflicts between strength and toughness. , 2011, Nature materials.
[255] K. Mecke,et al. Minimal surface scaffold designs for tissue engineering. , 2011, Biomaterials.
[256] Julia R. Greer,et al. Plasticity in small-sized metallic systems: Intrinsic versus extrinsic size effect , 2011 .
[257] Yilun Liu,et al. Mechanical properties of graphene papers , 2011, 1105.0138.
[258] M. Boyce,et al. Co‐Continuous Composite Materials for Stiffness, Strength, and Energy Dissipation , 2011, Advanced materials.
[259] M. Wegener,et al. Two‐Component Polymer Scaffolds for Controlled Three‐Dimensional Cell Culture , 2011, Advanced materials.
[260] J. Lewis,et al. Conformal Printing of Electrically Small Antennas on Three‐Dimensional Surfaces , 2011, Advanced materials.
[261] Kim Lesley Alderson,et al. Mechanisms of failure in the static indentation resistance of auxetic carbon fibre laminates , 2011 .
[262] Ronald F. Gibson,et al. A review of recent research on mechanics of multifunctional composite materials and structures , 2010 .
[263] M. Ashby,et al. Micro-architectured materials: past, present and future , 2010, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[264] D. Pasini,et al. Multiscale structural design of columns made of regular octet-truss lattice material , 2010 .
[265] Li Ma,et al. Mechanical behavior of the sandwich structures with carbon fiber-reinforced pyramidal lattice truss core , 2010 .
[266] Julia R Greer,et al. Transition from a strong-yet-brittle to a stronger-and-ductile state by size reduction of metallic glasses. , 2010, Nature materials.
[267] Tongxi Yu,et al. Collapse of periodic planar lattices under uniaxial compression, part II: Dynamic crushing based on finite element simulation , 2009 .
[268] Tongxi Yu,et al. Collapse of periodic planar lattices under uniaxial compression, part I: Quasi-static strength predicted by limit analysis , 2009 .
[269] Daining Fang,et al. Constitutive relations and failure criterion of planar lattice composites , 2008 .
[270] J. Kysar,et al. Measurement of the Elastic Properties and Intrinsic Strength of Monolayer Graphene , 2008, Science.
[271] David L. Kaplan,et al. Direct‐Write Assembly of Microperiodic Silk Fibroin Scaffolds for Tissue Engineering Applications , 2008 .
[272] E. D. Rekow,et al. In vivo bone response to 3D periodic hydroxyapatite scaffolds assembled by direct ink writing. , 2007, Journal of biomedical materials research. Part A.
[273] G. Daehn,et al. Co-continuous composite materials for friction and braking applications , 2006 .
[274] M. Ashby. The properties of foams and lattices , 2006, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[275] Kenneth E. Evans,et al. How to make auxetic fibre reinforced composites , 2005 .
[276] Norman A. Fleck,et al. An overview of the mechanical properties of foams and periodic lattice materials , 2004 .
[277] A. Krämer,et al. On the coating of polymers – basic investigations , 2004 .
[278] Huajian Gao,et al. Materials become insensitive to flaws at nanoscale: Lessons from nature , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[279] L. Gibson. Cellular Solids , 2003 .
[280] M. Ashby,et al. Effective properties of the octet-truss lattice material , 2001 .
[281] M. Ashby,et al. FOAM TOPOLOGY BENDING VERSUS STRETCHING DOMINATED ARCHITECTURES , 2001 .
[282] L. Gibson,et al. The mechanical behaviour of interpenetrating phase composites – I: modelling , 2000 .
[283] Lorna J. Gibson,et al. Modelling the mechanical behavior of cellular materials , 1989 .
[284] S. Soe,et al. Investigating the dynamic compression response of elastomeric, additively manufactured fluid-filled structures via experimental and finite element analyses , 2021, Additive Manufacturing.
[285] Y. Lam,et al. Viscoelastic and high strain rate response of anisotropic graphene-polymer nanocomposites fabricated with stereolithographic 3D printing , 2021 .
[286] A. Sedmak,et al. Influence of second-phase particles on fracture behavior of PLA and advanced PLA-X material , 2021, Procedia Structural Integrity.
[287] Abdul Hai Alami,et al. Biomimetic Materials for Engineering Applications , 2020 .
[288] Rashid K. Abu Al-Rub,et al. Topology-mechanical property relationship of 3D printed strut, skeletal, and sheet based periodic metallic cellular materials , 2018 .
[289] Adedeji Aremu,et al. A voxel-based method of constructing and skinning conformal and functionally graded lattice structures suitable for additive manufacturing , 2017 .
[290] B. Denkena,et al. Machine Learning Approach for Optimization of Automated Fiber Placement Processes , 2017 .
[291] Michael D. Gilchrist,et al. Quasi-static, impact and energy absorption of internally nested tubes subjected to lateral loading , 2016 .
[292] J. Greer,et al. Size-induced weakening and grain boundary-assisted deformation in 60 nm grained Ni nanopillars , 2011 .
[293] D. Depla,et al. Sputter Deposition Processes , 2010 .
[294] A. K. Sood,et al. Parametric appraisal of mechanical property of fused deposition modelling processed parts , 2010 .