Tensile strength of commercial polymer materials for fused filament fabrication 3D printing
Tóm tắt
Từ khóa
Tài liệu tham khảo
Sells, 2010, RepRap: the replicating rapid prototyper: maximizing customizability by breeding the means of production, vol. 1
Bowyer, 2014, 3D printing and humanity’s first imperfect replicator, 3D Print. Addit. Manuf., 1, 4, 10.1089/3dp.2013.0003
Rundle, 2014
Moilann, 2017
Pearce, 2010, 3-D printing of open source appropriate technologies for self-directed sustainable development, J. Sustain. Dev., 3, 17, 10.5539/jsd.v3n4p17
Mota, 2011, The rise of personal fabrication, 279
Wittbrodt, 2013, Life-cycle economic analysis of distributed manufacturing with open-source 3-D printers, Mechatronics, 23, 713, 10.1016/j.mechatronics.2013.06.002
Kreiger, 2013, Environmental impacts of distributed manufacturing from 3-D printing of polymer components and products, Symposium D/G – Materials for Sustainable Development – Challenges and Opportunities, 1492, 85
Kreiger, 2013, Environmental impacts of distributed manufacturing from 3-D printing of polymer components and products, MRS Online Proc. Lib., 1492
Tanenbaum, 2013, Democratizing technology: pleasure, utility and expressiveness in DIY and maker practice, 2603
Mohomed, 2015, The age of DIY and dawn of the maker movement, ACM SIGMOBILE Mobile Comput. Commun. Rev., 18, 41, 10.1145/2721914.2721929
Irwin, 2014, The RepRap 3-D printer revolution in STEM education, 121st ASEE Annual Conference & Exposition
King, 2014, Mobile open-source solar-powered 3-D printers for distributed manufacturing in off-grid communities, Challenges Sustain., 2, 18, 10.12924/cis2014.02010018
K.Y. Khan, L. Gauchia, J.M. Pearce, 2015. Self-sufficiency of 3-D printers: utilizing stand-alone solar photovoltaic power systems. 3-D Printed Mater. Syst. (in press).
Gwamuri, 2016, High-efficiency solar-powered 3-D printers for sustainable development, Machines, 4, 3, 10.3390/machines4010003
Groenendyk, 2013, 3D printing and scanning at the Dalhousie University Libraries: a pilot project, Lib. Hi Tech, 31, 34, 10.1108/07378831311303912
Merlo, 2017
Tymrak, 2014, Mechanical properties of components fabricated with open-source 3-D printers under realistic environmental conditions, Mater. Des., 58, 242, 10.1016/j.matdes.2014.02.038
Wittbrodt, 2015, The effects of PLA color on material properties of 3-D printed components, Addit. Manuf., 8, 110, 10.1016/j.addma.2015.09.006
Hunt, 2015, Polymer recycling codes for distributed manufacturing with 3-D printers, Resour. Conserv. Recycl., 97, 24, 10.1016/j.resconrec.2015.02.004
Pham, 1998, A comparison of rapid prototyping technologies, Int. J. Mach. Tools Manuf., 38, 1257, 10.1016/S0890-6955(97)00137-5
Yan, 1996, A review of rapid prototyping technologies and systems, Comput. Aided Des., 28, 307, 10.1016/0010-4485(95)00035-6
Pearce, 2015, A novel approach to obviousness: an algorithm for identifying prior art concerning 3-D printing material, World Pat. Inf., 42, 13, 10.1016/j.wpi.2015.07.003
Perez, 2014, Fracture surface analysis of 3D-printed tensile specimens of novel ABS-based materials, J. Fail. Anal. Prev., 14, 343, 10.1007/s11668-014-9803-9
Compton, 2014, 3D-printing of lightweight cellular composites, Adv. Mater., 26, 5930, 10.1002/adma.201401804
Shaffer, 2014, On reducing anisotropy in 3D printed polymers via ionizing radiation, Polymer, 55, 5969, 10.1016/j.polymer.2014.07.054
Baechler, 2013, Distributed recycling of waste polymer into RepRap feedstock, Rapid Prototyp. J., 19, 118, 10.1108/13552541311302978
Vega, 2011, The effect of layer orientation on the mechanical properties and microstructure of a polymer, J. Mater. Eng. Perform., 20, 978, 10.1007/s11665-010-9740-z
Rosas, 2013
Letcher, 2015, Experimental study of mechanical properties of additively manufactured ABS plastic as a function of layer parameters, ASME 2015 International Mechanical Engineering Congress and Exposition, 10.1115/IMECE2015-52634
Cantrell, 2017
Ahn, 2002, Anisotropic material properties of fused deposition modeling ABS, Rapid Prototyp. J., 8, 248, 10.1108/13552540210441166
Sun, 2008, Effect of processing conditions on the bonding quality of FDM polymer filaments, Rapid Prototyp. J., 14, 72, 10.1108/13552540810862028
Brady, 1976, The crystallinity of poly(phenylene sulfide) and its effect on polymer properties, J. Appl. Polym. Sci., 20, 2541, 10.1002/app.1976.070200921
Lincoln, 2001, Temperature dependence of polymer crystalline morphology in nylon 6/montmorillonite nanocomposites, Polymer, 42, 09975, 10.1016/S0032-3861(01)00542-0
ASTM, 2010
Lulzbot TAZ 3.1 https://download.lulzbot.com/TAZ/3.1/.
Lulzbot TAZ 4 https://download.lulzbot.com/TAZ/4.0/.
Lulzbot. Filament. https://www.lulzbot.com/store/filament.
Lulzbot Flexystruder_v2 http://download.lulzbot.com/Mini/accessories/Flexystruder_v2/.
Cura 15.04. https://ultimaker.com/en/products/cura-software.
Tymrak, 2017
Test works 4 https://www.mts.com/ucm/groups/public/documents/library/mts_005085.pdf.
Bluehill 2 http://www.msm.cam.ac.uk/mechtest/docs/WB1193B∼Bluehill2Brochure.pdf.
Powell, 2008, Open source software for materials and process modeling, JOM, 60, 32, 10.1007/s11837-008-0057-4
Giannozzi, 2009, QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials, J. Phys. Condens. Matter, 21, 395502, 10.1088/0953-8984/21/39/395502
Ong, 2013, Python Materials Genomics (pymatgen): a robust, open-source python library for materials analysis, Comput. Mater. Sci., 68, 314, 10.1016/j.commatsci.2012.10.028
Gonze, 2002, First-principles computation of material properties: the ABINIT software project, Comput. Mater. Sci., 25, 478, 10.1016/S0927-0256(02)00325-7
Toby, 2013, GSAS-II: the genesis of a modern open-source all purpose crystallography software package, J. Appl. Crystallogr., 46, 544, 10.1107/S0021889813003531
Jain, 2013, Commentary: the materials project: a materials genome approach to accelerating materials innovation, APL Mater., 1, 011002, 10.1063/1.4812323
Cruz, 2017
Kreiger, 2014, Life cycle analysis of distributed recycling of post-consumer high density polyethylene for 3-D printing filament, J. Clean. Prod., 70, 90, 10.1016/j.jclepro.2014.02.009
Chonga, 2015, Cradle to Cradle® design for 3D printing, Chem. Eng., 45
Feeley, 2014, Evaluation of potential fair trade standards for an ethical 3-D printing filament, J. Sustain. Dev., 7, 1, 10.5539/jsd.v7n5p1
Birtchnell, 2014, 3D4D indicators and forerunners, 96
Fernandez-Vicente, 2015, Identifying limitations for design for manufacturing with desktop FFF 3D printers, Int. J. Rapid Manuf., 5, 116, 10.1504/IJRAPIDM.2015.073551
Gebler, 2014, A global sustainability perspective on 3D printing technologies, Energy Policy, 74, 158, 10.1016/j.enpol.2014.08.033
Pearce, 2012, The case for open source appropriate technology, Environ. Dev. Sustain., 14, 425, 10.1007/s10668-012-9337-9
Mayson, 2013, People-centred desktop design and manufacture: a review of web enabled open source tools for localised community focused inclusive design, Include Asia 2013: Global Challenges and Local Solutions in Inclusive Design, 1
Pearce, 2015, Applications of open source 3-D printing on small farms, Org. Farming, 1, 19, 10.12924/of2015.01010019
Micallef, 2015, What’s possible with 3D printing?, 1
Wittbrodt, 2015, Open-source photometric system for enzymatic nitrate quantification, PLoS One, 10, e0134989, 10.1371/journal.pone.0134989
Yarwindran, 2006, Thermoplastic elastomre infill pattern impact on mechanical properties of 3D printed customized orthotic insole, ARPN J. Eng. Appl. Sci., 11, 6519