Quantitative analysis of thin metal powder layers via transmission X-ray imaging and discrete element simulation: Blade-based spreading approaches
暂无分享,去创建一个
[1] G. Vosniakos,et al. A review of powder deposition in additive manufacturing by powder bed fusion , 2022, Journal of Manufacturing Processes.
[2] Ryan W. Penny,et al. Mechanized spreading of ceramic powder layers for additive manufacturing characterized by transmission x-ray imaging: Influence of powder feedstock and spreading parameters on powder layer density , 2021, Powder Technology.
[3] A. Yu,et al. Effects of spreader geometry on powder spreading process in powder bed additive manufacturing , 2021 .
[4] Wolfgang A. Wall,et al. Physics‐based modeling and predictive simulation of powder bed fusion additive manufacturing across length scales , 2021, GAMM-Mitteilungen.
[5] Xiaogang Wang,et al. Experimental analysis of powder layer quality as a function of feedstock and recoating strategies , 2021 .
[6] Andre Mussatto,et al. Influences of powder morphology and spreading parameters on the powder bed topography uniformity in powder bed fusion metal additive manufacturing , 2021 .
[7] A. Hart,et al. A modular testbed for mechanized spreading of powder layers for additive manufacturing. , 2021, The Review of scientific instruments.
[8] Wentao Yan,et al. Packing quality of powder layer during counter-rolling-type powder spreading process in additive manufacturing , 2020 .
[9] T. Pöschel,et al. Packings of micron-sized spherical particles – Insights from bulk density determination, X-ray microtomography and discrete element simulations , 2020 .
[10] Julie M. Schoenung,et al. A Statistical Analysis of Powder Flowability in Metal Additive Manufacturing , 2020, Advanced Engineering Materials.
[11] L. Wang,et al. Adhesion effects on spreading of metal powders in selective laser melting , 2020 .
[12] Wentao Yan,et al. Powder-spreading mechanisms in powder-bed-based additive manufacturing: Experiments and computational modeling , 2019, Acta Materialia.
[13] B. Reeja‐Jayan,et al. Parametric analysis to quantify process input influence on the printed densities of binder jetted alumina ceramics , 2019 .
[14] Sanjay B. Joshi,et al. On the development of powder spreadability metrics and feedstock requirements for powder bed fusion additive manufacturing , 2019, Additive Manufacturing.
[15] M. Brandt,et al. Measurement of actual powder layer height and packing density in a single layer in selective laser melting , 2019, Additive Manufacturing.
[16] Mohsen Ziaee,et al. Binder jetting: A review of process, materials, and methods , 2019, Additive Manufacturing.
[17] Adriaan Jacobus Hendriks,et al. Layer-wise powder deposition defect detection in additive manufacturing , 2019, LASE.
[18] Mark F. Horstemeyer,et al. Insight into the mechanisms of columnar to equiaxed grain transition during metallic additive manufacturing , 2019, Additive Manufacturing.
[19] Matteo Seita,et al. A high-resolution and large field-of-view scanner for in-line characterization of powder bed defects during additive manufacturing , 2019, Materials & Design.
[20] Silvia Vock,et al. Powders for powder bed fusion: a review , 2019, Progress in Additive Manufacturing.
[21] P. Hanžl,et al. The Influence of a Ceramic Recoater Blade on 3D Printing using Direct Metal Laser Sintering , 2019, Manufacturing Technology.
[22] T. Vietor,et al. Influence of Powder Deposition on Powder Bed and Specimen Properties , 2019, Materials.
[23] M. Brochu,et al. A Comprehensive Approach to Powder Feedstock Characterization for Powder Bed Fusion Additive Manufacturing: A Case Study on AlSi7Mg , 2018, Materials.
[24] N. Parab,et al. Revealing particle-scale powder spreading dynamics in powder-bed-based additive manufacturing process by high-speed x-ray imaging , 2018, Scientific Reports.
[25] Usman Ali,et al. On the measurement of relative powder-bed compaction density in powder-bed additive manufacturing processes , 2018, Materials & Design.
[26] Wenguang Nan,et al. Jamming during particle spreading in additive manufacturing , 2018, Powder Technology.
[27] Anton du Plessis,et al. X-Ray Microcomputed Tomography in Additive Manufacturing: A Review of the Current Technology and Applications , 2018, 3D Printing and Additive Manufacturing.
[28] Wolfgang A. Wall,et al. Critical Influences of Particle Size and Adhesion on the Powder Layer Uniformity in Metal Additive Manufacturing , 2018, Journal of Materials Processing Technology.
[29] Wolfgang A. Wall,et al. Modeling and Characterization of Cohesion in Fine Metal Powders with a Focus on Additive Manufacturing Process Simulations , 2018, Powder Technology.
[30] Zhongwei Li,et al. Flow behavior of powder particles in layering process of selective laser melting: Numerical modeling and experimental verification based on discrete element method , 2017 .
[31] Kenneth W. Dalgarno,et al. An overview of powder granulometry on feedstock and part performance in the selective laser melting process , 2017 .
[32] Sina Haeri,et al. Optimisation of blade type spreaders for powder bed preparation in Additive Manufacturing using DEM simulations , 2017 .
[33] Christopher B. Williams,et al. Effect of Particle Size Distribution on Powder Packing and Sintering in Binder Jetting Additive Manufacturing of Metals , 2017 .
[34] R. Pelletier,et al. High resolution pore size analysis in metallic powders by X-ray tomography , 2016 .
[35] A. Donmez,et al. Measurement of powder bed density in powder bed fusion additive manufacturing processes , 2016 .
[36] J. Ziegert,et al. In situ surface topography of laser powder bed fusion using fringe projection , 2016 .
[37] C D Boley,et al. Metal powder absorptivity: modeling and experiment. , 2016, Applied optics.
[38] C. Körner,et al. Additive manufacturing of metallic components by selective electron beam melting — a review , 2016 .
[39] Marc Holmes,et al. Powder Bed Layer Characteristics: The Overseen First-Order Process Input , 2016, Metallurgical and Materials Transactions A.
[40] J. Kruth,et al. Rheological behavior of β-Ti and NiTi powders produced by atomization for SLM production of open porous orthopedic implants , 2015 .
[41] Brent Stucker,et al. Analysis of defect generation in Ti–6Al–4V parts made using powder bed fusion additive manufacturing processes , 2014 .
[42] Gideon Levy,et al. Influence of the particle size distribution on surface quality and mechanical properties in AM steel parts , 2011 .
[43] S. Biggs,et al. Microscopic and macroscopic aspects of stick-slip motion in granular shear. , 2001, Physical review. E, Statistical, nonlinear, and soft matter physics.
[44] G. Mageras,et al. A measurement of the light yield of common inorganic scintillators , 1988 .
[45] R Birch,et al. Computation of bremsstrahlung X-ray spectra and comparison with spectra measured with a Ge(Li) detector. , 1979, Physics in medicine and biology.
[46] B. V. Derjaguin,et al. Effect of contact deformations on the adhesion of particles , 1975 .
[47] A. Gent,et al. On the Relation between Indentation Hardness and Young's Modulus , 1958 .
[48] V. Brailovski,et al. Influence of particle morphology and size distribution on the powder flowability and laser powder bed fusion manufacturability of Ti-6Al-4V alloy , 2020 .
[49] G. Witt,et al. Influence of the Ratio between the Translation and Contra-Rotating Coating Mechanism on different Laser Sintering Materials and their Packing Density , 2017 .
[50] M. Brandt. The role of lasers in additive manufacturing , 2017 .
[51] M. Leu,et al. Powders for Additive Manufacturing Processes: Characterization Techniques and Effects on Part Properties , 2016 .
[52] T. Pöschel,et al. Particle-based simulation of powder application in additive manufacturing , 2016 .
[53] J. Sunc,et al. Discrete element simulation and experimental study of powder spreading process in additive manufacturing , 2016 .
[54] Kerstin Vogler,et al. X Rays In Atomic And Nuclear Physics , 2016 .
[55] Thomas H.J. Vaneker,et al. New Strategies for Powder Compaction in Powder-based Rapid Prototyping Techniques , 2013 .
[56] Gerd Witt,et al. ERROR DETECTION IN LASER BEAM MELTING SYSTEMS BY HIGH RESOLUTION IMAGING , 2012 .
[57] James H. Scofield,et al. X-Ray Attenuation Cross Sections for Energies 100 eV to 100 keV and Elements Z = 1 to Z = 92 , 1988 .
[58] H. Hausner. FRICTION CONDITIONS IN A MASS OF METAL POWDER. , 1967 .