Van Zyl et al., 2016 - Google Patents
Validation of miniaturised tensile testing on DMLS TI6Al4V (ELI) specimensVan Zyl et al., 2016
View PDF- Document ID
- 17973664582758476068
- Author
- Van Zyl I
- Moletsane M
- Yadroitsava I
- Yadroitsev I
- Krakhmalev P
- Publication year
- Publication venue
- South African Journal of Industrial Engineering
External Links
Snippet
Direct metal laser sintering (DMLS) is a relatively new technology that is developing rapidly. Since DMLS material is created by melting/solidifying tracks and layers from powder, even building geometry can influence the mechanical properties. To certify a material, the testing …
- 238000009864 tensile test 0 title description 3
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Bagehorn et al. | Application of mechanical surface finishing processes for roughness reduction and fatigue improvement of additively manufactured Ti-6Al-4V parts | |
Fatemi et al. | Torsional fatigue behavior of wrought and additive manufactured Ti-6Al-4V by powder bed fusion including surface finish effect | |
Bagherifard et al. | On the fatigue strength enhancement of additive manufactured AlSi10Mg parts by mechanical and thermal post-processing | |
Azarniya et al. | Additive manufacturing of Ti–6Al–4V parts through laser metal deposition (LMD): Process, microstructure, and mechanical properties | |
Nandhakumar et al. | A process parameters review on selective laser melting-based additive manufacturing of single and multi-material: Microstructure, physical properties, tribological, and surface roughness | |
Wang et al. | Scanning speed effect on mechanical properties of Ti-6Al-4V alloy processed by electron beam additive manufacturing | |
Chastand et al. | Fatigue characterization of Titanium Ti-6Al-4V samples produced by Additive Manufacturing | |
Moletsane et al. | Tensile properties and microstructure of direct metal laser-sintered Ti6Al4V (ELI) alloy | |
Xu et al. | Creep behaviour of inconel 718 processed by laser powder bed fusion | |
Van Zyl et al. | Residual stress in Ti6Al4V objects produced by direct metal laser sintering | |
Yadroitsava et al. | Residual stress in SLM Ti6Al4V alloy specimens | |
Van Zyl et al. | Validation of miniaturised tensile testing on DMLS TI6Al4V (ELI) specimens | |
Chan et al. | Fatigue life of titanium alloys fabricated by additive layer manufacturing techniques for dental implants | |
Schaub et al. | Additive manufacturing of functional elements on sheet metal | |
Ahuja et al. | Developing LBM process parameters for Ti-6Al-4V thin wall structures and determining the corresponding mechanical characteristics | |
Alsalla et al. | The effect of different build orientations on the consolidation, tensile and fracture toughness properties of direct metal laser sintering Ti-6Al-4V | |
Konečná et al. | Long fatigue crack growth in Ti6Al4V produced by direct metal laser sintering | |
Kotzem et al. | Impact of single structural voids on fatigue properties of AISI 316L manufactured by laser powder bed fusion | |
Raus et al. | The influence of selective laser melting parameters on density and mechanical properties of AlSi10Mg | |
Vaverka et al. | Effect of heat treatment on mechanical properties and residual stresses in additively manufactured parts | |
Gokuldoss | Selective laser melting: Materials and applications | |
Merklein et al. | Mechanical testing of additive manufactured metal parts | |
PETROUŠEK et al. | MECHANICAL PROPERTIES AND POROSITY OF Ti-6Al-4V ALLOY PREPARED BY SLM TECHNOLOGY | |
Balasubramanian et al. | Testing Techniques and Fatigue of Additively Manufactured Inconel 718 –A Review | |
Aiza et al. | Effects of build orientation and inclined features on physical, microstructural and mechanical properties of powder bed fusion additively manufactured metallic parts |