Micro-lattice materials represent nowadays a great opportunity for developing new ultra-lightweight materials. Design flexibility and multi-functional properties make them attractive for several applications in automotive, medical, space, aerospace and process industries. Predict fatigue resistance of these micro-structures is a key issue. In this work three different unit cells printed by a Selective Laser Melting process with an AlSi7Mg powder were analysed. Static properties and fatigue strength in compression have been studied by means of different experimental and numerical techniques: experimental tests, Digital Image Correlation, Micro-Computed Tomography and Finite Element analysis. Total fatigue life has been divided in three stage...
The octet-truss lattice is a three-dimensional lattice with high strength and low density. Practical...
Selective laser melting (SLM) process is based on the powder-bed fusion principle, which is using hi...
Purpose: Additive manufacturing (AM) enables the production of lightweight parts with complex shapes...
Micro-lattice materials represent nowadays a great opportunity for developing new ultra-lightweight ...
The fabrication of engineered lattice structures has recently gained momentum due to the development...
© 2017 Additive manufacturing techniques such as Selective Laser Melting (SLM) are highly suitable f...
In the last years, additive manufacturing has widely adopted to enable lightweight design based on t...
This work addresses the fatigue behaviour of two strut-based topologies of micro-lattice materials, ...
Advances in machine systems and scanning technologies have increased the use of selective laser melt...
Ability to predict the fatigue resistance of parts produced by additive manufacturing (AM) is a very...
Abstract Lattice structures find application in numerous technological domains, including aerospace ...
Metal additive manufacturing and in particular selective laser melting (SLM) is a very promising pro...
Porous structures have great potential in the biomedical field because, compared to traditional full...
The octet-truss lattice is a three-dimensional lattice with high strength and low density. Practical...
Selective laser melting (SLM) process is based on the powder-bed fusion principle, which is using hi...
Purpose: Additive manufacturing (AM) enables the production of lightweight parts with complex shapes...
Micro-lattice materials represent nowadays a great opportunity for developing new ultra-lightweight ...
The fabrication of engineered lattice structures has recently gained momentum due to the development...
© 2017 Additive manufacturing techniques such as Selective Laser Melting (SLM) are highly suitable f...
In the last years, additive manufacturing has widely adopted to enable lightweight design based on t...
This work addresses the fatigue behaviour of two strut-based topologies of micro-lattice materials, ...
Advances in machine systems and scanning technologies have increased the use of selective laser melt...
Ability to predict the fatigue resistance of parts produced by additive manufacturing (AM) is a very...
Abstract Lattice structures find application in numerous technological domains, including aerospace ...
Metal additive manufacturing and in particular selective laser melting (SLM) is a very promising pro...
Porous structures have great potential in the biomedical field because, compared to traditional full...
The octet-truss lattice is a three-dimensional lattice with high strength and low density. Practical...
Selective laser melting (SLM) process is based on the powder-bed fusion principle, which is using hi...
Purpose: Additive manufacturing (AM) enables the production of lightweight parts with complex shapes...