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In this study selective laser melting technology was used for the first time to manufacture highly porous pure tantalum implants with fully interconnected open pores.
The objective was to analyze the influence of the manufacturing strategy on the internal structure and mechanical properties of the components manufactured by selective laser melting technology.
This report describes the successful functional and esthetic reconstruction of the mandible using electron beam melting technology, an alternative technique for reconstruction of mandibles that did not undergo radiation therapy.
The prototype samples with a 135° alternate angle were fabricated of 316L stainless steel by selective laser melting technology and an experiment was carried out to test their kinematic performance.
Newly designed Ti44Al6Nb1.0Cr2.0V0.15Y0.1B (at.%) alloy was prepared by vacuum consumable melting technology (melted two times), and then it was processed by cold crucible directional solidification (CCDS) technology at input power of 45 kW and a range of pulling velocities.
In this study, composite slabs with columnar-grained Fe-6.5 wt%Si alloy at the inner part and pure iron at double sides were prepared by the Bridgman zone melting technology under the melting temperature of 1485±5 °C and withdrawing velocity of 1 mm/min.
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Samples with different dimensions of the open-cells (350, 400, 450, 500 μm) were fabricated by Selective laser melting (SLM) technology, while Hot pressing (HP) technology was employed to produce Ti6Al4V-PEEK hybrid cellular structures.
However, multiplexing obtained by HRM alone will be limited and probe-based melting technologies face a difficulty of probe design, and low resolution (temperature difference) of variants remains to be limited by using existing probe chemistries (DNA, LNA. etc).. To solve these problems, we adopted full base peptide nucleic acid (PNA) oligomer to probe-based melting point analysis.
Ti scaffolds with 30% volume fraction were fabricated using a selective laser melting (SLM) technology.
We adapted high-resolution melting (HRM) technology to measure genetic diversity without sequencing.
Selective laser melting (SLM) technology can manufacture complex lattice structures, which effectively reduces the manufacturing constraint and significantly increases the design freedom for lattice structure.
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