The directed energy deposition (DED) process can be employed to build net shape components or prototypes starting from powder or wires, through a layer-by-layer process. This process provides an opportunity to fabricate complex shaped and functionally graded parts that can be utilized in different engineering applications. DED uses a laser as a focused heat source to melt the in-situ delivered powder or wire-shaped raw materials. In the past years extensive studies on DED have shown that this process has great potential in order to be used for (i) rapid prototyping of metallic parts, (ii) fabrication of complex and customized parts, (iii) repairing/cladding valuable components which cannot be repaired by other traditional techniques. Howeve...
In order to achieve the required properties of titanium implants, more resources and research are ne...
Direct Energy Deposition (DED) is an Additive Manufacturing (AM) technology allowing the production ...
In order to achieve the required properties of titanium implants, more resources and research are ne...
The directed energy deposition (DED) process can be employed to build net shape components or protot...
Amongst the many additive manufacturing (AM) techniques, directed energy deposition (DED) is a promi...
Direct Energy Deposition (DED) is an additive manufacturing technique suitable for producing big siz...
One of the main applications of Directed Energy Deposition (DED) is the production of thin-wall stru...
Directed energy deposition (DED) is an attractive additive manufacturing (AM) process for large st...
Directed Energy Deposition of the commercial intermetallic Ti-48Al-2Cr-2Nb alloy was investigated. T...
Directed Energy Deposition (DED), which is an additive manufacturing technique, involves the creatio...
Directed Energy Deposition Additive Manufacturing (DED-AM) is transformative for the production of l...
Additive manufacturing (AM) has attracted much research interest in recent years due to its ability ...
The process optimization of directed energy deposition (DED) has become imperative in the manufactur...
Directed energy deposition (DED) is a branch of additive manufacturing (AM) processes in which a fee...
aerospace or biomedical applications due to its unique capabilities and potential cost savings. Dir...
In order to achieve the required properties of titanium implants, more resources and research are ne...
Direct Energy Deposition (DED) is an Additive Manufacturing (AM) technology allowing the production ...
In order to achieve the required properties of titanium implants, more resources and research are ne...
The directed energy deposition (DED) process can be employed to build net shape components or protot...
Amongst the many additive manufacturing (AM) techniques, directed energy deposition (DED) is a promi...
Direct Energy Deposition (DED) is an additive manufacturing technique suitable for producing big siz...
One of the main applications of Directed Energy Deposition (DED) is the production of thin-wall stru...
Directed energy deposition (DED) is an attractive additive manufacturing (AM) process for large st...
Directed Energy Deposition of the commercial intermetallic Ti-48Al-2Cr-2Nb alloy was investigated. T...
Directed Energy Deposition (DED), which is an additive manufacturing technique, involves the creatio...
Directed Energy Deposition Additive Manufacturing (DED-AM) is transformative for the production of l...
Additive manufacturing (AM) has attracted much research interest in recent years due to its ability ...
The process optimization of directed energy deposition (DED) has become imperative in the manufactur...
Directed energy deposition (DED) is a branch of additive manufacturing (AM) processes in which a fee...
aerospace or biomedical applications due to its unique capabilities and potential cost savings. Dir...
In order to achieve the required properties of titanium implants, more resources and research are ne...
Direct Energy Deposition (DED) is an Additive Manufacturing (AM) technology allowing the production ...
In order to achieve the required properties of titanium implants, more resources and research are ne...