Inter-pass deformation is an effective method for refining the coarse β-grain structure normally produced in high-deposition-rate additive manufacturing processes, like wire-arc additive manufacturing. The effectiveness of applying contoured surface rolling deformation tracks to each added layer has been studied by developing, and applying, a large-area SEM-based strain mapping technique. This technique is based on calibration of the average point-to-point Local Average Misorientation (LAM) of α-phase lamellar variants in EBSD orientation data to the local effective plastic strain. Although limited in the strain range that can be measured, the technique has proven to be very effective for identifying the size and depth of the plastic zone i...
Wire-arc additive manufacturing (WAAM) is an emergent method for the production and repair of high v...
Wire+arc additive manufacturing is a technique suitable for the deposition of large components; a v...
The titanium alloy Ti–6Al–2Sn–4Zr–2Mo–0.1Si (Ti6242) has been deposited for the first time by a dire...
Relatively low levels of inter-pass deformation have been found to be very effective in refining the...
In Additive Manufacture (AM), with the widely used titanium alloy Ti–6Al–4V, the solidification cond...
Ti–6Al–4V microstructures produced by high deposition rate Wire Arc Additive Manufacturing (WAAM) ca...
The coarse columnar β grains in Ti-6Al-4V WAAM can be refined by relatively low strain inter-pass de...
Additive Manufacture (AM) of Ti–6Al–4V frequently leads to undesirable, coarse, columnar β-grain str...
Mechanical property anisotropy is one of the issues that are limiting the industrial adoption of add...
Wire Arc-Based Additive manufacturing is a high deposition rate process suitable for building large-...
Wire Arc-Based Additive manufacturing is a high deposition rate process suitable for building large-...
Wire Arc-Based Additive manufacturing is a high deposition rate process suitable for building large-...
In-process deformation methods such as rolling can be used to refine the large columnar grains that ...
Wire + arc additive manufacturing (WAAM), unlike most other additive techniques, targets the manufac...
Wire–arc additive manufacturing (WAAM) is an emergent method for the production and repair of high v...
Wire-arc additive manufacturing (WAAM) is an emergent method for the production and repair of high v...
Wire+arc additive manufacturing is a technique suitable for the deposition of large components; a v...
The titanium alloy Ti–6Al–2Sn–4Zr–2Mo–0.1Si (Ti6242) has been deposited for the first time by a dire...
Relatively low levels of inter-pass deformation have been found to be very effective in refining the...
In Additive Manufacture (AM), with the widely used titanium alloy Ti–6Al–4V, the solidification cond...
Ti–6Al–4V microstructures produced by high deposition rate Wire Arc Additive Manufacturing (WAAM) ca...
The coarse columnar β grains in Ti-6Al-4V WAAM can be refined by relatively low strain inter-pass de...
Additive Manufacture (AM) of Ti–6Al–4V frequently leads to undesirable, coarse, columnar β-grain str...
Mechanical property anisotropy is one of the issues that are limiting the industrial adoption of add...
Wire Arc-Based Additive manufacturing is a high deposition rate process suitable for building large-...
Wire Arc-Based Additive manufacturing is a high deposition rate process suitable for building large-...
Wire Arc-Based Additive manufacturing is a high deposition rate process suitable for building large-...
In-process deformation methods such as rolling can be used to refine the large columnar grains that ...
Wire + arc additive manufacturing (WAAM), unlike most other additive techniques, targets the manufac...
Wire–arc additive manufacturing (WAAM) is an emergent method for the production and repair of high v...
Wire-arc additive manufacturing (WAAM) is an emergent method for the production and repair of high v...
Wire+arc additive manufacturing is a technique suitable for the deposition of large components; a v...
The titanium alloy Ti–6Al–2Sn–4Zr–2Mo–0.1Si (Ti6242) has been deposited for the first time by a dire...