The layerwise nature of additive manufacturing (AM) allows for in-situ monitoring of the consolidate material to identify defects on the fly and produce parts with improved reliability and performance. The main challenge in this paradigm, however, is that current methods have either limited measurement throughput or produce signals that are difficult to interpret and to relate to build properties. In this work, we present a new methodology that combines high-throughput in-situ measurements during laser powder bed fusion (L-PBF) with robust and unbiased numerical image analysis to predict build density from the surface topography of the consolidated material. The method relies on high resolution and large field of view optical scans of the l...
Abstract Laser powder additive manufacturing (PBF-LB) is an additive manufacturing method capable of...
We developed and applied a novel approach for shape agnostic detection of multiscale flaws in laser ...
Lack of monitoring of the in situ process signatures is one of the challenges that has been restrict...
The layerwise nature of additive manufacturing (AM) allows for in-situ monitoring of the consolidate...
The metal additive manufacturing (AM) method of laser powder bed fusion (LPBF) relies upon the for...
The layerwise production paradigm entailed in laser powder bed fusion (LPBF) offers the opportunity ...
Powder bed homogeneity, contaminations, and printed surface quality are crucial in powder bed-based ...
Variation in the local thermal history during the Laser Powder Bed Fusion (LPBF) process in Additive...
In powder bed fusion additive manufacturing, pre-placed layers of powder are successively fused to ...
Laser powder bed fusion (L-PBF) is an additive manufacturing process which can produce nearly fully ...
Issues of part quality in terms of quality of fusion and formed porosity are widely known and state...
Powder bed defects are irregularities in the powder layer, which alter the energy input during the p...
Powder bed fusion of polymers is becoming increasingly adopted by a variety of industries to tailor ...
In-situ monitoring of metal additive manufacturing (AM) processes is a key issue to determine the qu...
Abstract Laser powder additive manufacturing (PBF-LB) is an additive manufacturing method capable of...
We developed and applied a novel approach for shape agnostic detection of multiscale flaws in laser ...
Lack of monitoring of the in situ process signatures is one of the challenges that has been restrict...
The layerwise nature of additive manufacturing (AM) allows for in-situ monitoring of the consolidate...
The metal additive manufacturing (AM) method of laser powder bed fusion (LPBF) relies upon the for...
The layerwise production paradigm entailed in laser powder bed fusion (LPBF) offers the opportunity ...
Powder bed homogeneity, contaminations, and printed surface quality are crucial in powder bed-based ...
Variation in the local thermal history during the Laser Powder Bed Fusion (LPBF) process in Additive...
In powder bed fusion additive manufacturing, pre-placed layers of powder are successively fused to ...
Laser powder bed fusion (L-PBF) is an additive manufacturing process which can produce nearly fully ...
Issues of part quality in terms of quality of fusion and formed porosity are widely known and state...
Powder bed defects are irregularities in the powder layer, which alter the energy input during the p...
Powder bed fusion of polymers is becoming increasingly adopted by a variety of industries to tailor ...
In-situ monitoring of metal additive manufacturing (AM) processes is a key issue to determine the qu...
Abstract Laser powder additive manufacturing (PBF-LB) is an additive manufacturing method capable of...
We developed and applied a novel approach for shape agnostic detection of multiscale flaws in laser ...
Lack of monitoring of the in situ process signatures is one of the challenges that has been restrict...