"An extensive work programme involving advanced numerical modelling, comprehensive experimental studies, and software development was undertaken.
The first activities focused on the setup of the experimental facilities. The activities at the start of the project involved the development of a bespoke thermocouple substrate and the procurement and characterisation of the feedstock for the project. A novel thermocouple substrate was designed. Initial experimental activities focused on the production of reference cube samples (see Image 01). A finite element manufacturing process simulation of laser powder bed fusion was developed. The model was calibrated and validated against measurements collected using the thermocouple substrate during manufacturing of reference samples. A best practice guide on finite element modelling of laser powder bed fusion was also produced (see Image 03).
The next activity was to undertake a review of topology optimised parts. This identified four ""building blocks"" characteristic of such parts: an X-shape, a Pi-shape, Cylinders and Solid Members. A comprehensive full-factorial, design-of-experiments study was performed. Over 500 samples were built and thoroughly characterised using optical microscopy, hardness measurements, X-ray CT scanning and surface roughness measurements. An example of some of the samples are shown in Image 02.
To store the results, Granta Design developed the PASSPORT database and software. A quality metric was defined to enable this link between physical test data, optimal processing parameters, and features of the as-built parts. Once the PASSPORT Database had been developed and populated, the final activity was to create a way to ""break down"" a topology optimised part into the fundamental building blocks. This was done by creating a ""classification algorithm"" wrapped into a Matlab Graphical User Interface for ease-of-use. The Matlab PASSPORT GUI was also connected to the Granta Design PASSPORT Database.
The PASSPORT Software allows an end-user to import an STL file and then the software breaks the STL file down into individual building blocks, associating each block with optimised process parameters. This then theoretically enables a user to use part-specific process parameters and achieve improved homogeneity in the quality and propertis of an AM part. This is illustrated in Image 04. This was then demonstrated on a realistic component provided by the Topic Manager.
The exploitation and dissemination included:
A publication: Zavala-Arredondo et al, 2019: ‘Use of power factor and specific point energy as design parameters in laser powder-bed-fusion (L-PBF) of AlSi10Mg alloy’, Materials and Design 182.
Seminars including the 2018 TWI Annual AM Symposium; 2018 UK SIMULIA Regional User Meeting where a presentation on best practice modelling of AM processes developed in PASSPORT were presented; 2019 AILU Conference on Laser Additive Manufacturing where the PASSPORT was described; STEM Outreach Event with local students about digital technologies as a career using PASSPORT as a case study; a keynote at the UK National NAFEMS Conference on the validation of AM modelling and best practice guidelines
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