SENTIENT SCIENCE CORPORATION — National Aeronautics and Space Administration STTR Phase I: T12

SENTIENT SCIENCE CORPORATION — STTR Phase I award from National Aeronautics and Space Administration.

Amount
$124,729
Agency
National Aeronautics and Space Administration
Program / Phase
STTR · Phase I
Topic
T12
Solicitation
STTR_18_P1
NAICS
Place of performance
NY
Period
2018-07-27 → 2019-08-26

Description

<p style="margin-left:0px; margin-right:0px">In response to NASA&rsquo;s topic T12.02 of &ldquo;Extensible Modeling of Metallurgical Additive Manufacturing Processes&rdquo;, Sentient proposes to incorporate its <strong>DigitalClone</strong> technique to develop a multiscale and multiphysics computational modeling suite to predict comprehensive outcomes from AM building processes, including geometrical accuracy, and resulting microstructure and defects. <strong>Figure 1</strong> shows the proposed framework for the multiscale modeling suite. The process model will first predict the microscale thermal evolution in respect of various parameters. The temperature results will feed a subsequent macroscale model for prediction of stress and distortion at part scale. Moreover, the predicted thermal history and distribution will feed subsequent microstructure model to further predict the micro-scale features including grain morphology and porosity. <strong>The proposed computational modeling framework allows a comprehensive prediction and understanding of the metal AM process at multiple levels</strong>.</p><p style="margin-left:0px; margin-right:0px">In Phase I, Sentient will upgrade and demonstrate <strong>DigitalClone</strong>&rsquo;s capability to integrate process-microstructure simulation for metal AM process. Specifically, selective laser melting of IN 718 alloy will be used for development and demonstration purposes in Phase I. AM coupons with different geometries will be fabricated by Selective Laser Melting (SLM) at different parameters. <strong>DigitalClone</strong> will be used to simulate all different scenarios of coupons made from IN718 alloys, and predict temperature, stress, part distortion, and grain structure. Materials characterization will be performed on the coupons to examine geometrical accuracy, microstructure, residual stress, all of which will be used to validate the <strong>DigitalClone</strong> model. In Phase II, different materials and AM platforms and more complex geometrical components will be tested for model validation. Additionally, close-loop optimization framework will be explored for improving geometrical design and microstructure features.</p>