Femto-second Laser’s Enabling New Length Scale Fabrications for Rapid Post Irradiation Examination of Materials: Concluding LDRD Project Poster
Mechanical testing campaigns are required to qualify materials for advanced reactor conditions, yet economical and safety limitations restrict the number of standardized mechanical tests that can be performed. Reducing the size of the sample is one approach to addressing these challenges and to accelerating testing. Previous research has shown that smaller mechanical test samples produce […]
Multi-Scale Modeling of the Evolution of Structure and Properties in Materials for Nuclear Energy Applications
Nuclear energy is an important component of an overall strategy to address climate change. Idaho National Laboratory (INL) is the U.S. Department of Energy’s primary facility for research and development in nuclear science and technology for energy generation, supporting the improvement and life extension of the existing reactor fleet and the development and licensing of […]
Development of a MOOSE-based crystal plasticity model with irradiation defect evolution for irradiation creep in 316
Irradiation creep and irradiation swelling are two of the lifetime limiting factors for structural materials in nuclear reactors. These mechanical effects are driven by irradiation defect evolution and the interaction of those defects with dislocations in the microstructure. We present here a coupled cluster dynamics – crystal plasticity approach to model irradiation swelling and creep […]
Multiobjective Constrained Symbolic Regression for Predictive Modeling of Material Creep Behavior
When creep testing is repeated on samples of the same alloy under the same parametric conditions (i.e., stress and temperature), the resulting strain/time curves can vary from each other considerably as shown in Figure 1 [1]. The time required to creep test a material to rupture can extend to the order of years. Because of […]
Towards a multiscale approach for understanding irradiation induced swelling and creep in 316 stainless steels – A coupled cluster dynamics and crystal plasticity approach
Structural materials undergo mechanical degradation, in part due to irradiation-induced swelling and creep, under nuclear reactor conditions. While swelling results from the migration and clustering of irradiation-induced atomic-scale mobile defects, the interaction of mesoscale dislocations with these defects causes creep deformation. A coupled crystal plasticity (CP) and mean-field cluster dynamics (CD) approach is presented to […]
Electrochemical grand potential-based phase-field simulation of electric field-assisted sintering
An electrochemical grand potential functional was proposed to describe the sintering of an ionic ceramic green body. The resultant phase-field description enables simulation of the consolidation of an arbitrary number of granular particles and their interactions with the surrounding void phase. The model includes the effects of charged vacancies and the associated interactions between internal […]
Fusion Modeling & Simulation Workshop Outcomes
A workshop was held on 10/04/2022 gathering Idaho National Laboratory (INL) experts to develop a roadmap for future fusion-related modeling & simulation (M&S) activities. A total of 43 participants, (34 in-person and 9 remote) contributed to the workshop. After a plenary session with presentations from the National Reactor Innovation Center (NRIC) and the Institutional Planning […]
Electromagnetics and Advanced Manufacturing Simulation Development within the MOOSE Ecosystem
The MOOSE electromagnetics module (EMM) was developed to provide a general simulation tool for modeling a wide range of problems encountered in computational electromagnetics and enable MOOSE and MOOSE-based application coupling to Maxwell’s equations to solve a wide class of new problems. Development of the electromagnetics module has also enabled development of new advanced manufacturing […]
Modeling and Simulation of Advanced Manufacturing Techniques using MOOSE and MALAMUTE
Advanced manufacturing techniques offer increased geometry complexity, energy and material usage efficiency improvements, and an expanded palette of materials as compared to conventional manufacturing approaches. Advanced-manufacturing-produced parts can experience wide variations in the final microstructure, and these microstructure variations significantly impact the parts’ performance. In this chapter, we present recent code developments within Multiphysics Object-Oriented […]
Multi-scale modeling of the electric field assisted sintering process
The electric field assisted sintering (EFAS) process involves tightly coupled physics that influence microstructural evolution in the particles being compacted. It is also an inherently multi-scale phenomenon, with the microstructure of the compact influencing the subsequent engineering-scale response of the sintering system. To improve understanding of how processing parameters influence microstructural evolution, we have developed […]