SEARCH · Search NASA
Results for “Finite element”
Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Finite element modeling of electropolishing of radio frequency dipole Nb crab cavity in hydrofluoric-sulfuric acid electrolyte
The superior performance of niobium superconducting radio frequency (SRF) cavities is achieved through meticulous surface treatment, notably via chemical electropolishing, ensuring exceptionally smooth surfaces. While this technique has been extensively employed for cylindrically symmetric structures, addressing more intricate geometries poses significant challenges in achieving uniform polishing and controlled material removal, especially when moving away from retractable cathodes. This presents a multifaceted electrochemical, thermal, and fluid dynamics conundrum. A prime example is the 197 MHz radio frequency dipole (RFD) crabbing cavity proposed for the Electron Ion Collider (EIC) project, exemplifying such complex structures. Our groundbreaking work integrates the localized oxide thickness variation, considering its impact on current distribution and Joule heating, within the framework of multi-physics modeling using the COMSOL® simulation suite. This approach was applied to a comprehensive model of the RFD cavity, allowing us to investigate optimal external cooling water flow conditions necessary for achieving desirable outcomes. In conclusion, this illustrates the increasing utility of such multi-physics codes to greatly aid in designing solutions to challenging processing requirements for increasingly complex accelerator cavities.
Finite-element methods for noncollinear magnetism and spin-orbit coupling in real-space pseudopotential density functional theory
Not Available
Validation Exercise of a Coarse Finite Element Model of Laser Welds
The objective of this project is to validate low-fidelity models of 304L to 304L stainless steel partial-penetration laser welds for thin sheets. Low-fidelity means that the weld is represented by coarsely meshed element blocks. Here, the hexahedral element size is approx imately half the weld penetration depth. The material behavior of the block is represented by a J2 plasticity model with a Voce hardening function. The source of the data used in this work is an extensive experimental study conducted by Sharlotte Kramer (1528) and published in 2015. Figure 1 shows a cross-section of the weld of interest. The nominal thickness of the sheets is 0.063 in. while the target penetration depth of the weld is in the range of 0.028 to 0.032 in., extending about half the sheet thickness. Uniaxial tension tests provided data for calibration of base material and weld models. Results of two validation geometries were also provided. The principal validation geometry is shown in Fig. 2. It consists of a plate specimen with in-plane dimensions 6 in × 2.875 in loaded in tension. A circular plug with a 1.5 in. diameter was cut from the center of the plate and then welded in place. The details of the welding schedule are given. An important assumption is that the welds in the calibration and validation specimens have similar geometric and material properties as those in the validation tests. The task was to first calibrate models for the base material and the welds and then simulate the validation tests until the point of weld first failure.
Predicting long-term stress relaxation on Alloy 709 using the crystal plasticity finite element method
This report summarizes the results of physics-based, crystal plasticity simulations for the long-term stress relaxation behavior of Alloy 709. The purpose of the study was to provide insight into five key questions related to long-term behavior in high temperatures materials which are difficult or impossible to answer experimentally: (1) is there a threshold stress for long-term relaxation? (2) is there strain threshold for relaxation damage, below which significant damage does not accumulate? (3) does damage continue to accumulate as the material relaxes or will damage accumulation plateau under some loading conditions? (4) does stress relaxation loading inevitably lead to failure? and (5) which, if any, engineering models for relaxation damage accumulation reasonably match the simulation results? The report summarizes the numerical simulations used to address these five questions and provides at least partial answers to each question.
Finite Element Modeling of Infrasound resonance in underground tunnel structures
Explore the source record for details and available documents.
Integration of sub-cell geometry for immersed finite elements for next-generation computational platforms
Explore the source record for details and available documents.
Well identification efforts under the CATALOG consortium: Modeling of electromagnetic diffusion by using the hierarchical finite element analysis
Explore the source record for details and available documents.
Modified Immersed Finite Element Method (mIFEM) For Explicit Eulerian to Explicit Lagrangian Coupling
Explore the source record for details and available documents.
INTERFACE MECHANICS FOR EXPLICIT EULERIAN TO EXPLICIT LAGRANGIAN COUPLING USING THE MODIFIED IMMERSED FINITE ELEMENT METHOD
Explore the source record for details and available documents.
Modeling the Direct Ink Write process using a sharp interface finite-element method
Explore the source record for details and available documents.
Finite Element Basis Compression for Extreme-Scale Simulations and R-Adaptive Mesh Optimization to Enable Compression
Explore the source record for details and available documents.
Finite Element Modeling of Atmospheric Corrosion
Explore the source record for details and available documents.
Operator Inference-based Model Order Reduction of Thermal Protection System Finite Element Simulations
Explore the source record for details and available documents.
Solving sparse finite element problems on neuromorphic hardware
Explore the source record for details and available documents.
Modeling Direct Ink Write of sinusoidal patterns using the conformal decomposition finite element method
Explore the source record for details and available documents.
Solving sparse finite element problems on neuromorphic hardware
Explore the source record for details and available documents.