Engineering topics
Moore, Christopher
Publications and source records attributed to Moore, Christopher.
Mechanisms of Anode-Initiated Vacuum Insulator Flashover for Pulsed Power Applications.
Abstract not provided.
Exploring Dependencies of Work Function on Topography and the Application to Micron-scale Field Emission Model for PIC-DSMC Simulations .
Abstract not provided.
Investigating Microscale RF Discharge Sensitivity to Ion Transport.
Abstract not provided.
Improving PIC-DSMC Simulations of RF Plasmas via Event Splitting.
Abstract not provided.
Devices and Experiments for Exploring RF Breakdown in Micrometer-Scale Air Gaps.
Abstract not provided.
Hedging direct simulation Monte Carlo bets via event splitting
We propose a new scheme for simulation of collisions with multiple possible outcomes in variable-weight DSMC computations. The scheme is applied to a 0-D ionization rate coefficient computation, and 1-D electrical breakdown simulation. We show that the scheme offers a significant (up to an order of magnitude) improvement in the level of stochastic noise over the usual acceptance-rejection algorithm, even when controlling for the slight additional computational costs. Furthermore, the benefits and performance of the scheme are analyzed in detail, and possible extensions are proposed.
Improving PIC-DSMC Simulations of RF Plasmas via Event Splitting.
Abstract not provided.
One-dimensional studies of positive streamer discharges using EMPIRE.
Abstract not provided.
Investigating High Voltage Breakdown in a Dielectric Spacer Air Gap via a Coupled Modeling-Experimental Approach.
Abstract not provided.
DC and RF Breakdown in Microscale Gaps from near vacuum to atmospheric pressures.
Abstract not provided.
Modeling rarefied gas chemistry with QuiPS, a novel quasi-particle method
The goal of this work is to build up the capability of quasi-particle simulation (QuiPS), a novel flow solver, such that it can adequately model the rarefied portion of an atmospheric reentry trajectory. Direct simulation Monte Carlo (DSMC) is the conventional solver for such conditions, but struggles to resolve transient flows, trace species, and high-level internal energy states due to stochastic noise. Quasi-particle simulation (QuiPS) is a novel Boltzmann solver that describes a system with a discretized, truncated velocity distribution function. The resulting fixed-velocity, variable weight quasi-particles enable smooth variation of macroscopic properties. The distribution function description enables the use of a variance-reduced collision model, greatly minimizing expense near equilibrium. This work presents the addition of a neutral air chemistry model to QuiPS and some demonstrative 0D simulations. The explicit representation of internal distributions in QuiPS reveals some of the flaws in existing physics models. Overall, variance reduction, a key feature of QuiPS, can greatly reduce expense of multi-dimensional calculations, but is only cheaper when the gas composition is near chemical equilibrium.
Demonstrating Capabilities for Mars Exploration on the Moon
The U.S. Space Policy Directive of 2017 calls for the United States to lead the return of humans to the Moon for long-term exploration and utilization, followed by human missions to Mars. To achieve these goals, NASA is working with commercial and international partners to develop systems and operational approaches that could be tested on the Moon to prepare for Mars missions. NASA’s human exploration strategy progresses in phases from the ISS in low-Earth orbit, to a sustained presence in cislunar space and on the Moon, to humans in Mars orbit, and finally humans on Mars. There is a huge jump in the capabilities required between the last two phases: humans in Mars orbit and humans on the surface. These include landing large payloads, surface habitation, extra-vehicular activity and crew mobility systems, in-situ resource utilization, and ascent from Mars to return the crew to Earth. Many of these needed capabilities can be tested first on the Moon to reduce the risk for Mars missions. There are a few challenges, however, in extrapolating from capability demonstrations on the Moon to enabling Mars missions such as greater remoteness, the Mars atmosphere, different gravity levels, and planetary protection. Key technologies, concepts for early demonstration of the required capabilities on the Moon, and potential areas for commercial and international partnerships will be discussed.