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Gregory A. Moses

Researcher at University of Wisconsin-Madison

Publications -  116
Citations -  1236

Gregory A. Moses is an academic researcher from University of Wisconsin-Madison. The author has contributed to research in topics: Inertial confinement fusion & Fusion power. The author has an hindex of 15, co-authored 116 publications receiving 1163 citations.

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Reversing the Lecture/Homework Paradigm Using eTEACH® Web-based Streaming Video Software

TL;DR: In this article, a new online streaming video and multi-media application called eTEACH, http:eTEACH.engr.wisc.edu was used to reform a large, lecture-based computer science course for engineering majors.
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Development Path for Z-Pinch IFE

Craig L. Olson, +96 more
TL;DR: The long-range goal of the Z-Pinch IFE program is to produce an economically-attractive power plant using high-yield z-pinch-driven targets with low rep-rate per chamber (~0.1 Hz) as discussed by the authors.
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An overview of inertial fusion reactor design

TL;DR: The technical feasibility of several reaction chamber concepts is discussed, along with technical issues that require future analysis, experiment, and development, and requirements on the future development of inertial fusion reactor technology are discussed.
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Improved non-local electron thermal transport model for two-dimensional radiation hydrodynamics simulations

TL;DR: An implicit non-local thermal conduction algorithm based on the algorithm developed by Schurtz, Nicolai, and Busquet (SNB) is presented and has been implemented in the radiation-hydrodynamics code DRACO as discussed by the authors.
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Radiation transport for explosive outflows: a multigroup hybrid monte carlo method

TL;DR: In this article, Implicit Monte Carlo and discrete diffusion Monte Carlo (DDMC) were used for radiation transport in high-velocity outflows with structured opacity, and the results showed that IMC-DDMC performs better than pure IMC in terms of accuracy and speed when there are large disparities between the magnitudes of opacities in adjacent groups.