It's not too Late for the Harpy Eagle (Harpia harpyja): High Levels of Genetic Diversity and Differentiation Can Fuel Conservation Programs (open access)

It's not too Late for the Harpy Eagle (Harpia harpyja): High Levels of Genetic Diversity and Differentiation Can Fuel Conservation Programs

Article on the harpy eagle (Harpia harpyja) and how high levels of genetic diversity and differentiation can fuel conservation programs.
Date: October 5, 2009
Creator: Lerner, Heather R. L.; Johnson, Jeff A.; Lindsay, Alec R.; Kiff, Lloyd F. & Mindell, David P.
System: The UNT Digital Library
Fast Ignition Transport Simulations for NIF (open access)

Fast Ignition Transport Simulations for NIF

This paper shows work at Lawrence Livermore National Lab (LLNL) devoted to modeling the propagation of, and heating by, a relativistic electron beam in a idealized dense fuel assembly for fast ignition. The implicit particle-in-cell (PIC) code LSP is used. Experiments planned on the National Ignition Facility (NIF) in the next few years using the Advanced Radiography Capability (ARC) short-pulse laser motivate this work. We demonstrate significant improvement in the heating of dense fuel due to magnetic forces, increased beam collimation, and insertion of a finite-radius carbon region between the beam excitation and fuel regions.
Date: October 5, 2009
Creator: Strozzi, D J; Grote, D P; Tabak, M; Cohen, B I; Town, R P & Kemp, A J
System: The UNT Digital Library
Funnel cone for focusing intense ion beams on a target (open access)

Funnel cone for focusing intense ion beams on a target

We describe a funnel cone for concentrating an ion beam on a target. The cone utilizes the reflection characteristic of ion beams on solid walls to focus the incident beam andincrease beam intensity on target. The cone has been modeled with the TRIM code. A prototype has been tested and installed for use in the 350-keV K+ NDCX target chamber.
Date: October 5, 2009
Creator: Bieniosek, F.M.; Henestroza, E. & Ni, P.
System: The UNT Digital Library
Optical Model and Cross Section Uncertainties (open access)

Optical Model and Cross Section Uncertainties

Distinct minima and maxima in the neutron total cross section uncertainties were observed in model calculations using spherical optical potential. We found this oscillating structure to be a general feature of quantum mechanical wave scattering. Specifically, we analyzed neutron interaction with 56Fe from 1 keV up to 65 MeV, and investigated physical origin of the minima.We discuss their potential importance for practical applications as well as the implications for the uncertainties in total and absorption cross sections.
Date: October 5, 2009
Creator: Herman, M. W.; Pigni, M. T.; Dietrich, F. S. & Oblozinsky, P.
System: The UNT Digital Library