Title Information
Title
Photometric, Thermal, and Spatial Evolution of the Impact Flash
Name: Personal
Name Part
Ernst, Carolyn M.
Role
Role Term: Text
creator
Origin Information
Copyright Date (keyDate="yes", encoding="w3cdtf")
2008
Physical Description
Extent
xxi, 195 p.
digitalOrigin
born digital
Note
Thesis (Ph.D.) -- Brown University (2008)
Name: Personal
Name Part
Schultz, Peter
Role
Role Term: Text
director
Name: Personal
Name Part
Pieters, Carle
Role
Role Term: Text
reader
Name: Personal
Name Part
Parmentier, E.
Role
Role Term: Text
reader
Name: Personal
Name Part
Wyatt, Michael
Role
Role Term: Text
reader
Name: Personal
Name Part
Crawford, David
Role
Role Term: Text
reader
Name: Corporate
Name Part
Brown University. Geological Sciences
Role
Role Term: Text
sponsor
Genre (aat)
theses
Abstract
Hypervelocity collisions generate extreme pressure and temperature conditions at the point of impact. Materials that reach high enough temperatures will emit light in the visible wavelength range. This quickly evolving phenomenon is known as the "impact flash". The primary goals of this dissertation are to characterize the evolution of the impact flash caused by impacts into particulate surfaces and to use the flash as a way to examine the early-time impact process. These tasks are undertaken using an experimental approach by performing impacts at the NASA Ames Vertical Gun Range. Photodiodes record the flash intensity through time, allowing high temporal resolution of the photometric and thermal evolution. A CCD camera captures short exposure images to spatially resolve the flash. The resulting impact flashes are of relatively long duration, lasting milliseconds at these laboratory scales. Thermal radiation from melt is the dominant contribution to the total luminous output of the flash for impacts into particulate silicate targets. The long decay portion of the impact flash intensity curve contributes a significant portion of the total luminous energy, with as much as 60% of the visible-wavelength energy being emitted after the intensity peak. Time-resolved intensity observations of such impacts reveal distinct components to the flash evolution. The characteristics of these components can be directly related to, and are highly dependent on, initial conditions (e.g., velocity, impact angle, target composition, view orientation). Because of these dependencies, laboratory-derived relationships can be used to predict the evolution of an impact flash under given initial conditions. Conversely, analysis of the impact flash evolution allows unknown conditions to be constrained remotely when most of the initial conditions are known. As an example, the observed and derived relationships found in the experimental studies are used to interpret the impact flash evolution observed during the Deep Impact collision into Comet P/Tempel 1. The Deep Impact flash observations are consistent with an under-dense (porous) cometary surface.
Subject (Local)
Topic
impact cratering
Subject (Local)
Topic
impact flash
Subject (Local)
Topic
Ames Vertical Gun Range
Subject (Local)
Topic
Deep Impact
Record Information
Record Content Source (marcorg)
RPB
Record Creation Date (encoding="iso8601")
20091218
Language
Language Term: Code (ISO639-2B)
eng
Language Term: Text
English
Identifier: DOI
10.7301/Z0VD6WRV
Access Condition: rights statement (href="http://rightsstatements.org/vocab/InC/1.0/")
In Copyright
Access Condition: restriction on access
Collection is open for research.
Type of Resource (primo)
dissertations