Difference between revisions of "DOE EPSCoR Proposal"
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(→Year 2) |
(→Year 2) |
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# Use Genetic algorithm with Simulation predictions to optimize positron production | # Use Genetic algorithm with Simulation predictions to optimize positron production | ||
# Begin designing tungsten converter capable of handling high heat load | # Begin designing tungsten converter capable of handling high heat load | ||
− | #CEBAF can accept particles into acceleration stage as long as <math>\frac{\Delta E}{E} \leq 10^{-5}</math> | + | #CEBAF can accept particles into acceleration stage as long as <math>\frac{\Delta E}{E} \leq 10^{-2}</math> |
+ | # Electrons are injected at 500 MeV (1 GeV) for a 6 GeV (12 GeV) CEBAF. Currently <math>\frac{\Delta E}{E} \leq 10^{-5}</math> | ||
== Year 3 == | == Year 3 == |
Revision as of 13:02, 14 June 2007
A Positron Source for JLAB
Year 1
- Check positron productions efficiency simulations for 10-20 MeV electrons on Tungsten Target
- Measure positron emmitance and compare to simulation predictions
- Repeat above measurements at different tilt angles
Year 2
- Use Genetic algorithm with Simulation predictions to optimize positron production
- Begin designing tungsten converter capable of handling high heat load
- CEBAF can accept particles into acceleration stage as long as
- Electrons are injected at 500 MeV (1 GeV) for a 6 GeV (12 GeV) CEBAF. Currently