Difference between revisions of "Optimization of Positron Capturing"
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RMS longitudinal Bunch Length: <math> \sigma_{z} = 10.6~ps</math> | RMS longitudinal Bunch Length: <math> \sigma_{z} = 10.6~ps</math> | ||
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| + | = GEANT4 Simulation for 2 mm W-Target = | ||
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| + | Thickness of the Tungsten target: 2 mm | ||
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| + | Electron Beam: | ||
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| + | Beam size at Tungsten target: Gaussian, <math>\sigma_{x,y} = 3~mm</math> | ||
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| + | Beam divergence at target: 0 | ||
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| + | Beam Energy: <math> 10~MeV </math> | ||
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| + | Energy Spread: <math> \sigma_{\delta}=4.23% </math> | ||
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| + | A volume called "detector" is placed at the of the W-target to get the information on the only of the outgoing positrons from the W-target. Followings are from "detector". | ||
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| + | == Phase Spaces of e+ Created== | ||
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| + | Phase space for positrons coming out W-target. | ||
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| + | === X phase space === | ||
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| + | Include 100 % of the particles | ||
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| + | [[File:e+_X-Phase-Space_Ellipse_100-Per_Particles.png | 300 px]] | ||
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| + | === Y phase space === | ||
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| + | Include 100 % of the particles | ||
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| + | [[File:e+_Y-Phase-Space_Ellipse_100-Per_Particles.png | 300 px]] | ||
Revision as of 17:21, 3 October 2011
- Thickness of the Tungsten target: 1.25 mm
- Beam size at Tungsten target: Gaussian,
Optimization with ELEGANT Simulation on the Region from Gun Exit to Tungsten Target
Emittance: (Not sure yet, need to be calculated)
Average Peak
Beam Energy:
Energy Spread:
Alpha Function:
Beta Function:
RMS longitudinal Bunch Length:
GEANT4 Simulation for 2 mm W-Target
Thickness of the Tungsten target: 2 mm
Electron Beam:
Beam size at Tungsten target: Gaussian,
Beam divergence at target: 0
Beam Energy:
Energy Spread:
A volume called "detector" is placed at the of the W-target to get the information on the only of the outgoing positrons from the W-target. Followings are from "detector".
Phase Spaces of e+ Created
Phase space for positrons coming out W-target.
X phase space
Include 100 % of the particles
Y phase space
Include 100 % of the particles