Title :
Optimization of scintillation-detector timing systems using Monte Carlo analysis
Author :
Binkley, David M.
Author_Institution :
CTI PET Syst. Inc., Knoxville, TN, USA
Abstract :
Monte Carlo analysis is used to model statistical noise associated with scintillation-detector photoelectron emissions and photomultiplier tube operation. The impulse response of a photomultiplier tube, front-end amplifier, and constant-fraction discriminator (CFD) is modeled so that the effects of front-end bandwidth and constant-fraction delay and fraction can be evaluated for timing-system optimizations. Monte Carlo timing resolution for a bismuth germanate (BGO)/photomultiplier scintillation detector, CFD timing system is presented as a function of constant-fraction delay for 511-keV coincident gamma rays in the presence of Compton scatter. Monte Carlo results are in good agreement with measured results, indicating better timing resolution with decreasing constant-fraction delay. Monte Carlo energy-discrimination performance is experimentally verified along with the timing resolution (Monte Carlo resolution of 3.1 ns FWHM versus measured resolution of 3.3 ns FWHM) for a front-end rise time of 10 ns (10-90%). CFD delay of 8 ns, and CFD fraction of 20%
Keywords :
Monte Carlo methods; discriminators; nuclear electronics; photomultipliers; pulse amplifiers; scintillation counters; time measurement; 3.1 ns; 3.3 ns; 511 keV; Bi4Ge3O12; Monte Carlo analysis; constant-fraction delay; constant-fraction discriminator; front-end amplifier; front-end bandwidth; gamma rays; photoelectron emissions; photomultiplier tube; scintillation-detector; statistical noise; timing resolution; timing systems; Bandwidth; Bismuth; Computational fluid dynamics; Delay effects; Energy resolution; Gamma rays; Monte Carlo methods; Photomultipliers; Scintillation counters; Timing;
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference, 1992., Conference Record of the 1992 IEEE
Conference_Location :
Orlando, FL
Print_ISBN :
0-7803-0884-0
DOI :
10.1109/NSSMIC.1992.301218