Kai Zhou;Shouyan Xu;Yanliang Han;Xiaohan Lu;Sheng Wang
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Integrating Geant4 Into PyORBIT for Accurate Beam Dynamics and Particle–Matter Interactions Simulation
In synchrotron designs, accurately simulating beam dynamics, space charge effects, and particle-matter interactions is crucial. However, few simulation tools can simultaneously achieve high precision in beam transport, beam acceleration, space charge effects, multiturn injection, and particle-matter interactions. This article introduces G4PyORBIT, which integrates the particle-matter interaction capabilities of Geant4 with the beam dynamics framework of PyORBIT to address these challenges. The newly developed G4PyORBIT code not only handles simulations of beam dynamics, including space charge effects, but also models complex scattering processes involving dynamic and complex geometries, and composite materials. It provides high-precision simulations of beam loss and visualization capabilities. The accuracy and effectiveness of the program have been validated through benchmark tests and its successful application in the physical design of the rapid cycling synchrotron (RCS) at the China Spallation Neutron Source (CSNS).
期刊介绍:
The IEEE Transactions on Nuclear Science is a publication of the IEEE Nuclear and Plasma Sciences Society. It is viewed as the primary source of technical information in many of the areas it covers. As judged by JCR impact factor, TNS consistently ranks in the top five journals in the category of Nuclear Science & Technology. It has one of the higher immediacy indices, indicating that the information it publishes is viewed as timely, and has a relatively long citation half-life, indicating that the published information also is viewed as valuable for a number of years.
The IEEE Transactions on Nuclear Science is published bimonthly. Its scope includes all aspects of the theory and application of nuclear science and engineering. It focuses on instrumentation for the detection and measurement of ionizing radiation; particle accelerators and their controls; nuclear medicine and its application; effects of radiation on materials, components, and systems; reactor instrumentation and controls; and measurement of radiation in space.