Abstract

Transient beam loading effects and microwave instability are very important in ion synchrotrons. A simulation code longitudinal particle tracking code (LPTC) based on multiparticle tracking is developed to simulate the beam loading effects and the longitudinal beam instabilities in the booster ring (BRing) of the High Intensity heavy-ion Accelerator Facility (HIAF). A process of beam capture, acceleration, debunching, and the second capture is simulated with a reference ion beam of ${^{78}\mathrm{Kr}}^{19+}$. The simulation results show that the beam loading effects have major contribution to the beam behavior during the debunching stage and the second capture stage. A feed-forward system is suggested to compensate the beam loading effects, and the main parameters of the feed-forward system are given. The microwave instability of coasting ${^{78}\mathrm{Kr}}^{19+}$ beams is observed from the simulation results. The threshold of the microwave instability is also given. The development of self-bunching and methods to suppress the microwave instability in the BRing are discussed.

Highlights

  • The High Intensity heavy-ion Accelerator Facility (HIAF) was proposed by Institute of Modern Physics (IMP) of the Chinese Academy of Sciences (CAS) to provide high intensity heavy ion beams for nuclear physics, atomic physics, and other applications [1]

  • Beam loading effects and the microwave instability of coasting beams are very important in the booster ring (BRing) in which magnetic alloy (MA) loaded cavities with large shunt impedance and low Q value will be employed

  • According to the simulation results, the beam loading effects is severe during the debunching and the second capture stages

Read more

Summary

INTRODUCTION

In the presence of MA loaded cavities, it is important to study the microwave instability [11] of coasting beams with high beam intensity and small momentum spread. The microwave instability, manifested as the development of self-bunching, can lead to the momentum spread growth of the coasting beams. For the slow extraction in the BRing, coasting beams with small momentum spread are required. Compensation of the beam loading effects is described, and the main parameters of a feed-forward system proposed for the BRing are given.

SIMULATION CODE DEVELOPMENT
Coordinates
Difference equations
Wake voltage calculation
Wake compensation calculation
Characteristics of LPTC
Benchmarks of LPTC
SIMULATIONS OF LONGITUDINAL BEAM DYNAMICS
Beam loading effects
Microwave instability of coasting beams
Findings
CONCLUSIONS
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call