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A new digital beam position and phase measurement implementation based on a field programmable gate array for the
Fafu Ni1, Zhixue Li1, Junxia Wu1
1Institute of Modern Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
A novel digital beam position and phase measurement (BPM) system for ion-Linac accelerators achieves high resolution for beam position and phase. This FPGA-based system offers rapid processing for accelerator machine protection.
Area of Science:
- Accelerator Physics
- Instrumentation and Measurement
Background:
- Accurate beam position and phase measurement are critical for controlling and protecting high-intensity heavy-ion accelerators.
- Existing systems may face limitations in resolution, processing speed, or adaptability to varying beam conditions.
Purpose of the Study:
- To design and evaluate a new digital beam position and phase measurement (BPM) system for an ion-Linac accelerator.
- To achieve high precision in beam position and phase determination using advanced digital signal processing.
Main Methods:
- Development of a digital BPM system utilizing a field-programmable gate array (FPGA) for data acquisition and signal processing.
- Simultaneous retrieval and analysis of fundamental and second harmonic signals from BPM electrodes.
- Implementation of in-phase and quadrature demodulation for position and phase calculation.
- Integration of reconfigurable filters for measuring short beam pulse lengths.
Main Results:
- Achieved phase resolution better than 0.2° (-60 dBm) and 0.03° (-45 dBm).
- Position resolution better than 30 μm (-60 dBm), improving to 7 μm at higher power levels (-45 dBm).
- Algorithm execution time of 3.4 µs, enabling fast reaction times for machine protection systems.
Conclusions:
- The newly designed digital BPM system demonstrates superior performance in resolution and speed.
- The system's rapid processing capabilities are suitable for critical machine protection applications in high-intensity accelerators.
- Laboratory and online proton beam tests validate the prototype's effectiveness.
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