Title :
RF Backplane for MTCA.4-Based LLRF Control System
Author :
Czuba, K. ; Jezynski, Tomasz ; Hoffmann, Marco ; Ludwig, F. ; Schlarb, H.
Author_Institution :
Warsaw Univ. of Technol., Warsaw, Poland
Abstract :
Low-level RF (LLRF) control systems developed for linear accelerator-based free electron lasers (FELs) require real-time processing of thousands of RF signals with very challenging RF field detection precision. To provide a reliable, maintainable, and scalable system, a new generation of LLRF control based on MTCA.4 architecture was started at DESY for the FLASH and European-XFEL facilities. In contrast to previous RF control systems realized in 19-in modules, we could demonstrate field detection, RF generation, RF distribution, DAQ system, and the high-speed real-time processing entirely embedded in the MTCA.4 crate system. This unique scheme embeds ultra-high-precision analog electronics for detection on the rear transition module (RTM) with powerful digital processing units on the advanced mezzanine card (AMC). To increase system reliability and maintainability and to reduce performance limitations arising through RF cabling, we developed and embedded in the MTCA.4 crate, a unique RF backplane for RTM cards. This backplane is used for distribution of high-performance local oscillator (LO), RF, and low-jitter clock signals together with low-noise analog power supply to analog RTM cards in the system. In this paper, we present the design and architecture of the MTCA.4 crate with the RF backplane and successful test results of the LLRF control system.
Keywords :
free electron lasers; linear accelerators; AMC; DAQ system; DESY; European-XFEL facilities; FLASH facilities; MTCA.4 architecture; MTCA.4 crate; MTCA.4-based LLRF control system; RF backplane; RF cabling; RF distribution; RF field detection precision; RF generation; advanced mezzanine card; analog RTM cards; digital processing units; linear accelerator-based free electron lasers; local oscillator; low-jitter clock signals; low-level RF control system; low-noise analog power supply; rear transition module; system maintainability; system reliability; ultra-high-precision analog electronics; Backplanes; Clocks; Connectors; Control systems; Power supplies; Radio frequency; Standards; Accelerator control systems; accelerator instrumentation; free electron lasers; front-end electronics;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2013.2278380