首页> 外文期刊>Physical Review. Accelerators and Beams >Analytical span class="aps-inline-formula"math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"miN/mi/math/span beam position monitor method
【24h】

Analytical span class="aps-inline-formula"math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"miN/mi/math/span beam position monitor method

机译:分析型 class =“ aps-inline-formula”> <数学xmlns =“ http://www.w3.org/1998/Math/MathML” display =“ inline”> N 光束位置监控方法

获取原文
获取外文期刊封面目录资料

摘要

Measurement and correction of focusing errors is of great importance for performance and machine protection of circular accelerators. Furthermore LHC needs to provide equal luminosities to the experiments ATLAS and CMS. High demands are also set on the speed of the optics commissioning, as the foreseen operation with ${ensuremath{eta}}^{*}$-leveling on luminosity will require many operational optics. A fast measurement of the $ensuremath{eta}$-function around a storage ring is usually done by using the measured phase advance between three consecutive beam position monitors (BPMs). A recent extension of this established technique, called the N-BPM method, was successfully applied for optics measurements at CERN, ALBA, and ESRF. We present here an improved algorithm that uses analytical calculations for both random and systematic errors and takes into account the presence of quadrupole, sextupole, and BPM misalignments, in addition to quadrupolar field errors. This new scheme, called the analytical N-BPM method, is much faster, further improves the measurement accuracy, and is applicable to very pushed beam optics where the existing numerical N-BPM method tends to fail.
机译:聚焦误差的测量和校正对于圆形加速器的性能和机器保护至关重要。此外,LHC需要为实验ATLAS和CMS提供相同的亮度。对光学器件的调试速度也提出了很高的要求,因为在光度上进行$ { ensuremath { beta}} ^ {*} $级别的可预见的操作将需要许多光学器件。通常通过使用三个连续的光束位置监控器(BPM)之间测得的相位超前来快速测量存储环周围的$ _beta函数。这种已建立技术的最新扩展称为N-BPM方法,已成功应用于CERN,ALBA和ESRF的光学测量。我们在此提出一种改进的算法,该算法对随机误差和系统误差均使用分析计算,并且除了四极场误差外,还考虑到四极杆,六极杆和BPM失准的存在。这种称为分析N-BPM方法的新方案速度更快,可以进一步提高测量精度,并且适用于现有数字N-BPM方法趋于失败的非常推动的光束光学系统。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利