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Calculation of Coherent Synchrotron Radiation Impedance for a Beam Moving in a Curved Trajectory

机译:在弯曲轨迹中移动的光束的相干同步辐射辐射阻抗的计算

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Coherent synchrotron radiation (CSR) fields are generated when a bunched beam moves along a curved trajectory. A new code, named CSRZ, was developed using finite difference method to calculate the longitudinal CSR impedance for a beam moving along a curved chamber. The method adopted in the code was originated by Agoh and Yokoya [Phys. Rev. ST Accel. Beams 7 (2004) 054403]. It solves the parabolic equation in the frequency domain in a curvilinear coordinate system. The chamber considered has uniform rectangular cross-section along the beam trajectory. The code was used to investigate the properties of CSR impedance of a single or a series of bending magnets. The calculation results indicate that the shielding effect due to outer chamber wall can be well explained by a simple optical approximation model at high frequencies. The CSR fields reflected by the outer wall may interfere with each other along a series of bending magnets and lead to sharp narrow peaks in the CSR impedance. In a small storage ring, such interference effect can be significant and may cause microwave instability, according to a simple estimate of instability threshold.
机译:当成束的光束沿着弯曲的轨迹移动时,会产生相干同步辐射(CSR)场。使用有限差分方法开发了一个名为CSRZ的新代码,以计算沿弯曲腔室移动的光束的纵向CSR阻抗。代码中采用的方法由Agoh和Yokoya [Phys。 Rev. ST加速。梁7(2004)054403]。它在曲线坐标系中求解频域中的抛物线方程。所考虑的腔室沿光束轨迹具有均匀的矩形横截面。该代码用于调查单个或一系列弯曲磁体的CSR阻抗特性。计算结果表明,通过简单的高频光学近似模型可以很好地解释由于外室壁引起的屏蔽效应。由外壁反射的CSR场可能会沿着一系列弯曲磁体相互干扰,并导致CSR阻抗的尖锐窄峰。根据不稳定性阈值的简单估算,在一个小的存储环中,这种干扰效应可能很明显,并且可能导致微波不稳定性。

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  • 来源
    《Japanese journal of applied physics》 |2012年第1issue1期|p.016401.1-016401.8|共8页
  • 作者单位

    KEK National Laboratory, Tsukuba, Ibaraki 305-0801, Japan,Graduate University for Advanced Studies (SOKENDAI), Hayama, Kanagawa 240-0193, Japan;

    KEK National Laboratory, Tsukuba, Ibaraki 305-0801, Japan;

    KEK National Laboratory, Tsukuba, Ibaraki 305-0801, Japan;

    KEK National Laboratory, Tsukuba, Ibaraki 305-0801, Japan;

    SLAC National Accelerator Laboratory, Menlo Park, CA 94025, U.S.A.;

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