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The performance of a cryogenically cooled monochromator for an in-vacuum undulator beamline

机译:真空起伏器光束线的低温冷却单色仪的性能

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The channel-cut silicon monochromator on beamline ID09 at the European Synchrotron Radiation Facility is indirectly cooled from the sides by liquid nitrogen. The thermal slope error of the diffracting surface is calculated by finite-element analysis and the results are compared with experiments. The slope error is studied as a function of cooling coefficients, beam size, position of the footprint and power distribution. It is found that the slope error versus power curve can be divided into three regions: (i) The linear region: the thermal slope error is linearly proportional to the power. (ii) The transition region: the temperature of the Si crystal is close to 125 K; the thermal slope error is below the straight line extrapolated from the linear curve described above. (iii) The non-linear region: the temperature of the Si crystal is higher than 125 K and the thermal slope error increases much faster than the power. Heat-load tests were also performed and the measured rocking-curve widths are compared with those calculated by finite-element modeling. When the broadening from the intrinsic rocking-curve width and mounting strain are included, the calculated rocking-curve width versus heat load is in excellent agreement with experiment. [References: 23]
机译:欧洲同步辐射装置上光束线ID09上的通道切割硅单色仪通过液氮从侧面间接冷却。通过有限元分析计算出衍射面的热斜率误差,并与实验结果进行了比较。研究坡度误差与冷却系数,光束尺寸,覆盖区位置和功率分布的关系。可以发现,斜率误差与功率的关系曲线可分为三个区域:(i)线性区域:热斜率误差与功率成线性比例关系。 (ii)过渡区域:Si晶体的温度接近125K;热斜率误差在上述线性曲线外推的直线以下。 (iii)非线性区域:Si晶体的温度高于125 K,并且热斜率误差的增加快于功率的增加。还进行了热负荷测试,并将测得的摇摆曲线宽度与通过有限元建模计算的摇摆曲线宽度进行了比较。当包括固有摇摆曲线宽度和安装应变的展宽时,计算得出的摇摆曲线宽度与热负荷的关系与实验非常吻合。 [参考:23]

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