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Calibration and in-orbit performance of the reflection grating spectrometer onboard XMM-Newton

机译:XMM-Newton板载反射光栅光谱仪的校准和在轨性能

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Context. XMM-Newton was launched on 10 December 1999 and has been operational since early 2000. One of the instruments onboard XMM-Newton is the reflection grating spectrometer (RGS). Two identical RGS instruments are available, with each RGS combining a reflection grating assembly and a camera with charge-coupled devices to record the spectra. Aims. We describe the calibration and in-orbit performance of the RGS instrument. By combining the preflight calibration with appropriate inflight calibration data including the changes in detector performance over time, we aim at profound knowledge about the accuracy in the calibration. This will be crucial for any correct scientific interpretation of spectral features for a wide variety of objects. Methods. Ground calibrations alone are not able to fully characterize the instrument. Dedicated inflight measurements and constant monitoring are essential for a full understanding of the instrument and the variations of the instrument response over time. Physical models of the instrument are tuned to agree with calibration measurements and are the basis from which the actual instrument response can be interpolated over the full parameter space. Results. Uncertainties in the instrument response have been reduced to <10% for the effective area and <6 m? for the wavelength scale (in the range from 8 ? to 34 ?). The remaining systematic uncertainty in the detection of weak absorption features has been estimated to be 1.5%. Conclusions. Based on a large set of inflight calibration data and comparison with other instruments onboard XMM-Newton, the calibration accuracy of the RGS instrument has been improved considerably over the preflight calibrations.
机译:上下文。 XMM-Newton于1999年12月10日发射升空,自2000年初开始投入使用。XMM-Newton的仪器之一是反射光栅光谱仪(RGS)。有两种相同的RGS仪器可供使用,每个RGS都将一个反射光栅组件和一个带电荷耦合器件的摄像机结合在一起以记录光谱。目的我们描述了RGS仪器的校准和在轨性能。通过将飞行前校准与适当的飞行中校准数据(包括检测器性能随时间的变化)相结合,我们旨在获得有关校准准确性的深刻知识。这对于对各种物体的光谱特征进行任何正确的科学解释都是至关重要的。方法。单凭地面校准并不能完全表征仪器。专用的飞行中测量和持续监控对于全面了解仪器以及仪器响应随时间的变化至关重要。调整仪器的物理模型以使其与校准测量值一致,这是可以在整个参数空间上内插实际仪器响应的基础。结果。对于有效区域,仪器响应的不确定性已降低到<10%,而在6 m范围内已降低。波长范围(在8λ至34λ的范围内)。弱吸收特征检测中剩余的系统不确定性估计为1.5%。结论。基于大量的飞行中校准数据,并与XMM-Newton机载其他仪器进行比较,RGS仪器的校准精度已大大超过了飞行前校准。

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