首页> 外文期刊>Journal of Vibration and Acoustics >Predicting the Optical Performance of the Space Interferometry Mission Using a Modeling, Testing, and Validation Methodology
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Predicting the Optical Performance of the Space Interferometry Mission Using a Modeling, Testing, and Validation Methodology

机译:使用建模,测试和验证方法预测空间干涉测量任务的光学性能

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This paper presents the modeling, testing, and validation methodologies developed to predict the optical performance of the Space Interferometry Mission (SIM) at the Jet Propulsion Laboratory (JPL). The modeling methodology combines structural, optical, and control system design within a common state space framework and incorporates reaction wheel assembly (RWA) disturbances to evaluate the end-to-end performance of the system requirements. The validation methodology uses the Micro-Precision Interferometer (MPI) testbed, which is a ground-based, representative hardware model of SIM. In this study, the integrated model of the MPI testbed was used to calculate the transfer functions from RWA input to optical performance output. The model-predicted transfer functions were compared with the MPI testbed measurements, and the accuracy of the integrated model was quantified using a metric that was based on output power of the transfer functions. The RWA disturbances were then propagated through the modeled and measured transfer functions to predict the optical performance of the MPI testbed. This method is called the "decoupled disturbance analysis " and relies on the "blocked" RWA disturbances, measured with the RWA hardmounted to a rigid surface. These predictions were compared with the actual (measured) optical performance of MPI, measured with the RWA mounted to MPI, to evaluate the accuracy of the decoupled disturbance analysis method. The results show that this method is not an accurate representation of the coupled boundary conditions that occurs when the RWA is mounted to the flexible MPI structure. In order to correct for the blocked RWA disturbance boundary conditions, the "coupled disturbance analysis " method was developed. This method uses "force filters " that depend on estimates of the interface accelerances of the RWA and the MPI structure to effectively transform the blocked RWA disturbance measurements into their corresponding "coupled" disturbances (the disturbances that would occur at the coupled RWA-MPI interface). Compared to the decoupled method, the coupled method more accurately predicts the system's performance. Additionally, the RWA cross-spectral density terms were found to be influential in matching the performance predictions to the measured optical performance of MPI.
机译:本文介绍了用于预测喷气推进实验室(JPL)的空间干涉测量任务(SIM)的光学性能的建模,测试和验证方法。建模方法将结构,光学和控制系统设计结合在一个公共状态空间框架中,并结合了反作用轮组件(RWA)干扰来评估系统要求的端到端性能。验证方法使用微精密干涉仪(MPI)测试平台,它是SIM的基于地面的代表性硬件模型。在这项研究中,使用MPI测试台的集成模型来计算从RWA输入到光学性能输出的传递函数。将模型预测的传递函数与MPI测试台测量结果进行比较,并使用基于传递函数输出功率的度量对集成模型的准确性进行量化。然后,通过建模和测量的传递函数传播RWA干扰,以预测MPI测试台的光学性能。这种方法称为“解耦干扰分析”,它依赖于“阻塞” RWA干扰,该RWA干扰是通过将RWA硬安装到刚性表面上进行测量的。将这些预测与MPI的实际(测量)光学性能进行比较,并通过将RWA安装到MPI进行测量,以评估去耦干扰分析方法的准确性。结果表明,该方法不能准确表示RWA安装到柔性MPI结构上时发生的耦合边界条件。为了校正受阻的RWA干扰边界条件,开发了“耦合干扰分析”方法。该方法使用“力过滤器”,该“力过滤器”取决于RWA和MPI结构的接口加速度的估计,以有效地将阻塞的RWA干扰测量结果转换为它们相应的“耦合”干扰(将在耦合RWA-MPI接口处发生的干扰) )。与解耦方法相比,耦合方法可以更准确地预测系统的性能。此外,发现RWA互谱密度项在将性能预测与MPI的测得光学性能匹配方面具有影响力。

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