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Split range calibration in pressure measurement of re-entry flush air data sensing system (FADS) for overall system accuracy enhancement

机译:用于整体系统精度增强的重新进入冲洗空气数据传感系统(FADS)压力测量的分流范围校准

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Flush Air Data Sensing System (FADS) forms mission critical sub system in future reusable space transportation systems. FADS makes use of surface pressure measurements from the nose cap of the vehicle for deriving the air data parameters of the vehicle such as angle of attack, angle of sideslip, Mach number, etc. These parameters are used by the control and guidance system of the vehicle for reentry flight management as well as for subsequent mission phases upto landing. The overall system accuracy of FADS is mainly dictated by the accuracy of the surface pressure measurements. The demanded accuracies are of the order of 100 Pascal in a full scale of 140000 Pascal (0.07% FS). This paper addresses the four split range pressure calibration scheme that is used for achieving the above accuracy. Trade off studies carried out on the number of split ranges and the order of least squares curve fit to be used are presented. The scheme for voltage based split range selection to reduce the errors at range boundary crossover points and during recovery after a port blockage is presented. Details of the hysteresis logic used for real time implementation for preventing back and forth switching of scale factors at the split range crossover points are also presented. The use of split range calibration and hysteresis logic for pressure sensors in FADS has not been reported in earlier literature. Experimental results are presented which establishes the demanded pressure measurement accuracy.
机译:嵌入式空气数据传感系统(FADS)在未来的可重复使用空间运输系统中形成关键任务子系统。 FADS利用车辆的鼻帽的表面压力测量,用于导出车辆的空气数据参数,例如攻击角,侧面线,马赫数等。这些参数由控制和引导系统使用重新入门航班管理的车辆以及随后的任务阶段达到着陆。 FAD的整体系统精度主要由表面压力测量的准确性决定。所要求的准确性为100帕斯卡的全规模为140000帕斯卡(0.07%FS)。本文解决了用于实现上述准确性的四个分体式压力校准方案。提出了对分裂范围数和最小二乘曲线拟合的折衷研究进行了折衷。基于电压的分流范围选择的方案,以减少范围边界交叉点的误差以及在封端口堵塞后恢复期间。还提出了用于实时实现的滞后逻辑的细节,用于防止在分离范围交叉点处的尺度因子的来回切换。在早期文献中尚未报告用于FAD中压力传感器的分裂范围校准和滞后逻辑。提出了实验结果,该结果建立了要求的压力测量精度。

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