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Aerodynamic Reconstruction Applied to Parachute Test Vehicle Flight Data Analysis

机译:空气动力学重构在降落伞飞行器飞行数据分析中的应用

摘要

The aerodynamics, both static and dynamic, of a test vehicle are critical to determining the performance of the parachute cluster in a drop test and for conducting a successful test. The Capsule Parachute Assembly System (CPAS) project is conducting tests of NASA's Orion Multi-Purpose Crew Vehicle (MPCV) parachutes at the Army Yuma Proving Ground utilizing the Parachute Test Vehicle (PTV). The PTV shape is based on the MPCV, but the height has been reduced in order to fit within the C-17 aircraft for extraction. Therefore, the aerodynamics of the PTV are similar, but not the same as, the MPCV. A small series of wind tunnel tests and computational fluid dynamics cases were run to modify the MPCV aerodynamic database for the PTV, but aerodynamic reconstruction of the flights has proven an effective source for further improvements to the database. The acceleration and rotational rates measured during free flight, before parachute inflation but during deployment, were used to con rm vehicle static aerodynamics. A multibody simulation is utilized to reconstruct the parachute portions of the flight. Aerodynamic or parachute parameters are adjusted in the simulation until the prediction reasonably matches the flight trajectory. Knowledge of the static aerodynamics is critical in the CPAS project because the parachute riser load measurements are scaled based on forebody drag. PTV dynamic damping is critical because the vehicle has no reaction control system to maintain attitude - the vehicle dynamics must be understood and modeled correctly before flight. It will be shown here that aerodynamic reconstruction has successfully contributed to the CPAS project.
机译:测试车辆的空气动力学(静态和动态)对于在降落测试中确定降落伞组的性能以及进行成功的测试至关重要。胶囊降落伞组装系统(CPAS)项目正在使用降落伞测试车(PTV)在陆军尤马试验场对NASA的“猎户座”多功能乘员降落伞(MPCV)降落伞进行测试。 PTV的形状基于MPCV,但高度已降低,以适合C-17飞机以进行提取。因此,PTV的空气动力学特性与MPCV相似,但不相同。进行了一系列小规模的风洞测试和计算流体动力学案例,以修改PTV的MPCV空气动力学数据库,但事实证明,飞行的空气动力学重建是进一步改进数据库的有效来源。在自由飞行期间,降落伞充气之前但在展开期间测得的加速度和转速被用于确认车辆的静态空气动力学特性。利用多体仿真来重建飞行的降落伞部分。在仿真中调整空气动力学或降落伞参数,直到预测合理地匹配飞行轨迹为止。在CPAS项目中,对静态空气动力学的了解至关重要,因为降落伞立管的载荷测量是基于前体阻力进行缩放的。 PTV动态阻尼至关重要,因为飞行器没有反应控制系统来保持姿态-飞行前必须正确理解并模拟飞行器动力学。这里将显示,空气动力学重建已成功地为CPAS项目做出了贡献。

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