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Recovering Aerodynamic Side Loads on Rocket Nozzles using Quasi-Static Strain-Gage Measurements

机译:使用准静态应变计测量来恢复火箭喷嘴的气动侧向载荷

摘要

During over-expanded operation of rocket nozzles, which is defined to be when the exit pressure is greater than internal pressure over some part of the nozzle, the nozzle will experience a transverse forcing function due to the pressure differential across the nozzle wall. Over-expansion occurs during the nozzle start-up and shutdown transient, even in high-altitude engines, because most test facilities cannot completely reproduce the near-vacuum pressures at those altitudes. During this transient, the pressure differential moves axially down the nozzle as it becomes pressurized, but this differential is never perfectly symmetric circumferentially. The character of the forcing function is highly complex and defined by a series of restricted and free shock separations. The subject of this paper is the determination of the magnitude of this loading during sub-scale testing via measurement of the structural dynamic response of the nozzle and its support structure. An initial attempt at back-calculating this load using the inverse of the transfer function was performed, but this attempt was shown to be highly susceptible to numerical error. The final method chosen was to use statically calibrated strain data and to filter out the system fundamental frequency such that the measured response yields close to the correct dynamic loading function. This method was shown to capture 93% of the pressure spectral energy using controlled load shaker testing. This method is one of the only practical ways for the inverse determination of the forcing function for non-stationary excitations, and, to the authors' knowledge, has not been described in the literature to date.
机译:在火箭喷嘴的过度膨胀操作期间,这被定义为当出口压力大于喷嘴的某些部分上的内部压力时,由于横跨喷嘴壁的压力差,喷嘴将经历横向强制功能。即使在高海拔发动机中,在喷嘴启动和关闭瞬变期间也会发生过度膨胀,因为大多数测试设备无法完全再现这些高度的近真空压力。在此过渡过程中,压差随着喷嘴的受压而沿轴向向下移动,但该压差从未在圆周上完全对称。强制功能的特性非常复杂,并且由一系列受限和自由的冲击分离来定义。本文的主题是通过测量喷嘴及其支撑结构的结构动力响应来确定子尺度测试期间此载荷的大小。进行了使用传递函数反函数来对此载荷进行反计算的初始尝试,但此尝试显示出极易受到数值误差的影响。最终选择的方法是使用静态校准的应变数据并滤出系统基本频率,以使测得的响应产生接近正确的动态载荷函数的结果。使用可控负载振动筛测试,该方法可捕获93%的压力谱能量。这种方法是反确定非平稳激励强迫函数的唯一实用方法之一,据作者所知,迄今尚未在文献中进行描述。

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