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Quasi-Steady Acceleration Direction Indicator in Three Dimensions

机译:三维准稳态加速度方向指示器

摘要

Many materials processing and fluids physics experiments conducted in a microgravity environment require knowledge of the orientation of the low-frequency acceleration vector. This need becomes especially acute for space experiments such as directional solidification of a molten semiconductor, which is extremely sensitive to orientation and may involve tens of hours of operations of a materials furnace. These low-frequency acceleration data have been measured for many Shuttle missions with the Orbital Acceleration Research Experiment. Previous attempts at using fluid chambers for acceleration measurements have met with limited success due to pointing and vehicle attitude complications. An acceleration direction indicator is described, which is comprised of two orthogonal short cylinders of fluid, each with a small bubble. The motion and the position of the bubble within the chamber will indicate the direction of the acceleration experienced at the sensor location. The direction of the acceleration vector may then be calculated from these data. The frequency response of such an instrument may be tailored for particular experiments with the proper selection of fluid and gas parameters, surface type, and geometry. A three-dimensional system for sensing and displaying the low-frequency acceleration direction via an innovative technique described in this paper has advantages in terms of size, mass, and power compared with electronic instrumentation systems.
机译:在微重力环境中进行的许多材料处理和流体物理实验都需要了解低频加速度矢量的方向。对于诸如熔融半导体的定向凝固之类的空间实验而言,这种需求变得尤为迫切,这对取向极其敏感,并且可能涉及材料炉的数十小时的操作。这些低频加速度数据已通过轨道加速度研究实验针对许多航天飞机任务进行了测量。由于指向和车辆姿态的复杂性,先前使用流体腔进行加速度测量的尝试取得了有限的成功。描述了一种加速度方向指示器,其由两个正交的短圆柱体流体组成,每个圆柱体均带有小气泡。气泡在腔室内的运动和位置将指示在传感器位置经历的加速度的方向。然后可以从这些数据中计算出加速度矢量的方向。通过适当选择流体和气体参数,表面类型和几何形状,可以针对特定实验量身定制此类仪器的频率响应。与电子仪器系统相比,通过本文介绍的创新技术感测和显示低频加速度方向的三维系统在尺寸,质量和功率方面具有优势。

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