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Free-piston driver performance characterisation using experimental shock speeds through helium

机译:使用氦气的实验冲击速度来表征自由活塞驾驶员的性能

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Tuned free-piston driver operation involves configuring the driver to produce a relatively steady blast of driver gas over the critical time scales of the experiment. For the purposes of flow condition development and parametric studies, it is useful to establish some average working values of the driver pressure and temperature for a given driver operating condition. However, in practise, these averaged values need to produce sufficiently accurate estimates of performance. In this study, two tuned driver conditions in the X2 expansion tube have been used to generate shock waves through a helium test gas. The measured shock speeds have then been used to calculate the effective driver gas pressure and temperature after diaphragm rupture. Since the driver gas is typically helium, or a mixture of helium and argon, and the test gas is also helium, ideal gas assumptions can be made without significant loss of accuracy. The technique is applicable to tuned free-piston drivers with a simple area change, as well as those using orifice plates. It is shown that this technique can be quickly used to establish average working driver gas properties which produce very good estimates of actual driven shock speed, across a wide range of operating conditions. The use of orifice plates to control piston dynamics at high driver gas sound speeds is also discussed in the paper, and a simple technique for calculating the restriction required to modify an established safe condition for use with lighter gases, such as pure helium, is presented.
机译:调整后的自由活塞驱动器操作涉及配置驱动器以在实验的关键时间范围内产生相对稳定的驱动气体爆炸。出于流动条件开发和参数研究的目的,对于给定的驾驶员操作条件,确定驾驶员压力和温度的一些平均工作值很有用。但是,实际上,这些平均值需要产生足够准确的性能估计。在这项研究中,X2膨胀管中两个经过调整的驱动器条件已用于通过氦气测试气体产生冲击波。然后,将测得的冲击速度用于计算隔膜破裂后的有效驱动气体压力和温度。由于驱动气体通常是氦气或氦气和氩气的混合物,并且测试气体也是氦气,因此可以进行理想的气体假设,而不会显着降低精度。该技术适用于面积变化简单的调谐自由活塞驱动器,以及使用孔板的驱动器。结果表明,该技术可以快速用于建立平均工作驱动气体特性,从而在各种运行条件下都能很好地估算实际驱动冲击速度。本文还讨论了使用孔板来控制高驱动气体声速下的活塞动力学,并提出了一种简单的技术,用于计算限制条件,以限制为使用较轻的气体(例如纯氦气)而建立的既定安全条件。 。

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