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Digital recording and numerical reconstruction of holograms: an optical diagnostic for combustion

机译:全息图的数字记录和数值重建:燃烧的光学诊断

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Holographic interferometry (HI) has proved to be a useful tool for nonintrusive temperature measurements in flames (and thereafter for inference of the local composition based on the state relationship approach) with high spatial and temporal resolution. Digital holographic interferometry (DHI) is a relatively new imaging and measurement technique that electronically records a hologram (e.g., on a CCD) and reconstructs it by a numerical method. Cumbersome chemical processing of the hologram is avoided in DHI, which thereby provides greater flexibility, speed, and the potential for real-time processing. In conventional holography, fringes that are neither bright nor dark on a hologram cannot be accurately resolved. The DHI technique has not yet to our knowledge been used for combustion applications. Herein we evaluate its efficacy for making temperature measurements in flames and assess its applicability through a simulation. Each part of a double exposure associated with the holographic technique is considered to be recorded by a hypothetical CCD sensor at a separate time from the other part. We applied the principles of Fourier optics to develop two numerical methods for hologram reconstruction, and we show that both methods provide an accurate reconstruction of the phase image associated with a flame. Because of the periodic nature of the wave function, the reconstructed phase values are limited to the interval [-π/2, π/2]. Thus an unwrapping algorithm is provided that produces a continuous phase distribution based on the condition that the reconstructed phase is jumped by a value of -π or π. We have also developed an iterative calculation method to adjust the value of the digital reference wave parameters that determines the phase imaging reconstruction in DHI.
机译:全息干涉法(HI)已被证明是一种具有高时空分辨率的火焰非侵入式温度测量的有用工具(此后基于状态关系法推断局部成分)。数字全息干涉术(DHI)是相对较新的成像和测量技术,其电子记录全息图(例如,在CCD上)并通过数值方法对其进行重建。在DHI中避免了繁琐的全息图化学处理,从而提供了更大的灵活性,速度和实时处理的潜力。在传统的全息术中,不能精确分辨全息图上既不亮也不暗的条纹。据我们所知,DHI技术尚未用于燃烧应用。本文中,我们评估了其在火焰中进行温度测量的功效,并通过模拟评估了其适用性。与全息技术相关的两次曝光的每个部分都被认为是由假想的CCD传感器在与其他部分分开的时间记录的。我们应用傅立叶光学原理开发了两种用于全息图重建的数值方法,并且我们证明了这两种方法都可以对与火焰相关的相位图像进行准确的重建。由于波动函数的周期性,将重构的相位值限制在间隔[-π/ 2,π/ 2]中。因此,提供了一种解包算法,该算法基于以下条件产生连续的相位分布:重建的相位跳了-π或π的值。我们还开发了一种迭代计算方法来调整确定DHI中相位成像重建的数字参考波参数的值。

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