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New Approach for Simple Temperature Measurements of Metal Combustion

机译:金属燃烧简单温度测量的新方法

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In combustion processes of metal or metal containing energetic materials the combustion temperature is one of the most critical physical parameters for thermodynamic calculations and necessary for a better understanding of the involved phenomena. Thereby the temperature of the vapor phase is a special challenge. A fit of the continuum radiation with a grey body function provides the temperature of the burning bulk material. One of the methods to determine the temperature of the vapor phase is to observe the emission of the atom lines or diatomic molecules, calculate their spectra and fit them to the experimental spectra. In most cases this process requires a high resolution spectrometer, high computing efforts and a lot of knowledge about the properties of thespectra. To avoid these requirements a parameterized function modeling only the vibrational bands was developed from calculated high resolution spectra. Therein,the temperature is a free fit parameter. The full width at half maximum of the lines was adapted to the resolution of an overview spectrometer (△λ ≈ 3nm ). In a first step the model function was parameterized for the aluminum monoxide B~2Σ-X~2Σ transition. The model was tested with low- and high-resolution spectra of burning aluminum particles in oxygen. A good agreement between them was achieved. The determined vapor phase temperature was validated in comparison to the continuum temperature and calculated adiabatic temperature.
机译:在含金属或金属的燃烧过程中,燃烧温度是热力学计算的最关键的物理参数之一,并且需要更好地理解所涉及的现象。因此,气相的温度是一个特殊的挑战。具有灰色体功能的连续辐射的适合提供燃烧散装材料的温度。确定气相温度的方法之一是观察原子线或硅藻分子的发射,计算它们的光谱并将其适合于实验光谱。在大多数情况下,该过程需要高分辨率光谱仪,高计算工作以及大量了解TheSpectra属性。为避免这些要求,仅从计算出的高分辨率频谱开发了参数化功能建模。其中,温度是免费的参数。线的半最大宽度适用于概述光谱仪的分辨率(△λ≈3nm)。在第一步中,模型功能对于铝氧化铝B〜2σ-x〜2σ转变进行参数化。用燃烧氧铝颗粒的低分辨率光谱测试该模型。达到了良好的一致性。与连续温度和计算的绝热温度相比,验证了确定的气相温度。

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