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Study on Two-dimensional Tomography Algorithm for Gas Temperature Distribution Based on TDLAS

机译:基于TDLAS的气体温度分布二维层析成像算法研究。

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In the combustion flow field, the concentrations of temperature and water vapor are very important in determining combustion efficiency. The traditional contact measurement will induce shock so as to disturb the flow field, and most of the probe can't be used in the high temperature air. So the existing contact measurement method can't meet the measurement requirements of the combustion field, but the tunable laser absorption spectrum technology (TDLAS) can realize non-contact nondestructive measurement of the combustion flow field. Various parameters such as temperature, gas composition and concentration, flow velocity, can be measured at the same time. And there is no temperature limit. It is very good at measuring combustion field parameters in the high temperature and high speed environment. TDLAS can calculate the gas temperature in real-time by scanning both absorption signal of gas absorption lines, but this is one-dimensional path integral measurement, can't reflect the real information of the combustion field. So it can't be used to measure objects with distinct temperature gradient. In order to overcome this deficiency, tunable laser absorption spectrum technology combined with computer tomography technology (called TDLAT) is used to realize the measurement of the two dimensional temperature distribution in the burning flow field. In this paper, the measurement principle and algorithm of the two dimensional temperature field distribution are put forward. In TDLAT system, the measured area is divided into many grids. TDLAS is used to get the laser path integral spectrophotometry along the grid line. In succession, deeply grid information is gotten by non-negative constrained least squares. Thus, assuming that temperature measurement plane within is in smooth transition, interpolation algorithm is used to recreate the high spatial resolution of the two dimensional temperature field distribution. According to the measuring principle and measuring objects, the model established is used to get the simulation result. The algorithm for TDLAT system was also verified to determine where it is consistent or not. As a result, the deviation value is less than 3% between the result of the temperature distribution and original hypothesis spectrophotometry, which shows that the algorithm is self-consistent.
机译:在燃烧流场中,温度和水蒸气的浓度对于确定燃烧效率非常重要。传统的接触测量会引起震动,从而干扰流场,并且大多数探头不能在高温空气中使用。因此,现有的接触测量方法不能满足燃烧场的测量要求,但是可调谐激光吸收光谱技术(TDLAS)可以实现燃烧流场的非接触无损测量。可以同时测量各种参数,例如温度,气体成分和浓度,流速。而且没有温度限制。它非常适合在高温和高速环境下测量燃烧场参数。 TDLAS可以通过扫描气体吸收管线的两个吸收信号来实时计算气体温度,但这是一维路径积分测量,不能反映燃烧场的真实信息。因此,它不能用于测量具有不同温度梯度的对象。为了克服这一缺陷,可调谐激光吸收光谱技术与计算机断层摄影技术(称为TDLAT)相结合,用于实现燃烧流场中二维温度分布的测量。提出了二维温度场分布的测量原理和算法。在TDLAT系统中,被测区域被分为许多网格。 TDLAS用于获得沿网格线的激光路径积分分光光度法。相继通过非负约束最小二乘法获得深层网格信息。因此,假设内部的温度测量平面处于平稳过渡状态,则使用插值算法来重建二维温度场分布的高空间分辨率。根据测量原理和测量对象,使用建立的模型获得仿真结果。还对TDLAT系统的算法进行了验证,以确定它在哪里一致。结果,温度分布结果与原始假设分光光度法之间的偏差值小于3%,这表明该算法是自洽的。

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