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Application of 2D temperature measurement to a coal-fired furnace using CT-TDLAS

机译:使用CT-TDLA将2D温度测量在燃煤炉中的应用

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摘要

The measurement of temperature and species concentration in combustion fields is very significant for the development of highly efficient combustion technologies for energy conservation and emission reduction. There are various measurement technologies, including contact and non-contact measurement. Tunable diode laser absorption spectroscopy (TDLAS) technology is a proven non-contact method for detection of the temperature and species concentration by absorption measurement. To enable two-dimensional (2D) representation of temperature and species concentration in combustion fields, the TDLAS technology is usually combined with computed tomography (CT). The latter is, however, considerably new in combustion research, especially in the solid fuel reaction environment. In this paper, a 32-path 2D CT-TDLAS system for temperature measurement in a pilot-scale coal-fired furnace was developed. The accuracy of the CT algorithm in the reconstruction of 2D temperature distributions in different laser-path arrangements was first analyzed using the sum of squared difference (SSD) and zero-mean normalized cross-correlation (ZNCC) by comparing it to the 2D temperature distribution of a full-scale coal-fired furnace simulated using computational fluid dynamics (CFD). The accuracy was improved by 32-path reconstruction. The study was then progressed to investigate its measurement accuracy in a simple CH4-air burner configuration with rounded and rectangular cells as well as sensitivity for flame shift detection, whereby the reconstructed temperature distribution was compared to the temperature measured using a thermocouple. It is verified that this CT reconstruction was feasible for various measurement areas, even if the center of the flame was shifted. Finally, a 32-path 2D CT-TDLAS system with a rectangular-structured cell was developed and applied for temperature measurement in a Tenaga Nasional Berhad (TNB) Research's pilot-scale coal-fired furnace. The 2D temperature distribution in the coal-fired furnace was reconstructed according to the experimental results. The potential of the CT-TDLAS for online 2D temperature measurement for actual applications is demonstrated.
机译:燃烧场温度和物种浓度的测量对于开发高效的节能和减排的高效燃烧技术非常重要。有各种测量技术,包括接触和非接触式测量。可调谐二极管激光吸收光谱(TDLA)技术是一种经过验证的非接触方法,用于通过吸收测量检测温度和物种浓度。为了使燃烧场中的温度和物种浓度的二维(2D)表示,TDLA技术通常与计算机断层扫描(CT)组合。然而,后者在燃烧研究中具有很大的新功能,特别是在固体燃料反应环境中。在本文中,开发了一种用于试验型燃煤炉中的温度测量的32路径2D CT-TDLAS系统。通过将其与2D温度分布进行比较,首先分析不同激光路径布置的2D温度分布的CT算法在不同激光路径布置中的重建中的CT算法。通过将其与2D温度分布进行比较使用计算流体动力学(CFD)模拟全刻度燃煤炉。 32路重建改善了准确性。然后进展研究以研究具有圆形和矩形电池的简单CH4 - 空气燃烧器配置中的测量精度以及火焰换档检测的灵敏度,由此将重建的温度分布与使用热电偶测量的温度进行比较。验证了这种CT重建对于各种测量区域是可行的,即使火焰的中心移位。最后,开发了一种具有矩形结构细胞的32路径2D CT-TDLAS系统,并施加了一个Tenaga Nasional Berhad(TNB)的试验型燃煤炉中的温度测量。根据实验结果重建燃煤炉中的2D温度分布。证明了实际应用的在线2D温度测量的CT-TDLA的潜力。

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