A Non-Intrusive Particle Temperature Extraction Methodology using IR and Visible-Image Sequences for High-Temperature Particle Plumes

IF 2.1 4区 工程技术 Q3 ENERGY & FUELS Journal of Solar Energy Engineering-transactions of The Asme Pub Date : 2022-09-21 DOI:10.1115/1.4055703
Jesus D. Ortega, C. Ho, G. Anaya, P. Vorobieff, G. Mohan
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引用次数: 1

Abstract

The direct measurement of particle temperatures in particle-laden flows presents a unique challenge to thermometry due to the flow's transient and stochastic nature. Previous attempts to measure the bulk particle temperature of a dilute particle plume or particle curtain using intrusive and non-intrusive methods have been mildly successful. In this work, a non-intrusive method using a high-speed IR camera and a visible-light camera to yield an indirect particle temperature measurement technique is developed and tested. The image sequences obtained from the IR camera allow for the calculation of the apparent particle temperature, while the visible-light image sets allow for the calculation of the plume opacity as a function of flow discharge position. To extract the true particle temperature, a post-processing algorithm based on Planck's radiation theory was developed. The results were validated through a series of lab-scale tests at the University of New Mexico using a test rig capable of generating particle curtains at various temperatures. The temperature profiles extracted from the methodology presented were compared to the temperature data measured using the methodology outlined in this work yielding agreement of the bulk particle temperature of the plume within 10% error. The methods described here will be developed further to estimate the heat losses from the falling particle receiver at Sandia National Laboratories.
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一种基于红外和可见光图像序列的高温粒子羽流非侵入性粒子温度提取方法
由于颗粒流的瞬态和随机性,直接测量颗粒流中的颗粒温度对测温提出了独特的挑战。以前使用侵入和非侵入方法测量稀释颗粒羽流或颗粒幕的整体颗粒温度的尝试取得了一定的成功。在这项工作中,开发并测试了一种使用高速红外相机和可见光相机产生间接粒子温度测量技术的非侵入性方法。从IR相机获得的图像序列允许计算表观颗粒温度,而可见光图像集允许计算作为流量排放位置的函数的羽流不透明度。为了提取真实的粒子温度,开发了一种基于普朗克辐射理论的后处理算法。新墨西哥大学通过一系列实验室规模的测试验证了这一结果,该测试台能够在不同温度下产生粒子幕。将从所提出的方法中提取的温度剖面与使用本工作中概述的方法测量的温度数据进行比较,得出羽流的整体颗粒温度在10%误差范围内的一致性。这里描述的方法将进一步发展,以估计桑迪亚国家实验室下落粒子接收器的热损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.00
自引率
26.10%
发文量
98
审稿时长
6.0 months
期刊介绍: The Journal of Solar Energy Engineering - Including Wind Energy and Building Energy Conservation - publishes research papers that contain original work of permanent interest in all areas of solar energy and energy conservation, as well as discussions of policy and regulatory issues that affect renewable energy technologies and their implementation. Papers that do not include original work, but nonetheless present quality analysis or incremental improvements to past work may be published as Technical Briefs. Review papers are accepted but should be discussed with the Editor prior to submission. The Journal also publishes a section called Solar Scenery that features photographs or graphical displays of significant new installations or research facilities.
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