Daoyuan Wang , Jinjun Deng , Yuchao Yan , Jian Luo , Binghe Ma , Weizheng Yuan
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The specific property of constant overheat ratios under varying temperatures for constant current driving mode is found and a quite simple temperature correction function is derived on that basis to eliminate the temperature dependence without any assumed heat transfer correlation. With the correction function, the data at different ambient temperatures are collapsed to single curves with high <em>R</em><sup>2</sup> factors over 0.99, typically. Furthermore, after correction, the relative errors of the measured wall-shear stress are reduced to within ±6 % of the true values. It will then enable the constant current hot-film sensors to calibrate at only one ambient temperature instead of a multiple range of temperatures as with many other schemes, which is more practical and convenient.</p></div>","PeriodicalId":50440,"journal":{"name":"Flow Measurement and Instrumentation","volume":"97 ","pages":"Article 102616"},"PeriodicalIF":2.3000,"publicationDate":"2024-05-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Temperature dependence of constant current hot-film sensors: Investigation with application to temperature correction for wall-shear stress measurements\",\"authors\":\"Daoyuan Wang , Jinjun Deng , Yuchao Yan , Jian Luo , Binghe Ma , Weizheng Yuan\",\"doi\":\"10.1016/j.flowmeasinst.2024.102616\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Hot-film sensors measure wall-shear stress based on the forced convective heat transfer. 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引用次数: 0
摘要
热膜传感器根据强制对流传热测量壁面剪切应力。环境温度的变化会导致此类热敏传感器出现明显的测量误差,有时必须加以校正。尽管多年来已经有人提出了修正恒温或恒压模式下驱动的热膜传感器温度偏移的方法,但恒定电流工作模式的温度依赖性和相关修正方案仍是未决问题。在本研究中,研究了恒定电流热膜传感器在相对较大的气流和水流温度变化(分别为 28 °C 和 16 °C)条件下的温度依赖特性。研究发现了恒流驱动模式下温度变化时过热率恒定的特性,并在此基础上推导出了一个相当简单的温度修正函数,以消除温度依赖性,而无需假定任何传热相关性。利用该修正函数,不同环境温度下的数据被整理成单一曲线,R2系数通常超过 0.99。此外,经过校正后,测得的壁面剪切应力的相对误差会减小到真实值的±6%以内。这样,恒流热膜传感器就可以只在一个环境温度下进行校准,而不是像许多其他方案那样在多个温度范围内进行校准,这更加实用和方便。
Temperature dependence of constant current hot-film sensors: Investigation with application to temperature correction for wall-shear stress measurements
Hot-film sensors measure wall-shear stress based on the forced convective heat transfer. Variations of ambient temperatures lead to significant measurement errors for such thermal sensors and must be corrected for sometimes. Although methods for correcting the temperature shifts of hot-film sensors driven in constant temperature or constant voltage mode have been suggested over the years, the temperature dependence and relevant correction schemes of constant current mode of operation are still open questions. In this study, temperature dependence characteristics of constant current hot-film sensors are investigated within relatively large temperature changes in air and water channel flows (28 °C and 16 °C, respectively). The specific property of constant overheat ratios under varying temperatures for constant current driving mode is found and a quite simple temperature correction function is derived on that basis to eliminate the temperature dependence without any assumed heat transfer correlation. With the correction function, the data at different ambient temperatures are collapsed to single curves with high R2 factors over 0.99, typically. Furthermore, after correction, the relative errors of the measured wall-shear stress are reduced to within ±6 % of the true values. It will then enable the constant current hot-film sensors to calibrate at only one ambient temperature instead of a multiple range of temperatures as with many other schemes, which is more practical and convenient.
期刊介绍:
Flow Measurement and Instrumentation is dedicated to disseminating the latest research results on all aspects of flow measurement, in both closed conduits and open channels. The design of flow measurement systems involves a wide variety of multidisciplinary activities including modelling the flow sensor, the fluid flow and the sensor/fluid interactions through the use of computation techniques; the development of advanced transducer systems and their associated signal processing and the laboratory and field assessment of the overall system under ideal and disturbed conditions.
FMI is the essential forum for critical information exchange, and contributions are particularly encouraged in the following areas of interest:
Modelling: the application of mathematical and computational modelling to the interaction of fluid dynamics with flowmeters, including flowmeter behaviour, improved flowmeter design and installation problems. Application of CAD/CAE techniques to flowmeter modelling are eligible.
Design and development: the detailed design of the flowmeter head and/or signal processing aspects of novel flowmeters. Emphasis is given to papers identifying new sensor configurations, multisensor flow measurement systems, non-intrusive flow metering techniques and the application of microelectronic techniques in smart or intelligent systems.
Calibration techniques: including descriptions of new or existing calibration facilities and techniques, calibration data from different flowmeter types, and calibration intercomparison data from different laboratories.
Installation effect data: dealing with the effects of non-ideal flow conditions on flowmeters. Papers combining a theoretical understanding of flowmeter behaviour with experimental work are particularly welcome.