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流水式量热计温度测量技术研究

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作者:魏继锋, 张凯, 何均章, 关有光, 周山, 高学燕

作者单位:中国工程物理研究院应用电子学研究所, 四川绵阳 621900


关键词:响应; 温度测量; 水流; 热模型; 积分; 热传递


摘要:

在流水式量热计中温度传感器无法实时地反映流水温度变化,为了达到准确测量能量的目的,必须保证对应的温度积分值基本不受传感器响应时间的影响。为此建立了温度传感器的热模型,深入研究了水流温度在稳态和动态条件下温度传感器响应特性及其对温度积分值的影响,得出了在准稳态下,温度的积分值基本不受响应时间影响的结论。提出了一种采用强制热交换方式加快水流热交换,使得水流温度快速达到准稳态的方法,此方法在新型量热计系统中得到成功应用,并取得较好的效果,这也为其它类似积分型测量系统提供一个很好的借鉴,具有广阔的应用前景。


Temperature measurement technology research for water-flowing calorimeters

WEI Ji-feng, ZHANG Kai, HE Jun-zhang, GUAN You-guang, ZHOU Shan, Gao Xue-yan

Institute of Applied Electronics, CAEP, Mianyang 621900, China

Abstract: At present the temperature sensor in water-flowing calorimeters couldn't measure real-time water temperature.In order to measure the accurate energy, the corresponding temperature integral mustn't be affected by the response time of temperature sensors.The heat model of temperature sensor was established and the response characteristics of temperature sensors in the condition of dynamic or static water temperature were studied deeply.The results showed the corresponding temperature integral wouldn't be affected in the condition of quasi static water temperature.One method to make the water temperature get quasi static was suggested.In this method, compulsive heat transfer method was used to accelerate the water heat transfer, which was applied in the new calorimeters successfully and the application results were perfect.Thus, it was an important reference for other similar integral measure systems.All the above indicated its good prospect.

Keywords: Response; Temperature measurement; Water flow; Heat model; Integral; Heat transfer

2009, 35(1): 46-49  收稿日期: 2008-5-7;收到修改稿日期: 2008-8-15

基金项目: 

作者简介: 魏继锋(1980-),男,湖北孝感人,工程师,硕士,主要从事激光参数诊断技术研究。

参考文献

[1] Andrus G. Continuous wave dauteriun flouoride laser beam diagnostic system[J].SPIE,1988(888):66-67.
[2] Coloma A,Chablat J,Soscia M,et al. High power laser beam diagnostics:an application to the ETCA 25kW CO2 Laser[J].SPIE,1998(1024):20-24.
[3] 魏继锋,钱绍圣,张 凯,等.高能激光能量在线测试中的不确定度分析[J].中国计量,2007,143(10):76-77.
[4] Gilse J V, Koczera S,Greby D. Direct laser beam diagnostics[J].SPIE,1991(1414):45-54.
[5] Steiner T D,Butts R R,Kramer M A. The airbomne laser advanced concepts tested[J].SPIE,1998(3381):23-29.
[6] 苏 毅,万 敏,等.高能激光系统[M].北京:国防工业出版社,2004.
[7] 郭伟民,王宗源.温度传感器动态特性的试验和研究[J].仪表技术与传感器,1996,11(6):41-43.
[8] 方佩敏.热电偶基本知识[J].无线电,2004,16(10):61-62.
[9] Incropera F P,Dwitt D P, Bergman T L. Fundamentals of heat and mass transfer[M].Chemical Industry Publishment,2007.
[10] 陶文铨.数值传热学[M].西安:西安交大出版社,2001.
[11] 陈维汉.传热学[M].武汉:武汉理工大学出版社,2004.
[12] 曹玉璋,邱绪光.实验传热学[M].北京:国防工业出版社,1998.
[13] 俞佐平.传热学[M].2版.北京:高等教育出版社,1985.