氦
氩
材料科学
航程(航空)
大气温度范围
1990年国际温标
热力学温度
铝
铜
热力学
分析化学(期刊)
温度测量
谐振器
原子物理学
物理
化学
复合材料
校准
冶金
量子力学
光电子学
色谱法
作者
Michael R. Moldover,R. M. Gavioso,James B. Mehl,Laurent Pitre,Michael de Podesta,Jintao Zhang
出处
期刊:Metrologia
[IOP Publishing]
日期:2014-01-16
卷期号:51 (1): R1-R19
被引量:226
标识
DOI:10.1088/0026-1394/51/1/r1
摘要
We review the principles, techniques and results from primary acoustic gas thermometry (AGT). Since the establishment of ITS-90, the International Temperature Scale of 1990, spherical and quasi-spherical cavity resonators have been used to realize primary AGT in the temperature range 7 K to 552 K. Throughout the sub-range 90 K < T < 384 K, at least two laboratories measured (T − T90). (Here T is the thermodynamic temperature and T90 is the temperature on ITS-90.) With a minor exception, the resulting values of (T − T90) are mutually consistent within 3 × 10−6 T. These consistent measurements were obtained using helium and argon as thermometric gases inside cavities that had radii ranging from 40 mm to 90 mm and that had walls made of copper or aluminium or stainless steel. The AGT values of (T − T90) fall on a smooth curve that is outside ±u(T90), the estimated uncertainty of T90. Thus, the AGT results imply that ITS-90 has errors that could be reduced in a future temperature scale. Recently developed techniques imply that low-uncertainty AGT can be realized at temperatures up to 1350 K or higher and also at temperatures in the liquid-helium range.
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