Analysis of NTC thermistors self-heating effect in multiple thermal environments

被引:0
|
作者
Li, Jiahao [1 ]
Sun, Jianping [2 ]
Li, Yan [1 ]
Li, Ting [2 ]
Wang, Guangyao [2 ]
Feng, Weiwei [2 ]
Du, Lan [2 ]
Shan, Wei [3 ]
Sun, Liquan [2 ]
机构
[1] China Univ Petr, Beijing 102249, Peoples R China
[2] Natl Inst Metrol, Beijing 100029, Peoples R China
[3] Tiangong Univ, Tianjin 300387, Peoples R China
关键词
Calibration; Thermometry; Negative temperature coefficient (NTC); thermistor thermometer; Self-heating; uncertainty;
D O I
10.1016/j.ijthermalsci.2024.109668
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study analyzes the self-heating effect of the negative temperature coefficient thermistors in multiple thermal environments. Six thermistors were tested to explore the influence of excitation current, temperature, and mediums on the self-heating effect. The thermistors were measured at the water triple point (0.12 mK, k = 2) and the melting point of gallium (0.45 mK, k = 2) cells. Subsequently, a thermostatic bath equipped with a heat pipe was used to calibrate the thermistors and measure their self-heating effect within -5 degrees C-35 degrees C. The calibration uncertainty was estimated to be 0.60 mK (k = 2). The self-heating effect of thermistors increases with higher current and decreases with rising temperature. The temperature difference between currents of 0.01 mA and 0.05 mA was approximately 50 mK at the water triple point and 15 mK at the gallium fixed-point. Self-heating in the thermostatic bath was about one-third of that in fixed points. Computational fluid dynamics simulation results corroborated these findings, aligning well with experimental measurements. To ensure accurate measurements, it is crucial to maintain consistent conditions and medium when calibrating and using the thermistors.
引用
收藏
页数:9
相关论文
共 50 条
  • [11] THERMAL IGNITION OF SELF-HEATING POROUS SLAB
    KORDYLEWSKI, W
    KRAJEWSKI, Z
    COMBUSTION AND FLAME, 1981, 41 (02) : 113 - 122
  • [12] Thermal impedance measurement of a self-heating probe
    Horn, M
    2005 IEEE SENSORS, VOLS 1 AND 2, 2005, : 904 - 907
  • [13] The Effect of Sulphide Mixtures on Self-Heating
    Payant, R. A.
    Finch, J. A.
    CANADIAN METALLURGICAL QUARTERLY, 2010, 49 (04) : 429 - 434
  • [14] A study of the self-heating of fresh and oxidized coals by differential thermal analysis
    Pis, JJ
    delaPuente, G
    Fuente, E
    Moran, A
    Rubiera, F
    THERMOCHIMICA ACTA, 1996, 279 : 93 - 101
  • [15] Modeling the self-heating effect in SiGeHBTs
    Mnif, H
    Zimmer, T
    Battaglia, JL
    Ardouin, B
    PROCEEDINGS OF THE 2002 BIPOLAR/BICMOS CIRCUITS AND TECHNOLOGY MEETING, 2002, : 96 - 99
  • [16] Self-heating effect compensation in HBTs and its analysis and simulation
    Zhu, Y
    Twynam, JK
    Yagura, M
    Hasegawa, M
    Hasegawa, T
    Eguchi, Y
    Amano, Y
    Suematsu, E
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 2001, 48 (11) : 2640 - 2646
  • [17] Effect of minerals on the self-heating retorting of oil shale: Self-heating effect and shale-oil production
    Guo, Hongfan
    Lin, Jiadong
    Yang, Yindong
    Liu, Yunyi
    FUEL, 2014, 118 : 186 - 193
  • [18] Thermal batteries modeling, self-discharge and self-heating
    Schoeffert, S
    JOURNAL OF POWER SOURCES, 2005, 142 (1-2) : 361 - 369
  • [19] Evaluation of self-heating and spontaneous combustion risk of biomass and fishmeal with thermal analysis (DSC-TG) and self-heating substances test experiments
    Luo, Quanbing
    Liang, Dong
    Shen, Hao
    THERMOCHIMICA ACTA, 2016, 635 : 1 - 7
  • [20] OLEDs: light-emitting thin film thermistors revealing advanced self-heating effects
    Fischer, Axel
    Koprucki, Thomas
    Glitzky, Annegret
    Liero, Matthias
    Gaertner, Klaus
    Hauptmann, Jacqueline
    Reineke, Sebastian
    Kasemann, Daniel
    Luessem, Bjoern
    Leo, Karl
    Scholz, Reinhard
    ORGANIC LIGHT EMITTING MATERIALS AND DEVICES XIX, 2015, 9566