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Influence of Temperature Probes Installation on the Salient Pole to Temperature Measurement

Influence of Temperature Probes Installation on the Salient Pole to Temperature Measurement
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摘要 Accurate and reliable information about the temperature of the synchronous generators excitation winding hot spot is necessary to determine the dynamic limit caused by excitation winding overheating in the PQ diagram. For good estimation of a position and the hot spot temperature it is decided to mount 19 temperature probes on one pole of the 6-pole, 400 kVA. 50 llz synchronous generator. Due to a large number of the probes and because the probes should be glued with the metal epoxy it was assumed that mounting of the probes will disrupt the temperature field of the excitation winding. To get the answer to this question the excitation winding resistance was measured betbre and after mounting the probes, in a hot and a cold state. Temperature rise can be estimated if the resistance ratio in the hot and the cold state is known. The paper also addresses the analysis of the measurement accuracy. The result shows that, there is no significant influence on the temperature when mounting the 19 temperature probes which covered 10% of the pole excitation winding surface.
出处 《Journal of Energy and Power Engineering》 2011年第8期776-784,共9页 能源与动力工程(美国大卫英文)
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参考文献12

  • 1I. Ilic, Z. Maljkovic, I. Gasparac, M. Pavlica, D.I. Zubovic, V. Jaric, et al., Methodology for determining the actual PQ diagram of a hydrogenerators, Journal of Energy 56 (2) (2007) 141-181.
  • 2Z. Hanic, M. Vrazic, S. Stipetic, Some problems related to surface temperature measurement of synchronous generator excitation winding in rotation, in: 14th International Power Electronics and Motion Control Conference (EPE/PEMC), Ohrid, Republic of Macedonia, 2010.
  • 3M. Vrazic, I. Gasparac, M. Pavlica, Some problems of synchronous hydro-generator temperature measurement, in: ICEM 2008, Vilamoura, Portugal, Sept. 06-09, 2008, pp. 1-4. (ISBN: 978-1-4244-1736-0).
  • 4H.Y. Shen, J.Z. Fu, C.Z. Chen, Embedded system of temperature testing based on DS18B20, in: International Technology and Innovation Conference, Hangzhou, China, 2006, pp. 2223-2226.
  • 5M. Vrazic, S. Stipetic, Z. Hanic, Application of IR thermography to measurements on synchronous hydro-generator in rotation, in: Proceedings of the 10th edition of the Quantitive Infrared Thermography, Quebec, Canada, 2010. (ISBN: 978-2-9809199-1-6).
  • 6M. Vrazic, S. Stipetic, M. Kutija, Methodology of verifying IR temperature measurement on synchronous generator in rotation, in: International Conference on Electric Drives and Power Electronics, Dubrovnik, Croatia, Oct. 12-14, 2009. (ISBN: 978-953-6037-55-1).
  • 7C. Mejuto, M. Mueller. M. Shanel, A. Mebarki, M. Reekie, D. Staton, Improved synchronous machine thermal modelling, in: ICEM 2008, Vilamoura, Portugal, Sept. 06-09, 2008,.
  • 8O. Aglen, Loss calculation and thermal analysis of a hight-speed generator, in: IEMDC 2003, Madison, Wisconsin, USA, 2003, vol. 2, pp. 1117-1123.
  • 9A,Z. Sahin, M. Kalyon, The critical radius of insulation in thermal radiation environment, Journal of lteat and Mass Trasfer 40 (5) (2004) 377-382.
  • 10F.P. Incropera, D.P. DeWitt, T.L. Bergman, A.S. Lavine. Fundamentals of Heat and Mass Transfer, 6th ed.. John Wiley, 2007, pp. 116-125. (ISBN: 978-0-471-45728-2).

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