Design and Implementation of NMR Permanent Magnet Precision Temperature Controller

  • YANG Chang ,
  • CHEN Jun-fei ,
  • CHEN Li ,
  • ZHANG Zhi ,
  • FENG Ji-wen ,
  • CHEN Fang ,
  • LIU Chao-yang
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  • 1. State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, National Center for Magnetic Resonance in Wuhan, CAS Key Laboratory of Bio-magnetic Resonance Analysis(Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences), Wuhan 430071, China;
    2. University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2018-04-16

  Online published: 2018-08-28

Abstract

Neodymium-iron-boron (NdFeB) permanent magnets always used to generate a static magnetic field in low field NMR spectrometers has poor temperature stability. Temperature fluctuations will affect the reliability of NMR experiments. In order to improve the stability of low-field magnetic resonance spectrometer, a precise temperature control scheme of permanent magnet based on dual-loop control algorithm was proposed and verified on 0.06 T NMR spectrometer. The results show that the 24 h temperature control accuracy is better than ±0.005℃. And the drift in 1H resonance frequency decreases from 255 Hz to 15 Hz within 0.5 h, and from 4 950 Hz to 145 Hz within 24 h, compared to that without temperature control. That improves the stability of low-field NMR spectrometer with permanent magnet effectively.

Cite this article

YANG Chang , CHEN Jun-fei , CHEN Li , ZHANG Zhi , FENG Ji-wen , CHEN Fang , LIU Chao-yang . Design and Implementation of NMR Permanent Magnet Precision Temperature Controller[J]. Chinese Journal of Magnetic Resonance, 2018 , 35(3) : 294 -302 . DOI: 10.11938/cjmr20182632

References

[1] ZHANG Y, BLÜMICH B. Gint2D-T2 correlation NMR of porous media[J]. J Magn Reson, 2015, 252:176-186.
[2] ZHANG Y, XIAO L Z, LIAO G Z, et al. Direct correlation of diffusion and pore size distributions with low field NMR[J]. J Magn Reson, 2016, 269:196-202.
[3] LIU H B, NOGUEIRA D E M, OBRUCHKOV S, et al. Determining pore length scales and pore surface relaxivity of rock cores by internal magnetic fields modulation at 2MHz NMR[J]. J Magn Reson, 2014, 246:110-118.
[4] MITCHELL J. Rapid measurements of heterogeneity in sandstones using low-field nuclear magnetic resonance[J]. J Magn Reson, 2014, 240:52-60.
[5] LEWIS R T, DJURHUUS K, SELAND J G. Characterising oil and water in porous media using decay due to diffusion in the internal field[J]. J Magn Reson, 2015, 259:1-9.
[6] 陈海玲. 钕铁硼永磁材料热稳定性快速检测方法的研究[D]. 沈阳:沈阳工业大学, 2005.
[7] 胡志华. 烧结Nd-Fe-B磁体的磁性能、温度稳定性以及冲击韧性研究[D]. 沈阳:东北大学, 2009.
[8] KIM S H, DOOSE C. Temperature compensation of NdFeB permanent magnets[C]//IEEE:Particle Accelerator Conference, 1998, 3:3227-3229.
[9] YAO B L, LIN Y, LIU X Q. Analysis of thermal performance of NdFeB permanent magnet[J]. Electric Machines & Control Application, 2008, 35(4):52-55. 姚丙雷, 林岩, 刘秀芹. 钕铁硼永磁材料热性能的分析[J]. 电机与控制应用, 2008, 35(4):52-55.
[10] 利格斯迈尔著, 张聚译. 嵌入式系统软件工程-基础知识, 方法和应用[M]. 北京:电子工业出版社, 2009.
[11] 乔治·埃利斯著, 汤晓君译. 控制系统设计指南[M]. 北京:机械工业出版社, 2016.
[12] HE Y G, FENG J W, ZHANG Z, et al. A peripheral component interconnect express-based scalable and highly integrated pulsed spectrometer for solution state dynamic nuclear polarization[J]. Rev Sci Instrum, 2015, 86(8):083101.
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