Magnetic Resonance Instrument & Technology

A New Method and Circuit of Ringing Suppression for Low-field NMR Instruments

  • Guanghui SHI ,
  • Lizhi XIAO ,
  • Guangzhi LIAO ,
  • Sihui LUO ,
  • Xueli HOU ,
  • Yapu LU
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  • 1. State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum, Beijing 102249, China
    2. College of Geophysics, China University of Petroleum, Beijing 102249, China
    3. Harvard SEAS-CUPB Joint Lab. on Petroleum Science, Cambridge, MA 02138, USA
    4. China National Logging CO. LTD., Xi’an 710077, China

Received date: 2022-05-12

  Online published: 2022-08-26

Abstract

Accelerating the release of the antenna residual energy to weaken the antenna ringing signal is beneficial to shorten the echo time (TE) of low-field nuclear magnetic resonance (NMR) instruments, thus improving the measurement resolution and signal-to-noise ratio (SNR) of fast relaxation components. The antenna Q value has an opposite effect on the energy emission efficiency and discharge speed. For this reason, we first designed a new Q-switch circuit, which can greatly shorten the energy discharge time while ensuring the transmission efficiency. On this basis, an optimized pulse sequence was applied to overcome the defect that traditional phase alternated pair stacking (PAPs) cannot eliminate 90° pulse ringing, and the SNR was further improved by the method of phase cycling. Finally, the new Q-switch circuit was tested on a 2 MHz core analyzer, the Q value of the antenna was reduced to about 1/5 of the transmit period, and the antenna recovery time was reduced from 280.0 μs to 18.2 μs. Moreover, with the new Q-switch circuit and optimized pulse sequence, the T2 signal of the fast relaxation component can be effectively obtained when TE=60 μs.

Cite this article

Guanghui SHI , Lizhi XIAO , Guangzhi LIAO , Sihui LUO , Xueli HOU , Yapu LU . A New Method and Circuit of Ringing Suppression for Low-field NMR Instruments[J]. Chinese Journal of Magnetic Resonance, 2023 , 40(1) : 68 -78 . DOI: 10.11938/cjmr20223002

References

[1] XIAO L Z. Design and implementation of NMR system in downhole extreme conditions[J]. J China U Petrol (Edition of Natural Science), 2013, 37(5): 44-56.
[1] 肖立志. 井下极端条件下核磁共振探测系统研制[J]. 中国石油大学学报(自然科学版), 2013, 37(5): 44-56.
[2] 肖立志, 谢然红, 廖广志. 中国复杂油气藏核磁共振测井理论与方法[M]. 北京: 科学出版社, 2012.
[3] ANDREW E R, JURGA K. NMR probe with short recovery time[J]. J Magn Reson, 1987, 73(2): 268-276.
[4] SHI G H, XIAO L Z, LUO S H, et al. Optimization of shaped pulses for radio frequency excitation in NMR logging[J]. Rev Sci Instrum, 2021, 92(11): 114502.
[5] FENG T, CHEN J F, ZHANG Z, et al. A design of short dead-time RF coil and RF switch for low-field NMR[J]. Chinese J Magn Reson, 2021, 38(1): 1-11.
[5] 冯涛, 陈俊飞, 张震, 等. 低场核磁共振短死时间射频线圈与射频开关的设计[J]. 波谱学杂志, 2021, 38(1): 1-11.
[6] 于慧俊. 核磁共振测井仪电子线路的设计与验证[D]. 北京: 中国石油大学(北京), 2012.
[7] SUN B Q, REZA T. Method for eliminating ringing during a nuclear magnetic resonance measurement[P]. US, 6,121,774. 2000-9-19.
[8] MANFRED G P. Pulse sequence and method for suppression of magneto-acoustic artifacts in NMR data[P]. US, 6,204,663 B1. 2001-3-20.
[9] FUKUSHIMA E, ROEDER S B W. Spurious ringing in pulse NMR[J]. J Magn Reson, 1979, 33: 199-203.
[10] PESHKOVSKY A S, FORGUEZ J, CERIONI L, et al. RF probe recovery time reduction with a novel active ringing suppression circuit[J]. J Magn Reson, 2005, 177(1): 67-73.
[11] HOULT D I. Fast recovery, high sensitivity NMR probe and preamplifier for low frequencies[J]. Rev Sci Instrum, 1979, 50(2): 193-200.
[12] MITCHELL J, CHANDRASEKERA T C, JOHNS M L, et al. Nuclear magnetic resonance relaxation and diffusion in the presence of internal gradients: the effect of magnetic field strength[J]. Phys Rev E, 2010, 81(2): 026101.
[13] CASANOVA F, PERLO J, BLüMICH B. Single-sided NMR[M]. Springer Berlin Heidelberg, 2011: 1-10.
[14] NACHER P J, KUMARAGAMAGE S, TASTEVIN G, et al. A fast MOSFET RF switch for low-field NMR and MRI[J]. J Magn Reson, 2019, 310(2): 106638
[15] ZHEN J Z, O’NEILL K T, FRIDJONSSON E O, et al. A resistive Q-switch for low-field NMR systems[J]. J Magn Reson, 2017, 287(1): 33-40
[16] HOPPER T, MANDAL S, CORY D, et al. Low-frequency NMR with a non-resonant circuit[J]. J Magn Reson, 2011, 210(2): 69-74.
[17] 肖立志. 井下极端环境下核磁共振科学仪器[M]. 北京: 科学出版社, 2016.
[18] LUO S H, XIAO L Z, ZONG F R, et al. Inside-out azimuthally selective NMR tool using array coil and capacitive decoupling[J]. J Magn Reson, 2020, 315: 106735.
[19] SIGAL R F, MILLER D L, GALFORD J E, et al. A method for enhancing the vertical resolution of NMR logs[C]. SPE Annu Tech Conf Exhib, Dallas, Texas, 1-4 October 2000.
[20] XIAO L Z, LIAO G Z, DENG F, et al. Development of an NMR system for down-hole porous rocks[J]. Micro Meso Mater, 2015, 205: 16-20.
[21] 中国石油大学北京. 消除振铃的核磁共振回波串获取方法[P]. 中国, 10404043.2, 2014-06-18.
[22] MENG K, WANG S J, XUE Z A, et al. Quantitative evaluation of shape pore structure using nuclear magnetic resonance data[J]. Chinese J Magn Reson, 2021, 38(2): 215-226.
[22] 孟昆, 王胜建, 薛宗安, 等. 利用核磁共振资料定量评价页岩孔隙结构[J]. 波谱学杂志, 2021, 38(2): 215-226.
[23] YAO S Q, XU J C, SHEN M, et al. Design of broadband T/R switch for magnetic resonance[J]. Chinese J Magn Reson, 2022, 39(1): 115-122.
[23] 姚守权, 徐俊成, 沈明, 等. 宽带磁共振T/R开关的设计与实现[J]. 波谱学杂志, 2022, 39(1): 115-122.
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