Forward Modeling Steady-State Free Precession in Surface NMR

被引:8
作者
Griffiths, Matthew P. [1 ,2 ]
Grombacher, Denys [2 ,3 ,4 ]
Liu, Lichao [3 ]
Vang, Mathias O.
Larsen, Jakob Juul [1 ,2 ]
机构
[1] Aarhus Univ, Dept Elect & Comp Engn, DK-8200 Aarhus, Denmark
[2] Aarhus Univ, Aarhus Ctr Water Technol, DK-8000 Aarhus, Denmark
[3] Aarhus Univ, Dept Geosci, Hydrogeophys Grp, DK-8000 Aarhus, Denmark
[4] Aarhus Univ, Aarhus Ctr Water Technol, DK-8000 Aarhus, Denmark
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 2022年 / 60卷
基金
加拿大自然科学与工程研究理事会;
关键词
Hydrogeophysics; numerical modeling; surface nuclear magnetic resonance (NMR); NUCLEAR-MAGNETIC-RESONANCE; INDUCTION; DECAY;
D O I
10.1109/TGRS.2022.3221624
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
In efforts to map water at depth, steady-state free precession (SSFP) sequences promise to rapidly increase data acquisition rates in the practice of surface nuclear magnetic resonance (NMR). Unlike conventional surface NMR excitation schemes, pulses in SSFP are transmitted so frequently that the nuclear magnetization of hydrogen in water cannot return to its natural alignment with the Earth's ambient magnetic field, and instead achieve a steady-state; a dynamic equilibrium between pulses. Unfortunately, the traditional formulations of SSFP sequences and the full surface NMR forward models are not immediately compatible with each other. First, the traditional analysis of SSFP sequences assumes that relaxation during pulse (RDP) effects is negligible, which is not always valid in surface NMR. Second, even for single-pulse measurement, the surface NMR forward model can be computationally demanding; this challenge scales with the number of pulses. Here, we investigate the incorporation of RDP effects on the dynamic equilibrium of SSFP measurement. This is then incorporated into the full surface NMR forward model by deriving the analytical expressions to directly predict processed surface NMR data. The model is validated by jointly inverting an extensive and diverse suite of SSFP measurement, 12 distinct sequences each with 16 pulse moments. The inverted model has a data misfit of 0.99 and is consistent with models derived from standard NMR data. The ability of our forward model to reproduce diverse signals and jointly invert them is a strong indication of its validity.
引用
收藏
页数:10
相关论文
共 30 条
[1]   An overview of a highly versatile forward and stable inverse algorithm for airborne, ground-based and borehole electromagnetic and electric data [J].
Auken, Esben ;
Christiansen, Anders Vest ;
Kirkegaard, Casper ;
Fiandaca, Gianluca ;
Schamper, Cyril ;
Behroozmand, Ahmad Ali ;
Binley, Andrew ;
Nielsen, Emil ;
Efferso, Flemming ;
Christensen, Niels Boie ;
Sorensen, Kurt ;
Foged, Nikolaj ;
Vignoli, Giulio .
EXPLORATION GEOPHYSICS, 2015, 46 (03) :223-235
[2]   A Review of the Principles and Applications of the NMR Technique for Near-Surface Characterization [J].
Behroozmand, Ahmad A. ;
Keating, Kristina ;
Auken, Esben .
SURVEYS IN GEOPHYSICS, 2015, 36 (01) :27-85
[3]   SSFP Signal With Finite RF Pulses [J].
Bieri, Oliver ;
Scheffler, Klaus .
MAGNETIC RESONANCE IN MEDICINE, 2009, 62 (05) :1232-1241
[4]  
BLOCH F, 1946, PHYS REV, V70, P460, DOI 10.1103/PhysRev.70.460
[5]   NUCLEAR INDUCTION IN INHOMOGENEOUS FIELDS [J].
BLOOM, AL .
PHYSICAL REVIEW, 1955, 98 (04) :1105-1111
[6]   STEADY-STATE FREE PRECESSION IN NUCLEAR MAGNETIC RESONANCE [J].
CARR, HY .
PHYSICAL REVIEW, 1958, 112 (05) :1693-1701
[7]   The internal magnetic field distribution, and single exponential magnetic resonance free induction decay, in rocks [J].
Chen, Q ;
Marble, AE ;
Colpitts, BG ;
Balcom, BJ .
JOURNAL OF MAGNETIC RESONANCE, 2005, 175 (02) :300-308
[8]   PHASE AND INTENSITY ANOMALIES IN FOURIER TRANSFORM NMR [J].
FREEMAN, R ;
HILL, HDW .
JOURNAL OF MAGNETIC RESONANCE, 1971, 4 (03) :366-&
[9]   Efficient numerical Bloch solutions for multipulse surface NMR [J].
Griffiths, Matthew P. ;
Grombacher, Denys J. ;
Larsen, Jakob Juul .
GEOPHYSICAL JOURNAL INTERNATIONAL, 2021, 227 (03) :1905-1916
[10]   Steady-State Surface NMR for Mapping of Groundwater [J].
Grombacher, D. ;
Liu, L. ;
Griffiths, M. P. ;
Vang, M. O. ;
Larsen, J. J. .
GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (23)