Accelerated 2D Cartesian MRI with an 8‐channel local B0 coil array combined with parallel imaging

Author:

Tian Rui1ORCID,Uecker Martin2345ORCID,Davids Mathias67ORCID,Thielscher Axel89,Buckenmaier Kai1,Holder Oliver1,Steffen Theodor1,Scheffler Klaus110ORCID

Affiliation:

1. High‐Field MR center Max Planck Institute for Biological Cybernetics Tübingen Germany

2. Institute of Biomedical Imaging Graz University of Technology Graz Austria

3. Institute for Diagnostic and Interventional Radiology University Medical Center Göttingen Göttingen Germany

4. German Centre for Cardiovascular Research (DZHK) Partner Site Göttingen Göttingen Germany

5. BioTechMed‐Graz Graz Austria

6. A. A. Martinos Center for Biomedical Imaging, Department of Radiology Massachusetts General Hospital Charlestown Massachusetts USA

7. Harvard Medical School Boston Massachusetts USA

8. Department of Health Technology Technical University of Denmark Kongens Lyngby Denmark

9. Danish Research Centre for Magnetic Resonance, Centre for Functional and Diagnostic Imaging and Research Copenhagen University Hospital Amager and Hvidovre Hvidovre Denmark

10. Department for Biomedical Magnetic Resonance University of Tübingen Tübingen Germany

Abstract

AbstractPurposeIn MRI, the magnetization of nuclear spins is spatially encoded with linear gradients and radiofrequency receivers sensitivity profiles to produce images, which inherently leads to a long scan time. Cartesian MRI, as widely adopted for clinical scans, can be accelerated with parallel imaging and rapid magnetic field modulation during signal readout. Here, by using an 8‐channel local coil array, the modulation scheme optimized for sampling efficiency is investigated to speed up 2D Cartesian scans.Theory and MethodsAn 8‐channel local coil array is made to carry sinusoidal currents during signal readout to accelerate 2D Cartesian scans. An MRI sampling theory based on reproducing kernel Hilbert space is exploited to visualize the efficiency of nonlinear encoding in arbitrary sampling duration. A field calibration method using current monitors for local coils and the ESPIRiT algorithm is proposed to facilitate image reconstruction. Image acceleration with various modulation field shapes, aliasing control, and distinct modulation frequencies are scrutinized to find an optimized modulation scheme. A safety evaluation is conducted. In vivo 2D Cartesian scans are accelerated by the local coils.ResultsFor 2D Cartesian MRI, the optimal modulation field by this local array converges to a nearly linear gradient field. With the field calibration technique, it accelerates the in vivo scans (i.e., proved safe) by threefold and eightfold free of visible artifacts, without and with SENSE, respectively.ConclusionThe nonlinear encoding analysis tool, the field calibration method, the safety evaluation procedures, and the in vivo reconstructed scans make significant steps to push MRI speed further with the local coil array.

Publisher

Wiley

Subject

Radiology, Nuclear Medicine and imaging

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