Magnetic resonance imaging at high magnetic fields

被引:0
作者
Fitzsimmons, JR [1 ]
Duensing, GR [1 ]
Peterson, DM [1 ]
机构
[1] Univ Florida, Dept Radiol, Gainesville, FL 32601 USA
来源
EXPLOITING NEW IMAGE SOURCES AND SENSORS, 26TH AIPR WORKSHOP | 1998年 / 3240卷
关键词
magnetic resonance imaging; high magnetic fields; radio frequency probes; coils;
D O I
10.1117/12.300053
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Magnetic Resonance imaging (MRI) has made significant advances since its introduction over fifteen years ago. The technology has been driven by a combination of higher magnetic fields, more efficient pulse sequence design and technical advances in transducer technology associated with the capture of weak magnetic resonance signals. This paper explores those advances with particular emphasis on state of the art high field MRI systems and the latest radio frequency (RF) transducers or RF coils as they are commonly referred to. The design and construction of large bore (human body sized) magnets operating at high magnetic fields (3 Tesla and above) has been the special purview of a limited number of engineering companies while the design and construction of RF coils has been addressed by a wider range of physicists and engineers working at major universities as well as those engineers working within industry. Our work at the University of Florida has been mainly focused on developing these RF coils to address the unique problems presented by operating at high magnetic fields and frequencies.
引用
收藏
页码:156 / 167
页数:12
相关论文
共 50 条
  • [21] Magnetic Nanoparticles in Magnetic Resonance Imaging and Diagnostics
    Ruemenapp, Christine
    Gleich, Bernhard
    Haase, Axel
    PHARMACEUTICAL RESEARCH, 2012, 29 (05) : 1165 - 1179
  • [22] Stroke: High-Field Magnetic Resonance Imaging
    Loevblad, Karl-Olof
    Haller, Sven
    Pereira, Vitor Mendes
    NEUROIMAGING CLINICS OF NORTH AMERICA, 2012, 22 (02) : 191 - +
  • [23] Magnetic Nanoparticles in Magnetic Resonance Imaging and Diagnostics
    Christine Rümenapp
    Bernhard Gleich
    Axel Haase
    Pharmaceutical Research, 2012, 29 : 1165 - 1179
  • [24] High field strength magnetic resonance imaging in children
    Goo, Hyun Woo
    JOURNAL OF THE KOREAN MEDICAL ASSOCIATION, 2010, 53 (12): : 1093 - 1102
  • [25] Peripheral nerve stimulation by gradient switching fields in magnetic resonance imaging
    So, PPM
    Stuchly, MA
    Nyenhuis, JA
    IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2004, 51 (11) : 1907 - 1914
  • [26] Magnetic resonance imaging of neonates in the magnetic resonance compatible incubator
    Bekiesinska-Figatowska, Monika
    Helwich, Ewa
    Rutkowska, Magdalena
    Stankiewicz, Joanna
    Terczynska, Iwona
    ARCHIVES OF MEDICAL SCIENCE, 2016, 12 (05) : 1064 - 1070
  • [27] Imaging Methods: Magnetic Resonance Imaging
    Thomas, Katharine E.
    Fotaki, Anastasia
    Botnar, Rene M.
    Ferreira, Vanessa M.
    CIRCULATION-CARDIOVASCULAR IMAGING, 2023, 16 (01) : E014068
  • [28] Compressed sensing trends in magnetic resonance imaging
    Sandilya, Mrinmoy
    Nirmala, S. R.
    ENGINEERING SCIENCE AND TECHNOLOGY-AN INTERNATIONAL JOURNAL-JESTECH, 2017, 20 (04): : 1342 - 1352
  • [29] Simultaneous enhancement of T1 and T2 magnetic resonance imaging of liver tumor at respective low and high magnetic fields
    Li, Huan
    Hai, Zijuan
    Zou, Liwei
    Zhang, Lele
    Wang, Lulu
    Wang, Longsheng
    Liang, Gaolin
    THERANOSTICS, 2022, 12 (01): : 410 - 417
  • [30] Magnetic resonance imaging of atherosclerosis
    T. Leiner
    S. Gerretsen
    R. Botnar
    E. Lutgens
    V. Cappendijk
    E. Kooi
    J. van Engelshoven
    European Radiology, 2005, 15 : 1087 - 1099