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Result : Searchterm 'Field Gradient' found in 2 terms [] and 52 definitions []
| previous 31 - 35 (of 54) nextResult Pages : [1] [2 3 4 5 6 7 8 9 10 11] | | | | Searchterm 'Field Gradient' was also found in the following services: | | | | |
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Chest MRI a viable alternative to chest CT in COVID-19 pneumonia follow-up Monday, 21 September 2020 by www.healthimaging.com | | |
CT Imaging Features of 2019 Novel Corona virus (2019-nCoV) Tuesday, 4 February 2020 by pubs.rsna.org | | |
Polarean Imaging Phase III Trial Results Point to Potential Improvements in Lung Imaging Wednesday, 29 January 2020 by www.diagnosticimaging.com | | |
Low Power MRI Helps Image Lungs, Brings Costs Down Thursday, 10 October 2019 by www.medgadget.com | | |
Chest MRI Using Multivane-XD, a Novel T2-Weighted Free Breathing MR Sequence Thursday, 11 July 2019 by www.sciencedirect.co | | |
Researchers Review Importance of Non-Invasive Imaging in Diagnosis and Management of PAH Wednesday, 11 March 2015 by lungdiseasenews.com | | |
New MRI Approach Reveals Bronchiectasis' Key Features Within the Lung Thursday, 13 November 2014 by lungdiseasenews.com | | |
MRI techniques improve pulmonary embolism detection Monday, 19 March 2012 by medicalxpress.com |
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In the 1930's, Isidor Isaac Rabi (Columbia University) succeeded in detecting and measuring single states of rotation of atoms and molecules, and in determining the mechanical and magnetic moments of the nuclei.
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Felix Bloch (Stanford University) and Edward Purcell (Harvard University) developed instruments, which could measure the magnetic resonance in bulk material such as liquids and solids. (Both honored with the Nobel Prize for Physics in 1952.) [The birth of the NMR spectroscopy]
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In the early 70's, Raymond Damadian (State University of New York) demonstrated with his NMR device, that there are different T1 relaxation times between normal and abnormal tissues of the same type, as well as between different types of normal tissues.
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In 1973, Paul Lauterbur (State University of New York) described a new imaging technique that he termed Zeugmatography. By utilizing gradients in the magnetic field, this technique was able to produce a two-dimensional image (back-projection). (Through analysis of the characteristics of the emitted radio waves, their origin could be determined.) Peter Mansfield further developed the utilization of gradients in the magnetic field and the mathematically analysis of these signals for a more useful imaging technique. (Paul C Lauterbur and Peter Mansfield were awarded with the 2003 Nobel Prize in Medicine.)
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1977/78: First images could be presented.
A cross section through a finger by Peter Mansfield and Andrew A. Maudsley.
Peter Mansfield also could present the first image through the abdomen.
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In 1977, Raymond Damadian completed (after 7 years) the first MR scanner (Indomitable). In 1978, he founded the FONAR Corporation, which manufactured the first commercial MRI scanner in 1980. Fonar went public in 1981.
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1981: Schering submitted a patent application for Gd-DTPA dimeglumine.
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1982: The first 'magnetization-transfer' imaging by Robert N. Muller.
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In 1983, Toshiba obtained approval from the Ministry of Health and Welfare in Japan for the first commercial MRI system.
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1986: Jürgen Hennig, A. Nauerth, and Hartmut Friedburg (University of Freiburg) introduced RARE (rapid acquisition with relaxation enhancement) imaging. Axel Haase, Jens Frahm, Dieter Matthaei, Wolfgang Haenicke, and Dietmar K. Merboldt (Max-Planck-Institute, Göttingen) developed the FLASH ( fast low angle shot) sequence.
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1988: Schering's MAGNEVIST gets its first approval by the FDA.
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In 1991, fMRI was developed independently by the University of Minnesota's Center for Magnetic Resonance Research (CMRR) and Massachusetts General Hospital's (MGH) MR Center.
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From 1992 to 1997 Fonar was paid for the infringement of it's patents from 'nearly every one of its competitors in the MRI industry including giant multi-nationals as Toshiba, Siemens, Shimadzu, Philips and GE'.
| | | | | | • View the DATABASE results for 'MRI History' (6).
| | | • View the NEWS results for 'MRI History' (1).
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This effect is an additional electrical charge generated by ions in blood (loaded particles) moving perpendicular to the magnetic field.
At 1.5 T, no significant changes are expected; at 6.0 T a 10% blood pressure change is expected.
A blood pressure increase is predicted theoretically for a field of 10 T. This is claimed to be caused by interaction of induced electrical potentials and currents within a solution, e.g. blood, and an electrical volume force causing a retardation in the direction opposite to the fluid flow. This decrease in blood flow-velocity must be compensated for by an elevation in pressure.
Static magnetic field gradients of 0.01 T/cm (100 G/cm) make no significant difference in the membrane transport processes. The influence of a static magnetic field upon erythrocytes is not sufficient to provoke sedimentation, as long as there is a normal blood circulation.
The magnetohydrodynamic effect which results from a voltage occurring across a vessel in a magnetic field, is irrelevant at the field strengths used. | | | | • View the DATABASE results for 'Magnetohydrodynamic Effect' (3).
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| | | Searchterm 'Field Gradient' was also found in the following services: | | | | |
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A particular kind of gradient coil, commonly used to create magnetic field gradients along the direction of the main magnetic field.
The maxwell coil consists of a pair of coils separated by 1.73 times their radius. Current flows in the opposite sense in the two coils, and produces a very linear gradient. | | | | • View the DATABASE results for 'Maxwell Coil' (3).
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