970 resultados para acoustically excited flame
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"Contract No. AF33(038)-12656. E.O. No. 460-35 S.R.-8."
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Photocopy.
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Poems.
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"Published under the under the auspices of the Cincinnati Angelini Missionary Society."
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"United States Atomic Energy Commission Contract W-7405-Eng. 36"--Cover.
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Mode of access: Internet.
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Translation of Il fuoco.
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Translation of Il fuoco.
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"August 1978."
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"June 1967."
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Published in 1873 under titles: "I told you so; or, An autobiography", by Mrs. T. Narcisse Doubtney, and "Marrying a moustache; or, An autobiography", by the same.
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Mode of access: Internet.
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Mode of access: Internet.
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Thesis (Ph.D.)--University of Washington, 2016-06
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The precise evaluation of electromagnetic field (EMF) distributions inside biological samples is becoming an increasingly important design requirement for high field MRI systems. In evaluating the induced fields caused by magnetic field gradients and RF transmitter coils, a multilayered dielectric spherical head model is proposed to provide a better understanding of electromagnetic interactions when compared to a traditional homogeneous head phantom. This paper presents Debye potential (DP) and Dyadic Green's function (DGF)-based solutions of the EMFs inside a head-sized, stratified sphere with similar radial conductivity and permittivity profiles as a human head. The DP approach is formulated for the symmetric case in which the source is a circular loop carrying a harmonic-formed current over a wide frequency range. The DGF method is developed for generic cases in which the source may be any kind of RF coil whose current distribution can be evaluated using the method of moments. The calculated EMFs can then be used to deduce MRI imaging parameters. The proposed methods, while not representing the full complexity of a head model, offer advantages in rapid prototyping as the computation times are much lower than a full finite difference time domain calculation using a complex head model. Test examples demonstrate the capability of the proposed models/methods. It is anticipated that this model will be of particular value for high field MRI applications, especially the rapid evaluation of RF resonator (surface and volume coils) and high performance gradient set designs.