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of Progress in Applied Computational Electromagnetics, March 19–23, Verona (Applied
Computational Electromagnetics Society, 2007), pp. 653–660
2. B.A. Abu-Nabah, P.B. Nagy, Lift-off effect in high-frequency eddy current conductivity
spectroscopy. NDT&E Int. 40, 555–565 (2007)
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carbon nanotubes based polymer nanocomposites. Sensors 2011(11), 10691–10723 (2011)
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Rochester Institute of Technology, Prepared for Rome Air Development Center (1976)
5. J.L. Allen, et al., Electromagnetic properties and effects of advanced composite materials:
measurement and modeling. RADC-TR-78-156, Phase Report (ADA 05804) (1978)
6. P.D. Allen, T.G. St. Pierre, W. Chua-anusorn, V. Ström, K.V. Rao, Low-frequency low-field
magnetic susceptibility of ferritin and hemosiderin. Biochimica et Biophysica Acta 1500,
186–196 (2000)
7. C. Altman, A. Schatzberg, Appl. Phys. B26, 147–153 (1981)
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9. C. Altman, A. Schatzberg, K. Suchy, IEEE Trans. Antennas Propag. AP-32(11), 1450–1450
(1984)
10. G. Angiulli, T. Isernia, S. Tringali, Modeling realistic contrast maps from MRI images for
microwave breast cancer detection. IEEE Antennas Propag. Mag. 53(1), 113–122 (2011)
11. J.-P. Ansermet, Classical description of spin wave excitation by currents in bulk ferromagnets.
IEEE Trans. Magn. 40(2), 358–360 (2004)
12. J.-P. Aubin, Approximation of Elliptic Boundary-Value Problems (Wiley, New York, 1972)
13. H.T. Banks, D. Cioranescu, A.K. Criner, W.P. Winfree, Parameter estimation for the heat
equation on perforated domains. J. Inverse Ill-posed Problems 19, 825–857 (2011)
14. S. Barkeshli, D.J. Radecki, H.A. Sabbagh, On a linearized inverse scattering model for a
three-dimensional flaw embedded in anisotropic advanced composite materials. IEEE Trans.
Geosci. Remote Sens. 30(1), 71–80 (1992)
15. V. Barthelmann, E. Novak, K. Ritter, High dimensional polynomial interpolation on sparse
grids. Adv. Comput. Math. 12, 273–288 (2000)
16. C.P. Bean, J.D. Livingston, Superparamagnetism. J. Appl. Phys. 30(4), 120S-129S (1959)
17. D.W. Berreman, J. Opt. Soc. Am. 62(4), 502–510 (1972)
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2021
H. A. Sabbagh et al., Advanced Electromagnetic Models for Materials
Characterization and Nondestructive Evaluation, Scientific Computation,
https://doi.org/10.1007/978-3-030-67956-9
341
1. A. Abubakar, T.M. Habashy, Near well-bore imaging of the triaxial induction logging data
using the multiplicative regularized contrast source inversion method, in 23rd Annual Review
of Progress in Applied Computational Electromagnetics, March 19–23, Verona (Applied
Computational Electromagnetics Society, 2007), pp. 653–660
2. B.A. Abu-Nabah, P.B. Nagy, Lift-off effect in high-frequency eddy current conductivity
spectroscopy. NDT&E Int. 40, 555–565 (2007)
3. N.H. Alamusi, H. Fukunaga, S. Atobe, Y. Liu, J. Li, Piezoresistive strain sensors made from
carbon nanotubes based polymer nanocomposites. Sensors 2011(11), 10691–10723 (2011)
4. J. Allen, et al., A technology plan for electromagnetic characteristics of advanced composites.
Rochester Institute of Technology, Prepared for Rome Air Development Center (1976)
5. J.L. Allen, et al., Electromagnetic properties and effects of advanced composite materials:
measurement and modeling. RADC-TR-78-156, Phase Report (ADA 05804) (1978)
6. P.D. Allen, T.G. St. Pierre, W. Chua-anusorn, V. Ström, K.V. Rao, Low-frequency low-field
magnetic susceptibility of ferritin and hemosiderin. Biochimica et Biophysica Acta 1500,
186–196 (2000)
7. C. Altman, A. Schatzberg, Appl. Phys. B26, 147–153 (1981)
8. C. Altman, A. Schatzberg, Appl. Phys. B28, 327–333 (1982)
9. C. Altman, A. Schatzberg, K. Suchy, IEEE Trans. Antennas Propag. AP-32(11), 1450–1450
(1984)
10. G. Angiulli, T. Isernia, S. Tringali, Modeling realistic contrast maps from MRI images for
microwave breast cancer detection. IEEE Antennas Propag. Mag. 53(1), 113–122 (2011)
11. J.-P. Ansermet, Classical description of spin wave excitation by currents in bulk ferromagnets.
IEEE Trans. Magn. 40(2), 358–360 (2004)
12. J.-P. Aubin, Approximation of Elliptic Boundary-Value Problems (Wiley, New York, 1972)
13. H.T. Banks, D. Cioranescu, A.K. Criner, W.P. Winfree, Parameter estimation for the heat
equation on perforated domains. J. Inverse Ill-posed Problems 19, 825–857 (2011)
14. S. Barkeshli, D.J. Radecki, H.A. Sabbagh, On a linearized inverse scattering model for a
three-dimensional flaw embedded in anisotropic advanced composite materials. IEEE Trans.
Geosci. Remote Sens. 30(1), 71–80 (1992)
15. V. Barthelmann, E. Novak, K. Ritter, High dimensional polynomial interpolation on sparse
grids. Adv. Comput. Math. 12, 273–288 (2000)
16. C.P. Bean, J.D. Livingston, Superparamagnetism. J. Appl. Phys. 30(4), 120S-129S (1959)
17. D.W. Berreman, J. Opt. Soc. Am. 62(4), 502–510 (1972)
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2021
H. A. Sabbagh et al., Advanced Electromagnetic Models for Materials
Characterization and Nondestructive Evaluation, Scientific Computation,
https://doi.org/10.1007/978-3-030-67956-9
341
