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Calculation of transmission line par...
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McFarland, Robert Bynum.
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Calculation of transmission line parameters for multiconductor lines in a multi-dielectric medium.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Calculation of transmission line parameters for multiconductor lines in a multi-dielectric medium./
作者:
McFarland, Robert Bynum.
面頁冊數:
89 p.
附註:
Source: Masters Abstracts International, Volume: 31-01, page: 0396.
Contained By:
Masters Abstracts International31-01.
標題:
Engineering, Electronics and Electrical. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=1348475
Calculation of transmission line parameters for multiconductor lines in a multi-dielectric medium.
McFarland, Robert Bynum.
Calculation of transmission line parameters for multiconductor lines in a multi-dielectric medium.
- 89 p.
Source: Masters Abstracts International, Volume: 31-01, page: 0396.
Thesis (M.S.)--The University of Arizona, 1992.
A method for computing the per-unit-length capacitance matrix and the inductance matrix for multiconductor transmission lines in a multi-dielectric medium is presented. The multi-dielectric medium consists of both planar and non-planar dielectric regions. The formulation is based on an integral equation method for the free charge distribution on conductor surfaces and the polarization charge distribution on the non-planar dielectric interfaces. The kernel of the integral equation is a space domain Green's function for a layered medium. The numerical solution is obtained by the method of moments.Subjects--Topical Terms:
626636
Engineering, Electronics and Electrical.
Calculation of transmission line parameters for multiconductor lines in a multi-dielectric medium.
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A method for computing the per-unit-length capacitance matrix and the inductance matrix for multiconductor transmission lines in a multi-dielectric medium is presented. The multi-dielectric medium consists of both planar and non-planar dielectric regions. The formulation is based on an integral equation method for the free charge distribution on conductor surfaces and the polarization charge distribution on the non-planar dielectric interfaces. The kernel of the integral equation is a space domain Green's function for a layered medium. The numerical solution is obtained by the method of moments.
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