ASTM D7449 D7449M-2008e1 5000 Standard Test Method for Measuring Relative Complex Permittivity and Relative Magnetic Permeability of Solid Materials at Microwave Frequencies Using .pdf
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1、Designation: D7449/D7449M 081An American National StandardStandard Test Method forMeasuring Relative Complex Permittivity and RelativeMagnetic Permeability of Solid Materials at MicrowaveFrequencies Using Coaxial Air Line1This standard is issued under the fixed designation D7449/D7449M; the number i
2、mmediately following the designation indicates theyear of original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of lastreapproval. A superscript epsilon () indicates an editorial change since the last revision or reapproval.1NOTEEquation
3、 5 was editorially updated in March 2012.1. Scope1.1 This test method covers a procedure for determiningrelative complex permittivity (relative dielectric constant andloss) and relative magnetic permeability of isotropic, reciprocal(non-gyromagnetic) solid materials. If the material is nonmag-netic,
4、 it is acceptable to use this procedure to measurepermittivity only.1.2 This measurement method is valid over a frequencyrange of approximately 1 MHz to over 20 GHz. These limitsare not exact and depend on the size of the specimen, the sizeof coaxial air line used as a specimen holder, and on theapp
5、licable frequency range of the network analyzer used tomake measurements. The practical lower and upper frequen-cies are limited by specimen dimension requirements (large,thick specimens at low frequencies and small specimens athigh frequencies). For a given air line size, the upper frequencyis also
6、 limited by the onset of higher order modes thatinvalidate the dominant-mode transmission line model and thelower frequency is limited by the smallest measurable phaseshift through a specimen. Being a non-resonant method, theselection of any number of discrete measurement frequenciesin a measurement
7、 band would be suitable. The coaxial fixtureis preferred over rectangular waveguide fixtures when broad-band data are desired with a single sample or when only smallsample volumes are available, particularly for lower frequencymeasurements1.3 The values stated in either SI units or inch-pound unitsa
8、re to be regarded separately as standard. The values stated ineach system may not be exact equivalents; therefore, eachsystem shall be used independently of the other. Combiningvalues from the two systems may result in non-conformancewith the standard. The equations shown here assume an e+jvtharmoni
9、c time convention.1.4 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to u
10、se.2. Referenced Documents2.1 ASTM Standards:2D1711 Terminology Relating to Electrical Insulation3. Terminology3.1 For definitions of terms used in this test method, refer toTerminology D1711.3.2 Definitions:3.2.1 relative complex permittivity (relative complex dielec-tric constant), r*, nthe propor
11、tionality factor that relates theelectric field to the electric flux density, and which depends onintrinsic material properties such as molecular polarizability,charge mobility, etc.:r*5r jr”5D0E(1)where:0= permittivity of free spaceD= electric flux density vector, andE= electric field vector.3.2.1.
12、1 DiscussionIn common usage the word “relative”is frequently dropped. The real part of complex relativepermittivity r! is often referred to as simply relative permit-tivity, permittivity or dielectric constant. The imaginary part of1This test method is under the jurisdiction of ASTM Committee D09 on
13、Electrical and Electronic Insulating Materials and is the direct responsibility ofSubcommittee D09.12 on Electrical Tests.Current edition approved Nov. 15, 2008. Published December 2008. DOI:10.1520/D7449_D7449M-08E01.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact AS
14、TM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United Splex relative permittivity r”! is
15、often referred to as the lossfactor. In anisotropic media, permittivity is described by a threedimensional tensor. For the purposes of this test method, themedia is considered to be isotropic, and therefore permittivityis a single complex number at each frequency.3.2.2 relative complex permeability,
16、 r*, nthe proportion-ality factor that relates the magnetic flux density to themagnetic field, and which depends on intrinsic material prop-erties such as magnetic moment, domain magnetization, etc.:r*5 r jr”5B0H(2)where:0= permeability of free spaceB= magnetic flux density vector, andH= magnetic fi
17、eld vector.3.2.2.1 DiscussionIn common usage the word “relative”is frequently dropped. The real part of complex relativepermeability r! is often referred to as relative permeability orsimply permeability. The imaginary part of complex relativepermeability r”! is often referred to as the magnetic los
18、s factor.In anisotropic media, permeability is described by a threedimensional tensor. For the purposes of this test method, themedia is considered to be isotropic, and therefore permeabilityis a single complex number at each frequency.3.3 Definitions of Terms Specific to This Standard:3.3.1 A list
19、of symbols specific to this test method is givenin Annex A1.3.3.2 calibration, na procedure for connecting character-ized standard devices to the test ports of a network analyzer tocharacterize the measurement systems systematic errors. Theeffects of the systematic errors are then mathematically re-
20、moved from the indicated measurements. The calibration alsoestablishes the mathematical reference plane for the measure-ment test ports.3.3.2.1 DiscussionModern network analyzers have thiscapability built in. There are a variety of calibration kits thatcan be used depending on the type of test port.
21、 The modelsused to predict the measurement response of the calibrationdevices depends on the type of calibration kit. Most calibrationkits come with media that can be used to load the definitions ofthe calibration devices into the network analyzer. Calibrationkit definitions loaded into the network
22、analyzer must match thedevices used to calibrate. Since both transmission and reflec-tion measurements are used in this standard, a two-portcalibration is required.3.3.3 cutoff frequency, nthe lowest frequency at whichnon-evanescent, higher-order mode propagation can occurwithin a coaxial transmissi
23、on line3.3.4 network analyzer, na system that measures thetwo-port transmission and one-port reflection characteristics ofa multiport system in its linear range and at a common inputand output frequency.3.3.4.1 DiscussionFor the purposes of this standard, thisdescription includes only those systems
24、that have a synthesizedsignal generator, and that measure the complex scatteringparameters (both magnitude and phase) in the forward andreverse directions of a two-port network (S11, S21, S12, S22).3.3.5 scattering parameter (S-parameter), Sij, na complexnumber consisting of either the reflection or
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