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    ASTM A341 A341M-2000(2005)e1 Standard Test Method for Direct Current Magnetic Properties of Materials Using D-C Permeameters and the Ballistic Test Methods《用直流磁导计和冲击试验法测定材料的直流磁性能的标.pdf

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    ASTM A341 A341M-2000(2005)e1 Standard Test Method for Direct Current Magnetic Properties of Materials Using D-C Permeameters and the Ballistic Test Methods《用直流磁导计和冲击试验法测定材料的直流磁性能的标.pdf

    1、Designation: A 341/A 341M 00 (Reapproved 2005)1Standard Test Method forDirect Current Magnetic Properties of Materials Using D-CPermeameters and the Ballistic Test Methods1This standard is issued under the fixed designationA 341/A 341M; the number immediately following the designation indicates the

    2、yearof original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval.A superscript epsilon () indicates an editorial change since the last revision or reapproval.This standard has been approved for use by agencies of the Depar

    3、tment of Defense.1NOTEMercury warning was editorially added in January 2009.1. Scope1.1 This test method provides dc permeameter tests for thebasic magnetic properties of materials in the form of bars, rods,wire, or strip specimens which may be cut, machined, orground from cast, compacted, sintered,

    4、 forged, extruded,rolled, or other fabricated materials. It includes tests fordetermination of the normal induction under symmetricallycyclically magnetized (SCM) conditions and the hysteresisloop (B-H loop) taken under conditions of rapidly changing orsteep wavefront reversals of the direct current

    5、 magnetic fieldstrength.1.2 This test method shall be used in conjunction withPractice A 34/A 34M.1.3 This test method covers a range of magnetic fieldstrength in the specimen from about 0.05 Oe 4 A/m up toabove 5000 Oe 400 kA/M through the use of severalpermeameters. The separate permeameters cover

    6、 this testregion in several overlapping ranges.1.4 Normal induction and hysteresis properties may bedetermined over the flux density range from essentially zero tointrinsic saturation for most materials.1.5 Recommendations of the useful magnetic field strengthrange for each of the permeameters are s

    7、hown in Table 12.Also, see Sections 3 and 4 for general limitations relative to theuse of permeameters.1.6 The symbols and abbreviated definitions used in this testmethod appear with Fig. 1 and in appropriate sections of thisdocument. For the official definitions, see Terminology A 340.Note that the

    8、 term flux density used in this document issynonymous with the term magnetic induction.1.7 WarningMercury has been designated by EPA andmany state agencies as a hazardous material that can causecentral nervous system, kidney, and liver damage. Mercury, orits vapor, may be hazardous to health and cor

    9、rosive tomaterials. Caution should be taken when handling mercury andmercury-containing products. See the applicable product Ma-terial Safety Data Sheet (MSDS) for details and EPAs website(http:/www.epa.gov/mercury/faq.htm) for additional informa-tion. Users should be aware that selling mercury or m

    10、ercury-containing products, or both, in your state may be prohibited bystate law.1.8 The values and equations stated in customary cgs-emuand inch-pound or SI units are to be regarded separately asstandard. Within this standard, SI units are shown in bracketsexcept for the sections concerning calcula

    11、tions where there areseparate sections for the respective unit systems. The valuesstated in each system may not be exact equivalents; therefore,each system shall be used independently of the other. Combin-ing values from the two systems may result in nonconformancewith this standard.1.9 This standar

    12、d 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 use.2. Referenced Documents2.1 ASTM

    13、 Standards:3A 34/A 34M Practice for Sampling and Procurement Test-ing of Magnetic MaterialsA 340 Terminology of Symbols and Definitions Relating toMagnetic TestingA 596/A 596M Test Method for Direct-Current MagneticProperties of Materials Using the Ballistic Method andRing Specimens2.2 IEC Standard:

    14、Publication 60404-4, Ed. 2.0 Magnetic Materials Part 4:Methods of Measurement of D.C. Magnetic Properties of1This test method is under the jurisdiction of ASTM Committee A06 onMagnetic Properties and is the direct responsibility of SubcommitteeA06.01 on TestMethods.Current edition approved Nov. 1, 2

    15、005. Published November 2005. Originallyapproved in 1969. Last previous edition approved in 2000 as A 341/A 341M 00.2The boldface numbers in parentheses refer to a list of references at the end ofthis standard.3For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Custo

    16、mer 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 States.Iron and Steel, IEC, 199542.3 Other

    17、Documents:NIST Circular No. 74, pg. 2695NIST Scientific Paper 117, SPBTA53. Significance and Use3.1 Permeameters require the use of yokes to complete themagnetic circuit and are therefore inherently less accurate thanring test methods. Refer to Test Method A 596/A 596M forfurther details on ring tes

    18、t methods. However, when testingcertain shapes as bars or when magnetic field strength in excessof 200 Oe 15.9 or more kA/m are required, permeameters arethe only practical means of measuring magnetic properties.3.2 This test method is suitable for specification acceptance,service evaluation, resear

    19、ch and development and design.3.3 When the test specimen is fabricated from a largersample and is in the same condition as the larger sample, it maynot exhibit magnetic properties representative of the originalsample. In such instances the test results, when viewed incontext of past performance hist

    20、ory, will be useful for judgingthe suitability of the material for the intended application.4. Interferences4.1 In general, permeameters do not maintain a uniformmagnetic field in either the axial or radial directions around thetest specimen. The field gradients in both of these directionswill diffe

    21、r in the various permeameters.Also the H-sensing andB-sensing coils of the different permeameters are not identicalin area, in turns, or in length or identically located. Althoughtest specimens are prepared to have uniform physical crosssection, they may have undetected nonuniform magnetic prop-erti

    22、es radially or axially along the specimen length adjacent tothe H or B coils. Some permeameters may also introduceclamping strains into the test specimen. For the above reasonstest results obtained on a test specimen with one type per-meameter may not agree closely with those obtained on thesame tes

    23、t specimen using another type of permeameter.5. Apparatus5.1 Because of the differences in physical construction ofthe various permeameters listed in Table 1, no standard list ofcomponents is given. When used with a particular type ofpermeameter, the components should conform to the generalrequireme

    24、nts listed below.Abasic schematic of a permeameteris shown in Fig. 1.5.2 PermeameterThe particular permeameter used shallbe of high quality construction. The yokes should be made ofhigh permeability alloy such as oriented or nonoriented siliconiron or nickel-iron alloy, although low carbon steel or

    25、iron isacceptable in certain instances. The preferred yolk dimensions4Available from American National Standards Institute (ANSI), 25 W. 43rd St.,4th Floor, New York, NY 10036.5Available from National Institute of Standards and Technology (NIST), 100Bureau Dr., Stop 3460, Gaithersburg, MD 20899-3460

    26、.TABLE 1 PermeametersPermeameterUseful Magnetic Field Strength RangeAH MeasuringDeviceBReluctanceCompensationMagnetizing CoilSurroundsSpecimenReferences2Oe kA/mBabbit 40/1000 3.2/80 I, HC yes yes (1,2)Burroughs 0.1/300 0.008/24 I yes yes (1,3,4,5)Fahy SimplexC0.1/300 0.008/24 HC no no (1,4,5,6,7)Fah

    27、y SimplexSuper H adapterC100/2500 8/200 HC no no (1,3)Full range 0.05/1400 0.004/112 HC yes yes (1,8)High H 100/5000 8/400 FC yes no (1,5,7,9)Iliovici 0.5/500 0.04/400 I, HC yes yes (4,10,11)IEC Type A 0.1/2500 0.008/200 HC, HP no yes IEC 60404-4IEC Type B 0.1/630 0.008/50 RCC no no IEC 60404-4Isthm

    28、us 100/20 000+ 8/1600+ HC, HP no no (1,4,12,13)MH 0.1/300 0.008/24 FC yes yes (1,6,14)NPL 0.5/2500 0.04/200 I, HC yes yes (15)Saturation 100/4000 8/320 HC no yes (5,16,17)AAlthough the permeameters are capable of being used at the lower end of the measurement range, the measurement accuracy is reduc

    29、ed.BImagnetizing current; HCfixed H coil; FCflip coil; HPHall probe; RCCRogowski-Chattock coil.CFahy permeameters require a standard of known magnetic properties for calibration of the H coil.NOTE 1A1Multirange ammeter (main current)A2Multirange ammeter (hysteresis current)BFlux density test positio

    30、n for Switch S3FElectronic IntegratorHMagnetic field strength test position for Switch S3N1Magnetizing coilN2Flux sensing (B) coilN3Magnetic field strength sensing coilR1Main current control rheostatR2Hysteresis current control rheostatS1Reversing switch for magnetizing currentS2Shunting switch for

    31、hysteresis current control rheostatS3Integrator selector switchSPSpecimenFIG. 1 Basic Circuit Using PermeameterA 341/A 341M 00 (2005)12are listed in the appended references (see Table 1). Deviationsfrom these dimensions should be such that the yolk is operatingat or below the point of maximum permea

    32、bility for the highesttest flux densities encountered. Yoke construction may consistof either stacked laminations or stripwound C cores suitablybolted or adhesive bonded together.5.3 Power SupplyThe magnetizing current shall be sup-plied by either storage batteries or dc power supplies. Bipolarprogr

    33、ammable linear power supplies have been found to bewell suited for this use.The source of dc current must be stable,have negligible ripple and be capable of quickly returning tothe stable state after switching. When programmable powersupplies are used, either digital or analog programming signalsare

    34、 permissible provided that equal but opposite polaritycurrent cycling is possible.5.4 Main-Current-Control Rheostats, R1When used,these rheostats must have sufficient power rating and heat-dissipating capacity to handle the voltage and largest testcurrent and must contain sufficient resistance to li

    35、mit the testcurrents to those required for the lowest magnetic field strengthto be used.5.5 Hysteresis-Current-Control Rheostats, R2When used,these rheostats must have the same characteristics as themain-current control rheostats.5.6 Main-Current Ammeter, A1Magnetizing current mea-surement shall be

    36、conducted using a digital ammeter orcombination of a digital voltmeter and precision shunt resistorwith an overall accuracy of better than 0.25 % when themagnetic field strength will be determined from the current. Inthose permeameters where the magnetic field strength isdetermined by other means, s

    37、uch as Hall probes or H coils,lower accuracy analog instruments can be used. In suchpermeameters, the ammeter is used to prevent excessivecurrents from being applied and, based on past experience, toroughly establish the required magnetic field strength.5.7 Hysteresis-Current Ammeter, A2The requirem

    38、ents of5.6 shall apply. In general, a separate ammeter is not required.5.8 Reversing Switch, S1When nonprogrammable dc cur-rent sources such as storage batteries are used, a currentreversing switch is required. The reversing switch should beeither a high quality knife switch, mechanical or electrica

    39、lsolenoid-operated contractors or mercury switches having highcurrent rating and the ability to maintain uniform contactresistance of equal magnitude in both current directions.Switches with contact bounce or other multiple contactingbehavior on make or break must be avoided. Because of thepresence

    40、of leakage currents in the open condition, solid staterelays are not permitted.5.9 Hysteresis Switch, S2This single pole switch mustconform to the same requirements as the reversing Switch, S1.5.10 Integrator, FBecause of their superior accuracy,stability, and ease of operation, electronic charge in

    41、tegratorsare the preferred means of measuring magnetic flux. Integra-tors using either operational amplifier and capacitor feedback(analog integrator) or pulse counting are permitted. The accu-racy of the integrator must be better than 1 % full scale. Ifanalog display meters are used to read the val

    42、ue of flux, themeasurement should be made on the upper two-thirds of thescale. Analog integrators must have drift adjust circuitry andthe drift should not exceed 100 Maxwell-turns 106Wb-turnsper minute on the most sensitive range. It is also desirable thatthe integrator have appropriate scaling circ

    43、uitry to permit directreading of either flux (f) or flux density (B). Ballistic galva-nometers or moving coil fluxmeters are permitted provided the1 % full-scale accuracy requirement is met. Such devicesrequire additional circuitry not shown in Fig. 1. Details may befound in the appropriate referenc

    44、es appended to this testmethod.5.11 B CoilsPrewound fixed flux sensing coils are oftenused. When used, the cross-sectional area enclosed by thesecondary winding and number of turns must be known to bebetter than 0.5 %.5.12 Magnetic Field Strength Measuring DevicesCertainpermeameters do not or cannot

    45、 use the magnetizing current todetermine the magnetic field strength accurately. Such per-meameters instead use stationary H coils, flip coils, or Hallprobes. When such devices are used, they shall be capable ofdetermining the apparent magnetic field strength to accuracy of1.0 % or better.6. Test Sp

    46、ecimens6.1 Test specimen area shall normally be determined frommass, length, and density as indicated in 9.1 and 10.1. Whenthe test specimen is machined or ground to have a very smoothsurface, the physical dimensions obtained from micrometermeasurements may be used to calculate the cross-sectionalar

    47、ea.6.2 Test specimens in bar form may be of round, square, orrectangular cross-sectional shape. In some permeameters thebar specimen may be a half round or any shape having auniform cross-sectional area. Certain permeameters must havea good magnetic joint between the ends of the test specimenand the

    48、 permeameter yoke or pole faces. Pole shoes may benecessary to create this joint. Generally, to achieve a goodmagnetic joint, the test specimen must be of square orrectangular cross section and must be machined or ground tohave straight and parallel surfaces. For permeameters usingspecimens butted t

    49、o pole pieces, the specimen ends must besmooth and parallel.6.3 When the material is in flat-rolled form and is to beevaluated as half transverse-half longitudinal, the specimenshall be sheared to have strips in multiples of four in accor-dance with Table 2. When material is to be evaluated in onedirection, it shall conform to this table or to the requirementsfor best test quality in a particular permeameter. For gages No.33 and thinner, the cross-sectional area shall be not less than0.31 in.2200 mm2 and not more than 0.62 in.2400


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