IEEE 393-1991 en Standard for Test Procedures for Magnetic Cores《磁芯的试验规程》.pdf
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1、Recognized as an SM 393-1991 American National Standard (ANSI) (Redon of JEEE Std 3931977) IEEE Standard for Test Procedures for Magnetic Cores IEEE Power Electronics Society Sponsored by the Electronics Transformer Technical Committee Published by the Institute of Electrical and Electronics Enginee
2、rs, Inc., 345 East 47th Street, New York, Ny 1w1z U=. March 10, 1992 SH14514 Recognized as anAmerican National Standard (ANSI)IEEE Std 393-1991(R2007)(Revision of IEEE Std 393-1977)IEEE Standard for Test Procedures forMagnetic CoresSponsorElectronics Transformer Technical Committeeof the IEEE Power
3、Electronics SocietyReaffirmed 26 September 2007Approved 27 June 1991IEEE-SA Standards BoardApproved December 9, 1991American National Standards InstituteAbstract: Test methods useful in the design, analysis, and operation of magnetic cores in many types of applications are presented. Tests for speci
4、fying and/or measuring permeability, core loss, apparent core loss, induction, hysteresis, thermal characteristics, and other properties are given. Most of the test methods described include specific parameter ranges, instrument accuracies, core sizes, etc., and may be used in the specification of m
5、agnetic cores for industrial and military applications. More generalized test procedures are included for the benefit of the R equivalent CGS and English units are included in some definitions. Whenever possible, all definitions and symbols are in accordance with those of the International Electrote
6、chnical Commission (IEC). The revision of this standard was prepared by the Working Group on Magnetic Cores-Test Codes Subcommittee of the Electronics Transformer Technical Committee of the IEEE Power Electronics Society. John Silgailis, Chair J. S. Andresen R. P. Carey Charles J. Elliott Herman Fic
7、kenscher P. K. Goethe Harold E. Lee Robert L. Sell John Tardy - The following persons were on the balloting committee that approved this standard for submission to the IEEE Standards Board: E. D. Belanger R. P. Carey Charles J. Elliott Herman Fickenscher R. Fisher Rolf Frantz P. K. Goethe Nathan Gro
8、ssner 0. Kiltie L. Kirkwood Harold E. Lee Rueben Lee H. W. Lord William Lucarcz R. G. Noah David N. Ratliff Robert L. Sell John Silgailis John Tardy Ray Taylor Bruce Thackwray H. Tillinger R. G. Wolpert R. M. Wozniak When the IEEE Standards Board approved this standard on June 27,1991, it had the fo
9、llowing membership: Marco W. Migliaro, Chair Donald C. Loughry, Vice Chair Andrew G. Salem, Secretary Dennis Bodson Paul L. Borrill Clyde Camp James M. Daly Donald C. Fleckenstein Jay Forster; David F. Franklin Ingrid Fromm Thomas L. Hannan Donald N. Heirman Kenneth D. Hendrix John W. Horch Ben C. J
10、ohnson Ivor N. Knight Joseph Koepfinger* Irving Kolodny Michael A. Lawler *Member Emeritus Kristin M. Dittmann IEEE Standards Department Project Editor John E. May, Jr. Lawrence V. McCall T. Don Michael* Stig L. Nilsson John L. Rankine Ronald H. Reimer Gary S. Robinson Terrance R. Whittemore SECTION
11、 PAGE 1 . Scope . 9 Specific Types of Magnetic Cores to Which this Standard Applies 9 Specific Applications to Which this Standard Is Directed 9 References and Related Standards . 9 1.3.1 References 9 1.3.2 General Related Standards . 9 1.1 1.2 1.3 2 . Definitions . 10 3 . Configurations 10 Basic Co
12、re Shapes 11 Epstein Strip Core 11 3.1 3.2 3.3 Effect of the Configuration or Geometry of the Core Material on Finished Product 10 4 . Materials . 11 4.1 Ferromagnetic . 11 4.2 Ferrites 11 5 . Symbols and Terms 12 5.1 5.2 5.3 5.4 5.5 5.6 5.7 5.8 5.9 5.10 5.11 5.12 5.13 Effective Parameters 12 Permea
13、bility 12 5.2.1 Initial Permeability 12 5.2.2 Amplitude Permeability . 12 5.2.3 Maximum Permeability . 12 5.2.4 Incremental Permeability . 13 5.2.5 Pulse Permeability . 13 5.2.6 Complex Permeability . 13 5.2.7 Differential Permeability . 13 5.2.8 Impedance Permeability . 13 5.2.9 Peak Permeability 1
14、3 Core Loss 13 5.3.1 Specific Core Loss . 13 Apparent Core Loss 13 5.4.1 Specific Apparent Core Loss . 14 Equivalent Series Circuit Elements . 14 Equivalent Parallel Circuit Elements 14 Loss Angle (Dissipation Factor) . 14 5.7.1 Relative Dissipation Factor . 14 5.7.2 Quality Factor, Q 14 Leggs Equat
15、ion Parameters . 14 Saturation Induction, B, . 15 5.9.1 Peak Induction, B, . 15 Residual Induction, B, 15 5.10.1 Remanent Induction . 15 5.10.2 Squareness Ratio . 15 Coercive Field or Force, H, . 15 HI and H2 Reset Field Strengths . 15 5.12.1 AH . 15 5.12.2 Reset Gain, G 15 Temperature Coefficient 1
16、5 SECTION PAGE . 5.14 5.15 5.16 5.17 5.18 5.19 5.20 5.21 Temperature Factor of Permeability 15 Curie Temperature or Curie Point. T. . 15 Disaccommodation 15 5.16.1 Disaccommodation Factor . 16 Magnetic Aging 16 Turns Factor . 16 Induction Factor. AL . 16 Volt-Second.Area . 16 Hysteresis Constant. q6
17、 16 5.21.1 Hysteresis Core Constant. qi 16 6 . Test Methods . 17 6.1 6.2 6.3 6.4 6.5 6.6 6.7 6.8 6.9 Permeability Measurements . 17 Reference Pulse Shape . 17 Pulse Magnetization Characteristics 18 Tests for Evaluating Cores With Pulsed Excitation . 17 6.2.1 6.2.2 6.2.3 Pulse Permeability . 24 6.2.4
18、 Tests for Computer-Type Cores Used in Switching and Memory Applications . 24 Bridge Measurements . 29 6.3.1 Series Bridge, Low Impedance 30 6.3.2 Series Bridge (Low Q 30 6.3.3 Parallel Bridge (High Q) 31 6.3.4 Parallel Bridge (Low Q) . 31 Core Loss and Apparent Core Loss . 31 6.4.1 Core-Loss Measur
19、ements With SinusoidaWoltage Excitation 31 6.4.2 Core-Loss Measurements in Core Excited by Nonsinusoidal Signals . 31 Saturing Core Tests 36 6.5.1 Constant-Current Flux-Reset (CCFR) Core Test Method . 36 6.5.2 Sine-Current-Excitation Core Test Method 39 6.5.3 Methods to Obtain Hysteresis Loops and M
20、agnetization Curves . 44 6.6.1 General Considerations . 44 Direct Measurement of Flux Density 48 6.7.1 Hall-Effect Gaussmeter 48 Dynamic Hysteresis Loop Measurement . 49 6.8.1 Oscilloscope Techniques . 49 Voltmeter-hmeter Methods . 50 6.9.1 Impedance Permeability . 50 6.9.2 Sine-Flux Test 50 6.9.3 S
21、ine-Current Test . 52 6.9.4 Calculation of Mean Path Length . 53 6.9.5 Calculation of Flux-Path Cross-Sectional Area . 53 6.9.6 Standard Test Conditions 53 6.9.7 Calculations of Induced Voltage 53 6.9.8 Test Procedure 53 Presenting Magnetic Data on Core Materials . 44 7 . Bibliography . 53 . . . FIG
22、URES Fig 1 Fig 2 Fig 3 Fig 4 Fig 5 Fig 6 Fig 7 Fig 8 Fig 9 Fig 10 Fig 11 Fig 13 Fig 14 Fig 15 Fig 16 Fig 17 . Fig 12 Fig 18 Fig 19 Fig 20 Fig 21 PAGE Reference Pulse Shape 18 Pulse Magnetization Characteristic . 19 Test Circuit A . 20 Test Circuit B .!U Pulse Magnetization Characteristics on Major a
23、nd Minor Loops .!U Pulse Magnetization Characteristics With Reset !U Pulse Magnetization Characteristics With and Without Bias . 22 Core Pulse Magnetization Characteristic . 23 Pulse Permeability Test Circuit . 24 Read Response Pulses . a6 Typical Test Circuit . !27 Bridge Circuits .3 2-33 Block Dia
24、gram of Wattmeter 35 Test Points for the Constant-Current Flux-Reset Core Test Method 36 Circuit for the Constant-Current Flux-Reset Core Test Method . 36 Basic Circuit for Sine-Current Excitation Core Tester . 40 Oscilloscope Presentation of E-I Loop of Test Core, Showing Calibrating and Measuring
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