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Technical Library
Elna Magnetics
Epcos Materials
10 Watt DC-DC Converter Using IIC Magnetics
Ferrites and Accessories - SIFERRIT Material K1
Ferrites and Accessories - SIFERRIT Material K10
Ferrites and Accessories - SIFERRIT Material N22
Ferrites and Accessories - SIFERRIT Material N27
Ferrites and Accessories - SIFERRIT Material N41
Ferrites and Accessories - SIFERRIT Material N48
Ferrites and Accessories - SIFERRIT Material N49
Ferrites and Accessories - SIFERRIT Material N72
Ferrites and Accessories - SIFERRIT Material N87
Ferrites and Accessories - SIFERRIT Material N92
Ferrites and Accessories - SIFERRIT Material N95
Ferrites and Accessories - SIFERRIT Material N97
Ferrites and Accessories - SIFERRIT Material T38
Fair Rite Documents
Ferrite Tile Absorbers for EMC Test Chamber Applications
Ferroxcube Documents
14 Watt DC-DC Converter Using Integrated Inductive Components
25 Watt DC-DC converter Using Integrated Planar Magnetics
Breaking Frontiers with New Micro 10,000 Ferrite Toroids
Design of CCFL Backlight Inverters with Frame and Bar Cores
Design of Planar Power Transformers
EPX - A New Telecom Core Range
Ferrite Rod Antennas for RF-identification Transponders
Integrated Inductive Components - Ready To Come On Board
Integrated Inductive Components
Miniature Drum Cores for Power Inductors
Multilayer Suppressors and Inductors
New ER Cores for Planar Converters
Power Ferrite Measuring Setup EMMA 2-1
Square Loop Ferrite Toroids for Magnetic Amplifiers
Ferroxcube Materials
3B46 - The New High Permeability Filter Ferrite for Bias Current Conditions
3S3 A New Soft Ferrite for EMI Suppression
Magnetics Documents
A Critical Comparison of Ferrites with Other Magnetic Materials
Common Mode Inductors for EMI Filters Require Careful Attention to Core Material Selection
Core Selection for Saturating Transformers
Curve Fit Equations for Ferrite Materials
Designing with Planar Ferrite Cores
EMl-RFl FILTER, COMMON MODE FILTER
Ferrite Core Material Selection Guide
For Flyback Transformers - Selecting a Distributed Air-Gap Powder Core
Fundamentals of Tape Wound Core Design
Inductor Design in Switching Regulators
Inverter Transformer Core Design and Material Selection
KOOL Mu A Magnetic Material for Power Chokes
Leakage Flux Considerations on KOOL Mu E-Cores
L Material - Power Ferrite for Low Losses at High Frequency
Magnetics Power Design HR 7-12
Magnetics Tall Powder Core Sheet
Magnetic Cores for Ground Fault Detectors
Magnetic Cores for Hall Effect Devices
Magnetic Cores for Pulse Compression
Magnetic Cores for Switching Power Supplies
Techniques for Reduction of Control - Loop Interactions In Magamp Supplies
T Material Power Ferrite for Low Losses Across A Wide Temperature Range
Metglas
Micrometals
A New Core Loss Model for Iron Powder Material
Calculating The High Frequency Resistance of Single and Double Layer Toroidal Windings
Design Guidelines for Iron Powder Cores
Inductor Designs for High Frequencies
Iron Powder Cores for High Q Inductors
Iron Powder Cores for Switchmode Power Supply Inductors
Iron Powder Core Selection for RF Power Applications
Practical Construction Tips For Coils Using Iron Powder Cores
Simplified Calculation of Magnetics and Electrical Losses in Unity Power Factor Boost Preregulators
TSC Ferrite International
Boost Material Improves Inductor Characteristics Under DC Bias Conditions
Design to Boost Inductance Under Direct Current Bias Conditions
Economical Soft Ferrite Core Selection for Power Transformers
Ferrites - The Most Important Properties
Measuring Soft Ferrite Core Properties
Predicting Temperature Rise of Ferrite Cored Transformers
Soft Ferrite Advantages, Capabilities and Markets
Specify Saturation Properties of Ferrite Cores to Prevent Field Failure