Ferrite Cores

Image Part Number Description / PDF Quantity Rfq
B66295K0000X187

B66295K0000X187

TDK EPCOS

FERRITE CORE I N87

223

B65815E0000R087

B65815E0000R087

TDK EPCOS

FERRITE CORE RM 5.3UH N87 2PCS

442

B65501D0000R033

B65501D0000R033

TDK EPCOS

FERRITE CORE P 350NH M33 2PCS

6802

B64290L0659X037

B64290L0659X037

TDK EPCOS

FERRITE CORE TOROID 9.8UH T37

343

B66389G0000X187

B66389G0000X187

TDK EPCOS

FERRITE CORE E N87 1PC

773

B62152A0007X001

B62152A0007X001

TDK EPCOS

FERRITE CORE 2 HOLE 140NH K1

4626

B64290L0632X037

B64290L0632X037

TDK EPCOS

FERRITE CORE TOROID 6.28UH T37

0

B65933A0000X033

B65933A0000X033

TDK EPCOS

FERRITE CORE PS M33 1PC

4038

B66289G0000X187

B66289G0000X187

TDK EPCOS

FERRITE CORE ELP N87 1PC

56

B65843A0100A045

B65843A0100A045

TDK EPCOS

FERRITE CORE EP 100NH N45 2PCS

0

B65501D0000Y048

B65501D0000Y048

TDK EPCOS

FERRITE CORE P 800NH N48 2PCS

0

B65805J0000R097

B65805J0000R097

TDK EPCOS

FERRITE CORE RM 2UH N97 2PCS

393

B65807N0160A048

B65807N0160A048

TDK EPCOS

FERRITE CORE RM 160NH N48 2PCS

687

B65941A0000X022

B65941A0000X022

TDK EPCOS

FERRITE CORE PS N22

85

B66484K0000X192

B66484K0000X192

TDK EPCOS

FERRITE CORE I N92 1PC

300

B65611W0000R087

B65611W0000R087

TDK EPCOS

FERRITE CORE

0

B64290L0038X049

B64290L0038X049

TDK EPCOS

FERRITE CORE TOROID 610NH N49

5451

B66361G1000X187

B66361G1000X187

TDK EPCOS

FERRITE CORE ETD N87 1PC

550

B65843A0160B087

B65843A0160B087

TDK EPCOS

FERRITE CORE EP 160NH N87 2PCS

351

B65803N0025A001

B65803N0025A001

TDK EPCOS

FERRITE CORE RM 25NH K1 2PCS

0

Ferrite Cores

1. Overview

Ferrite cores are ceramic compounds made from iron oxide and other metal oxides, sintered to form high-permeability magnetic materials. They exhibit low eddy current losses at high frequencies, making them ideal for electromagnetic interference (EMI) suppression, energy storage, and signal transmission in modern electronics. Their unique combination of high resistivity and magnetic properties enables efficient operation in power conversion systems, telecommunications, and automotive electronics.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
EE/EI CoresHigh inductance, easy assemblySwitch-mode power supplies (SMPS)
RM CoresCompact design, low leakage inductanceDC-DC converters
PQ CoresHigh power handling, uniform magnetic pathAutomotive battery chargers
EP Cores360 winding space, mechanical stabilityLED drivers
Toroidal CoresLow electromagnetic radiation, high efficiencyRF filters, current sensors

3. Structure and Composition

Typical ferrite cores consist of:

  • Base material: Mn-Zn or Ni-Zn ferrite compounds
  • Geometric shapes: E/I, pot, toroid, planar, or custom geometries
  • Surface treatment: Coatings (epoxy, parylene) or tape wrapping for insulation
  • Dimensional tolerances: 1% to 3% depending on manufacturing process

4. Key Technical Specifications

ParameterDescriptionImportance
Initial Permeability ( i)Relative magnetic permeability at 10kHzDetermines inductance capability
Saturation Flux Density (Bs)Maximum magnetic flux before saturationLimits power handling capacity
Resistivity ( )Volume resistivity ( cm)Controls eddy current losses
Curie Temperature (Tc)Temperature threshold for magnetic lossDefines operational temperature limits
Dimensional ToleranceGeometric precision ( 0.05-0.2mm)Affects winding compatibility

5. Application Fields

  • Power Electronics: SMPS, inverters, EV chargers
  • Telecommunications: Broadband transformers, signal isolators
  • Automotive: On-board chargers, DC-DC converters
  • Consumer Electronics: LED ballasts, adapter transformers
  • Industrial: Motor drives, energy storage inductors

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
TDK CorporationPC40 MaterialHigh Bs (510mT), low core loss
Ferroxcube3C90 Material i=2300, Tc=215 C
Magnetics Inc.R MaterialHigh stability (-20~125 C)
Changzhou FulltimeEE85/38/20Planar transformer core

7. Selection Guidelines

  1. Determine operational frequency (Mn-Zn for <5MHz, Ni-Zn for >5MHz)
  2. Calculate required AL value for inductance
  3. Verify Bs against peak current requirements
  4. Select dimensional compatibility with PCB/winding equipment
  5. Assess temperature stability requirements

8. Industry Trends

Key development directions include:

  • Miniaturization for high-frequency (>1MHz) operation
  • New materials with permeability >3000 and Bs >550mT
  • Integrated magnetics combining multiple functions
  • Environmental compliance (RoHS, halogen-free coatings)
  • AI-driven core optimization for EV powertrains

Market forecasts predict 6.8% CAGR through 2027, driven by 5G infrastructure and renewable energy systems.

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