Ferrite Disks and Plates

Image Part Number Description / PDF Quantity Rfq
2644373941

2644373941

Fair-Rite Products Corp.

FERRITE PLATE 21.6MM X 11.65MM

4535

FPL240/60/5-BH1T

FPL240/60/5-BH1T

KEMET

FERRITE PLATE FOR WIRELESS POWER

0

2644247101

2644247101

Fair-Rite Products Corp.

FERRITE PLATE 12.5MMX4.9MMX3MM

8770

MP1496-0B0

MP1496-0B0

Laird - Performance Materials

FERRITE PLATE 38MMX38MMX2MM

0

SB28B0500-1AB

SB28B0500-1AB

Leader Tech Inc.

FERRITE PLATE 12.7MM X 12.7MM

0

MP0350-0B0

MP0350-0B0

Laird - Performance Materials

FERRITE PLATE 26.42X8.89X1.27MM

0

28M0250-100

28M0250-100

Laird - Performance Materials

ROD,SLD,BB,CSNO 30X6.35MM

0

SB28B2100-1AB

SB28B2100-1AB

Leader Tech Inc.

FERRITE PLATE 53.34MM X 53.34MM

0

SB28B2100

SB28B2100

Leader Tech Inc.

FERRITE PLATE 53.34MM X 53.34MM

0

MP0760-1B0

MP0760-1B0

Laird - Performance Materials

FERRITE PLATE 19.3X19.3X1.27MM

0

SB28B1055

SB28B1055

Leader Tech Inc.

FERRITE PLATE 26.8MM X 26.8MM

0

SB28B2100-1

SB28B2100-1

Leader Tech Inc.

FERRITE PLATE 53.34MM X 53.34MM

0

MM0787-1B0

MM0787-1B0

Laird - Performance Materials

FERRITE DISC 20MMX1.27MM

0

28M0197-000

28M0197-000

Laird - Performance Materials

ROD,SLD,BB,CSNO 20X5MM

0

MM1400-3B0

MM1400-3B0

Laird - Performance Materials

FERRITE DISC 35.56MMX2.54MM

0

SB28B0500

SB28B0500

Leader Tech Inc.

FERRITE PLATE 12.7MM X 12.7MM

0

SB28B2100AB

SB28B2100AB

Leader Tech Inc.

FERRITE PLATE 53.34MM X 53.34MM

0

MP1040-500

MP1040-500

Laird - Performance Materials

FCCPL,BB,ADH 26.42X26.42X1.12MM

0

28M0394-000

28M0394-000

Laird - Performance Materials

ROD,SLD,BB,CSNO 30X10MM

0

28M0118-000

28M0118-000

Laird - Performance Materials

ROD,SLD,BB,CSNO 12X3MM

0

Ferrite Disks and Plates

1. Overview

Ferrite disks and plates are passive electronic components made from sintered iron oxide composites with nickel, zinc, or manganese additives. They exhibit high magnetic permeability and electrical resistivity, making them ideal for suppressing electromagnetic interference (EMI) in electronic circuits. These components play a critical role in modern electronics by mitigating high-frequency noise in power lines, signal cables, and RF systems.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Manganese-Zinc (MnZn) FerriteHigh permeability ( i: 2000-15,000), low-frequency operation (10kHz-5MHz)Power supply filters, transformer cores
Nickel-Zinc (NiZn) FerriteModerate permeability ( i: 100-2000), high-frequency stability (1MHz-3GHz)RFID antennas, wireless charging systems
Flexible Ferrite SheetsLow-profile, adhesive-backed constructionPortable electronics, cable management

3. Structure and Composition

Typical construction features:

  • Disk/plate geometry with diameters ranging from 5mm to 50mm
  • Material composition: Fe O (60-70%) + Mn-Zn/Ni-Zn additives
  • Surface treatment: Epoxy coating (standard) or PTFE for high-temperature environments
  • Porosity control: 10-15% to optimize magnetic hysteresis

4. Key Technical Parameters

ParameterDescriptionImportance
Initial Permeability ( i)Measures magnetic responsivenessDetermines noise suppression efficiency
Cutoff Frequency (MHz)Effective operating frequency rangeMatches component to target EMI spectrum
Impedance (Z) @ 100MHzComplex resistance value ( )Quantifies noise attenuation capability
Curie Temperature ( C)Thermal threshold for magnetic propertiesDefines operational temperature limits
Dimensional ToleranceManufacturing precision ( 0.05mm)Ensures mechanical compatibility

5. Application Areas

Key industries include:

  • Consumer Electronics: Mobile phone chargers, HDMI cables
  • Telecommunications: 5G base stations, fiber optic transceivers
  • Automotive: EV battery management systems, ADAS sensors
  • Industrial: CNC machine controllers, power inverters

6. Leading Manufacturers

ManufacturerKey ProductsSpecialization
TDK CorporationPC400 series MnZn coresHigh-power applications
MAGNETICS by Arnold0K41 material NiZn disksAerospace-grade components
Ferrite InternationalFlexFerrite adhesive sheetsCustom-shaped solutions

7. Selection Guidelines

Key considerations:

  • Frequency matching: Select cutoff frequency >1.5 target noise frequency
  • Thermal management: Choose Curie temperature >1.2 expected operating temperature
  • Mechanical constraints: Account for 3D mounting space and weight limits
  • Cost optimization: Balance permeability requirements with material costs

Case study: Electric vehicle charging stations typically use MnZn disks with i=5000 to suppress 150kHz switching noise.

8. Industry Trends

Emerging developments:

  • Nanostructured ferrites for THz-range operation
  • Embedded ferrite plates in PCB substrates
  • Lead-free formulations complying with RoHS 3.0
  • AI-driven permeability optimization algorithms
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