EMI/RFI Filters (LC, RC Networks)

Image Part Number Description / PDF Quantity Rfq
EMIF03-SIM03F3

EMIF03-SIM03F3

STMicroelectronics

FILTER RC(PI) ESD SMD

0

EMIF02-SPK02F2

EMIF02-SPK02F2

STMicroelectronics

IC EMI FILTER ESD PROT SMD

2551

EMIF03-SIM04F3

EMIF03-SIM04F3

STMicroelectronics

FILTER RC(PI) ESD SMD

0

EMIF06-VID01F2

EMIF06-VID01F2

STMicroelectronics

IC FILTER EMI 6LINE ESD FLIPCHIP

0

EMIF01-TV02F3

EMIF01-TV02F3

STMicroelectronics

FILTER RC(PI) 75 OHM/330PF SMD

0

EMIF02-MIC02F2

EMIF02-MIC02F2

STMicroelectronics

FILTER RC(PI) 470 OHM/16PF SMD

26

EMIF04-1005M8

EMIF04-1005M8

STMicroelectronics

FILTER RC(PI) 100 OHM/45PF SMD

4

KBMF01SC6

KBMF01SC6

STMicroelectronics

FILTER RC(PI) 39 OHM/120PF SMD

6639

EMIF03-SIM02C2

EMIF03-SIM02C2

STMicroelectronics

FILTER RC(PI) ESD SMD

0

EMIF06-MSD03F3

EMIF06-MSD03F3

STMicroelectronics

FILTER RC(PI) 40 OHM/7.5PF SMD

0

EMIF10-LCD01F2

EMIF10-LCD01F2

STMicroelectronics

FILTER RC(PI) 100 OHM/28PF SMD

0

EMIF03-SIM01F2

EMIF03-SIM01F2

STMicroelectronics

FILTER RC(PI) ESD SMD

0

USBUF02W6

USBUF02W6

STMicroelectronics

FILTER RC(PI) 22 OHM/47PF SMD

64501

EMIF04-EAR02M8

EMIF04-EAR02M8

STMicroelectronics

FILTER LC(PI)/RC(PI) ESD SMD

2811

EMIF06-MSD02N16

EMIF06-MSD02N16

STMicroelectronics

FILTER RC(PI) 45 OHM/20PF SMD

0

EMIF02-MIC02F3

EMIF02-MIC02F3

STMicroelectronics

FILTER RC(PI) 470 OHM/16PF SMD

0

EMIF04-1K030F3

EMIF04-1K030F3

STMicroelectronics

FILTER RC(PI) 1KOHM/24PF ESD SMD

0

EMIF06-MSD04F3

EMIF06-MSD04F3

STMicroelectronics

FILTER RC(PI) 40 OHM/7.5PF SMD

0

USBUF01W6

USBUF01W6

STMicroelectronics

FILTER RC(PI) 33 OHM/47PF SMD

5531

EMIF06-1005N12

EMIF06-1005N12

STMicroelectronics

FILTER RC(PI) 100 OHM/45PF SMD

0

EMI/RFI Filters (LC, RC Networks)

1. Overview

EMI/RFI (Electromagnetic Interference/Radio-Frequency Interference) filters are passive components designed to suppress unwanted high-frequency noise in electronic circuits. These filters utilize LC (inductor-capacitor) or RC (resistor-capacitor) networks to attenuate noise while allowing desired signals to pass. In modern electronics, they are critical for ensuring electromagnetic compatibility (EMC), preventing interference between devices, and meeting regulatory standards in industries such as automotive, aerospace, and telecommunications.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
LC FiltersUse inductors and capacitors to create low-pass or band-pass filtering; high attenuation at target frequenciesPower supplies, motor drives, RF transceivers
RC FiltersResistor-capacitor networks for broadband noise suppression; lower cost, simpler designSignal lines, analog circuits, medical devices
LCR FiltersCombines inductors, capacitors, and resistors for enhanced damping and stabilityHigh-precision instrumentation, industrial automation
Multi-stage FiltersCascaded LC/RC stages for improved attenuation over wide frequency rangesSwitching power supplies, EV charging systems

3. Structure and Components

A typical EMI/RFI filter consists of: - Inductors (L): Wound coils or ferrite beads that block high-frequency currents. - Capacitors (C): Ceramic or film capacitors that shunt noise to ground. - Resistors (R): Used for damping oscillations in LCR filters. - Enclosure: Shielded metal or plastic housing to prevent radiation. - Terminals: Screw, PCB, or panel-mount interfaces for integration. The components are arranged in (Pi), T, or ladder configurations based on filtering requirements.

4. Key Technical Specifications

ParameterDescriptionImportance
Cutoff FrequencyFrequency at which attenuation reaches -3dBDetermines noise suppression range
Insertion LossSignal loss at target frequencies (dB)Measures filtering effectiveness
Rated Voltage/CurrentMax continuous operating voltage/currentEnsures safe operation
ImpedanceMatching with source/load impedance ( )Optimizes performance
Temperature RangeOperating temperature limits ( C)Affects reliability
ESR (Equivalent Series Resistance)Internal resistance of capacitorsInfluences damping and efficiency

5. Application Areas

EMI/RFI filters are used in: - Consumer Electronics: Smartphones, TVs, switching power supplies. - Industrial Automation: PLCs, motor drives, sensors. - Automotive: On-board chargers (OBC), CAN bus systems. - Medical Devices: MRI machines, ECG monitors. - Telecommunications: 5G base stations, fiber optic transceivers. - Aerospace: Avionics, satellite communication systems.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
TDK CorporationFK18 seriesMiniature LC filters for DC power lines, 100kHz 1GHz range
Murata ManufacturingNXU seriesMulti-layer ceramic EMI filters for automotive applications
Schaffner GroupFN9266High-current 3-phase filter for industrial motor drives
Coilcraft1500R seriesRC networks for signal line filtering in IoT devices
Bourns Inc.2008-RCSurface-mount LC filters for telecom infrastructure

7. Selection Guidelines

Key considerations for selecting EMI/RFI filters: 1. Frequency Range: Match cutoff frequency to target noise spectrum. 2. Circuit Impedance: Ensure impedance compatibility (e.g., 50 systems). 3. Physical Constraints: Size, mounting type (through-hole/SMD), and weight. 4. Environmental Factors: Temperature, humidity, and vibration resistance. 5. Cost vs. Performance: Balance attenuation requirements with budget. 6. Compliance: Certifications (CE, FCC, CISPR) for target markets. Example: For a 12V DC motor driver, select an LC filter with a 1MHz cutoff frequency, 5A current rating, and IP67 enclosure.

8. Industry Trends

Future developments include: - Miniaturization: Increased integration of LC/RC components in chip-scale packages. - High-Frequency Support: Filters for 5G (up to 40GHz) and mmWave applications. - Wide Bandgap Compatibility: Optimized for GaN/SiC devices in EVs and fast chargers. - Smart Filters: Embedded sensors for real-time EMI monitoring. - Environmental Compliance: Lead-free materials and RoHS/WEEE adherence. The global EMI filter market is projected to grow at 8.2% CAGR through 2030, driven by IoT and electrified transportation.

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