Inrush Current Limiters (ICL)

Image Part Number Description / PDF Quantity Rfq
CL-120

CL-120

Thermometrics (Amphenol Advanced Sensors)

ICL 10 OHM 25% 1.7A 10.16MM

16708

CL-11

CL-11

Thermometrics (Amphenol Advanced Sensors)

ICL 700 MOHM 25% 12A 19.56MM

1080

CL-40

CL-40

Thermometrics (Amphenol Advanced Sensors)

ICL 5 OHM 25% 6A 19.56MM

7384

CL-50B

CL-50B

Thermometrics (Amphenol Advanced Sensors)

ICL 7 OHM 5A 19.56MM

2000

CL-210A

CL-210A

Thermometrics (Amphenol Advanced Sensors)

ICL 30 OHM 25% 1.5A 10.16MM

0

CL-30B

CL-30B

Thermometrics (Amphenol Advanced Sensors)

ICL 2.5 OHM 25% 8A 19.56MM

2014

CL-11A

CL-11A

Thermometrics (Amphenol Advanced Sensors)

ICL 700 MOHM 25% 12A 19.56MM

0

CL-110

CL-110

Thermometrics (Amphenol Advanced Sensors)

ICL 10 OHM 25% 3.2A 10.16MM

4170

CL-140A

CL-140A

Thermometrics (Amphenol Advanced Sensors)

ICL 50 OHM 25% 1.1A 11.4MM

45

CL-101

CL-101

Thermometrics (Amphenol Advanced Sensors)

ICL 500 MOHM 25% 16A 23.62MM

4327

CL-60A

CL-60A

Thermometrics (Amphenol Advanced Sensors)

ICL 10 OHM 25% 5A 19.56MM

924

CL-50A

CL-50A

Thermometrics (Amphenol Advanced Sensors)

ICL 7 OHM 25% 5A 19.56MM

0

CL-101A

CL-101A

Thermometrics (Amphenol Advanced Sensors)

ICL 500 MOHM 25% 16A 23.62MM

0

CL-70B

CL-70B

Thermometrics (Amphenol Advanced Sensors)

ICL 16 OHM 4A 19.56MM

0

CL-130A

CL-130A

Thermometrics (Amphenol Advanced Sensors)

ICL 50 OHM 25% 1.6A 11.4MM

988

CL-21

CL-21

Thermometrics (Amphenol Advanced Sensors)

ICL 1.3 OHM 25% 8A 13.97MM

2429

CL-120A

CL-120A

Thermometrics (Amphenol Advanced Sensors)

ICL 10 OHM 25% 1.7A 10.16MM

685

CL-150

CL-150

Thermometrics (Amphenol Advanced Sensors)

ICL 5 OHM 25% 4.7A 13.97MM

3552

CL-30

CL-30

Thermometrics (Amphenol Advanced Sensors)

ICL 2.5 OHM 25% 8A 19.56MM

3943

CL-90A

CL-90A

Thermometrics (Amphenol Advanced Sensors)

ICL 120 OHM 25% 2A 23.62MM

867

Inrush Current Limiters (ICL)

1. Overview

Inrush Current Limiters (ICL) are electronic components designed to suppress peak currents during device startup, protecting circuits from thermal and electrical stress. These transient currents, often 10-100 times higher than steady-state levels, occur in capacitive or inductive loads like power supplies, motors, and transformers. Modern electronics increasingly rely on ICLs to ensure system reliability, comply with safety standards, and extend product lifespans.

2. Main Types & Functional Classification

TypeFunctional CharacteristicsApplication Examples
NTC Thermistor ICLResistance decreases with temperature rise, self-resetting capabilitySwitching power supplies, LED drivers
PTC Thermistor ICLResistance increases with temperature, latching protectionMotor start circuits, battery management systems
Active ICLElectronic control using MOSFETs/IGBTs with precise timingHigh-precision industrial equipment
Hybrid ICLCombines passive and active elements for optimized performanceElectric vehicle charging stations

3. Structure & Composition

ICLs typically consist of three key elements:

  • Sensing Element: Thermally responsive material (e.g., NTC ceramic) or semiconductor junctions
  • Conductive Path: Silver/palladium electrodes in thermistors or MOSFET channels in active devices
  • Encapsulation: Epoxy or ceramic coatings for environmental protection

Active ICLs additionally integrate control ICs, gate drivers, and heat dissipation structures.

4. Key Technical Specifications

ParameterDescriptionImportance
Maximum Steady-State Current (Imax)Rated operational current after inrush suppressionDetermines continuous load capacity
Response Time (tresponse)Time to activate current limiting functionProtects against fast transient events
Clamping Voltage (Vclamp)Maximum voltage during limiting operationPrevents downstream component damage
Operating Temperature RangeFunctional temperature limitsEnsures reliability in extreme environments
Energy Absorption (I t)Total energy handling capabilityDefines survival under fault conditions

5. Application Fields

Major industries utilizing ICLs include:

  • Consumer Electronics: Power adapters, HVAC systems
  • Industrial: Variable frequency drives, welding machines
  • Automotive: EV charging stations, onboard chargers
  • Medical: MRI power systems, patient monitors

Typical case: NTC ICLs reduce 50A startup surges to 5A in 500W switching power supplies.

6. Leading Manufacturers & Products

ManufacturerProduct SeriesKey Features
TDK CorporationB59xxx SeriesHigh-reliability NTCs for automotive applications
LittelfusePTCLxxx SeriesAEC-Q100 qualified PTC devices
Bel Fuse0Zxxx SeriesMulti-layer ceramic thermistors
EPCOS (TDK)B25xxx SeriesHybrid ICLs with integrated sensors

7. Selection Guidelines

Critical factors for proper ICL selection:

  • Match Imax with system steady-state requirements (+20% margin)
  • Verify Vrated exceeds peak AC voltage by 50%
  • Consider ambient temperature effects on performance
  • Evaluate reset time for thermistor-based solutions
  • For active ICLs: Confirm compatibility with control signals

Example: A 240VAC motor drive requires an ICL with 15A Imax and 300Vclamp.

8. Industry Trends

Emerging developments include:

  • Miniaturization: 0603-sized active ICLs for mobile devices
  • Wide bandgap integration: SiC/GaN-based hybrid devices
  • Smart ICLs: Embedded current monitoring and diagnostics
  • Material innovation: Graphene-enhanced thermistors

Market growth driven by EV charging infrastructure and renewable energy systems, projected at 7.2% CAGR through 2027.

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