PTC Resettable Fuses

Image Part Number Description / PDF Quantity Rfq
FEMTOASMDC008F-2

FEMTOASMDC008F-2

Wickmann / Littelfuse

PTC RESET FUSE 12V 80MA 0603

7870

0402L100SLKR

0402L100SLKR

Wickmann / Littelfuse

PTC RESET FUSE 1.0A 6V 0402

999710000

VLR175LF

VLR175LF

Wickmann / Littelfuse

PTC RESET FUSE 12V 1.75A STRAP

10000

RXEF160

RXEF160

Wickmann / Littelfuse

PTC RESET FUSE 72V 1.6A RADIAL

11555

MINIASMDC260F/16-2

MINIASMDC260F/16-2

Wickmann / Littelfuse

PTC RESET FUSE 16V 2.6A 1812

8528

RUEF110

RUEF110

Wickmann / Littelfuse

PTC RESET FUSE 30V 1.1A RADIAL

2494

PICOASMDCH010F-2

PICOASMDCH010F-2

Wickmann / Littelfuse

PTC RESET FUSE 16V 100MA 0805

10728000

PICOASMDC012S-2

PICOASMDC012S-2

Wickmann / Littelfuse

PTC RESET FUSE 15V 120MA 0805

80000

LVR016S-2

LVR016S-2

Wickmann / Littelfuse

PTC RESET FUSE 240V 160MA RADIAL

4431

250R120-RCZR

250R120-RCZR

Wickmann / Littelfuse

PTC RESET FUSE 60V 120MA RADIAL

161314400

60R090XU

60R090XU

Wickmann / Littelfuse

PTC RESET FUSE 60V 900MA RADIAL

2105000

TS600-400F-2

TS600-400F-2

Wickmann / Littelfuse

PTC RESET FUSE 60V 400MA 2SMD

0

FEMTOASMDC005F-2

FEMTOASMDC005F-2

Wickmann / Littelfuse

PTC RESET FUSE 15V 50MA 0603

95

250R180F

250R180F

Wickmann / Littelfuse

PTC RESET FUSE 60V 180MA RADIAL

6000

0805L100WR-A

0805L100WR-A

Wickmann / Littelfuse

PTC RESET FUSE 6V 1A 0805

2887

RUEF600-1

RUEF600-1

Wickmann / Littelfuse

PTC RESET FUSE 30V 6A RADIAL

0

AGRF800

AGRF800

Wickmann / Littelfuse

PTC RESET FUSE 16V 8A RADIAL

0

RUEF400K

RUEF400K

Wickmann / Littelfuse

PTC RESET FUSE 30V 4A RADIAL

5013

SMD150F/33-2

SMD150F/33-2

Wickmann / Littelfuse

PTC RESET FUSE 33V 1.5A 2SMD

23375

NANOSMDC150F-2

NANOSMDC150F-2

Wickmann / Littelfuse

PTC RESET FUSE 6V 1.5A 1206

5622

PTC Resettable Fuses

1. Overview

PTC (Positive Temperature Coefficient) Resettable Fuses are overcurrent protection devices that exhibit a sharp increase in resistance when fault currents exceed normal operating levels. Unlike traditional fuses, PTC devices automatically reset to low-resistance states after fault conditions clear. This self-recovering makes them critical in applications requiring reliable protection against short circuits and overloads without manual replacement. Their importance in modern electronics spans consumer devices, automotive systems, industrial equipment, and renewable energy installations.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsTypical Applications
Polymer PTC (PPTC)Organic polymer matrix with conductive particles, fast response time (ms level), low leakage currentConsumer electronics, USB ports, battery packs
Ceramic PTCSintered barium titanate material, higher operating temperature tolerance, stable tripping characteristicsIndustrial motors, HVAC systems, automotive ECUs
Hybrid PTCCombines polymer and ceramic elements for optimized performance, enhanced surge current capabilityTelecom infrastructure, solar inverters, medical devices

3. Structure and Composition

Typical PTC fuse construction includes:
  • PTC Element: Conductive polymer composite (e.g., carbon-black filled polyethylene) or doped ceramic material
  • Electrodes: Pre-plated nickel/copper layers with solderable termination
  • Encapsulation: Flame-retardant epoxy resin housing (UL94 V-0 rated)
  • Termination: Axial leads, SMD pads, or wire leads depending on package type
The resistance-temperature curve exhibits three regions: conductive (normal), transition (trip point), and high-resistance (latched) states.

4. Key Technical Specifications

ParameterDescriptionImportance
Hold Current (Ihold)Maximum operating current before tripping (range: 0.05A-50A)Determines normal operation compatibility
Tripping Time (Ttrip)Response time under overcurrent conditions (1ms-10s)Affects system fault tolerance
Max Voltage (Vmax)Rated voltage withstand capability (3V-600V)Safety insulation coordination
Leakage CurrentPost-trip residual current ( A level)Energy efficiency consideration
Operating Temp RangeFunctional temperature range (-40 C to 125 C typical)Environmental reliability

5. Application Areas

  • Consumer Electronics: Smartphones, laptops, power banks
  • Automotive: CAN bus protection, ADAS sensors, 12V/48V systems
  • Industrial: PLCs, motor drives, test equipment
  • Renewable Energy: Solar charge controllers, wind turbine converters
  • Medical Devices: Patient monitors, portable diagnostic equipment

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
LittelfusePolySwitch VLRHigh inrush current tolerance for LED lighting
BournsMF-MSM SeriesMiniature SMD design for space-constrained applications
TE ConnectivityCR28xx SeriesAutomotive qualified (AEC-Q200) for EV powertrains
Bel/Standex0ZCM SeriesVertical through-hole design for industrial controls

7. Selection Guidelines

Key factors to consider:
  • Calculate normal operating current with 20% safety margin
  • Evaluate maximum fault current requirements
  • Match voltage rating with system specifications
  • Consider package type (SMD vs through-hole) for PCB layout
  • Analyze thermal derating curves for elevated temperatures
Example: For a 5V USB PD application, select a 0.5A hold current PPTC with 6V rating and <50ms trip time.

8. Industry Trends

  1. Development of ultra-low resistance ( 10m ) devices for high-current applications
  2. Integration with smart monitoring systems via embedded sensors
  3. Growing adoption in electric vehicles for 48V/800V system protection
  4. Nanocomposite material innovations improving response times
  5. Miniaturization driven by 5G infrastructure and IoT device demands
Market projections indicate a CAGR of 7.2% through 2027, with Asia-Pacific region leading adoption growth.
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