Lighting Protection

Image Part Number Description / PDF Quantity Rfq
LSP0900AJR-S

LSP0900AJR-S

J.W. Miller / Bourns

LIGHT PROTECTOR LED SHUNT 9V SMD

10761

HBL5006P2T5G

HBL5006P2T5G

SILICON SURGE PROTECTOR

319950

PLED6Q12

PLED6Q12

Wickmann / Littelfuse

LIGHT PROTECTOR LED SHUNT 6V SMD

0

HBL5006XV2T5G

HBL5006XV2T5G

Sanyo Semiconductor/ON Semiconductor

IC ELECTRONIC SHUNT SOD523-2

0

PLED6N

PLED6N

Wickmann / Littelfuse

LIGHT PROTECTOR LED SHUNT SMD

0

HBL1025T1G

HBL1025T1G

SILICON SURGE PROTECTOR, 16V MAX

15000

SZHBL5006P2T5G

SZHBL5006P2T5G

Sanyo Semiconductor/ON Semiconductor

LIGHT PROTECTOR LED SHUNT 7V SMD

2147483647

SZHBL5006XV2T5G

SZHBL5006XV2T5G

Sanyo Semiconductor/ON Semiconductor

LIGHT PROTECTOR LED SHUNT 7V SMD

0

PLED260S

PLED260S

Wickmann / Littelfuse

LIGHT PROTECT LED SHUNT 220V SMD

0

LSP0600BJR-S

LSP0600BJR-S

J.W. Miller / Bourns

LIGHT PROTECTOR LED SHUNT 6V SMD

13148

LBP01-0810B

LBP01-0810B

STMicroelectronics

LIGHT PROTECT LED SHUNT 15V SMD

26494

PLED13S

PLED13S

Wickmann / Littelfuse

LIGHT PROTECT LED SHUNT 13V SMD

95

LSP0600AJR-S

LSP0600AJR-S

J.W. Miller / Bourns

LIGHT PROTECTOR LED SHUNT 6V SMD

6968

PLED230S

PLED230S

Wickmann / Littelfuse

LIGHT PROTECT LED SHUNT 190V SMD

0

LSP1300BJR-S

LSP1300BJR-S

J.W. Miller / Bourns

LIGHT PROTECT LED SHUNT 13V SMD

0

PLED9UQ12

PLED9UQ12

Wickmann / Littelfuse

LIGHT PROTECTOR LED SHUNT 9V SMD

0

PLED6US

PLED6US

Wickmann / Littelfuse

LIGHT PROTECTOR LED SHUNT 6V SMD

0

PLED13US

PLED13US

Wickmann / Littelfuse

LIGHT PROTECT LED SHUNT 13V SMD

0

PLED380S

PLED380S

Wickmann / Littelfuse

LIGHT PROTECT LED SHUNT 350V SMD

0

PLED18SW

PLED18SW

Wickmann / Littelfuse

LIGHT PROTECT LED SHUNT 18V SMD

0

Lighting Protection

Lighting Protection Devices (LPD) are specialized electrical components designed to protect systems from transient overvoltages caused by lightning strikes or switching operations. These devices mitigate damage by diverting high-energy surges to ground, ensuring continuity in power systems and safeguarding sensitive equipment. With increasing reliance on electronic infrastructure, LPDs have become critical in power grids, telecommunications, and industrial automation.

TypeFunctional FeaturesApplication Examples
Spark Gap ArrestersUtilize gas discharge tubes for high-current diversionPrimary protection for power substations
Metal Oxide Varistors (MOVs)Voltage-dependent resistors with fast response timesSecondary protection in data centers
Gas Discharge Tubes (GDTs)Multi-layer gas chambers for medium-energy surgesTelecom line protection
Hybrid Surge ProtectorsCombines MOV + GDT for multi-stage protectionRenewable energy systems

Typical LPDs consist of:

  • Outer housing (UV-resistant polymer or ceramic)
  • Active components (varistor disks, gas discharge chambers)
  • Thermal disconnection mechanisms
  • Grounding terminals (copper alloy contacts)
  • Visual indicator for failure status

ParameterDescriptionImportance
Maximum Discharge Current (I_max)Peak current handling capacity (kA)Determines surge withstand capability
Voltage Protection Level (Up)Clamping voltage during surgeProtects downstream equipment
Response Time (t_A)Time to activate protection (ns)Minimizes exposure to transients
Continuous Operating Voltage (U_c)Max sustained AC/DC voltageEnsures normal operation stability
Short-Circuit WithstandCurrent rating during fault conditionsPrevents thermal damage

Key industries include:

  • Power utilities (transmission lines, transformers)
  • Telecommunications (base stations, fiber networks)
  • Industrial automation (PLC systems, control cabinets)
  • Renewable energy (solar inverters, wind turbines)
  • Transport infrastructure (rail signaling, airport lighting)

ManufacturerRepresentative ProductKey Features
ABBOVR Prime SeriesModular design with remote signaling
SiemensFSU500UThree-stage protection for industrial networks
LittelfuseSX SeriesHybrid MOV-GDT for telecom applications
Phoenix ContactVAL-SEC seriesPhotovoltaic system protection

Key considerations:

  • Match Uc to system voltage (10-15% margin)
  • Select Up below equipment's dielectric withstand
  • Coordinate I_max with installation location's exposure level
  • Verify compliance with IEC 61643-11/UL 1449 standards
  • Consider maintenance intervals and replacement indicators

Current developments include:

  • Integration with IoT for real-time monitoring
  • Nano-material enhanced varistors for higher energy density
  • Modular designs for easy field replacement
  • Increased focus on DC system compatibility (EV charging, renewables)
  • Smart grid compatibility with predictive maintenance features

A wind farm in Germany implemented hybrid surge protectors (MOV+GDT) at turbine bases and control rooms. This reduced lightning-related downtime by 73% over two years while maintaining IEC 62305 compliance for risk management.

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