MXLLCE160AE3 Allicdata Electronics

MXLLCE160AE3 Circuit Protection

Allicdata Part #:

1086-10172-ND

Manufacturer Part#:

MXLLCE160AE3

Price: $ 10.84
Product Category:

Circuit Protection

Manufacturer: Microsemi Corporation
Short Description: TVS DIODE 160V 259V CASE-1
More Detail: N/A
DataSheet: MXLLCE160AE3 datasheetMXLLCE160AE3 Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Contains lead / RoHS non-compliant
100 +: $ 9.85320
Stock 1000Can Ship Immediately
$ 10.84
Specifications
Voltage - Clamping (Max) @ Ipp: 259V
Supplier Device Package: CASE-1
Package / Case: DO-201AA, DO-27, Axial
Mounting Type: Through Hole
Operating Temperature: -65°C ~ 150°C (TJ)
Capacitance @ Frequency: 90pF @ 1MHz
Applications: General Purpose
Power Line Protection: No
Power - Peak Pulse: 1500W (1.5kW)
Current - Peak Pulse (10/1000µs): 5.8A
Series: Military, MIL-PRF-19500
Voltage - Breakdown (Min): 178V
Voltage - Reverse Standoff (Typ): 160V
Unidirectional Channels: 1
Type: Zener
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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TVS - Diodes are widely used in a variety of applications, particularly in the protection of sensitive electrical and electronic equipment from over-currents, short-circuits, and over-voltage conditions. The MXLLCE160AE3 is a Transient Voltage Suppressor (TVS) diode manufactured by InnoVolta® that is suitable for protecting circuits from over-voltage transients and other common electrostatic discharges. It is ideal for use in systems where high surge currents are expected, and low clamping voltages are required. In this article, we will discuss the application field and working principle of the MXLLCE160AE3.

The MXLLCE160AE3 is a voltage-clamping device designed for use in a broad range of applications. It is designed to protect sensitive electronic components from damage caused by over-voltage transients. It has a low clamping voltage and fast response time, making it ideal for transient voltage protection. It is suitable for use in a variety of industries, including communications, automotive, lighting, and medical, as well as in industrial control, network, consumer electronics, and instrumentation systems.

In addition to its use in voltage protection applications, the MXLLCE160AE3 is also used in the protection of electrical and electronic equipment from over-currents, short-circuits, and over-voltage conditions. It is capable of suppressing high energy spikes and quickly recovering to its true current carrying capacity after a surge. This makes it ideal for use in a wide range of medium- to high-power applications.

The working principle of the MXLLCE160AE3 is based on the ability of the diode to rapidly clamp excessive voltages. When the diode is exposed to an over-voltage condition, the anode passes current rapidly to the cathode, clamps the voltage to a lower level and protects the circuit from damage. The diode is capable of suppressing transients up to 600V and has a low clamping voltage of 2.0V.

The MXLLCE160AE3 is commonly used in a variety of systems to protect components from transient voltage events. It is typically used in high-power applications, such as in automotive, LED lighting, consumer electronics, instrumentation, and medical systems. It can be used in both AC and DC power line protection, and its low clamping voltage and fast response time make it suitable for use in high-frequency situations where traditional protection devices may be insufficient.

In conclusion, the MXLLCE160AE3 is a Transient Voltage Suppressor (TVS) diode manufactured by InnoVolta® that is suitable for use in a variety of systems to provide protection from over-voltage transients. It has a low clamping voltage and fast response time, making it ideal for use in high-power applications. It is typically used in automotive, LED lighting, consumer electronics, instrumentation, and medical systems, and is capable of suppressing transients up to 600V. This makes it an ideal choice for protection of electronic components from transient voltage events.

The specific data is subject to PDF, and the above content is for reference

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