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    DigiKey Presents Factory Tomorrow Season 5 Video Series

    Samsung MLCCs Lineup for In-Vehicle Infotainment

    source: Samtec

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    Würth Elektronik Unveils Compact Common-Mode Data Lines Chokes

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    Ripple Steering in Coupled Inductors: SEPIC Case

    SEPIC Converter with Coupled and Uncoupled Inductors

    Coupled Inductors in SEPIC versus Flyback Converters

    Non-Linear MLCC Class II Capacitor Measurements Challenges

    Percolation Phenomenon and Reliability of Molded Power Inductors in DC/DC converters

    Root Causes and Effects of DC Bias and AC in Ceramic Capacitors

    How to Calculate the Output Capacitor for a Switching Power Supply

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    DigiKey Presents Factory Tomorrow Season 5 Video Series

    Samsung MLCCs Lineup for In-Vehicle Infotainment

    source: Samtec

    Best Practices for Cable Management in High-Speed and High-Density Systems

    Würth Elektronik Unveils Compact Common-Mode Data Lines Chokes

    Bourns Releases TCO 240 Watt USB Mini-Breaker

    Littelfuse Adds 600W Automotive TVS Diodes for High-Energy Transient Protection

    Vishay Releases Harsh Environment Robust DC-Link Film Capacitor

    Bourns Releases Automotive High Creepage and Clearance Transformer

    Bourns Unveils Metal Powder Core High Current Low DCR Shielded Power Inductor

    Trending Tags

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    Ripple Steering in Coupled Inductors: SEPIC Case

    SEPIC Converter with Coupled and Uncoupled Inductors

    Coupled Inductors in SEPIC versus Flyback Converters

    Non-Linear MLCC Class II Capacitor Measurements Challenges

    Percolation Phenomenon and Reliability of Molded Power Inductors in DC/DC converters

    Root Causes and Effects of DC Bias and AC in Ceramic Capacitors

    How to Calculate the Output Capacitor for a Switching Power Supply

    Switched Capacitor Converter Explained

    Understanding Inductor Dot Markings and Their Application in LTspice

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Design and Testing Strategies for High Reliability MLCCs

2.2.2023
Reading Time: 3 mins read
A A

Knowles Precision Devices on-demand webinar focuses on the design and testing of high reliability Multi-Layer Ceramic Capacitors (MLCCs) for use in mission-critical or life-saving applications.

High reliability – this is what the industry demands for some of the world’s most important devices.

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From implantable devices going into the human body, to space and military devices, these applications are built to last under extreme conditions.

To do so, they are made of high-quality components with appropriate additional testing to ensure long-term reliability.

In Knowles webinar, we focus on the design and testing of high reliability Multi-Layer Ceramic Capacitors (MLCCs) for use in mission-critical or life-saving applications.

We start by summarizing the basics of MLCCs:

  • The difference between capacitors and batteries
  • What MLCCs are made of
  • The three different classes of dielectrics
  • Primary uses for capacitors in electronic circuits
  • Series vs. parallel capacitor set up
  • Key considerations while designing for high reliability

Then we move into how high reliability components are designed and built for higher reliability and to handle higher temperatures and voltages.

Lastly, we review high reliability testing and the specific testing standards manufacturers must pass before components are cleared for use, such as MIL-PRF-55681 and MIL-PRF-123. We walk you through the testing requirements for military, space, and medical devices to test durability and reliability during extreme temperatures, vibrations, shock, acceleration, and so on.

If you’re involved in designing electrical systems for applications such as medical devices or aerospace equipment, we encourage you to watch the full webinar to understand the importance of high reliability MLCC design and testing.

Watch the Webinar

Related

Source: Knowles Precision Devices

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