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Switching Power Supply Component Selection
This 7-part series discusses tips and best practices for selecting the appropriate components for your switching power supply.
Power Tips: Controlling Power Supplies with Multiple Loops
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Power Tips: Compensating Isolated Power Supplies
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Power Tips: How a Microcontroller Enhances Power Supply Performance
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Power Tips: Demonstration of a 60W USB-C AC/DC Adaptor Reference Design
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Engineer It: How to use the Fly-Buck DC/DC converter topology
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Flyback transformer design considerations of efficiency and EMI
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Design review of 350-W CCM PFC + LLC module
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Isolated Power Supplies for PLC I/O Modules
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Loop bandwidth considerations for flyback in CCM regarding RHPZ
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Understanding the Basics of a Flyback Converter
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How to use WEBENCH for High Power Designs
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Isolated Power Supplies for PLC IO Modules
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Optimizing DC/DC Converters for EMI in Automotive Systems
EMI (electromagnetic interference) mitigation is a critical step in the design process in most electronic systems, and especially so in the automotive world. In many cases, automotive OEM emissions requirements are even more stringent than both national and international standards bodies like the FCC. Unfortunately, by their nature, switching regulators are sources of EMI; but, in order to keep power supply designs small and efficient, switchers are a critical component. So how can you reap the benefits of a switching regulator while still meeting challenging EMI requirements?
Shrink Your Fly-Buck Design with Off-the-Shelf Coupled Inductors
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How to design multi-kW DC/DC converters for electric vehicles (EVs) - A high power on-board charger design
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How to design multi-kW DC/DC converters for electric vehicles (EVs)
We are all well aware that the demand for Electric Vehicles (EV) is increasing rapidly. This eight-part training session begins with a description of a typical EV system in part 1. Part 2 is a brief description of how both Lead Acid and Lithium Ion batteries are charged. Part 3 focuses on the types of power factor and harmonic currents. Part 4 discusses power factor correction and the typical boost PFC stage. Part 5 concentrates on the Phase Shifted Full Bridge topology, including the reasons why it is used and a detailed description of how it operates.
Introduction to Protection Relay and Power Systems Faults
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Transformer Designer for Isolated High-Voltage Power Design
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Tips and Tricks for Industrial Power Supplies - Battery Charging
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