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Power Supply IC
Power Supply IC
AC-DC
DC-DC
AC-DC
AC-DC Basics
Transformer System
Transformer vs Switching
What is Switching System?
Overview of Design Method of PWM AC-DC Flyback Converters
Want are Isolated Flyhback Convertors?
Isolated Flyback Converter Basics: What is Switching AC-DC Conversion?
Isolated Flyback Converter Basics: What are Characteristics of Flyback Converter?
Isolated Flyback Converter Basics: Flyback Converter Operation and Snubber
Isolated Flyback Converter Basics: What are Discontinuous Mode and Continuous Mode?
Design Procedure
Determining Power Supply Specifications
Choosing an IC for Design
Designing Isolated Flyback Converter Circuits
Designing Isolated Flyback Converter Circuits: Transformer Design (Calculating numerical values)
Designing Isolated Flyback Converter Circuits: Transformer Design (Structural Design) – 1
Designing Isolated Flyback Converter Circuits: Transformer Design (Structural Design) – 2
Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? MOSFET related – 1
Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? MOSFET related – 2
Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? CIN and Snubber
Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? Output Rectifier and Cout
Designing Isolated Flyback Converter Circuits: Selecting Critical Components ? VCC of IC
Designing Isolated Flyback Converter Circuits: Selecting Critical Components – IC Settings Etc.
Designing Isolated Flyback Converter Circuits: Addressing EMI and Output Noise
Example Board Layout
Summary
Overview of Design Examples of AC-DC Non-isolated Buck Converters
What are Buck Converters? – Basic Operation and Discontinuous Mode vs. Continuous Mode
Selection of Power Supply ICs and Design Examples
Selecting Critical Components: Input Capacitor C1 and VCC Capacitor C2
Selecting Critical Components: Inductor L1
Selecting Critical Components: Current Sense Resistor R1
Selecting Critical Components: Output Capacitor C5
Selecting Critical Components: Output Rectifying Diode D4
EMI Countermeasures
Board Layout and Summary
Introduction
Design Procedure
IC Used in Design
Power Supply Specifications and Replacement Circuit
Synchronous Rectifying Circuit Section: Selection of Synchronous Rectifying MOSFET
Synchronous Rectification Circuit Section: Power Supply IC Selection
Synchronous Rectification Circuit Section: Selection of Peripheral Circuit Components-C1, R3 at MAX_TON Pin, and VCC Pin
Synchronous Rectification Circuit Section: Selection of Peripheral Circuit Components-D1, R1, R2 at DRAIN Pin
Shunt Regulator Circuit Section: Selection of Peripheral Circuit Components
Troubleshooting ①: Case When Secondary-Side MOSFET Suddenly Turns OFF
Troubleshooting ②: Case When Secondary-Side MOSFET Turns On Due to Resonance Under Light Loading
Troubleshooting ③: Case When, Due to Surge, VDS2 Rises to Above Secondary-Side MOSFET VDS Voltage
Comparison of Efficiency of Diode Rectification and Synchronous Rectification
Points to Note Relating to PCB Layout
Summary
What are Isolated Flyback Converters Performance Evaluation and Checkpoints?
Overview and important features of a power supply IC used in example performance evaluation
Design goals and circuits in performance evaluation
Performance evaluation using an evaluation board: Measurement method and results
Critical checkpoint: Output transient response and rising output voltage waveform
Critical checkpoint: Transformer saturation
Critical checkpoint: MOSFET VDS and IDS, and rated voltage of output rectifier diode
Critical checkpoint: Vcc voltage
Critical checkpoint: Measuring temperature and loss
Critical checkpoint: Aluminum electrolytic capacitors
Summary
Introduction
Power Supply ICs Used in Design: Optimized for SiC MOSFETs
Design Example Circuit
Transformer T1 Design – 1
Transformer T1 Design – 2
Selecting Critical Components: MOSFET Q1
Selecting Critical Components: Input Capacitor and Balancing Resistor
Selecting Critical Components: Switch Setting Resistors for Overload Protection Points
Selecting Critical Components: VCC-Related Components of Power Supply ICs
Selecting Critical Components: Components Related to Power Supply IC BO (Brownout) Pins
Selecting Critical Components: Components Related to Snubber Circuits
Selecting Critical Components: MOSFET Gate Drive Adjustment Circuit
Selecting Critical Components: Output Rectifying Diode
Selecting Critical Components: Output Capacitors, Output Setting and Control Components
Selecting Critical Components: Current Sense Resistors and Components Related to Detection Pins
Selecting Critical Components: Components for Dealing with EMI and Output Noise
PCB Layout Example
Example Circuit and Component List
Evaluation Results: Efficiency and Switching Waveform
Summary
DC-DC Conversion (Regulated) System after Smoothing
What are Linear Regulators?
What is Flyback System?
What is Forward System?
What is Buck (step- down, non-isolated) system?
Design Procedure for AC-DC Conversion Circuits (Overview)
Firming up the Specifications
Selecting a Power Supply Control IC
Design and Peripheral Components Selection
Prototyping and Evaluation
Mass Production Design, Evaluation, and Shipment Inspection
Issues and considerations in AC-DC Conversion Circuit Design
Discrete Configuration vs. Power Supply IC
Efficiency
Downsizing ? Number of Parts and Their Sizes
Protection Functions
Certifications and Regulations
Summary
Isolated Converters (AC-DC,DC-DC)
AC-DC FAQ
Isolated Converters (AC-DC,DC-DC)
DC-DC
About Parallel Connections of LDO Linear Regulators
Parallel Connection of LDOs Using Diodes
Parallel Connection of LDOs Using Ballast Resistors
Summary
Linear Regulator Basics
Operating Principles of Linear Regulator
Types of Linear Regulators
Its Circuit Configuration and Features
Advantages vs Disadvantages, and Applications
Important Specifications
Efficiency and Thermal Calculation
Overview of Characteristics and Evaluation Method of Switching Regulators
Types of Switching Regulators
Switching Regulator Basics
Step-Down Operation Principles
Bootstrap
Output Feedback Control Method
PWM & PFM
Important Characteristics ? IC Specifications
Important Characteristics ? Power Supply Characteristics
Overview of Selection of Inductors and Capacitors for DC-DC Converters
Basic Operation of Step-Down Converters
Inductor Selection
Selection of Output Capacitors
Selection of Input Capacitors
Supplement-Selection of Input Capacitors
Summary
Easy Stabilization/Optimization Methods for Linear Regulators – Introduction
About Step Response Method
Examples of Step Response Waveforms
Step Response Waveforms and Values of Related Components
Overview of DC-DC Converter PCB Layout
Ringing at switching nodes
Placement of input capacitors and output diodes
Placement of Thermal Vias
Placement of Inductors
Placement of Output Capacitors
Feedback Path Wiring
Ground
Resistance and Inductance of Copper Foil
Noise countermeasures: corner wiring, conducted noise, radiated noise
Noise countermeasures: snubber, bootstrap resistor, gate resistor
Summary
Introduction
Power Supply Sequence Specification ①: Power Supply Sequence Specifications and Control Block Diagrams
Power Supply Sequence Specification①: Sequence Operation at Power Turn-on
Power Supply Sequence Specification①: Sequence Operation at Power Shutoff
Power Supply Sequence Specification①: Example of Actual Circuit and Component Value Calculations
Power Supply Sequence Specification①: Example of Actual Operations
Power Supply Sequence Specification②:Power Supply Sequence Specifications and Control Block Diagrams
Power Supply Sequence Specification②:Sequence Operation at Power Turn-on
Power Supply Sequence Specification ②: Sequence Operation at Power Shutoff
Power Supply Sequence Specification②: Example of Actual Circuit and Component Value Calculations
Power Supply Sequence Specification②: Example of Actual Operations
PCB Layout of a Step-Up DC-DC Converter – Introduction
The Importance of PCB Layout Design
Current Paths in Step-up DC-DC Converters
PCB Layout Procedure
Placement of Input Capacitors
Placement of Output Capacitors and Freewheel Diodes
Inductor Placement
Placement of Thermal Vias
Feedback Path Wiring
Ground
Layout for Synchronous Rectification Designs
Resistance and Inductance of Copper Foil
Relationship Between Corner Wiring and Noise
Summary
How to Read Power Supply IC Datasheets: Cover, Block Diagram, Absolute Maximum Ratings and Recommended Operating Conditions
Key to Electrical Characteristics
How to Interpret Properties Graphs and Waveforms
Application Circuit Examples
Component selection
Input Equivalent Circuits
Allowable Loss
Evaluating a Switching Regulator: Output Voltage
Load Regulation
Load Transient Response Consideration and Measurement Method
Inductor Current Measurement
Measurement of Efficiency
Switching Regulator Basics
Types of Switching Regulators
Advantages vs Disadvantages in Comparison with Linear Regulator
Supplement-Current Paths during Synchronous Rectifying Step-Down Converter Operation
Operating Principles of Buck Switching Regulator
Differences between Synchronous and Nonsynchronous Rectifying DC-DC Conversion
Control Methods (Voltage Mode, Current Mode, Hysteresis Control)
Efficiency Improvements at Light Load for the Synchronous Rectifying Type
Protective and Sequencing Functions
Considerations on Switching Frequencies
Behavior when Vin Falls Below Vout
Supplement-Protective Function: Output Pre-bias Protection
Introduction
Definitions and Heat Generation
Losses in Synchronous Rectifying Step-Down Converters
Conduction Losses in Synchronous Rectifying Step-Down Converters
Switching Losses in Synchronous Rectifying Step-Down Converters
Dead Time Losses in Synchronous Rectifying Step-Down Converters
Controller IC Power Consumption Losses in a Synchronous Rectifying Step-Down Converter
Gate Charge Losses in a Synchronous Rectifying Step-Down Converter
Conduction Losses due to the Inductor DCR
Example of Power Loss Calculation for a Power Supply IC
Simplified Method of Loss Calculation
Heat Calculation for Package Selection: Example 1
Heat Calculation for Package Selection: Example 2
Loss Factors
Matters to Consider When Studying Miniaturization by Raising the Switching Frequency
Important Matters when Studying High Input Voltage Applications
Important Matters when Studying Large Output Currents Applications: Part 1
Important Matters when Studying Large Output Currents Applications: Part 2
Summary
Concluding Remarks
Linear Regulators
Switching Regulators
DC-DC FAQ
Switching Regulators
New Articles
Parallel Connection of LDOs Using Diodes
2020/12/23
Parallel Connection of LDOs Using Ballast Resistors
2021/01/13
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