SLVSB10F
July 2012 – November 2020
TPS54020
PRODUCTION DATA
1
Features
2
Applications
3
Description
4
Revision History
5
Description (Continued)
6
Pin Configuration and Functions
7
Specifications
7.1
Absolute Maximum Ratings (1)
7.2
ESD Ratings
7.3
Recommended Operating Conditions
7.4
Thermal Information
7.5
Electrical Characteristics
7.6
Typical Characteristics
8
Detailed Description
8.1
Overview
8.2
Functional Block Diagram
8.3
Feature Description
8.3.1
Fixed Frequency PWM Control
8.3.2
Input Voltage and Power Input Voltage Pins (VIN and PVIN)
8.3.3
Voltage Reference (VREF)
8.3.4
Adjusting the Output Voltage
8.3.5
Safe Start-up into Prebiased Outputs
8.3.6
Error Amplifier
8.3.7
Slope Compensation
8.3.8
Enable and Adjusting Undervoltage Lockout
8.3.9
Adjustable Switching Frequency and Synchronization (RT/CLK)
8.3.10
Soft-Start (SS) Sequence
8.3.11
Power Good (PWRGD)
8.3.12
Bootstrap Voltage (BOOT) and Low Dropout Operation
8.3.13
Sequencing (SS)
8.3.14
Output Overvoltage Protection (OVP)
8.3.15
Overcurrent Protection
8.3.15.1
High-side MOSFET Overcurrent Protection
8.3.15.2
Low-side MOSFET Overcurrent Protection
8.3.16
Thermal Shutdown
8.4
Device Functional Modes
8.4.1
Single-Supply Operation
8.4.2
Split Rail Operation
8.4.3
Continuous Current Mode Operation (CCM)
8.4.4
Eco-mode Light-Load Efficiency Operation
8.4.5
Adjustable Switching Frequency (RT Mode)
8.4.6
Synchronization (CLK Mode)
9
Application and Implementation
9.1
Application Information
9.1.1
Small Signal Model for Loop Response
9.1.2
Simple Small Signal Model for Peak Current Mode Control
9.1.3
Small Signal Model for Frequency Compensation
9.1.4
Designing the Device Loop Compensation
9.1.4.1
Step One: Determine the Crossover Frequency (fC)
9.1.4.2
Step Two: Determine a Value for R6
9.1.4.3
Step Three: Calculate the Compensation Zero.
9.1.4.4
Step Four: Calculate the Compensation Noise Pole.
9.1.4.5
Step Five: Calculate the Compensation Phase Boost Zero.
9.1.5
Fast Transient Considerations
9.2
Typical Application
9.2.1
Design Requirements
9.2.2
Detailed Design Procedure
9.2.2.1
Custom Design With WEBENCH® Tools
9.2.2.2
Operating Frequency
9.2.2.3
Output Inductor Selection
9.2.2.4
Output Capacitor Selection
9.2.2.4.1
Response to a Load Transient
9.2.2.4.2
Output Voltage Ripple
9.2.2.4.3
Bus Capacitance
9.2.2.5
Input Capacitor Selection
9.2.2.6
Soft-Start Capacitor Selection
9.2.2.7
Bootstrap Capacitor Selection
9.2.2.8
Undervoltage Lockout Set Point
9.2.2.9
Output Voltage Feedback Resistor Selection
9.2.2.9.1
Minimum Output Voltage
9.2.2.10
Compensation Component Selection
9.2.3
Application Curves
10
Power Supply Recommendations
11
Layout
11.1
Layout Guidelines
11.2
Layout Examples
12
Device and Documentation Support
12.1
Device Support
12.1.1
Development Support
12.1.1.1
Custom Design With WEBENCH® Tools
12.2
Documentation Support
12.2.1
Related Documentation
12.3
Receiving Notification of Documentation Updates
12.4
Support Resources
12.5
Trademarks
12.6
Electrostatic Discharge Caution
12.7
Glossary
13
Mechanical, Packaging, and Orderable Information
Package Options
Mechanical Data (Package|Pins)
RUW|15
MPQF246
Thermal pad, mechanical data (Package|Pins)
RUW|15
QFND244B
Orderable Information
slvsb10f_oa
slvsb10f_pm
1
Features
–40°C to +150°C operating junction temperature range
Integrated 8-mΩ and 6-mΩ MOSFETs
Thermally-enhanced 3.5-mm × 3.5-mm
HotRod™
package
Peak-current-mode control
Eco-mode™
pulse skip for higher efficiency
Overcurrent protection for both MOSFETs
Selectable overcurrent protection schemes
Selectable overcurrent protection levels
Split power rail: 1.6 V to 17 V on PVIN
0.6-V voltage reference with ±1% accuracy
200-kHz to 1.2-MHz switching frequency
Synchronizes to external clock
Start-up into prebiased outputs
Overtemperature and overvoltage protection
Adjustable soft start and power sequencing
Power-good output monitor for undervoltage and overvoltage
SYNC_OUT function provides output clock signal 180° out-of-phase
For
SWIFT™
documentation and WEBENCH, visit
http://www.ti.com/swift
Create a custom design using the TPS54020 with the
WEBENCH®
Power Designer