SDAA170
September 2026
TPS61383-Q1
1
Abstract
Trademarks
1
Introduction
2
Design Requirement and System Structure
2.1
Design Requirements
2.2
System Structure
2.2.1
Centralized E‑Latch System
2.2.2
Distributed E‑Latch System
3
Power Train
3.1
Integrated E-Latch Power Train with TPS61383-Q1
3.1.1
Super Capacitor Charger Function Introduction
3.1.2
Boost Function Introduction
3.1.3
Super Capacitor Bleeding
3.2
Hardware Design Procedure
3.2.1
Selecting the External MOSFET
3.2.2
Inductor Selection
3.2.3
Capacitor in Super Capacitor Side
3.2.4
Boost Output Capacitor
3.2.5
Loop Compensation Design
3.2.6
Key Considerations
3.3
Software Initial Process
4
Super Capacitor Energy Modeling Basis and Selection
4.1
Discharge Profile and Cut-off Voltage
4.2
Super Capacitor Discharge Energy Modeling
4.3
Calculation Example
4.4
Super Capacitor Excel Calculation Tool
5
Super Capacitor Management
5.1
Voltage Monitoring with BQ76907-Q1
5.2
Cell Balancing with BQ76907-Q1
5.2.1
Balancing Strategy
5.2.2
I2C Implementation
5.2.3
Cell Balancing Current
5.2.4
Low-Side Protection Circuit Design Considerations
5.3
Super Capacitor Health Detection: Combined Solution of TPS61383-Q1 and BQ76907-Q1
6
Control Unit and Communication
6.1
Control Unit Design Consideration
6.2
SBC Selection
7
Execution Unit
7.1
Motor Driver Structure
7.2
Motor Driver Design Considerations
8
Summary
9
References
Application Note
Automotive E-latch Systems Design Guideline using TPS61383-Q1