Isolated Error Amplifier Feedback for Stable High-Frequency Power Conversion

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Solution Overview

Problem

Power conversion systems face challenges in maintaining efficiency and stability, particularly when operating at high frequencies, and require a solution that increases power switching frequency while ensuring power conversion efficiency and conservation.

Innovation Solution

A power converter with an isolated error amplifier that includes a modulator, isolator, and demodulator to generate and transmit an error signal across an isolation barrier, allowing for galvanic isolation and independent voltage domains, enabling control of the power stage to maintain output signal stability and efficiency.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Productivity

If power switching frequency is increased to improve power conversion efficiency, then productivity is improved, but low-frequency feedback paths cause interference and stability issues

Engineering Contradiction:
Improvepower conversion efficiencyVSAvoidoutput stability
Core Design Contradiction:
ProductivityVSReliability

Solution Approach 1:

The feedback path is segmented into multiple frequency bands using filters. A low-pass filter extracts low-frequency error signals while a high-pass filter extracts high-frequency signals. This segmentation allows independent processing of different frequency components, enabling high power switching frequency operation while maintaining stable low-frequency feedback control.

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

An intermediary feedback path is introduced that operates independently at low frequencies. This intermediary path uses a low-pass filter and separate error amplifier to handle low-frequency stabilization, while the main high-frequency switching operation proceeds independently, resolving the interference between frequency bands.

Inventive Principle:
Principle #24Intermediary (Mediator)

2Reliability

If isolated error amplifier with modulator-demodulator is used to provide galvanic isolation, then reliability is improved, but device complexity increases

Engineering Contradiction:
Improvegalvanic isolationVSAvoidamplifier structure
Core Design Contradiction:
ReliabilityVSDevice complexity

Solution Approach 1:

The modulator-demodulator circuit performs multiple functions: it provides galvanic isolation, frequency multiplication, and signal transmission across isolation barriers. By consolidating these functions into a single integrated circuit block, the overall device complexity is reduced despite the added isolation capability.

Inventive Principle:
Principle #6Universality (Multi-functionality)

Solution Approach 2:

The error amplifier parameters are optimized for high-frequency operation with the modulator-demodulator. The amplifier is designed to operate at the modulated frequency rather than baseband, allowing standard high-frequency amplifier designs to be used instead of complex isolation-specific amplifier architectures.

Inventive Principle:
Principle #35Parameter changes

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

The solution provides stable and efficient power conversion by allowing for higher power switching frequencies, maintaining galvanic isolation, and improving system bandwidth, resulting in a more responsive and stable power converter design.

Implementation Method 1

an isolator that, based on the modulated error signal, may generate an isolated modulated error signal

Methodology Applied
Scientific EffectGalvanic isolation:

Data Source

PatentUS20140268917A1Isolated error amplifier for isolated power supplies
Publication Date: 2014.09.18 ANALOG DEVICES INT UNLTD CO
  • US20140268917A1 patent drawing
  • US20140268917A1 patent drawing
  • US20140268917A1 patent drawing

AI summary

A power converter may include an amplifier that generates an error signal, a modulator that generates a modulated error signal, an isolator that generates an isolated modulated error signal, and a demodulator that generates an isolated error signal, which may be substantially proportional to the difference between the output signal and the reference signal, and a controller that controls a power stage to generate the output signal of the power converter.