Topic 83: BJT, MOSFET, Triode Distortion Comparison/Analysis
Electronics for Guitarists
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Topic 83: BJT, MOSFET, Triode Distortion Comparison/Analysis
1 104 просмотра · 1 год назад
Electronics for Guitarists
3,8 тыс. подписчиков
1 104 просмотра · 1 год назад
🔊 Why Do BJTs, MOSFETs, and Triodes Sound Different?
In this video, we take a deep, first-principles look at one of the most important—and often misunderstood—questions in analog electronics and audio:
Why do different devices produce different types of distortion?
By comparing the transfer characteristics of BJTs, MOSFETs, and vacuum tube triodes, we uncover how their fundamental device physics directly shapes the output waveform and harmonic content.
We examine:
BJT exponential behavior
MOSFET square-law characteristics
Triode 3/2 power-law response
Using these models, we derive approximate transfer functions and analyze how each device responds to a sinusoidal input. This allows us to predict and understand the resulting nonlinear distortion—before ever looking at a spectrum.
To validate the theory, we compare:
Analytical predictions
Simulated waveforms
Real oscilloscope measurements
This provides a complete picture of how device physics translates into measurable—and audible—differences in amplifier behavior.
🔧 Topics Covered
BJT exponential transfer function
MOSFET square-law behavior
Triode 3/2 power-law characteristics
Nonlinear distortion modeling
Harmonic generation from transfer functions
Waveform symmetry and distortion
Analytical vs simulated vs measured results
🧠 Engineering Approach
This material is presented using a rigorous, first-principles engineering methodology:
Device physics → transfer function → waveform → distortion
Power-series / binomial expansion techniques
Avoiding black-box assumptions
Direct comparison across device technologies
Validation through simulation and real measurements
📌 Why This Matters
This analysis provides a unified framework for understanding distortion across all major device types, giving you the tools to predict how circuits will behave—and why they sound the way they do.
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