Power Device & Converter Loss Calculator
Configure a converter, quantify semiconductor loss, and review thermal and rating margin.
Steady-state converter analysis
Enter a generic design operating point, then calculate. All inputs and results remain in this browser session.
Isolated PWM operating point
Investigating leakage-related drain spikes? Open RC Snubber Designer. Validate the appropriate clamp strategy for this isolated topology.
Power-device results
| Device | Duty | Ipk | Irms | Pcond | Psw | Gate (system) | Tj | Die loss | Check |
|---|
Where the power goes
Explore sensitivity and device tradeoffs
Topology schematic
Synchronous buck · labeled semiconductor mapCLLC resonant-tank design
FHA sizing, bidirectional gain coverage and ZVS screeningCalculated waveforms
Ten steady-state switching cyclesFrom operating point to an explainable loss estimate
PowerFET Lab uses standard steady-state converter relationships and user-entered datasheet parameters. It keeps conduction, switching, gate-drive, body-diode, ripple, passive, and thermal estimates visible so each result can be reviewed instead of treated as a black box.
Select the power stage
Choose a recognized converter topology and enter the electrical operating point.
Enter component data
Use public MOSFET datasheet values, passive values, switching frequency, and thermal assumptions.
Inspect every result
Compare per-device loss, junction temperature, ripple, waveforms, equations, and design margins.
Standard power-converter stages covered by the calculator
All descriptions and default values are generic educational examples. The calculator contains no company designs, proprietary component databases, customer records, or uploaded documents.
General
Manual PWM switch
A single switch with user-defined voltage, current, duty cycle, and switching conditions.
Fully-on MOSFET
A continuous-current pass FET model focused on resistance and temperature-dependent conduction loss.
Non-isolated PWM
Synchronous buck
A step-down stage with high-side and synchronous low-side MOSFETs.
Boost converter
A step-up stage using an inductor, main MOSFET, diode rectifier, and output capacitor.
Synchronous boost
A boost stage with an actively controlled MOSFET replacing the output rectifier diode.
Isolated PWM
Flyback
An isolated stored-energy stage with explicit magnetizing current, reflected voltage, and CCM/DCM timing.
Single-switch Forward
An isolated on-time energy-transfer stage with an output inductor and reset-winding validation.
Half bridge
Two complementary MOSFETs that create a switching midpoint from a DC bus.
Full-bridge PWM
Four switches generating a bipolar differential voltage across a transformer or load.
Resonant
Full-bridge LLC
A resonant full bridge using an Lr–Cr tank and transformer magnetizing inductance.
Dual full-bridge CLLC
A bidirectional isolated resonant stage with primary and secondary active bridges.
AC/DC
Totem-pole PFC
A bridgeless boost power-factor-correction stage with high- and line-frequency legs.
Textbook equations checked against the calculator engine
These simplified cases intentionally disable secondary dynamic effects so a key result can be reproduced directly from the displayed equation. They are separate from the broader topology model regression suite.
A design-screening tool, not a replacement for validation
Results depend on the entered data and simplified models. Before hardware release, check nonlinear capacitance and switching-energy curves, temperature-dependent parameters, magnetic behavior, SOA, transient thermal impedance, control stability, parasitic ringing, PCB layout, protection behavior, and measured waveforms.