PPolySim OS
Use case · powered by Power Supply Designer

Power Supply Designer for an op-amp filter

Simulate an op-amp filter live in your browser. This runs the real Power Supply Designer solver — adjust the inputs, watch it respond instantly, and export the result. No install, no account.

RLC Circuit StudioLive

Controls

Apply a step voltage to a series RLC circuit and watch charge and current respond — under-, over-, or critically damped.

Presets

▶ Run in Python

Data Inspector

Damping ζ0.750
Regimeunderdamped
ω₀1.000

Governing equation

Reading this result: ζ = 0.750 < 1: underdamped. With ω₀ = 1.000 rad/s the charge overshoots and rings, oscillating while it decays toward its steady value. Lower ζ means more ringing.

Runs locally in your browser — free forever. Scale to the cloud when reality gets heavy.

2

Filter Designer

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Analog Filter DesignerLive

Controls

Presets

Passive filters shape a signal's frequency content with resistors, capacitors, and inductors. An RC low-pass or high-pass has a cutoff at 1/(2πRC) where the response drops 3 dB; an RLC bandpass resonates at 1/(2π√(LC)) with sharpness set by its quality factor Q.

▶ Run in Python

Data Inspector

Cutoff fc1.6 kHz
Resonance f₀5.0 kHz
Quality factor Q0.32

Governing equation

Reading this result: Low-pass: signals below the 1.6 kHz corner pass, above it they roll off at 20 dB/decade, and the response is exactly 3 dB down right at the corner.

Runs locally in your browser — free forever. Scale to the cloud when reality gets heavy.

3

Thermal Resistance

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Composite Wall Heat TransferLive

Controls

Presets

Heat flows through a wall like current through resistors in series. Each layer's thermal resistance is its thickness over its conductivity; adding them gives the total R-value, and the heat flux is the temperature difference divided by it. Insulation, with very low conductivity, dominates the R-value — the steep temperature drop shows where it does its work.

▶ Run in Python

Data Inspector

Total R-value2.71 m²K/W
U-value0.37 W/m²K
Heat flux9.6 W/m²

Governing equation

Reading this result: The insulation layer carries the most thermal resistance, so the temperature falls most steeply across it. A total R-value of 2.71 m²K/W lets 9.6 W/m² flow for this 26°C difference.

Runs locally in your browser — free forever. Scale to the cloud when reality gets heavy.

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About this simulation

The full Power Supply Designer tool models an op-amp filter with the same numerics engineers and scientists use — running entirely client-side. Change any parameter and the result updates in real time, so you can build intuition, check a design, or teach the concept without spreadsheets or installs.

More you can do with Power Supply Designer

Other ways to simulate an op-amp filter

Frequently asked questions

How do I simulate an op-amp filter?
Open this page and use the live Power Supply Designer tool below — set your inputs and the simulation runs instantly in your browser using real numerics. No install, no account needed.
Is it free?
Yes. The simulation runs free in your browser. A one-time unlock or a Pro plan adds advanced parameters, saved presets, data import, and clean exports.
Can I use my own numbers?
Absolutely — every input is adjustable, and with data import you can drive an op-amp filter from your own measurements.