Virtual Electronics Laboratory · Interactive Circuit Simulator

Virtual Circuit Simulator & Instruments Suite

A professional browser-based electronics CAD & SPICE simulation environment. Wire active and passive components on the engineering grid, probe nodes with a dual-trace CRO and digital multimeter, and execute real-time SPICE transient simulations across all 7 curriculum modules.

File
New Schematic Ctrl+N
Upload Diagram (AI to Sim)
Export Schematic PNG
Clear All
Edit
Edit Component Value Enter
Rotate 90° R
Delete Item Del
Simulate
Run / Stop Simulation Space
Step Forward
Instruments
2-Channel Oscilloscope (CRO)
Digital Multimeter (DMM)
Function Generator (XFG)
MNA SPICE ENGINE 2.0 · 33 FPS
0.0000 s
Components Click to Add
Sources
+-
DC Source
AC Source
Ground (GND)
Current Src
Basic / Passive
Resistor
Potentiometer
Capacitor
Inductor
SPST Switch
Diodes
Diode (1N4007)
Zener Diode
LED (Diode)
Transistors & FETs
BJT NPN
BJT PNP
JFET (N-Ch)
MOSFET (N-Ch)
Analog / Op-Amps
-+
Op-Amp (741)
In-Circuit Probes
V
Voltmeter
A
Ammeter
CRO
CRO Probes
Quick Controls: Click red pins to wire · Drag handles or double-click to bend/tweak wires · Drag components · Press R to rotate · Press Del to remove · Double-click or Enter to edit value
Tektronix · Dual-Trace Cathode Ray Oscilloscope (CRO)
Timebase (Horizontal)
Time / Div:
Channel A (Input)
Volts / Div:
Y-Pos:
+1.0 div
Channel B (Output)
Volts / Div:
Y-Pos:
-1.5 div
Ch A Vp-p: --
Ch A Freq: --
Ch B Vp-p: --
Ch B Freq: --
Agilent 34401A · Precision Digital Multimeter (DMM)
0.000 V DC
Agilent · Function Generator (XFG)
Frequency: 1000 Hz
Amplitude (Peak): 5.0 V
Component Properties
AI Circuit Diagram Recognizer & Auto-Simulator

Upload an image or photograph of any circuit diagram (from a textbook, lab manual, exam, or sketch). The AI engine automatically compiles components, wiring topology, values, and launches live physical simulation output immediately.

Drop schematic image here
PNG, JPG, WEBP or Paste from Clipboard (Ctrl+V)
Or Try Sample Diagram Archetypes:
Bridge Rectifier BJT CE Amplifier Zener Regulator Inverting Op-Amp RC Low-Pass RLC Resonant
Built-in AI active
Upload or select a diagram to see recognized netlist and physical simulation components.

Electronics Curriculum & Experimental Physics Modules

Launch pre-built circuits into the circuit simulator with one click to observe and test the theoretical principles.

7 Core Modules · 21 Interactive Circuits
Module 1 · DC Circuits

Circuits and Network (DC) (4)

Discrete active & passive components, ideal constant voltage/current sources, Kirchhoff's laws (KCL, KVL), Thevenin's and Norton's theorem, Superposition theorem, and Maximum power transfer theorem ($R_L = R_{th}$).

$$ V_{th} = V_{oc}, \quad R_{th} = \frac{V_{oc}}{I_{sc}}, \quad P_{max} = \frac{V_{th}^2}{4 R_{th}} $$
Module 2 · Semiconductor Diodes

Semiconductor Diodes & Applications (9)

PN junction fabrication, barrier potential, static/dynamic resistance, half-wave & full-wave bridge rectifiers, Ripple Factor ($\gamma$), Rectification efficiency ($\eta$), L & C smoothing filters, clipping & clamping circuits, LEDs.

$$ \gamma = \frac{1}{4\sqrt{3} f C R_L}, \quad \eta_{bridge} = 81.2\%, \quad I = I_s\left(e^{\frac{qV}{\eta k_B T}} - 1\right) $$
Module 3 · BJT Biasing

BJT Transistors & Biasing (10)

NPN & PNP configurations (CB, CE, CC), active, cut-off and saturation regions, DC load line & Q-point, stability factors, fixed bias vs voltage divider bias (self-bias), 2-port hybrid $h$-parameter equivalent circuit.

$$ I_C = \beta I_B + I_{CEO}, \quad V_{CE} = V_{CC} - I_C R_C, \quad S = \frac{1 + \beta}{1 + \beta \frac{R_E}{R_B + R_E}} $$
Module 4 · FET & MOSFET

Field Effect Transistors (3)

JFET and MOSFET (both depletion and enhancement mode MISFET), pinch-off voltage ($V_p$), drain saturation current ($I_{DSS}$), threshold voltage ($V_{th}$), transconductance $g_m$, and short channel switching characteristics.

$$ I_D = I_{DSS}\left(1 - \frac{V_{GS}}{V_P}\right)^2, \quad g_m = \frac{2 I_{DSS}}{|V_P|}\left(1 - \frac{V_{GS}}{V_P}\right) $$
Module 5 · Voltage Regulation

Regulated Power Supply (3)

Load regulation and line regulation, Zener diode as shunt regulator, limitations of Zener circuits, error feedback amplifiers, and series regulated power supply using a pass transistor assisted by a Zener voltage reference.

$$ \text{Line Reg} = \frac{\Delta V_{out}}{\Delta V_{in}}, \quad \text{Load Reg} = \frac{V_{NL} - V_{FL}}{V_{FL}} \times 100\% $$
Module 6 · Amplifiers

Amplifiers & Frequency Response (5)

Common Emitter (CE), Common Base (CB) and Emitter Follower buffer circuits, dynamic load line analysis, Class A, B and C amplifier classification, and midband frequency response with low and high cut-off frequencies ($f_L, f_H$).

$$ A_v = -\frac{h_{fe} R_L'}{h_{ie}}, \quad f_L = \frac{1}{2\pi (R_{in} + R_s) C_1}, \quad BW = f_H - f_L $$
Module 7 · OP-AMP & Feedback

Feedback Amplifiers & OPAMP (8)

Positive and negative feedback topologies (Voltage series, current series, voltage shunt, current shunt), Gain stabilization, IC 741 characteristics, inverting, non-inverting, summing adder, integrator, differentiator, and comparator.

$$ A_f = \frac{A}{1 + A\beta}, \quad V_{out(inv)} = -\frac{R_f}{R_1} V_{in}, \quad V_{out(int)} = -\frac{1}{R C}\int V_{in} dt $$