ASVAB · Study Guide

ASVAB Electronics Information — Circuits and Electrical Principles Practice Questions

The ASVAB EI subtest is used for electronics and technical military roles. These questions cover Ohm's Law, series vs parallel circuits, and basic electronic components — the core concepts that appear most often.

The Electronics Information subtest is used for military occupational specialties in electronics, communications, intelligence, and technical roles. It tests electrical theory, component knowledge, and basic circuit analysis. Ohm's Law (V = IR) and Kirchhoff's Laws form the backbone of most calculation questions.

The formula sheet that doesn't exist on the exam — memorise these: V = IR (Ohm's Law: voltage = current × resistance); P = IV (power = current × voltage); Series circuit: total resistance = R1 + R2 + R3 (current is the same throughout); Parallel circuit: total resistance = 1/(1/R1 + 1/R2) (voltage is the same across branches). Practice both calculation types — they both appear.

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How these questions were selected

These 10 questions were curated by the 247SimpleTests Editorial Team from our Electronics Information practice bank. Each was selected because it covers a concept that appears frequently on the real exam and that many candidates find difficult on their first attempt. The full practice test has 20 questions — work through all of them once you've reviewed this guide.

The questions

Question 1

What is the unit of electrical current?

  1. Volt
  2. Ampere (A) ✓
  3. Ohm
  4. Watt
▶ Show full explanation

Electrical quantities and units to memorize: CURRENT (I) = rate of charge flow = Amperes (A); VOLTAGE (V) = electrical potential difference, the 'push' that drives current = Volts (V); RESISTANCE (R) = opposition to current = Ohms (Ω); POWER (P) = rate of energy use = Watts (W); CHARGE (Q) = quantity of electricity = Coulombs (C); ENERGY = Joules (J) or kilowatt-hours (kWh) for electric utility. Mnemonic 'A Very Old Witch': Amp = A, Volt = V, Ohm = Ω, Watt = W. Plumbing analogy: voltage = water pressure, current = flow rate (gallons/second), resistance = pipe narrowness, power = total energy delivered. A garden hose with high pressure (V) and wide pipe (low R) delivers high flow (I). Definitions: 1 Ampere = 1 Coulomb of charge flowing past a point per second; 1 Volt = 1 Joule of energy per Coulomb of charge; 1 Ohm = the resistance allowing 1 Amp to flow under 1 Volt; 1 Watt = 1 Joule per second. Practical contexts: household outlets in US deliver 120V; appliances draw varying current (typical lamp ~0.5 A, hair dryer ~15 A, vacuum ~10 A); circuits have 15-20 A breakers; the wire size limits current capacity. AC vs DC: ALTERNATING CURRENT (AC) reverses direction periodically (60 Hz in US household wiring); DIRECT CURRENT (DC) flows one direction only (batteries, solar cells, USB power). Transformers work only with AC; electronics typically use DC internally (power supplies convert AC to DC).

Source: ASVAB EI, Electrical Units

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Question 2

Using Ohm's Law, if a circuit has 12 volts and 4 ohms of resistance, what is the current?

  1. 48 A
  2. 3 A ✓
  3. 0.33 A
  4. 16 A
▶ Show full explanation

Ohm's Law: V = IR (Voltage = Current × Resistance). Rearranged: I = V/R, or R = V/I. With V = 12, R = 4: I = 12/4 = 3 A. Master these three forms: (1) V = IR (find voltage given current and resistance); (2) I = V/R (find current given voltage and resistance); (3) R = V/I (find resistance given voltage and current). Power equations (often combined with Ohm's Law): P = VI; P = I²R (since V = IR); P = V²/R (since I = V/R). Choose based on what's known. Example: 12V circuit, 4Ω resistance. Current = 3 A (just calculated). Power = VI = 12 × 3 = 36 W; or I²R = 9 × 4 = 36 W; or V²/R = 144/4 = 36 W — all give the same answer. Common ASVAB EI calculations: (1) Find current in a circuit; (2) Find voltage across a resistor; (3) Find resistance needed for desired current; (4) Find power consumption; (5) Total resistance in series/parallel circuits. SERIES circuit: R_total = R₁ + R₂ + R₃ + ... (resistances add); same current through all; voltages add up to source. PARALLEL circuit: 1/R_total = 1/R₁ + 1/R₂ + 1/R₃ + ... (reciprocals add); same voltage across all branches; currents add up to source current. For two parallel resistors: R_total = (R₁ × R₂) / (R₁ + R₂). Parallel resistance is always LESS than the smallest individual resistance.

Source: ASVAB EI, Ohm's Law

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Question 3

Three resistors of 10Ω, 20Ω, and 30Ω are connected in series. What is the total resistance?

  1. 5.45Ω
  2. 60Ω ✓
  3. 10Ω
  4. 120Ω
▶ Show full explanation

In a series circuit, total resistance = sum of individual resistances. R_total = 10 + 20 + 30 = 60Ω. Series circuit characteristics: (1) Only ONE PATH for current; (2) Same current through every component; (3) Voltage divides among components (V_total = V₁ + V₂ + V₃); (4) Total resistance = sum of resistances; (5) Failure of one component (e.g., one bulb burning out) breaks the entire circuit; (6) Adding more components increases total resistance, reducing current. Classic example: old Christmas lights — series-wired, one bulb burns out, all go dark. Modern lights are usually parallel. Voltage divider: a common application of series resistors. Two resistors R₁ and R₂ in series across a voltage source V_in. The voltage across R₂ = V_in × R₂/(R₁ + R₂). This 'divides' the voltage proportionally — useful for getting a specific intermediate voltage from a power source. Example: 12V source with R₁ = 1000Ω and R₂ = 2000Ω. Voltage across R₂ = 12 × 2000/3000 = 8V. PARALLEL circuit by contrast: 1/R_total = 1/R₁ + 1/R₂ + 1/R₃ = 1/10 + 1/20 + 1/30 = 6/60 + 3/60 + 2/60 = 11/60. R_total = 60/11 ≈ 5.45Ω. Note this is LESS than the smallest single resistor (10Ω) — that's always true for parallel. ASVAB EI tests both calculations and conceptual differences between series and parallel.

Source: ASVAB EI, Series and Parallel

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Question 4

What is the function of a resistor in an electrical circuit?

  1. To store electrical charge
  2. To limit or control the flow of current and drop voltage; converts electrical energy to heat ✓
  3. To allow current in only one direction
  4. To produce a magnetic field
▶ Show full explanation

Common electronic components and their functions: (1) RESISTOR — limits current and drops voltage; converts electrical energy to heat; color-coded with bands indicating resistance value and tolerance; measured in Ohms; (2) CAPACITOR — stores electrical charge temporarily; passes AC, blocks DC; used for smoothing power supplies, filtering signals, timing circuits; measured in Farads (typically μF or pF); (3) INDUCTOR — stores energy in magnetic field when current flows; resists changes in current; passes DC, restricts AC at high frequencies; measured in Henries; (4) DIODE — allows current in one direction only, blocks reverse direction; used for rectification (converting AC to DC), protection circuits; symbol: triangle pointing to a line; (5) LED (Light Emitting Diode) — diode that emits light when current flows; uses much less energy than incandescent bulbs; long-lasting; specific forward voltage needed; (6) TRANSISTOR — amplifier or switch; controls a large current with a small current/voltage; foundation of all modern electronics; BJT (bipolar junction transistor) and FET (field-effect transistor) types; (7) TRANSFORMER — transfers electrical energy between circuits via magnetic field; can step voltage up or down; works only with AC; primary and secondary windings; (8) FUSE — protective device that breaks the circuit when current exceeds a rated value (the metal element melts); single-use, must be replaced; (9) CIRCUIT BREAKER — like a fuse but resettable mechanically; common in residential breaker panels; (10) SWITCH — manually opens/closes circuit; (11) RELAY — electrically-controlled switch; small electrical signal controls a larger circuit; (12) BATTERY — DC voltage source. Resistor color codes (heavily tested on ASVAB EI): Black=0, Brown=1, Red=2, Orange=3, Yellow=4, Green=5, Blue=6, Violet=7, Grey=8, White=9. Four bands: first two are digits, third is multiplier (10^x), fourth is tolerance (Gold=5%, Silver=10%).

Source: ASVAB EI, Components

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Question 5

A resistor has color bands: red, red, orange, gold. What is its resistance and tolerance?

  1. 22Ω ± 5%
  2. 22,000Ω (22kΩ) ± 5% ✓
  3. 223Ω ± 5%
  4. 2200Ω ± 10%
▶ Show full explanation

Resistor color code system: 4-band resistor — first two bands are digits, third band is multiplier (number of zeros), fourth band is tolerance. Color values: Black=0, Brown=1, Red=2, Orange=3, Yellow=4, Green=5, Blue=6, Violet=7, Grey=8, White=9. Tolerance: Gold=5%, Silver=10%, None=20%. For Red-Red-Orange-Gold: Red=2, Red=2 (two digits = 22), Orange=3 (multiplier = 10³ = 1000), so value = 22 × 1000 = 22,000Ω = 22kΩ. Tolerance Gold = ±5%, meaning actual value is between 20,900Ω and 23,100Ω. Mnemonic for color order: 'Bad Boys Race Our Young Girls But Violet Generally Wins.' Or 'Better Be Right Or Your Great Big Venture Goes West.' Memorize the order — heavily tested. Some examples: Brown-Black-Red-Gold = 1, 0, ×100, 5% = 1,000Ω = 1kΩ ± 5%; Yellow-Violet-Yellow-Gold = 4, 7, ×10,000, 5% = 470,000Ω = 470kΩ ± 5%; Brown-Black-Black-Gold = 1, 0, ×1, 5% = 10Ω ± 5%. 5-BAND resistors (precision): three digit bands, multiplier, tolerance. 6-BAND adds temperature coefficient. Modern surface-mount resistors use printed numbers (e.g., '472' means 47 × 10² = 4700Ω). ASVAB EI definitely tests color codes — practice converting between colors and values both ways. Standard resistor values follow the E-series (E12, E24, etc.) — not arbitrary numbers but standardized increments.

Source: ASVAB EI, Resistor Color Code

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Question 6

What does a capacitor do in a circuit?

  1. It increases the voltage in the circuit
  2. Stores electrical energy in an electric field between two conductive plates separated by an insulator; passes AC current but blocks DC after fully charged ✓
  3. Converts AC to DC
  4. Generates electricity from heat
▶ Show full explanation

Capacitor structure: two conductive plates separated by an insulating material (the 'dielectric' — air, ceramic, plastic, electrolyte). When voltage is applied, positive charge accumulates on one plate and negative on the other; energy is stored in the electric field between them. Behavior in circuits: (1) DC: capacitor initially conducts as it charges, but once fully charged it blocks DC; like an open circuit at steady state; (2) AC: capacitor continuously charges and discharges as voltage alternates; appears as a frequency-dependent impedance (Xc = 1/(2πfC)); lower impedance at higher frequencies. Applications: (1) POWER SUPPLY FILTERING — large capacitors smooth ripple from rectified AC, providing cleaner DC; (2) DECOUPLING — small capacitors near IC power pins filter noise; (3) TIMING — capacitor charges through a resistor at a predictable rate (RC time constant = R × C); used in oscillators and timers (555 timer is famous); (4) AC COUPLING — passes AC signal between stages while blocking DC bias differences; (5) TUNING — variable capacitors in radio receivers select frequencies; (6) ENERGY STORAGE — large capacitors in flash photography, defibrillators, electric vehicles. Units: Farad (F) — large; typical practical values are microfarad (μF = 10⁻⁶ F), nanofarad (nF = 10⁻⁹), picofarad (pF = 10⁻¹²). Types: ceramic (small, stable), electrolytic (large capacitance, polarized — must be installed correctly), tantalum (compact, polarized), film (high quality, audio), supercapacitor (very large, energy storage). Safety: large capacitors store dangerous charge even after circuit is unplugged; discharge before working on equipment. CAUTION: electrolytic capacitors are polarized — backwards installation can cause failure, leakage, or explosion.

Source: ASVAB EI, Capacitors

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Question 7

What is the primary function of a diode?

  1. To store electric charge
  2. To allow current to flow in only one direction (acts as a one-way valve for electricity) ✓
  3. To amplify a signal
  4. To convert DC to AC
▶ Show full explanation

Diode: semiconductor device that allows current in one direction (FORWARD) and blocks it in the reverse direction. Terminals: ANODE (+) and CATHODE (-). Current flows from anode to cathode when forward-biased (anode positive relative to cathode); blocked when reverse-biased. Voltage drop: silicon diodes have ~0.6-0.7V forward voltage drop when conducting; germanium ~0.3V; Schottky ~0.2V; LEDs vary 1.5V (red) to 3.5V (white/blue). Symbol: triangle pointing to a vertical line; current direction follows the triangle's point. Stripe on diode body marks cathode end. Applications: (1) RECTIFICATION — convert AC to pulsing DC: HALF-WAVE rectifier uses one diode (allows only half of AC cycle); FULL-WAVE uses two diodes with center-tapped transformer; BRIDGE rectifier uses four diodes for full-wave from any AC source (most common); (2) PROTECTION — protect circuits from reverse polarity; (3) FREE-WHEELING — protect against voltage spikes from inductive loads (motors, relays) — diode connected across inductor allows the current to circulate safely when switched off; (4) VOLTAGE REGULATION — ZENER DIODES are designed to operate in reverse breakdown at a precise voltage; used for voltage references; (5) SIGNAL DEMODULATION — extracting audio from radio carrier waves; (6) LEDs — special diodes that emit light; used for indicators, displays, lighting (highly efficient compared to incandescent); (7) PHOTODIODES — convert light to current (opposite of LEDs); (8) LASER DIODES — emit coherent light; used in laser pointers, optical disc readers, fiber optic communications. ASVAB EI may show schematic symbols — recognize the diode triangle-and-line symbol with current flow direction.

Source: ASVAB EI, Diodes

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Question 8

What is the primary purpose of a transformer?

  1. To convert AC to DC
  2. To transfer electrical energy between circuits via magnetic field, often changing voltage (stepping up or down) and current; works only with AC ✓
  3. To store electrical energy
  4. To resist current flow
▶ Show full explanation

Transformer: two coils of wire wound around a common iron core; AC current in the PRIMARY coil creates a changing magnetic field; the changing magnetic field induces an AC voltage in the SECONDARY coil. No direct electrical connection between primary and secondary — energy transfers through magnetic field. Turns ratio: V_secondary / V_primary = N_secondary / N_primary, where N = number of turns. STEP-UP transformer (more turns on secondary): increases voltage, decreases current proportionally. STEP-DOWN transformer (fewer turns on secondary): decreases voltage, increases current proportionally. Power (P = VI) is approximately conserved (minor losses to heat); higher voltage = lower current for the same power. Why transformers matter: ELECTRICAL TRANSMISSION uses very high voltage (250-765 kV) for long distances because higher voltage = lower current = less I²R power loss in wires; transformers step down to lower voltages near use (distribution lines 4-25 kV; household 120/240V US, 230V UK). Transformers ONLY work with AC because they require a CHANGING magnetic field to induce voltage in the secondary — DC creates a constant field that doesn't induce. Common applications: (1) UTILITY POWER GRID — countless transformers from generators (10s of kV) → transmission lines (100s of kV) → distribution (kV) → service drops (240V) → appliances (5-120V); (2) ELECTRONIC POWER SUPPLIES — step down household 120V AC to lower AC for further conversion to DC (older devices); (3) AUDIO — impedance matching, isolation; (4) WELDING — step down to provide high current at low voltage; (5) DOORBELLS — step down to 16-24V for the chime. Losses: COPPER LOSS (I²R in wire), CORE LOSS (eddy currents and hysteresis in iron) — minimized by using laminated cores and good materials. Modern switched-mode power supplies use small high-frequency transformers, more efficient than older 60 Hz transformers.

Source: ASVAB EI, Transformers

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Question 9

What is electromagnetic induction?

  1. Conducting heat through a metal
  2. The generation of voltage in a conductor when there is a changing magnetic field around it (Faraday's Law) — the basis for generators, transformers, and motors ✓
  3. Static electricity buildup
  4. The flow of current in a closed circuit
▶ Show full explanation

Electromagnetic induction (discovered by Michael Faraday, 1831): a changing magnetic field through or near a conductor INDUCES a voltage in the conductor. If the conductor is part of a circuit, this induced voltage drives a current. Faraday's Law: EMF = -N × dΦ/dt, where N is number of turns, Φ is magnetic flux, and t is time. Negative sign reflects Lenz's Law: induced current opposes the change causing it. Key principle: the magnetic field must be CHANGING (relative to the conductor) for induction. Three ways to create a changing field: (1) Move the conductor through a stationary field; (2) Keep the conductor still, move the field source; (3) Change the field strength while conductor is stationary (e.g., AC current in a nearby coil). Applications: (1) GENERATORS — rotate a coil through a magnetic field (or rotate a magnet near a coil); produces AC; the foundation of nearly all electricity generation (coal, gas, hydro, nuclear, wind — they all spin a generator); (2) TRANSFORMERS — AC in primary creates changing field; secondary coil sees changing field; voltage induced; (3) ELECTRIC MOTORS — opposite of generators (apply electrical energy to produce rotation); current in coil within magnetic field experiences force; (4) WIRELESS CHARGING — varying magnetic field induces voltage in coil of receiving device; (5) GUITAR PICKUPS — vibrating steel guitar string in magnetic field of pickup coil induces signal in coil; (6) METAL DETECTORS — coils create field; metal disturbs field; second coil detects disturbance; (7) INDUCTION COOKTOPS — varying magnetic field induces current in iron/steel pan, heating it directly (the pan is the conductor); (8) MAGNETIC TAPE/HARD DRIVE READING — moving magnetized surface past a read head induces signals. Magnetic flux is measured in Webers (Wb); flux density in Tesla (T). Magnetic field around a current-carrying wire: right-hand rule predicts direction (thumb in direction of current, fingers curl in direction of magnetic field).

Source: ASVAB EI, Electromagnetic Induction

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Question 10

If current flows through a wire wound into a coil (solenoid), what is created?

  1. An electric field only
  2. A magnetic field similar to that of a bar magnet — the strength depends on current, number of turns, and core material ✓
  3. Heat only
  4. Light
▶ Show full explanation

A coil of wire carrying current behaves like a bar magnet — this device is called an ELECTROMAGNET or SOLENOID. The magnetic field strength depends on: (1) CURRENT — more current = stronger field (proportional); (2) NUMBER OF TURNS — more turns concentrate the field; (3) CORE MATERIAL — iron core dramatically increases field strength (typically 1000x) due to high magnetic permeability; (4) COIL GEOMETRY — tighter, denser coils make stronger fields. Right-hand rule for solenoid: curl right-hand fingers in the direction of current flow; thumb points to the NORTH pole of the resulting magnet. Applications: (1) ELECTROMAGNETS — large lifting magnets in scrapyards; door locks; magnetic levitation; (2) RELAYS — small current activates electromagnet, which mechanically closes a switch controlling a larger circuit; (3) SOLENOIDS — coil with a movable iron core; energizing the coil pulls the core in; used in solenoid valves (control flow of fluids/gas), starter motors (engaging starter to flywheel), pinball machines, door locks; (4) MOTORS — coils in rotor and/or stator create magnetic fields; rotational force from interaction of fields; (5) GENERATORS — reverse of motors; (6) LOUDSPEAKERS — varying current in coil within magnetic field moves the coil and attached cone, producing sound; (7) MRI MACHINES — extremely powerful superconducting electromagnets create magnetic fields for imaging. Permanent magnets and electromagnets share the property of magnetic field but: permanent magnets have constant field strength (set by material); electromagnets have variable field controlled by current — turn off the current, field disappears. Magnetic poles: north and south, attract opposite poles, repel like poles. Earth has a magnetic field that compass needles align with — Earth's magnetic NORTH POLE is actually a SOUTH magnetic pole (which attracts compass north needles).

Source: ASVAB EI, Electromagnets

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Component identification questions: The EI subtest also tests whether you can identify components from symbols and descriptions. Key components: resistor (limits current), capacitor (stores charge, blocks DC), inductor (stores magnetic energy, resists current change), diode (allows current one way only), transistor (amplifies or switches), transformer (changes voltage level). Each component's symbol and function is fair game on the exam.

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