Penukar Arus Elektrik

Electric Current — From Neurons to Lightning

Master electric current units across electronics, power systems, and physics. From microamperes to megaamperes, understand current flow across 30 orders of magnitude — from single-electron tunneling to lightning strikes. Explore the ampere's 2019 quantum redefinition and real-world applications.

About This Tool
This tool converts between electric current units (A, mA, µA, kA, and 15+ more) across electronics, power systems, and physics. Current measures the flow rate of electric charge — how many coulombs per second pass through a conductor. While we often say 'amps,' we're measuring charge carriers moving through circuits, from picoampere ion channels in neurons to kiloampere welding arcs and megaampere lightning bolts.

Foundations of Electric Current

Electric Current (I)
Flow rate of electric charge. SI unit: ampere (A). Symbol: I. Definition: 1 ampere = 1 coulomb per second (1 A = 1 C/s). Current is the movement of charge carriers.

What is Current?

Electric current is the flow of charge, like water flowing through a pipe. Higher current = more charge per second. Measured in amperes (A). Direction: positive to negative (conventional), or electron flow (negative to positive).

  • 1 ampere = 1 coulomb per second (1 A = 1 C/s)
  • Current is flow rate, not amount
  • DC current: constant direction (batteries)
  • AC current: alternating direction (wall power)

Current vs Voltage vs Charge

Charge (Q) = amount of electricity (coulombs). Current (I) = flow rate of charge (amperes). Voltage (V) = pressure pushing charge. Power (P) = V × I (watts). All connected but different!

  • Charge Q = amount (coulombs)
  • Current I = flow rate (amperes = C/s)
  • Voltage V = electrical pressure (volts)
  • Current flows FROM high to low voltage

Conventional vs Electron Flow

Conventional current: positive to negative (historical). Electron flow: negative to positive (actual). Both work! Electrons actually move, but we use conventional direction. Doesn't affect calculations.

  • Conventional: + to - (standard in diagrams)
  • Electron flow: - to + (physical reality)
  • Both give same answers
  • Use conventional for circuit analysis
Quick Takeaways
  • Current = flow rate of charge (1 A = 1 C/s)
  • Voltage causes current to flow (like pressure)
  • Higher current = more charge per second
  • Power = voltage × current (P = VI)

Historical Evolution of Current Measurement

Early Electrical Discoveries (1600-1830)

Before understanding current as charge flow, scientists studied static electricity and mysterious 'electrical fluids.' The battery revolution enabled continuous current for the first time.

  • 1600: William Gilbert distinguishes electricity from magnetism, coins term 'electric'
  • 1745: Leyden jar invented — first capacitor, stores static charge
  • 1800: Alessandro Volta invents voltaic pile — first battery, first continuous current source
  • 1820: Hans Christian Ørsted discovers current creates magnetic field — links electricity & magnetism
  • 1826: Georg Ohm publishes V = IR — first mathematical relationship for current
  • 1831: Michael Faraday discovers electromagnetic induction — changing fields create current

Evolution of the Ampere Definition (1881-2019)

The ampere's definition evolved from practical compromises to fundamental constants, reflecting our deepening understanding of electromagnetism and quantum physics.

  • 1881: First International Electrical Congress defines 'practical ampere' for commercial use
  • 1893: Chicago World's Fair — standardizes ampere for AC/DC measurements
  • 1948: CGPM defines ampere from force between parallel conductors: 2×10⁻⁷ N/m force at 1 meter spacing
  • Problem: Required perfect parallel wires, difficult to realize in practice
  • 1990s: Quantum Hall effect and Josephson junctions enable more precise measurements
  • 2018: CGPM votes to redefine ampere from elementary charge

2019 Quantum Revolution — Elementary Charge Definition

On May 20, 2019, the ampere was redefined based on the elementary charge (e), making it reproducible anywhere with proper quantum equipment. This ended 71 years of the force-based definition.

  • New definition: 1 A = (e / 1.602176634×10⁻¹⁹) electrons per second
  • Elementary charge e is now exact by definition (no uncertainty)
  • 1 ampere = flow of 6.241509074×10¹⁸ elementary charges per second
  • Quantum current standards: Single-electron tunneling devices count individual electrons
  • Josephson junctions: Generate precise AC currents from fundamental constants
  • Result: Any lab with quantum equipment can realize the ampere independently
Why This Matters Today

The 2019 redefinition represents 138 years of progress from practical compromises to quantum precision, enabling next-generation electronics and measurement science.

  • Nanotechnology: Precise control of electron flow in quantum computers, single-electron transistors
  • Metrology: National labs can independently realize the ampere without reference artifacts
  • Electronics: Better calibration standards for semiconductors, sensors, power systems
  • Medical: More accurate measurements for implants, brain-computer interfaces, diagnostic equipment
  • Fundamental physics: All SI units now defined from nature's constants — no human artifacts

Memory Aids & Quick Conversion Tricks

Easy Mental Math

  • Power of 1000 rule: Each SI prefix = ×1000 or ÷1000 (kA → A → mA → µA → nA)
  • mA to A shortcut: Divide by 1000 → 250 mA = 0.25 A (move decimal 3 left)
  • A to mA shortcut: Multiply by 1000 → 1.5 A = 1500 mA (move decimal 3 right)
  • Current from power: I = P / V → 60W bulb at 120V = 0.5 A
  • Ohm's law trick: I = V / R → 12V ÷ 4Ω = 3 A (voltage divided by resistance)
  • Identity conversions: 1 A = 1 C/s = 1 W/V (all exactly equivalent)

Critical Safety Memory Aids

Current kills, not voltage. These safety thresholds can save your life — memorize them.

  • 1 mA (60 Hz AC): Tingling sensation, threshold of perception
  • 5 mA: Maximum 'safe' current, can't let go threshold approaches
  • 10-20 mA: Muscle control loss, cannot let go (sustained grip)
  • 50 mA: Severe pain, possible respiratory arrest
  • 100-200 mA: Ventricular fibrillation (heart stops), usually lethal
  • 1-5 A: Sustained fibrillation, severe burns, cardiac arrest
  • Remember: AC is 3-5× more dangerous than DC at same current level

Practical Circuit Formulas

  • Ohm's Law: I = V / R (find current from voltage and resistance)
  • Power formula: I = P / V (find current from power and voltage)
  • Series circuits: Same current everywhere (I₁ = I₂ = I₃)
  • Parallel circuits: Currents add at junctions (I_total = I₁ + I₂ + I₃)
  • LED current limiting: R = (V_supply - V_LED) / I_LED
  • Wire gauge rule: 15A needs 14 AWG, 20A needs 12 AWG minimum
Common Mistakes to Avoid
  • Confusing current with voltage: Voltage is pressure, current is flow rate — different concepts!
  • Exceeding wire ratings: Thin wires overheat, melt insulation, cause fires — check AWG tables
  • Measuring current wrong: Ammeter goes IN series (breaks circuit), voltmeter goes across (parallel)
  • Ignoring AC RMS vs peak: 120V AC RMS ≠ 120V peak (actually 170V). Use RMS for calculations
  • Short circuits: Zero resistance = theoretically infinite current = fire/explosion/damage
  • Assuming LED voltage determines current: LEDs need current-limiting resistors or constant-current drivers

Current Scale: Single Electrons to Lightning

What This Shows
Representative current scales across electronics, biology, power systems, and extreme physics. Use this to build intuition when converting between units spanning 30 orders of magnitude.
Scale / CurrentRepresentative UnitsCommon ApplicationsReal-World Examples
0.16 aAAttoampere (aA)Single-electron tunneling, theoretical quantum limit1 electron per second ≈ 0.16 aA
1-10 pAPicoampere (pA)Ion channels, tunneling microscopy, molecular electronicsBiological membrane ion channel currents
~10 nANanoampere (nA)Nerve impulses, ultra-low power sensors, battery leakageAction potential peak in neurons
10-100 µAMicroampere (µA)Watch batteries, precision instruments, biological signalsTypical watch current draw
2-20 mAMilliampere (mA)LEDs, sensors, low-power circuits, Arduino projectsStandard LED indicator (20 mA)
0.5-5 AAmpere (A)Consumer electronics, USB charging, household devicesUSB-C fast charging (3 A), laptop power (4 A)
15-30 AAmpere (A)Household circuits, major appliances, electric vehicle chargingStandard circuit breaker (15 A), EV Level 2 charger (32 A)
100-400 AAmpere (A)Arc welding, car starters, industrial motorsStick welding (100-400 A), car starter motor (200-400 A)
1-100 kAKiloampere (kA)Lightning, spot welding, large motors, rail systemsLightning bolt average (20-30 kA), spot welding pulses
1-3 MAMegaampere (MA)Electromagnetic rail guns, fusion reactors, extreme physicsRail gun projectile acceleration (1-3 MA for microseconds)

Unit Systems Explained

SI Units — Ampere

Ampere (A) is SI base unit for current. One of seven fundamental SI units. Defined from elementary charge since 2019. Prefixes from atto to mega cover all ranges.

  • 1 A = 1 C/s (exact definition)
  • kA for high power (welding, lightning)
  • mA, µA for electronics, sensors
  • fA, aA for quantum, single-electron devices

Definition Units

C/s and W/V are equivalent to ampere by definition. C/s shows charge flow. W/V shows current from power/voltage. All three identical.

  • 1 A = 1 C/s (definition)
  • 1 A = 1 W/V (from P = VI)
  • All three are identical
  • Different perspectives on current

Legacy CGS Units

Abampere (EMU) and statampere (ESU) from old CGS system. Biot = abampere. Rare today but appear in old physics texts. 1 abA = 10 A; 1 statA ≈ 3.34×10⁻¹⁰ A.

  • 1 abampere = 10 A (EMU)
  • 1 biot = 10 A (same as abampere)
  • 1 statampere ≈ 3.34×10⁻¹⁰ A (ESU)
  • Obsolete; SI ampere is standard

The Physics of Current

Ohm's Law

I = V / R (current = voltage ÷ resistance). Know voltage and resistance, find current. Foundation of all circuit analysis. Linear for resistors.

  • I = V / R (current from voltage)
  • V = I × R (voltage from current)
  • R = V / I (resistance from measurements)
  • Power dissipation: P = I²R

Kirchhoff's Current Law

At any junction, current in = current out. Σ I = 0 (sum of currents = zero). Charge is conserved. Essential for analyzing parallel circuits.

  • ΣI = 0 at any node
  • Current in = current out
  • Charge conservation
  • Used to solve complex circuits

Microscopic Picture

Current = drift velocity of charge carriers. In metals: electrons move slowly (~mm/s) but signal propagates at light speed. Number of carriers × velocity = current.

  • I = n × q × v × A (microscopic)
  • n = carrier density, v = drift velocity
  • Electrons move slowly, signal is fast
  • In semiconductors: electrons + holes

Current Benchmarks

ContextCurrentNotes
Single electron~0.16 aA1 electron per second
Ion channel~1-10 pABiological membrane
Nerve impulse~10 nAAction potential peak
LED indicator2-20 mALow power LED
USB 2.00.5 AStandard USB power
Phone charging1-3 AFast charging typical
Household circuit15 AStandard breaker (US)
Electric car charging32-80 ALevel 2 home charger
Arc welding100-400 AStick welding typical
Car starter motor100-400 APeak cranking current
Lightning strike20-30 kAAverage bolt
Spot welding1-100 kAShort pulse
Theoretical maximum>1 MARail guns, extreme physics

Common Current Levels

Device / ContextTypical CurrentVoltagePower
Watch battery10-50 µA3V~0.1 mW
LED indicator10-20 mA2V20-40 mW
Arduino/MCU20-100 mA5V0.1-0.5 W
USB mouse/keyboard50-100 mA5V0.25-0.5 W
Phone charging (slow)1 A5V5 W
Phone charging (fast)3 A9V27 W
Laptop3-5 A19V60-100 W
Desktop PC5-10 A12V60-120 W
Microwave10-15 A120V1200-1800 W
Electric car charging32 A240V7.7 kW

Real-World Applications

Consumer Electronics

USB: 0.5-3 A (standard to fast charging). Phone charging: 1-3 A typical. Laptop: 3-5 A. LED: 20 mA typical. Most devices use mA to A range.

  • USB 2.0: 0.5 A max
  • USB 3.0: 0.9 A max
  • USB-C PD: up to 5 A (100W @ 20V)
  • Phone fast charging: 2-3 A typical

Household & Power

Household circuits: 15-20 A breakers (US). Light bulb: 0.5-1 A. Microwave: 10-15 A. Air conditioner: 15-30 A. Electric car charging: 30-80 A (Level 2).

  • Standard outlet: 15 A circuit
  • Major appliances: 20-50 A
  • Electric car: 30-80 A (Level 2)
  • Whole house: 100-200 A service

Industrial & Extreme

Welding: 100-400 A (stick), 1000+ A (spot). Lightning: 20-30 kA average, 200 kA peak. Rail guns: megaamperes. Superconducting magnets: 10+ kA steady.

  • Arc welding: 100-400 A
  • Spot welding: 1-100 kA pulses
  • Lightning: 20-30 kA typical
  • Experimental: MA range (rail guns)

Quick Conversion Math

SI Prefix Quick Conversions

Each prefix step = ×1000 or ÷1000. kA → A: ×1000. A → mA: ×1000. mA → µA: ×1000.

  • kA → A: multiply by 1,000
  • A → mA: multiply by 1,000
  • mA → µA: multiply by 1,000
  • Reverse: divide by 1,000

Current from Power

I = P / V (current = power ÷ voltage). 60W bulb at 120V = 0.5 A. 1200W microwave at 120V = 10 A.

  • I = P / V (Amps = Watts ÷ Volts)
  • 60W ÷ 120V = 0.5 A
  • P = V × I (power from current)
  • V = P / I (voltage from power)

Ohm's Law Quick Checks

I = V / R. Know voltage and resistance, find current. 12V across 4Ω = 3 A. 5V across 1kΩ = 5 mA.

  • I = V / R (Amps = Volts ÷ Ohms)
  • 12V ÷ 4Ω = 3 A
  • 5V ÷ 1000Ω = 5 mA (= 0.005 A)
  • Remember: divide for current

How Conversions Work

Base-unit method
Convert any unit to amperes (A) first, then from A to target. Quick checks: 1 kA = 1000 A; 1 mA = 0.001 A; 1 A = 1 C/s = 1 W/V.
  • Step 1: Convert source → amperes using toBase factor
  • Step 2: Convert amperes → target using target's toBase factor
  • Alternative: Use direct factor (kA → A: multiply by 1000)
  • Sanity check: 1 kA = 1000 A, 1 mA = 0.001 A
  • Remember: C/s and W/V are identical to A

Common Conversion Reference

FromToMultiply ByExample
AkA0.0011000 A = 1 kA
kAA10001 kA = 1000 A
AmA10001 A = 1000 mA
mAA0.0011000 mA = 1 A
mAµA10001 mA = 1000 µA
µAmA0.0011000 µA = 1 mA
AC/s15 A = 5 C/s (identity)
AW/V110 A = 10 W/V (identity)
kAMA0.0011000 kA = 1 MA
abampereA101 abA = 10 A

Quick Examples

2.5 kA → A= 2,500 A
500 mA → A= 0.5 A
10 A → mA= 10,000 mA
250 µA → mA= 0.25 mA
5 A → C/s= 5 C/s
100 mA → µA= 100,000 µA

Worked Problems

USB Power Calculation

USB port delivers 5V. Device draws 500 mA. What's the power?

P = V × I = 5V × 0.5A = 2.5W (standard USB 2.0)

LED Current Limiting

5V supply, LED needs 20 mA and 2V. What resistor?

Voltage drop = 5V - 2V = 3V. R = V/I = 3V ÷ 0.02A = 150Ω. Use 150Ω or 180Ω.

Circuit Breaker Sizing

Three devices: 5A, 8A, 3A on same circuit. What breaker?

Total = 5 + 8 + 3 = 16A. Use 20A breaker (next standard size up for safety margin).

Common Mistakes to Avoid

  • **Current kills, not voltage**: 100 mA through heart can be lethal. High voltage is dangerous because it can force current, but current does the damage.
  • **AC vs DC current**: 60 Hz AC is ~3-5× more dangerous than DC at same level. AC causes muscle lock. RMS current used for AC calculations.
  • **Wire thickness matters**: Thin wires can't handle high current (heat, fire risk). Use wire gauge tables. 15A needs 14 AWG minimum.
  • **Don't exceed ratings**: Components have max current ratings. LEDs burn out, wires melt, fuses blow, transistors fail. Always check datasheet.
  • **Series current is same**: In series circuit, current is identical everywhere. In parallel, currents add at junctions (Kirchhoff).
  • **Short circuits**: Zero resistance = infinite current (theoretically). In reality: limited by source, causes damage/fire. Always protect circuits.

Fascinating Current Facts

Your Body Conducts ~100 µA

Standing on ground, your body constantly has ~100 µA leakage current to earth. From EM fields, static charges, radio waves. Completely safe and normal. We're electrical beings!

Lightning is 20,000-200,000 Amps

Average lightning bolt: 20-30 kA (20,000 A). Peak can reach 200 kA. But duration is <1 millisecond. Total charge: only ~15 coulombs. High current, short time = surviv able (sometimes).

Human Pain Threshold: 1 mA

1 mA 60 Hz AC: tingling sensation. 10 mA: muscle control loss. 100 mA: ventricular fibrillation (lethal). 1 A: severe burns, cardiac arrest. Current path matters—across heart is worst.

Superconductors: Infinite Current?

Zero resistance = infinite current? Not quite. Superconductors have 'critical current'—exceed it, superconductivity breaks. ITER fusion reactor: 68 kA in superconducting coils. No heat, no loss!

LED Current is Critical

LEDs are current-driven, not voltage. Same voltage, different current = different brightness. Too much current? LED dies instantly. Always use current-limiting resistor or constant-current driver.

Rail Guns Need Megaamperes

Electromagnetic rail guns: 1-3 MA (million amps) for microseconds. Lorentz force accelerates projectile to Mach 7+. Requires massive capacitor banks. Future naval weapon.

Historical Evolution

1800

Volta invents battery. First source of continuous electric current. Enables early electrical experiments.

1820

Oersted discovers current creates magnetic field. Links electricity and magnetism. Foundation of electromagnetism.

1826

Ohm publishes V = IR. Ohm's law describes relationship between voltage, current, resistance. Initially rejected, now fundamental.

1831

Faraday discovers electromagnetic induction. Changing magnetic field creates current. Enables generators and transformers.

1881

First international electrical congress defines ampere as 'practical unit' of current.

1893

Tesla's AC system wins 'War of Currents' at World's Fair. AC current can be transformed, DC cannot (then).

1948

CGPM defines ampere: 'constant current which produces 2×10⁻⁷ N/m force between parallel conductors.'

2019

SI redefinition: ampere now defined from elementary charge (e). 1 A = (e/1.602×10⁻¹⁹) electrons per second. Exact by definition.

Pro Tips

  • **Quick mA to A**: Divide by 1000. 250 mA = 0.25 A.
  • **Current adds in parallel**: Two 5A branches = 10A total. Series: same current everywhere.
  • **Check wire gauge**: 15A needs 14 AWG minimum. 20A needs 12 AWG. Don't risk fire.
  • **Measure current in series**: Ammeter goes IN the current path (breaks circuit). Voltmeter goes across (parallel).
  • **AC RMS vs peak**: 120V AC RMS → 170V peak. Current is same: RMS for calculations.
  • **Fuse protection**: Fuse rating should be 125% of normal current. Protects against shorts.
  • **Scientific notation auto**: Values < 1 µA or > 1 GA display as scientific notation for readability.

Complete Units Reference

Unit SI

Unit NameSymbolAmpere EquivalentUsage Notes
ampereA1 A (base)SI base unit; 1 A = 1 C/s = 1 W/V (exact).
megaampereMA1.0 MALightning (~20-30 kA), rail guns, extreme industrial systems.
kiloamperekA1.0 kAWelding (100-400 A), large motors, industrial power systems.
miliamperemA1.0000 mALEDs (20 mA), low-power circuits, sensor currents.
mikroampereµA1.0000 µABiological signals, precision instruments, battery leakage.
nanoamperenA1.000e-9 ANerve impulses, ion channels, ultra-low power devices.
pikoamperepA1.000e-12 ASingle-molecule measurements, tunneling microscopy.
femtoamperefA1.000e-15 AIon channel studies, molecular electronics, quantum devices.
attoampereaA1.000e-18 ASingle-electron tunneling, theoretical quantum limit.

Unit Lazim

Unit NameSymbolAmpere EquivalentUsage Notes
coulomb per saatC/s1 A (base)Equivalent to ampere: 1 A = 1 C/s. Shows charge flow definition.
watt per voltW/V1 A (base)Equivalent to ampere: 1 A = 1 W/V from P = VI. Power relationship.

Legasi & Saintifik

Unit NameSymbolAmpere EquivalentUsage Notes
abampere (EMU)abA10.0 ACGS-EMU unit = 10 A. Obsolete electromagnetic unit.
statampere (ESU)statA3.336e-10 ACGS-ESU unit ≈ 3.34×10⁻¹⁰ A. Obsolete electrostatic unit.
biotBi10.0 AAlternative name for abampere = 10 A. CGS electromagnetic unit.

Frequently Asked Questions

What's the difference between current and voltage?

Voltage is electrical pressure (like water pressure). Current is flow rate (like water flow). High voltage doesn't mean high current. You can have 10,000V with 1 mA (static shock), or 12V with 100 A (car starter). Voltage pushes, current flows.

Which is more dangerous: voltage or current?

Current kills, not voltage. 100 mA through your heart can be lethal. But high voltage can force current through your body (V = IR). That's why high voltage is dangerous—it overcomes your body's resistance. Current is the killer, voltage is the enabler.

Why does AC current feel different than DC?

60 Hz AC causes muscle contractions at frequency of power grid. Can't let go (muscle lock). DC causes single jolt. AC is 3-5× more dangerous at same current level. Also: AC RMS value = effective DC equivalent (120V AC RMS ≈ 170V peak).

How much current does a typical household use?

Whole house: 100-200 A service panel. Single outlet: 15 A circuit. Light bulb: 0.5 A. Microwave: 10-15 A. Air conditioner: 15-30 A. Electric car charger: 30-80 A. Total varies, but panel limits maximum.

Can you have current without voltage?

In superconductors, yes! Zero resistance means current flows with zero voltage (V = IR = 0). Persistent current can flow forever. In normal conductors, no—you need voltage to push current. Voltage drop = current × resistance.

Why is USB limited to 0.5-5 A?

USB cable is thin (high resistance). Too much current = excessive heating. USB 2.0: 0.5 A (2.5W). USB 3.0: 0.9 A. USB-C PD: up to 5 A (100W). Thicker wires, better cooling, active negotiation allow higher current safely.

Direktori Alat Lengkap

Semua 71 alat yang tersedia di UNITS

Tapis mengikut:
Kategori:

Ekstra