What is the conversion relationship between capacitance units?
The basic unit of capacitance is the Farad (F), with each unit having a conversion factor of 1000: 1 F = 1,000 mF (millifarad) = 1,000,000 μF (microfarad) = 1,000,000,000 nF (nanofarad) = 1,000,000,000,000 pF (picofarad). That is, adjacent units differ by a factor of 10³: 1 μF = 1000 nF = 1,000,000 pF; 1 nF = 1000 pF. In practical engineering, μF, nF, and pF are the three most commonly used magnitudes. The Farad (F) itself is very large and only seen in supercapacitor (electric double-layer capacitor) applications.
Why do people often write uF instead of μF?
μ is the Greek letter Mu, which does not appear on English keyboards. Early electronic engineering software, PCB design software, BOMs, and silkscreen printing had difficulty inputting μ, so the industry universally used the English letter u as a substitute for μ. uF = μF is conventional notation (e.g., 10uF = 10μF). Some older European and American literature also used MFD or mfd (microfarad) to represent μF (note this is not millifarad mF). This is no longer recommended, but should be understood as μF when encountered.
How do you read the numbers on SMD capacitor (MLCC) markings? What is the relationship with conversion?
SMD capacitors (Multi-Layer Ceramic Capacitors MLCC) usually do not have capacitance values directly marked. Small packages (0402, 0201) almost never have markings; 0805 and above sometimes use 3-digit codes, similar to resistor three-digit notation: the first two digits are significant figures, the third digit is the power of 10 (in pF). For example, 104 = 10×10⁴ pF = 100,000 pF = 100 nF = 0.1 μF; 103 = 10×10³ = 10,000 pF = 10 nF = 0.01 μF; 102 = 1 nF = 1000 pF. Use this tool to enter pF values and instantly convert to corresponding nF/μF values.
What magnitude units are commonly used for electrolytic capacitors, ceramic capacitors, and tantalum capacitors?
Aluminum electrolytic capacitors are typically in the μF range (1 μF–10,000 μF, for power filtering); tantalum capacitors are also mostly in the μF range (0.1 μF–1000 μF); ceramic capacitors (MLCC) cover the full pF–μF range: 0.5 pF–100 pF are commonly used for high frequency, RF matching; 1 nF–100 nF for decoupling and bypass; 1 μF–100 μF for power filtering; film capacitors are commonly in the nF–μF range (safety Y capacitors, X2 capacitors are mostly nF level); supercapacitors (EDLC) are in the F range (0.1 F–5000 F).
Why do people often say 104, 103 instead of directly saying how many nF?
This is a historical convention in electronics manufacturing. The 3-digit notation (EIA standard) is easy to print on component bodies - a 3-digit number can represent both capacitance value and order of magnitude, more compact than writing 0.1μF or 100nF, and avoids the problem of decimal points blurring or being lost during silkscreen printing, copying, or scanning (Europe once used 100n for 100nF, and the decimal point in 0.1μF could be easily misread). Therefore, in schematic reading, purchasing, and material management in the industry, you often hear "a 104 capacitor" referring to 0.1μF.
Why are 0.1μF and 10μF decoupling capacitors often used together in circuit design?
This is standard practice for power supply decoupling: capacitors of different values have different AC impedance for different frequencies. 0.1μF (100nF, corresponding to 104) ceramic capacitors have low ESL (Equivalent Series Inductance) and good filtering effect on high-frequency (tens of MHz to hundreds of MHz) noise; 10μF electrolytic or tantalum capacitors have large capacitance, providing a low-impedance path for low-to-medium frequency (tens of kHz to several MHz) noise. The two used in parallel cover a wider frequency band. This tool can quickly verify that 0.1μF = 100nF = 100,000 pF to avoid filling in the wrong order of magnitude in BOMs.
Is the capacitive reactance formula related to unit conversion?
Capacitive reactance Xc = 1/(2πfC), where C must be entered in Farads (F) for calculation, f is in Hz, Xc is in Ω. In engineering, capacitors are usually specified in μF/nF/pF; before using the formula, you need to convert to F (e.g., 1μF = 1×10⁻⁶ F), then substitute for calculation. For example, a 1μF capacitor at 50Hz has capacitive reactance Xc = 1/(2π×50×1e-6) ≈ 3183 Ω ≈ 3.18 kΩ. This tool helps you quickly convert μF/nF/pF to F for easy substitution into capacitive reactance, resonant frequency, RC time constant, LC resonance and other formulas.
How large is 1 Farad (F)? Why don't we see 1F capacitors in daily use?
1 Farad is a very large capacitance: if you charge a 1F capacitor with 1A current, the voltage only rises by 1V after 1 second (Q=CV, I=C·dV/dt). To make a 1F capacitor at conventional voltage (e.g., 50V), a traditional electrolytic capacitor would be as large as a refrigerator. Supercapacitors (electric double-layer capacitors EDLC) that appeared after 2000 utilize the huge surface area of activated carbon porous electrodes, achieving 1F–5000F at 2.7V, with several farads in a coin-sized package, used for energy storage, power loss hold-up, energy recovery, backup power and other scenarios. Capacitors used in ordinary signal circuits are far smaller than 1F.
Why are capacitance unit conversions all by a factor of 1000 instead of 1024?
Capacitance is a physical quantity in the SI International System of Units. All prefixes (m, μ, n, p) are strictly defined by powers of 10 (10⁻³, 10⁻⁶, 10⁻⁹, 10⁻¹²), with a conversion factor of 1000. Only computer storage (byte B) uses binary conversion of 1024 (KB=1024B); physical quantity units all strictly follow 1000. Therefore, electrical unit conversions for capacitance, resistance, inductance, voltage, current, frequency, power, etc., all use a conversion factor of 1000. This tool calculates strictly according to SI prefix definitions with no errors.
What is nF sometimes called? Why do senior engineers say "a microfarad" and "a nanofarad"?
Colloquial English: 1 pF = 1 picofarad (colloquially "one puff" as in 10 puff = 10 pF), 1 nF = 1 nanofarad, 1 μF = 1 microfarad (colloquially "a mic"), 1 mF = 1 millifarad (rarely used in practice, usually expressed directly as hundreds of μF), 1 F = 1 Farad (only for supercapacitor scenarios). These colloquialisms do not affect unit conversion - just enter the value.
Why don't multimeter capacitance measurements match BOM nominal values?
There are three common reasons: ① Capacitance values have tolerance grades (e.g., ±5%, ±10%, ±20%, corresponding to J/K/M grades respectively); a 104 (0.1μF) M grade measuring 0.08–0.12μF is normal; ② Multimeter capacitance ranges have limited accuracy, and pF-level small capacitors are greatly affected by probe lead parasitic capacitance; ③ Electrolytic capacitor capacitance decreases with aging, temperature, and DC bias voltage. The conversion itself is a precise mathematical relationship; measurement errors originate from component tolerances and instruments. This tool's conversion results have no theoretical error.
Can this tool convert capacitance kVA, kVAR, or Joule energy storage?
This tool only converts capacitance value units (between pF/nF/μF/mF/F). Capacitor energy storage formula E = ½CV² (C must be in F), reactive power Qc = 2πfCV², RC time constant τ = RC, LC resonant frequency f = 1/(2π√LC) and other calculations involving C require corresponding formulas. This tool can help you first convert μF/nF/pF to F, then substitute into the formulas for calculation.