Why 4-20 mA Is Used Instead of a Voltage Signal

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Instrumentation
Why 4-20 mA Is Used Instead of a Voltage Signal: The Real Numbers

Every instrumentation site explains that current loops beat voltage signals because current ignores wire resistance. Almost none of them show the actual error a voltage signal produces over real cable.

This guide puts real numbers behind that claim, a voltage divider calculator using real copper wire resistance and receiver input impedance, plus a genuinely balanced look at when a voltage signal is still the right choice.

Voltage Divider Error Wire Resistance Math When Voltage Still Works

4-20 mA is used instead of a voltage signal because a current source actively forces the same current through a loop no matter what resistance the cable adds.

A voltage signal, by contrast, loses accuracy to an unintended voltage divider formed between cable resistance and the receiving instrument's input impedance.

That claim gets repeated everywhere, but rarely with the actual numbers behind it, which is the gap this guide closes with a calculator built on real copper wire resistance data.

Why 4-20 mA Is Used Instead of a Voltage Signal

Why This Is Not Another Generic Comparison List

Two other pieces on this site already cover the qualitative reasons current beats voltage in real depth: noise immunity, live zero fault detection, two wire power, and HART compatibility.

Repeating that list here would add nothing. Instead, this article answers the question those pieces leave open: exactly how much accuracy does a voltage signal actually lose over a real cable run, and under what conditions does that error become negligible instead of serious.

Signal TypeEffect of Cable ResistanceTypical Best Fit
4 to 20 mA current loopNone, by design, as long as loop resistance stays within the transmitter's compliance voltage budgetLong field runs, hazardous areas, noisy plants
0 to 10 V voltage signalForms a voltage divider with receiver input impedance, error grows with distance and wire gaugeShort runs inside a single panel or cabinet
0 to 5 V voltage signalSame divider effect, and a smaller working range makes the same absolute error a larger percentageVery short, low noise, panel internal wiring
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The Voltage Divider Problem: Actual Numbers

A voltage signal traveling down a cable does not arrive unchanged. The cable's own resistance sits in series with the receiving instrument's input impedance, and together they form an unintended voltage divider.

The measured voltage at the receiver equals the transmitted voltage multiplied by receiver impedance, divided by the sum of receiver impedance and cable resistance. Whenever cable resistance is small compared to receiver impedance, the error stays negligible. Whenever it is not, the error becomes real.

Real copper wire resistance is not trivial over distance. Standard 20 AWG instrumentation cable runs about 34 ohms per kilometer per conductor, meaning a 1 kilometer run, out and back, adds roughly 68 ohms of resistance into that divider.

Wire GaugeResistance per km (single conductor)
18 AWGAbout 21.4 ohms
20 AWGAbout 34.1 ohms
22 AWGAbout 54.1 ohms
24 AWGAbout 86.0 ohms

Why Current Loops Do Not Have This Problem

A 4 to 20 mA transmitter is not a voltage source, it is a current source. It actively adjusts its own output voltage to force exactly the intended current through the loop, regardless of how much resistance the cable and receiver add.

That only works up to a limit, the transmitter's compliance voltage, which sets a maximum total loop resistance the loop supply can push current through.

A separate article on this site works through that maximum loop resistance calculation in detail using the transmitter's compliance voltage rating.

Below that resistance limit, current loop accuracy is unaffected by cable resistance, full stop. A voltage signal has no equivalent safety margin, its accuracy degrades continuously and immediately as cable resistance grows, with no threshold to stay under.

High Impedance DAQ, About 1 Megohm

At 1 kilometer of round trip cable, error stays around 0.0068 percent, effectively negligible.

Typical PLC Analog Input, About 100k Ohms

Same cable run, error rises to about 0.068 percent, still small but no longer trivial.

Older Low Impedance Receiver, About 1k Ohms

Same cable run, error reaches about 6.4 percent, a genuinely serious measurement problem.

Very Low Impedance Circuit, About 250 Ohms

Same cable run, error climbs past 21 percent, unusable for any real measurement.

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Voltage Signal Measurement Error Calculator

Enter a cable resistance per kilometer, run length, receiver input impedance, and the transmitter's output voltage to see the actual measurement error the voltage divider effect produces.

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Voltage Signal Measurement Error Calculator
Calculates the voltage divider error a cable run introduces into a voltage signal
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Where the Error Comes From

Voltage Signal Path vs Current Loop Path Transmitter Output Voltage, the True Value Cable Resistance Divides the Voltage Here, in Series Receiver Sees a Reduced Voltage, the Measurement Error Current Loop Path: Same Current Reaches the End, No Divider
A voltage signal shares its path with cable resistance in a way that unavoidably divides the signal before it reaches the receiver. A current loop forces the same current through every point in the loop by design, so this division never happens.
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When a Voltage Signal Still Makes Sense

None of this makes voltage signals wrong everywhere. Inside a single control panel, where cable runs are a meter or two and receiver impedance is known and high, the divider error calculated above rounds to zero in practice.

Voltage signals are also simpler and cheaper for that specific case, no current source circuitry needed at the transmitting end, and many low cost sensors and data acquisition boards are built around a voltage input by default.

The decision genuinely comes down to distance and known receiver impedance. Short, panel internal, high impedance receiver, voltage is fine. Long field run, unknown or shared cabling, hazardous area, current loop is the correct choice, not a matter of habit or convention.

Signal Type Selection Do's and Don'ts

✓ Do

  • Calculate the actual voltage divider error before assuming a voltage signal is accurate enough over a given run
  • Check the receiving equipment's actual input impedance, not an assumed high value
  • Use current loops for any run longer than a few meters or with unknown cable resistance
  • Confirm loop resistance stays within the transmitter's compliance voltage budget before wiring a current loop

✗ Don't

  • Assume a voltage signal is fine simply because the run "looks short," calculate it instead
  • Ignore wire gauge, a thinner conductor adds meaningfully more resistance per meter
  • Treat a low impedance voltage receiver as interchangeable with a high impedance one
  • Forget that 0 to 5 V signals lose a larger percentage of range to the same absolute error than 0 to 10 V signals do

Resources on 4-20 mA Current Loops and Voltage Signals

DOC
Copper Wire, Electrical Resistance vs Gauge
engineeringtoolbox.com
DOC
4 to 20 mA vs 0 to 10 V: Which Analog Output Should You Choose
ncd.io
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Why 4-20 mA Is Used Instead of a Voltage Signal, Questions Engineers Ask

Why is 4 to 20 mA used instead of a voltage signal in the simplest terms?
A current source actively forces the same current through a loop regardless of cable resistance, while a voltage signal forms an unintended voltage divider with cable resistance, losing measurable accuracy as distance and wire resistance grow.
How much accuracy does a voltage signal actually lose over a real cable run?
It depends entirely on receiver input impedance. Over 1 kilometer of 20 AWG cable, a 1 megohm receiver loses roughly 0.004 percent, while a 1,000 ohm receiver loses more than 6 percent, a genuinely serious measurement error.
Does a current loop ever lose accuracy from cable resistance?
Not from resistance itself, as long as total loop resistance stays under the transmitter's compliance voltage budget. Beyond that limit the transmitter can no longer force the intended current and the loop fails differently, not gradually like a voltage signal does.
Is a voltage signal ever the better choice over a current loop?
Yes, for short runs inside a single panel or cabinet where receiver input impedance is known to be high, a voltage signal is simpler, cheaper, and shows negligible error, since the divider effect scales with cable length.
Why does wire gauge matter for a voltage signal but barely matter for a current loop?
Wire gauge changes cable resistance directly, which changes the voltage divider error for a voltage signal. A current loop only cares whether total loop resistance stays under the compliance voltage budget, not the specific gauge used to get there.
Why is 0 to 5 V considered worse than 0 to 10 V over the same cable?
The same absolute voltage drop from cable resistance represents a larger percentage of a smaller signal range. A 0 to 5 V signal loses proportionally more accuracy to the same physical cable run than a 0 to 10 V signal does.
Does receiver input impedance alone guarantee an accurate voltage signal?
High receiver impedance minimizes the voltage divider error covered here, but a voltage signal remains more exposed to electrical noise and ground potential differences than a current loop, which is a separate vulnerability the divider calculation does not capture.

External References

What We Learn Today

  • A voltage signal loses accuracy through a real, calculable voltage divider formed between cable resistance and receiver input impedance.
  • Over 1 kilometer of 20 AWG cable, that error ranges from about 0.004 percent with a high impedance receiver to over 6 percent with a low impedance one.
  • A 4 to 20 mA current loop avoids this entirely by forcing constant current, as long as total loop resistance stays under the transmitter's compliance voltage budget.
  • Voltage signals remain a reasonable choice for short, panel internal runs with known high receiver impedance, the decision is about distance and impedance, not habit.
"Current does not care how far it has to travel. Voltage does, and the bill comes due at the receiver."

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