Campsite Electrical Extension Drop Calculator

Campsite Electrical Extension Drop Calculator

Estimate campsite cord voltage drop, load voltage, heat loss, and gauge fit for RV pedestals, tent sites, shore power cords, and outdoor extension runs.

Common Campsite Presets

🔌Cord And Load Inputs

Use 120 V for TT-30, 5-15, 5-20, and one leg of a 50A RV.
Used for cord ampacity and overload comparison.
For continuous loads, use the actual running amps, not just the device name.
Voltage drop uses the full out-and-back conductor path.
Extra plug pairs add small resistance and more heat points.
Used for advice text and starting-load caution.
If the campground pedestal already reads low, enter that measured voltage here.
Formula basis: voltage drop = load amps × total circuit resistance. Total resistance uses AWG ohms per 1,000 ft × round-trip length plus connector resistance.

Voltage Drop Result

Voltage Drop
0.0 V
0.0% of supply
amps × total ohms
Voltage At Load
0.0 V
Under load estimate
source volts - drop volts
Cord Heat Loss
0 W
0 W per 25 ft
amps² × total ohms
Gauge Fit
Check
Cord ampacity comparison
load amps vs cord amp rating

📊Cord Gauge Spec Comparison

16 AWGLight campsite loads
Typical 13A cord; best for low loads and short runs.
14 AWG15A outlets
Useful for tent sites and moderate short outdoor runs.
12 AWG20A branch loads
Lower drop for kitchen gear, chargers, and long 15A runs.
10 AWG30A RV shore cord
Common match for TT-30 RV hookups and heavier loads.
8 AWGLong heavy run
Useful when a long 30A run needs less voltage drop.
6 AWG50A RV cord
Common for NEMA 14-50 RV cords and high-capacity service.
3%Preferred drop
Good target for motors, converters, and sensitive loads.
5%Practical ceiling
Often treated as a maximum combined drop target.

📘Reference Tables

Wire gaugeCopper ohms per 1,000 ftTypical flexible cord ampacityCommon campsite use
18 AWG6.385 ohms10 ampsSmall lights, low chargers, very short low-load cords
16 AWG4.016 ohms13 ampsLight tent loads and low-draw accessories
14 AWG2.525 ohms15 ampsStandard 15A outdoor extension use
12 AWG1.588 ohms20 amps20A campsite outlet loads and longer 15A runs
10 AWG0.999 ohm30 ampsTT-30 RV shore cord and heavy campsite appliances
8 AWG0.628 ohm40 ampsLonger heavy runs where drop control matters
6 AWG0.395 ohm55 amps50A RV shore power cord assemblies
Outlet or cord typeNominal voltageBreaker ratingVoltage-drop note
NEMA 5-15 household style120 V15 ampsVoltage drop matters quickly with heaters and long cords.
NEMA 5-20 T-slot campsite outlet120 V20 ampsUse 12 AWG cord for sustained high loads.
TT-30 RV pedestal outlet120 V30 amps10 AWG shore cord is the common full-load match.
NEMA 14-50 RV pedestal120/240 V50 ampsMost RV branch loads are still checked per 120 V leg.
Daisy-chained cordsVariesLowest cord winsExtra plug pairs increase resistance and heat points.
Voltage drop targetMeaning120 V equivalentCampsite interpretation
Under 3%Preferred branch-circuit target3.6 V dropGood for compressors, converters, electronics, and steady loads.
3% to 5%Usually workable3.6 to 6.0 V dropWatch for warm cord ends and low pedestal voltage.
5% to 8%Caution range6.0 to 9.6 V dropReduce load, shorten cord, or use a heavier gauge.
Over 8%High dropOver 9.6 V dropNot a good sustained-use setup for campsite power.
Example loadTypical amps at 120 VPreferred cordCalculation note
Phone chargers and LED lights1 to 3 amps16 AWG short cordDrop is usually small unless the cord is very long.
Battery converter or charger6 to 12 amps14 or 12 AWGLower voltage can reduce charging performance.
Outdoor griddle or kettle10 to 15 amps12 AWGResistive loads create steady cord heating.
Portable space heater12 to 13 amps12 AWG short cordAvoid coiled cords and inspect plug temperature.
30A RV air conditioner mix18 to 28 amps10 AWG RV cordLong runs can sag during compressor starts.
50A RV high-load leg35 to 45 amps6 AWG RV cordCheck each 120 V leg if loads are unbalanced.

🚧Campsite Calculation Tips

Measure under load: A pedestal can look fine with no load and sag once the air conditioner, heater, charger, or cooking appliance starts pulling current.
Use the full path: A 50 ft extension cord is 100 ft of conductor path for a 120 V circuit because current travels out and back.
Avoid chained cords: Multiple cords add plug resistance, weather exposure, and extra warm spots. One correctly sized cord is usually the cleaner setup.
Match the weakest part: The breaker, plug, adapter, receptacle, and smallest cord gauge all matter. The lowest-rated item sets the practical limit.

The sun’s setting low as you pull into what you hope will be a sweet campsite with a hot grill waiting. Only, the pedestal are located on a half-acre away. After dragging out the extension cord, you plug in electric griddle and wait for that perfect sear… nada. The heating element glow a weak orange color rather than the angry red color of heat. Before you know it, the air conditioner cut on and off, every ten minutes. Perhaps you’ll replace the appliance, but more likely the culprit are in the wire.

Just as water resist flow down a narrow pipe, electricity resists flow down a copper wire. This results in a loss of voltage, a.k.a. This causes a voltage drop which robs power before it even arrives at your tent or RV site gear.

Why Your Campsite Power Is Weak and How to Fix It

You can put in how long your cord is and what you are expecting to draw, then let the calculator do the rest (no need for conversions and coefficients). It begins with simple question of “how far is your campsite from the pedestal?” Why? Because there is a hundred feet of conductor path from your rig to your load. It is fifty feet one way and fifty coming back. The electrons has to go out to your load and back. A lot of folks just look at distance to the load and think half of that is all the drop they get. That is not the case, that’s where a lot of folks miss it.

You tell it what gauge your wire is. For example, use 16 awg if you have a light load like some tent, or 10 awg if you are running an RV with 30 amps. Then it will calculate how much resistance that copper runs.

Another invisible expense of voltage drop is wasted energy as heat. Instead of doing any productive work, that wattage become heat. For example, a lengthy power run on undersized wiring can be toasty at the plug ends. This is not only inefficient but also possibly hazardous over time if it melt insulation. The calculator tell you precisely what percentage of watts are being lost to thin air so you can tell if you have an efficient set up or simply one that’s keeping the mosquitoes comfy by radiating ambient warmth.

Surprisingly, it turns out that connector condition matter as well. Resistance from a loose connection in an old campground outlet isn’t caused by the wire; it’s just an additional obstacle. That is usually what causes the plug to feel warm after being in use for an hour. The tool accounts for connector quality, recognizing that there are few if any perfect campground sockets in the real world. And it takes into account daisy-chained cords, those extra connection points that multiply the risk of something going wrong. A single heavy-duty cord is nearly always preferable to two lesser cord taped together halfway down their length.

The numbers make more sense when you understand what a voltage drop target means. For example, we want a maximum of three percent drop for high-current loads such as air conditioners and other items that must start motors or have sensitive electronics. On the flip side, five percent is often considered the limit of usefulness for resistive heating elements. Anything more and you’ll notice reduced performance. You’ll find that your refrigerator compressor have a hard time starting which leads to short cycling, bad ice, and a strained motor. It’s all spelled out nicely in the reference table on the page, which details how each gauge performs with different loads.

Gauge matters beyond preventing breaker trips. Gauge also keep voltage steady to ensure your equipment works how it was meant to. While maybe 15 amps would of not overheat a 12 gauge cord, that doesn’t mean it won’t drop the voltage enough to noticeably dim your LED lights or make an on-board battery charger mad at you. More expensive, harder to coil up after the trip, yet heavier gauge wire will give you electricity that you can trust. Electrical peace of mind against physical inconvenience: the choice is yours.

Finally, campsite power isn’t exactly magic; it’s physics. There are limitations: copper have them, distance has them, connections will degrade them. Avoid frustration with a weak power source by checking your setup beforehand, before you even unroll the cord. It is a small detail but it is important. Your burger gets that perfect sear because of this more than you’d think.

Campsite Electrical Extension Drop Calculator

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