LED Strip Max Run Length Calculator

LED Strip Max Run Length Calculator

Estimate the longest practical LED strip run from supply voltage, W/m, strip copper weight, allowable voltage drop, feed method, brightness, ambient derating, and current per channel.

📌LED Run Presets
Strip, Copper, And Channel Inputs
Use nominal strip voltage: 5, 12, 24, or 48 V.
Use full-white or all-channel datasheet watts per meter.
Heavier copper lowers trace resistance and extends practical run length.
Use 3% for color-critical runs and 5% to 8% for accent lighting.
Feed method changes the distributed voltage-drop factor.
Dimmed or current-limited scenes reduce current per meter.
Copper resistance rises as the strip and channel get warmer.
Reduces the recommended length and usable channel current in warm spaces.
White strip = 1, RGB = 3, RGBW = 4, dual white = 2.
Use the controller, dimmer, amplifier, or fused branch channel limit.

Maximum LED Strip Run Result

Ready
Recommended Max Run
0 m
0 ft
Limiting Factor
Drop
based on selected inputs
Current At Max Length
0 A
0 A per channel
Worst Voltage At End
0 V
0% voltage drop
📊Strip And Wire Spec Snapshot
0 A/m
Current Per Meter
0.000
Trace Pair Ohm/m
0 V
Allowed Drop
0 A
Usable Per Channel
📘Reference Tables
Strip CopperApprox Pair ResistanceBest FitRun Effect
1 oz narrow strip0.095 ohm/mLow-current accent stripsShortest runs; inject often.
2 oz standard strip0.062 ohm/mCommon 12 V and 24 V tapeBalanced general planning value.
2 oz wide strip0.040 ohm/mHigh-current COB or RGBW tapeBetter for longer single sections.
3 oz pro strip0.028 ohm/mBright coves and pixel runsLower voltage sag at same current.
4 oz heavy strip0.022 ohm/mDense pixels and premium tapeLongest copper-limited sections.
Feed MethodDrop FactorMeaningBest Fit
Single feed at startL² / 2All current enters one endShort strips and test benches.
Feed at both endsL² / 8Current meets near the middleRuns with reachable far end.
Center feedL² / 8One feed splits two waysRoom coves fed from center.
Center plus both endsL² / 32Shorter powered segmentsBright or color-critical runs.
Two parallel branchesL² / 16Total length split in halfSymmetric rails from one supply.
Typical StripVoltagePower RangeCommon Channel Check
Addressable pixels5 V12 to 20 W/mHigh current; channel limit arrives fast.
Warm white accent12 V4.8 to 9.6 W/mOne channel usually controls the whole strip.
Analog RGB strip12 V7.2 to 14.4 W/mDivide full-white current across three channels.
COB white cove24 V10 to 20 W/mVoltage drop often limits before channel current.
RGBW linear tape24 V16 to 28 W/mWhite channel may carry the largest share.
Architectural 48 V tape48 V12 to 25 W/mLower current supports longer sections.
Ambient ConditionCopper Temperature EffectSuggested DeratingPlanning Note
Open room air, 20°CBaseline resistance100%Good for exposed low-output accent strips.
Cabinet channel, 35°CAbout 6% higher resistance90%Common under-cabinet and shelf planning case.
Sealed diffuser, 45°CAbout 10% higher resistance80%Use shorter sections or lower brightness.
Outdoor enclosure, 55°CAbout 14% higher resistance70%Leave extra current and voltage headroom.
Hot cove, 65°CAbout 18% higher resistance60%Split runs and keep feed wiring short.
Controller ChannelUsable CurrentExample LoadCheck
2 A channel1.6 to 2 ASmall shelf or short RGB sectionKeep fused branches modest.
4 A channel3.2 to 4 AMedium cabinet or stair runOften enough for dimmed 24 V strips.
5 A channel4 to 5 ACommon RGB/RGBW controller outputUse ambient derating in enclosed spaces.
8 A channel6.4 to 8 AHigh-output white channel or amplifierWire and connector current must also match.
10 A channel8 to 10 ABright linear runs with power injectionSplit into branches for cleaner voltage.
📝Calculator Tips
Model the brightest scene first. Full white or all-channel output usually creates the worst voltage drop, even if normal scenes are dimmer.
Channel current is a separate limit. A strip can pass the voltage-drop check but still exceed a dimmer, controller, amplifier, fuse, or connector rating.
Warm channels need margin. Higher ambient temperature raises copper resistance and lowers comfortable current capacity, so reduce run length in sealed channels.
Feed method changes the result. Feeding both ends, center feeding, or splitting into parallel branches can increase practical length without changing the strip.

If you’ve ever installed an LED strip light, you probably already know how much brighter it is near the power source compared to the opposite end of a long run. That wasted illumination results in muddied color rendering and underuse of what could be better fixtures. It’s almost universally caused by something called voltage drop. The copper lines of an LED tape are essentially very small resistors. When electricity travel along the length of strip, some of that energy bleeds off as heat while there is less voltage left for the final set of LEDs.

While the calculator do all of the required math for you, knowing the principle behind it will allow you to be more informed when making decisions at the planning stage. The majority of folks only consider the overall watts of what they want to plug into the power supply. What they neglect is that the pressure (voltage) must push those electrons along the circuit. Without adequate pressure, the LEDs won’t shine bright or color accurate. That’s where most installer miss it. They purchase a transformer that is large enough and then ask why the lights still appear to not be even.

Why LED Strips Get Darker at One End

Your initial protection from this problem is Copper Weight. Light duty uses one ounce/square foot and Heavy duty may be as much as 3-4 ounces/square foot. Thicker copper acts like a wider highway for electricity. Less resistance mean a lower drop in voltage over longer distances. As you can see from the reference table, higher copper weight will increase the maximum run distance that can be used without seeing dark areas. For heavy density addressable pixels or higher power COB strips go with heavier copper. Yes it’s more expensive initially but avoids dark areas later on.

In addition to material selection, how you feed it makes a difference. If you feed power on only one end, then all electrons must travel the entire length. This means they’re piling up fast. Feeding power on both ends divide the load. Because length increases resistance in distributed loads (geometrically), each section is now effectively half as long and voltage drop will be significantly lower. This is a simple geometric advantage that takes little more effort, just make sure you have access to both end of your cabinet or cove.

Many guides gloss over another complication: ambient temperature. When copper heat up, it becomes a poor conductor of electricity. Heat can build up rapidly if you place an LED strip inside a tight ceiling cove with a plastic diffuser sealing it off. This heat raises the copper’s resistance, triggering a feedback loop. Increased resistance lead to increased heat. This extra heat raises the resistance again and results in even more voltage drop. By allowing you to account for derating factors and ambient temperature, the tool does all this for you. In a warm environment, lower your estimated run length. It is better to have shorter sections than one long section that slowly loses color accuracy or flickers.

RGB (or RGBW) setups have another hidden bottleneck: channel current limits. Based off solely on voltage drop, you may reason that you should of be able to easily power a twenty-four-volt strip ten meters long. However, if your controller only puts out two amps per color channel, then you reach that limit long before it’s a voltage problem. The RGB circuits pulls current independently from red, green and blue. Make sure you inspect the max current rating of each channel on your amplifier or dimmer. Going beyond will overheat your control electronics and lead to premature failure.

There are no free lunches when it comes to lighting design: you’re trading off heat versus performance, complexity versus cost, and distance versus brightness. That sweet spot can be calculated. Do your homework. Account for the warmest days of summer. Consider the age of your components. Leave a little headroom. The hottest evening mood lighting isn’t all that bright, so plan for the brightest day you’ll ever experience. Respect the laws of simple physics. It’s a good place to begin if you want your light source to stand up to scrutiny.

The heat in the air and the resistance in the wire affect performance. Do you want it patched together at the end or looking like a pro from the start?

LED Strip Max Run Length Calculator

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