Evaporative Cooler Size Calculator

Evaporative Cooler Size Calculator

Estimate room cooler airflow from floor area, ceiling height, dryness, sun load, target air changes, sizing buffer, and the relief opening needed for steady evaporative airflow.

🏠 Room presetsTen editable room scenarios for bedrooms, studios, and open home zones.
📏 Cooler sizing inputsUses the typical formula CFM = (area x ceiling height) / 2.
Metric entries convert internally before the CFM formula runs.
Use only the area the evaporative cooler will serve.
Use average height for vaulted or lofted rooms.
Raises airflow for hotter, drier conditions with stronger cooling demand.
Accounts for sun, upstairs heat, electronics, and open-plan gain.
The calculator compares this target with the typical volume / 2 rule.
Relief area lets humid air leave while the cooler pushes dry air in.
Rounds the airflow recommendation upward for real-world loss.
Recommended airflow
0
CFM after factors and buffer
Metric airflow
0
m³/h from CFM x 1.699
Delivered air changes
0
ACH compared with target
Window relief area
0
net free opening needed
Enter room details and calculate.
📌 Sizing checkpointsFour cards show the core assumptions behind the calculator.
Vol / 2 Typical CFM rule The base estimate is room cubic feet divided by 2.
30 ACH Rule equivalent Volume / 2 equals about 30 air changes per hour.
1.699 Metric factor CFM multiplied by 1.699 converts to m³/h.
1000 Relief baseline A common quick check is 1 sq ft opening per 1000 CFM.
📊 Formula breakdown tablesThese tables update after each calculation.
Airflow formula stack
StepFormulaResultUnit
Volumearea x height0cu ft
Base CFMvolume / 20CFM
Adjustedbase x factors0CFM
Finalmax path + buffer0CFM
ACH and relief stack
StepFormulaResultUnit
ACH CFMvolume x ACH / 600CFM
Actual ACHCFM x 60 / volume0ACH
ReliefCFM / relief rate0sq ft
MetricCFM x 1.6990m³/h
📋 Reference tablesUse these ranges to choose realistic inputs and check the result.
Room size quick estimates
SpaceArea8 ft volumeBase CFM
Small bedroom120 sq ft960 cu ft480 CFM
Bedroom180 sq ft1440 cu ft720 CFM
Primary room280 sq ft2240 cu ft1120 CFM
Studio zone420 sq ft3360 cu ft1680 CFM
Open living650 sq ft5200 cu ft2600 CFM
Climate and load multipliers
ConditionFactorWhy it changesUse case
Mild dry spell0.90xLower heat gainShaded rooms
Typical dry summer1.00xBaseline sizingMost rooms
Hot dry climate1.12xMore heat removalSunny bedrooms
High desert1.25xStronger cooling callTop floors
Open high heat1.35xLarge shared loadOpen plans
Air change targets
TargetCFM formulaFeelGood for
20 ACHvolume x 20 / 60GentleQuiet rooms
25 ACHvolume x 25 / 60Soft steadyBedrooms
30 ACHvolume x 30 / 60TypicalBase rule
35 ACHvolume x 35 / 60StrongerSunny rooms
40 ACHvolume x 40 / 60High airflowHot spaces
Window relief opening guide
Airflow1000 ruleSquare inchesMetric area
500 CFM0.50 sq ft72 sq in0.05 m²
1000 CFM1.00 sq ft144 sq in0.09 m²
2000 CFM2.00 sq ft288 sq in0.19 m²
3000 CFM3.00 sq ft432 sq in0.28 m²
4000 CFM4.00 sq ft576 sq in0.37 m²
💡 Calculation tipsPractical checks for cooler size and relief area.
Relief opening tip: Evaporative coolers need a clear exhaust path. If the window opening is too small, airflow can fall below the calculated CFM even when the cooler is correctly sized.
Room boundary tip: Size the cooler for the rooms that are actually open to the airflow path. Closed doors and tight hall turns can make a whole-home estimate too optimistic.
Sun load tip: West-facing glass, top-floor rooms, and heat-producing equipment can justify the higher load factor even when the floor area looks modest.
ACH tip: The typical evaporative cooler rule is close to 30 ACH. Use the ACH target to see when a quiet room or hot room needs a different airflow target.

That’s why we start with the classic failure mode of an evaporative cooler, the draft that relieves at first turns into a wet blanket on your skin. It typically boils down to one variable you’re not thinking about: how does hot, damp air get out? You calculate based off the square footage of the room, but ignore where the air will go when it exits. When there is no path, the cooler encounter a wall of moisture rather than always circulating fresh air.

You’ve got to balance the relief opening area, climate dryness, sun load, and volume. The math starts getting complicated realy quickly. Fortunately the calculator (above) plugs in your local conditions and room dimensions then takes care of all the heavy lifting for you. No more guessing what coefficient is important for your particular setup.

How to Pick the Right Evaporative Cooler Size

People assume that floor area is what matters, but it’s not. Evaporative coolers cools air, not floors, and ceiling height makes all the difference in the world. For example, while a standard eight-foot-ceilinged bedroom may have the same amount of floor space as a loft with ten-foot ceilings, the loft can hold far more air. We don’t need to move the square footage on the floor plan. We want to move the entire cubic volume of the room.

To account for this in the tool, I calculate volume first and then divide it by two using a base rule of thumb. This is a practical industry standard that divides that volume by two which roughly translates to thirty air changes per hour. That sounds like a lot but that is the pace required to keep the air feeling dry and crisp rather than stagnant and muggy.

Interestingly enough, the sizing decision depend heavily on the climate. For example, a unit sized for an office in a cool coastal city may not have to work nearly as hard than one installed in a high desert location with bone dry air and relentless sun beating down on it all day. The calculator adjusts your baseline airflow up or down to account for the climate.

Having extreme west facing windows or intense afternoon sun will greatly increase the heat load. That’s not just battling the ambient temperature, that’s battling the thermal mass of glass and your walls. This results in a unit that might look good on paper but feels underpowered on a hot day. The sun load multiplier is there specifically to bridge the gap between how it should perform and how it really performs.

This is where most DIY’ers fall short. They get the correct size cooler then put it into a sealed space. An evaporative cooling are NOT a recirculation system. It pulls in outside air and has to expel the old air. If you don’t have sufficient window relief area (enough opening), the pressure within the room will build up and reduce airflow. The calculator specifies exactly how much relief area you should of have around your windows in square footage for your desired airflow. That opening needs to be unobstructed by screen(s) if possible or at least be made big enough to overcome the resistance. Treat it like an exhaust valve on your room. Too little, and the cooler will choke.

The other thing that makes this useful is as a sanity check, what’s my comfort level? That’s where air changes per hour come into play. For general living space, thirty is the sweet spot. Use twenty if you’re actualy going to sleep in there (since you’ll want it draft free and quiet). Forty if it’s a hot studio apartment with lots of cooking/electronics where you want to make sure it’s still breathable. The tool will show you those numbers and let you compare your air flow calculation to them, to see whether you’re over or undershooting. It’s not about nailing down the exact number but more about knowing the balance between cooling capacity, comfort, and noise.

The sizing’s a mix of intuition and science. I ran the numbers correctly, and then we had this huge west-facing wall of glass so it was still hot. Run the numbers and use them as a starting point but don’t treat them as the absolute truth. If your space poses special issues (extreme sun exposure, high ceilings) give yourself a little extra padding. Remember, we’re looking for more than cooling air; we’re working towards a system where fresh, dry air constantly replace the warm, stale stuff. Get the balance dialed in and suddenly that draft isn’t a sticky struggle, but rather a refreshing breath of air.

Evaporative Cooler Size Calculator

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