10.6 Air Conditioner Efficiency
10.6 Air Conditioner EfficiencyAir conditioners are rated by the number of British Thermal Units (BTU) of heat they can remove per hour. Another common rating term for air conditioning size is the "ton," which is 12,000 BTU per hour.
Each air conditioner has an energy-efficiency rating that lists how many BTUs per hour are removed or “pulled out” for each watt of power it draws.
- The efficiency rating for room conditioners is the Energy Efficiency Ratio, or EER.
- The efficiency rating for central air conditioners, is the Seasonal Energy Efficiency Ratio, or SEER.
These ratings are posted on an Energy Guide Label, which must be conspicuously attached to all new air conditioners. Energy Star-labeled appliances mean that they have high EER and SEER ratings.

Room Air Conditioners—EER
Energy Efficient Ratio (EER) measures how efficiently a room air conditioner will operate at a specific outdoor temperature. The higher the EER, the more efficient the system.
The EER can be calculated using this equation:
Remember that the EER energy-efficiency rating lists how many BTUs per hour are removed or “pulled out” for each watt of power it draws. Room air conditioners generally range from 5,500 BTU per hour to 14,000 BTU per hour.
New standards from the US Department of Energy (DOE) went into effect on January 1, 2023 which requires new AC units to have a minimum energy efficiency. Additionally, homeowners may be eligible for tax credits when purchasing highly efficient air conditioner upgrades.
Central Air Conditioners—SEER
Seasonal Energy Efficiency Ratio (SEER) measures how efficiently a central air conditioner will operate at a specific outdoor temperature. The higher the SEER, the more efficient the system.
The SEER can be calculated using this equation:
Again, the SEER energy-efficiency rating lists how many BTUs per hour are removed or “pulled out” for each watt of power it draws.
National minimum standards for central air conditioners require a SEER of 9.7 and 10.0, for single-package and split-systems, respectively. But you do not need to settle for the minimum standard—there is a wide selection of units with SEERs reaching nearly 17.
Before 1979, the SEERs of central air conditioners ranged from 4.5 to 8.0. Replacing a 1970s-era central air conditioner with a SEER of 6 with a new unit having a SEER of 12 will cut your air conditioning costs in half. Today's best air conditioners use 30% to 50% less energy to produce the same amount of cooling as air conditioners made in the mid 1970s. Even if your air conditioner is only 10 years old, you may save 20 to 40 percent of your cooling energy costs by replacing it with a newer, more efficient model.

In general, new air conditioners with higher EERs or SEERs have higher price tags. However, the higher initial cost of an energy-efficient model will be recovered several times during its lifespan. Some utility companies encourage the purchase of a more efficient air conditioner by offering incentives. Buy the most efficient air conditioner you can afford, especially if you use (or think you will use) an air conditioner frequently and/or if your electricity rates are high.
Example 1
Calculate the power consumption of 5000 BTUs/h room air conditioner with an Energy Efficiency Ratio (EER) of 8.
Solution: We know that
Given that the AC pulls out 5,000 BTUs per hour and its EER = 8, we have
Therefore, its wattage =
Example 2
Air Conditioner Efficiency. An old room air conditioner with an EER 6 was replaced by a new air conditioner with an EER of 10.0. The power consumption with the old air conditioner was 1000 W. Calculate the power consumption of the new air conditioner.
We have an old air conditioner with an EER of 6. EER is basically Energy Efficiency Ratio which is given by number of Btus the air conditioner is pulling out per hour divided by watts of power consumed.
And in this problem we are given the EER as 6 and we need to calculate the number of Btus it is capable of pulling out. We also know that it is consuming a thousand watts of power. So we need to calculate these Btus per hour that it is pulling out. So we can calculate the x, unknown, by multiplying thousand by 6 and we get six thousand Btus per hour.
The room size is not changing but we are just replacing the old air conditioner with the new one. The new EER is 10, the new air conditioner EER is 10 and it is still pulling 6000 Btus per hour out and the new one, how many watts of power does it consume?
To calculate the power, we have 6,000 Btu/hour load and we know the EER, which is 10, so dividing by this we get the power which is 600 watts.
What we are doing here is, by replacing the old air conditioner which used to consume 1,000 watts with this new air conditioner which has an EER of 10, we are reducing the power consumption to 600 watts.
Example 3
An old room air conditioner with an EER 6 was replaced by a new air conditioner with an EER of 13.0. The room requires 0.75 tons of air conditioning. Calculate the difference in power consumption between the old and new air conditioners.
The old AC unit has an EER of 6. And this was replaced by one with an EER of 13. The room basically is required to pull out 0.75 or three quarters of a ton. You should remember that each ton, one ton of refrigeration or air conditioning is equal to, basically pulling out 12,000 Btus every hour. So it is pulling out ¾ of a ton, which happens to be 0.75 times 12,000 Btus per hour. That is 9,000 Btus per hour.
So to pull out 9,000 Btus per hour with an air conditioner of EER equal to 6. So we are pulling out 9,000 Btus/hr and what is the wattage? Or watts? And wattage is equal to now, 9,000 divided by 6. This is 1,500 watts.
Ok. Now if we were to replace this with an EER of 13. Now it still has to pull out 9,000 Btus/hr and what would be the wattage? So watts equal to 9,000 Btus/hr divided by 13, that would be 900 watts.
So by replacing this air conditioner, which used to consume 1,500 watts, by an energy efficient air conditioner with an EER of 12, we are able to bring down the power consumption to 692 watts. So that is a savings of over 53% right there.
Example 4
What is the annual cost for operating a 3 ton central air conditioner with an SEER of 10? Assume that the AC operates 2,000 hours in a year and the cost of electricity is 19.2 cents per kWh.
Solution:
Recall that 1 ton = 12,000 BTUs/h. Therefore, the cooling load is 3 × 12,000 BTUs/h = 36,000 BTUs/h
Recall also that 1,000 W = 1 kW. Therefore, power consumption = 3.6 kW.
Energy = Power × Time of Usage
= 3.6 kW × 2,000 h/year = 7,200 kWh/year.
Annual Cost = Units of energy × price per unit
Example 5
Suppose you are comparing two air conditioners, both of which are expected to last for 10 years. The least efficient air conditioner draws 775 W of power. The most efficient one uses 600 Watts. Assuming that the air conditioner operates 2,400 hours annually and that the local energy costs 0.128 per kWh, how much money and energy can you save with the energy-efficient model?
| Category | Air conditioner 1 | Air conditioner 2 |
|---|---|---|
| Life | 10 years | 10 years |
| Power | 775 Watt | 600 Watt |
| Time | 2,400 hours | 2,400 hours |
Air Conditioner #1
Air Conditioner #2
| Time | Air conditioner 1 | Air conditioner 2 |
|---|---|---|
| In 10 years... | ||
| 10 year cost | $2380.80 | $1848.32 |
Electricity price is estimated at $0.128/kWh. Over the ten years you will pay $2,380.80 in electricity to run AC #1, while you would only pay $1,848.32 for AC #2. This assumes electricity prices stay the same for those ten years. You would save $532.48 over 10 years by purchasing unit #2.