Residential Energy Use

Society
Energy
How much electricity and natural gas U.S. homes use for summer cooling and winter heating, alongside cooling and heating degree days.

This indicator examines trends related to home air conditioning and heating by tracking the amount of electricity used by U.S. homes in the summer and energy used in the winter.

Figures

Figure 1. Residential Summer Electricity Use per Capita and Summer Cooling Degree Days in the United States, 1973–2024

Data source: EIA, 2024; BEA, 2024; NOAA, 2024
Web update: December 2024

Figure 1

This graph shows the amount of electricity used by the average American during the summer months (June, July, and August) of each year from 1973 to 2024. The top panel shows average summer electricity use per capita, representing all 50 states plus D.C. For reference, the bottom panel shows the average number of cooling degree days for the same months across the contiguous 48 states plus D.C.

Show the data behind this figure
year Summer residential electricity use per capita Summer cooling degree days
1973 735.0 843
1974 733.0 753
1975 731.2 793
1976 715.6 730
1977 784.1 864
1978 792.1 833
1979 768.1 748
1980 859.7 920
1981 853.8 867
1982 816.6 752
1983 863.7 891
1984 865.9 837
1985 863.7 789
1986 935.2 841
1987 992.0 878
1988 1020.6 921
1989 985.3 795
1990 1011.6 848
1991 1057.7 871
1992 964.7 702
1993 1074.6 868
1994 1079.1 860
1995 1136.5 909
1996 1121.5 832
1997 1098.1 783
1998 1231.3 935
1999 1227.3 900
2000 1229.0 832
2001 1224.1 872
2002 1302.4 938
2003 1260.3 868
2004 1254.6 764
2005 1377.9 966
2006 1392.3 959
2007 1347.0 913
2008 1322.8 886
2009 1269.3 826
2010 1407.5 1019
2011 1390.7 1024
2012 1351.4 969
2013 1260.8 879
2014 1222.8 840
2015 1275.1 909
2016 1342.9 1018
2017 1267.6 896
2018 1328.7 996
2019 1282.5 934
2020 1379.0 998
2021 1337.1 975
2022 1381.4 1016
2023 1319.8 939
2024 1377.6 1013
Figure 2

Figure 2. Residential Winter Natural Gas Use per Capita and Winter Heating Degree Days in the United States, 1974–2024

Data source: EIA, 2024; BEA, 2024; NOAA, 2024
Web update: December 2024

Figure 3

This graph shows the amount of natural gas used by the average American during the winter months (December, January, and February) of each year from 1974 to 2024 (winter “1974” covers December 1973 through February 1974, and so on). The top panel shows average winter natural gas use per capita, representing all 50 states plus D.C. For reference, the bottom panel shows the average number of heating degree days for the same months across the contiguous 48 states plus D.C.

Show the data behind this figure
year Winter residential natural gas use per capita Winter heating degree days
1974 9840.1 2387
1975 9748.4 2363
1976 10086.8 2381
1977 11376.1 2847
1978 10407.0 2830
1979 10675.0 2857
1980 9223.9 2448
1981 9680.8 2476
1982 9742.9 2649
1983 8904.1 2267
1984 9051.8 2605
1985 9035.6 2544
1986 8852.2 2494
1987 8389.6 2400
1988 9007.1 2518
1989 8628.7 2411
1990 8934.1 2409
1991 8485.0 2314
1992 8382.1 2205
1993 8950.6 2468
1994 9538.5 2597
1995 8327.6 2272
1996 9402.5 2496
1997 8831.7 2315
1998 8135.4 2162
1999 7977.1 2170
2000 8174.5 2229
2001 9408.4 2588
2002 7453.0 2126
2003 8989.9 2522
2004 8761.9 2483
2005 8064.3 2292
2006 7351.6 2246
2007 7742.9 2346
2008 7975.2 2387
2009 8090.5 2445
2010 8071.4 2590
2011 8306.0 2578
2012 6854.1 2103
2013 7254.5 2250
2014 8598.6 2590
2015 7966.3 2461
2016 6676.5 2082
2017 6764.8 2100
2018 7601.7 2328
2019 7667.6 2321
2020 6983.7 2116
2021 7742.8 2359
2022 7263.9 2255
2023 6970.3 2133
2024 6622.9 2054
Figure 4

This figure is not part of EPA’s published indicator page. It is EPA’s own supplementary Figure TD-1 from the technical documentation, included here because the source workbook has the data and it shows the relationship behind Figure 1’s summer electricity series. See the residential-energy-use repository’s data-raw/PROVENANCE.md for details.

Figure TD-1. Comparison of Residential Electricity Use per Capita and Cooling Degree Days (June, July, August), 1973–2024

Data source: EIA, 2024; BEA, 2024; NOAA, 2024
Web update: December 2024

Figure 5

Each point is one summer month (June, July, or August) from 1973 to 2024, plotting that month’s electricity use per capita against its cooling degree days. The dashed line is a simple linear fit, shown to illustrate the relationship, not as a prediction.

Show the data behind this figure
date Summer residential electricity use per capita Summer cooling degree days
1973-06-01 212.3 231
1973-07-01 255.3 316
1973-08-01 267.4 296
1974-06-01 218.0 176
1974-07-01 250.2 314
1974-08-01 264.8 263
1975-06-01 213.2 203
1975-07-01 251.4 298
1975-08-01 266.6 292
1976-06-01 203.6 203
1976-07-01 247.7 284
1976-08-01 264.3 243
1977-06-01 221.4 217
1977-07-01 278.5 350
1977-08-01 284.2 297
1978-06-01 228.5 220
1978-07-01 277.3 315
1978-08-01 286.4 298
1979-06-01 220.3 187
1979-07-01 260.3 296
1979-08-01 287.5 265
1980-06-01 229.6 203
1980-07-01 301.1 376
1980-08-01 328.9 341
1981-06-01 244.3 257
1981-07-01 304.2 334
1981-08-01 305.2 276
1982-06-01 233.0 170
1982-07-01 282.9 316
1982-08-01 300.7 266
1983-06-01 231.1 190
1983-07-01 298.5 346
1983-08-01 334.1 355
1984-06-01 254.6 231
1984-07-01 301.3 296
1984-08-01 310.0 310
1985-06-01 255.4 201
1985-07-01 298.6 316
1985-08-01 309.8 272
1986-06-01 266.5 234
1986-07-01 334.4 341
1986-08-01 334.3 266
1987-06-01 284.0 243
1987-07-01 345.1 331
1987-08-01 363.0 304
1988-06-01 281.0 218
1988-07-01 355.2 358
1988-08-01 384.3 345
1989-06-01 290.4 210
1989-07-01 346.5 317
1989-08-01 348.4 268
1990-06-01 295.5 237
1990-07-01 362.9 318
1990-08-01 353.2 293
1991-06-01 319.4 232
1991-07-01 372.6 336
1991-08-01 365.8 303
1992-06-01 276.1 175
1992-07-01 345.0 292
1992-08-01 343.6 235
1993-06-01 294.4 208
1993-07-01 388.1 345
1993-08-01 392.1 315
1994-06-01 319.4 264
1994-07-01 393.1 328
1994-08-01 366.6 268
1995-06-01 316.1 201
1995-07-01 390.0 348
1995-08-01 430.4 360
1996-06-01 337.4 230
1996-07-01 393.3 311
1996-08-01 390.8 291
1997-06-01 306.4 190
1997-07-01 400.4 318
1997-08-01 391.3 275
1998-06-01 356.7 235
1998-07-01 439.7 358
1998-08-01 434.9 342
1999-06-01 343.6 220
1999-07-01 440.6 368
1999-08-01 443.1 312
2000-06-01 368.4 227
2000-07-01 422.9 295
2000-08-01 437.7 310
2001-06-01 348.7 226
2001-07-01 423.0 309
2001-08-01 452.4 337
2002-06-01 372.4 243
2002-07-01 464.1 367
2002-08-01 465.9 328
2003-06-01 348.7 189
2003-07-01 449.5 338
2003-08-01 462.1 341
2004-06-01 383.3 209
2004-07-01 440.8 301
2004-08-01 430.6 254
2005-06-01 394.2 247
2005-07-01 488.0 370
2005-08-01 495.7 349
2006-06-01 397.8 238
2006-07-01 492.9 386
2006-08-01 501.6 335
2007-06-01 389.4 235
2007-07-01 460.7 312
2007-08-01 496.9 366
2008-06-01 398.7 265
2008-07-01 470.0 335
2008-08-01 454.1 286
2009-06-01 372.5 226
2009-07-01 447.4 292
2009-08-01 449.4 308
2010-06-01 411.7 286
2010-07-01 499.1 378
2010-08-01 496.7 355
2011-06-01 403.6 263
2011-07-01 495.3 407
2011-08-01 491.8 354
2012-06-01 390.8 235
2012-07-01 491.0 403
2012-08-01 469.6 331
2013-06-01 372.3 247
2013-07-01 453.6 341
2013-08-01 435.0 291
2014-06-01 369.6 244
2014-07-01 428.7 303
2014-08-01 424.6 293
2015-06-01 373.7 256
2015-07-01 453.3 337
2015-08-01 448.2 316
2016-06-01 385.9 271
2016-07-01 475.5 385
2016-08-01 481.5 362
2017-06-01 375.0 241
2017-07-01 458.5 363
2017-08-01 434.1 292
2018-06-01 395.2 269
2018-07-01 467.0 376
2018-08-01 466.5 351
2019-06-01 363.6 226
2019-07-01 465.1 373
2019-08-01 453.8 335
2020-06-01 396.5 245
2020-07-01 503.6 397
2020-08-01 478.9 356
2021-06-01 397.8 273
2021-07-01 464.8 346
2021-08-01 474.6 356
2022-06-01 408.8 267
2022-07-01 492.4 392
2022-08-01 480.2 357
2023-06-01 362.1 206
2023-07-01 476.4 387
2023-08-01 481.4 346
2024-06-01 412.9 288
2024-07-01 491.3 387
2024-08-01 473.5 338
Figure 6

This figure is not part of EPA’s published indicator page. It is EPA’s own supplementary Figure TD-2 from the technical documentation, included here because the source workbook has the data and it shows the relationship behind Figure 2’s winter natural gas series. See the residential-energy-use repository’s data-raw/PROVENANCE.md for details.

Figure TD-2. Comparison of Residential Natural Gas Use per Capita and Heating Degree Days (December, January, February), 1974–2024

Data source: EIA, 2024; BEA, 2024; NOAA, 2024
Web update: December 2024

Figure 7

Each point is one winter month (December, January, or February) from winter 1974 to winter 2024, plotting that month’s natural gas use per capita against its heating degree days. The dashed line is a simple linear fit, shown to illustrate the relationship, not as a prediction.

Show the data behind this figure
date Winter residential natural gas use per capita Winter heating degree days
1973-12-01 2774.6 802
1974-01-01 3835.4 837
1974-02-01 3230.1 748
1974-12-01 2852.3 804
1975-01-01 3491.7 821
1975-02-01 3404.5 738
1975-12-01 2800.7 808
1976-01-01 3882.8 965
1976-02-01 3403.3 608
1976-12-01 3350.9 933
1977-01-01 4272.5 1172
1977-02-01 3752.7 742
1977-12-01 2943.4 837
1978-01-01 3684.9 1051
1978-02-01 3778.6 942
1978-12-01 2822.6 852
1979-01-01 3872.3 1075
1979-02-01 3980.1 930
1979-12-01 2623.6 753
1980-01-01 3186.9 878
1980-02-01 3413.4 817
1980-12-01 2822.7 822
1981-01-01 3628.8 969
1981-02-01 3229.4 685
1981-12-01 2600.9 840
1982-01-01 3745.1 1047
1982-02-01 3396.8 762
1982-12-01 2388.1 699
1983-01-01 3640.2 868
1983-02-01 2875.8 700
1983-12-01 2316.8 978
1984-01-01 3764.2 984
1984-02-01 2970.8 643
1984-12-01 2383.9 704
1985-01-01 3128.9 1044
1985-02-01 3522.8 796
1985-12-01 2700.2 939
1986-01-01 3298.0 842
1986-02-01 2853.9 713
1986-12-01 2478.6 789
1987-01-01 3065.2 909
1987-02-01 2845.8 702
1987-12-01 2426.1 770
1988-01-01 3491.3 989
1988-02-01 3089.7 759
1988-12-01 2563.9 820
1989-01-01 3049.8 778
1989-02-01 3015.0 813
1989-12-01 3181.9 1046
1990-01-01 3170.3 720
1990-02-01 2581.8 643
1990-12-01 2503.5 790
1991-01-01 3348.4 903
1991-02-01 2633.1 621
1991-12-01 2581.3 741
1992-01-01 3077.3 837
1992-02-01 2723.6 627
1992-12-01 2773.9 817
1993-01-01 3210.5 845
1993-02-01 2966.2 806
1993-12-01 2693.1 814
1994-01-01 3635.3 995
1994-02-01 3210.1 788
1994-12-01 2408.9 718
1995-01-01 3075.7 831
1995-02-01 2843.0 723
1995-12-01 2827.3 853
1996-01-01 3480.4 922
1996-02-01 3094.9 721
1996-12-01 2719.8 750
1997-01-01 3324.1 907
1997-02-01 2787.8 658
1997-12-01 2663.1 795
1998-01-01 2956.0 749
1998-02-01 2516.2 618
1998-12-01 2218.2 712
1999-01-01 3278.8 830
1999-02-01 2480.0 628
1999-12-01 2348.6 748
2000-01-01 3069.9 859
2000-02-01 2755.9 622
2000-12-01 3222.4 974
2001-01-01 3439.5 912
2001-02-01 2746.6 702
2001-12-01 2125.5 692
2002-01-01 2843.1 773
2002-02-01 2484.4 661
2002-12-01 2668.0 805
2003-01-01 3268.6 928
2003-02-01 3053.2 789
2003-12-01 2530.6 781
2004-01-01 3297.1 948
2004-02-01 2934.2 754
2004-12-01 2463.3 791
2005-01-01 3027.3 839
2005-02-01 2573.7 662
2005-12-01 2594.0 853
2006-01-01 2398.8 679
2006-02-01 2358.7 714
2006-12-01 2077.4 686
2007-01-01 2673.4 833
2007-02-01 2992.1 827
2007-12-01 2365.4 790
2008-01-01 2913.6 878
2008-02-01 2696.2 719
2008-12-01 2523.9 818
2009-01-01 3096.8 940
2009-02-01 2469.8 687
2009-12-01 2477.5 867
2010-01-01 3021.0 920
2010-02-01 2572.9 803
2010-12-01 2723.3 895
2011-01-01 3116.2 947
2011-02-01 2466.5 736
2011-12-01 2211.6 721
2012-01-01 2532.8 757
2012-02-01 2109.7 625
2012-12-01 2122.2 695
2013-01-01 2760.1 825
2013-02-01 2372.2 730
2013-12-01 2665.0 827
2014-01-01 3256.9 968
2014-02-01 2676.8 795
2014-12-01 2234.6 705
2015-01-01 2922.0 890
2015-02-01 2809.7 866
2015-12-01 1827.6 581
2016-01-01 2716.9 872
2016-02-01 2131.9 629
2016-12-01 2438.0 784
2017-01-01 2549.6 768
2017-02-01 1777.2 548
2017-12-01 2506.9 801
2018-01-01 2992.0 900
2018-02-01 2102.8 627
2018-12-01 2322.3 735
2019-01-01 2892.3 863
2019-02-01 2452.9 723
2019-12-01 2271.4 719
2020-01-01 2488.8 742
2020-02-01 2223.5 655
2020-12-01 2408.1 754
2021-01-01 2696.5 808
2021-02-01 2638.2 797
2021-12-01 2010.4 619
2022-01-01 2877.8 920
2022-02-01 2375.6 716
2022-12-01 2497.0 786
2023-01-01 2411.2 720
2023-02-01 2062.2 627
2023-12-01 1968.9 627
2024-01-01 2732.8 847
2024-02-01 1921.2 580
Figure 8

Key Points

  • The amount of electricity used by the average American at home during the summer has nearly doubled since 1973, but it appears to have leveled off somewhat in recent years (see Figure 1).

  • Year-to-year fluctuations in electricity use generally follow changes in cooling degree days (see Figure 1). Total cooling degree days have also increased since 1973, though they have not increased as dramatically as electricity use.

  • The amount of natural gas used by the average American at home during the winter has decreased since 1974 (see Figure 2).

  • Year-to-year fluctuations in natural gas use appear to mirror changes in heating degree days (see Figure 2). Total heating degree days have also decreased since 1974, though they have not decreased as dramatically as natural gas use.

Background

Hot weather can be uncomfortable, and in extreme cases dangerous (see the Heat Waves indicator). One way people respond to hot weather is by using air conditioning. Air conditioning is the primary way to cool a home and has become more widely used over time; as of 2020, it accounted for 19 percent of the electricity that the average American household uses every year.1 Conversely, cold weather requires people to use energy to heat their homes, using electricity and fuels such as natural gas, propane, and oil.

As climate change contributes to an increase in average temperatures and unusually hot days, Americans are expected to use more energy—mostly electricity for air conditioning.2 As a result, people will likely have to spend more money on electricity for cooling.2 Increased use of air conditioning could also lead to more greenhouse gas emissions and further climate change, because more electricity must be generated to meet this increased demand. As of 2023, about three-fifths of the electricity in the United States was generated by burning fossil fuels such as coal or natural gas.3 Burning fossil fuels for electricity is one of the largest sources of heat-trapping greenhouse gas emissions in the United States (see the U.S. Greenhouse Gas Emissions indicator).

The opposite effect could take place with winter heating. As temperatures rise, Americans are expected to use less fuel energy for heating their homes.2 Overall, though, summer increases in energy use are expected to outweigh any reduction due to lower heating needs in the winter.2 Improvements in energy efficiency, particularly for electricity-based heating and cooling, can influence residential consumption and demand for energy over time.

About the Indicator

This indicator measures changes in residential seasonal energy use in the United States. It has two components:

First, it looks at the amount of electricity that U.S. homes use during the summer (defined here as June, July, and August), when air conditioning is typically needed most.

Next, it looks at the amount of natural gas that U.S. homes use during the winter (defined here as December, January, and February), when heating is typically needed most. Although a variety of heating fuels are used, natural gas is the most representative for a national analysis because it accounts for about 72 percent of the energy used for home heating in the United States.1

The data come from the U.S. Energy Information Administration (EIA), which collects comprehensive information about power generation, delivery, and sales from electric power utilities across the country. EIA has collected these data consistently since 1973. For this indicator, EPA divided total residential electricity sales for the summer months by the corresponding total U.S. population to calculate summer electricity use per capita, which Figure 1 shows in kilowatt-hours per person. EPA used a similar method with winter residential natural gas sales, which Figure 2 shows in cubic feet per person.

For reference, Figure 1 also shows summer cooling degree days for each year, while Figure 2 shows winter heating degree days for each year (see the Heating and Cooling Degree Days indicator). In general, more cooling degree days and fewer heating degree days means a combination of more warm days and warmer temperatures on those days. Residential electricity and natural gas use cover all 50 states plus Washington, D.C., while cooling and heating degree days are shown for the contiguous 48 states plus D.C., as they are not routinely calculated for Alaska and Hawaii.

About the Data

Indicator Notes

This indicator is based on residential retail electricity and natural gas sales. In the case of electricity, sales are not exactly the same as total residential electricity use, because sales data do not count electricity that people generate and consume onsite—for example, using rooftop solar panels. For context, residential solar generated an estimated 38,900 gigawatt-hours of electricity in 2022, which translates to 2.6 percent of total residential retail sales.7 As more people produce their own power and buy less electricity from a utility, sales data could increasingly underestimate the actual amount of electricity used. However, retail sales data are still the best available approximation for energy use nationwide.

Outdoor air temperature is not the only weather-related factor that influences energy use (humidity and dew point also matter, for example), but it is still a major driver of the amount of electricity and natural gas people use in their homes. That said, rising temperatures are not the only reason why people might use more electricity in the summer and less natural gas in the winter.

One possible factor affecting electricity and natural gas use is where people live. Over the past several decades, the fastest-growing parts of the United States have been in the South and West, which means a growing share of the U.S. population lives in warmer places. The “cooling degree days” line in Figure 1 and the “heating degree days” line in Figure 2 adjust for where people lived as of the 2020 census but do not adjust for changes in population distribution over time.

Other factors include characteristics of people’s homes and the air conditioning and heating equipment they use. As of 2020, 89 percent of U.S. homes use some type of air conditioning, and 67 percent have central air conditioning installed.1 These numbers have increased over time, as has the size of the average American home, which means more space to heat and cool. Conversely, homes have become more energy efficient over time (for example, through better insulation), and air conditioning and heating equipment has also become more efficient.

Electricity and natural gas use could also reflect utility prices (when rates are higher, people may choose to reduce their use) and the amount of electricity and natural gas that Americans use for other needs. Other considerations include whether new homes rely on electricity or gas for cooking, water heating, and other activities, and shifts towards the use of innovative electronic appliances and devices over time.

Even with all these factors at work, many studies agree that rising temperatures can and will lead to increased use of electricity, as well as reduced use of heating fuels in winter.2

Data Sources

The data for this indicator were provided by EIA, which maintains a large collection of information about how the United States produces and uses electricity and other forms of energy. EIA’s energy sales data can be found online at: www.eia.gov/electricity and www.eia.gov/naturalgas. EPA developed this indicator using two additional sources: population data from the U.S. Bureau of Economic Analysis and cooling and heating degree days from the National Oceanic and Atmospheric Administration.

Statistical/Trend Analysis

To test for the presence of long-term national-level changes, the residential summer electricity use per capita and residential winter natural gas use per capita data series in Figures 1 and 2, respectively, were analyzed with an ordinary least squares linear regression of annual data points. For electricity, this results in a trend of +13.9 kilowatt-hours per year. This trend is statistically significant (p < 0.001). For natural gas, this results in a trend of -61.7 cubic feet per year. This trend, too, is statistically significant (p < 0.001).

EPA has also tested these trends using a Sen’s slope regression, which is a non-parametric approach that finds the median of all possible pairwise slopes in a temporal data set (Sen, 1968; Theil, 1950). The results are similar: +14.4 kilowatt-hours per year for summer electricity use and -59.7 cubic feet per year for winter natural gas use. Both results are statistically significant, with Mann-Kendall p-values < 0.001.

For reference, the ordinary least squares linear trend in summer CDD is also positive and significant: +3.7 degree days per year (p < 0.001). The trend in winter HDD is negative and significant: -6.9 degree days per year (p < 0.001).

Previous research studies (e.g., Alipour et al., 2019; Mukherjee et al., 2019; Nateghi & Mukherjee, 2017) have shown that linear models may not fully capture the complex relationships between energy and climate. EPA recognizes this limitation and notes that ordinary least-squares and Sen’s slope linear regression have been used here for first-order screening purposes only.

Technical Documentation

References

  1. EIA (U.S. Energy Information Administration). (2024). Residential Energy Consumption Survey (RECS). Retrieved December 11, 2024, from www.eia.gov/consumption/residential/index.php
  2. Zamuda, C. D., Bilello, D. E., Carmack, J., Davis, X. J., Efroymson, R. A., Goff, K. M., Hong, T., Karimjee, A., Loughlin, D. H., Upchurch, S., & Voisin, N. (2023). Chapter 5: Energy supply, delivery, and demand. In USGCRP (U.S. Global Change Research Program), Fifth National Climate Assessment. https://doi.org/10.7930/NCA5.2023.CH5
  3. EIA (U.S. Energy Information Administration). (2024). Frequently asked questions (FAQs): What is U.S. electricity generation by energy source? [Data derived from Electric Power Monthly and Electric Power Annual]. www.eia.gov/tools/faqs/faq.php?id=427&t=3
  4. EIA (U.S. Energy Information Administration). (2024). Monthly Energy Review. Retrieved December 5, 2024, from www.eia.gov/totalenergy/data/monthly
  5. BEA (U.S. Bureau of Economic Analysis). (2024). Population (POPTHM). FRED, Federal Reserve Bank of St. Louis. Retrieved December 5, 2024, from https://fred.stlouisfed.org/series/POPTHM
  6. NOAA (National Oceanic and Atmospheric Administration). (2024). National Centers for Environmental Information. Retrieved December 5, 2024, from www.ncei.noaa.gov
  7. EIA (U.S. Energy Information Administration). (2023). Annual energy outlook 2023. www.eia.gov/outlooks/aeo

Text on this page is EPA’s own published wording (a U.S. Government work, not subject to domestic copyright), extracted from EPA’s source document and verified paragraph by paragraph against the published page. Data, chart code, and the full extraction pipeline are maintained in the residential-energy-use repository, which this page reads its data from directly.

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