Cooling and heating degree days - Cities and FUAs — Change in cooling in Sevilla

Sevilla: Cooling and heating degree days - Cities and FUAs — Change in cooling was 215.01 Degree days in 2025. ◆ Volatile

Latest (2025)
215.01 Degree days
Change on year
up 252.7%
Rank
42nd
of 1314 regions
All-time high
312.93 Degree days
in 2017
All-time low
-289.76 Degree days
in 1972
Years of data
76
1950–2025

Cooling and heating degree days - Cities and FUAs — Change in cooling in Sevilla, 1950–2025

-2000200400195019872025

Source: Organisation for Economic Co-operation and Development. Measured in Degree days.

Analysis

Sevilla recorded 215.01 Degree days for cooling and heating degree days - cities and fuas — change in cooling in 2025.

Compared with earlier readings it is up 252.7% on the previous year and up 7.4% over ten years.

Over the whole period, cooling and heating degree days - cities and fuas — change in cooling in Sevilla peaked at 312.93 Degree days in 2017 and was at its lowest, -289.76 Degree days, in 1972.

That places Sevilla 42nd out of 1314 regions with data for 2025, putting it in the top 10%.

The series is highly variable year to year, so single readings are best treated with caution.

Cooling and heating degree days - Cities and FUAs — Change in cooling in Sevilla, year by year

Annual values for Cooling and heating degree days - Cities and FUAs — Change in cooling degree days from 1981–2010 period to 2020–24 period in Sevilla, 1950 to 2025.
Year Degree days Change
1950 79.76 Degree days
1951 -42.54 Degree days -153.3%
1952 -122.47 Degree days +187.9%
1953 77.68 Degree days -163.4%
1954 80.04 Degree days +3.0%
1955 88.62 Degree days +10.7%
1956 -129.26 Degree days -245.9%
1957 5.31 Degree days -104.1%
1958 6.75 Degree days +27.2%
1959 -122.47 Degree days -1913.2%
1960 -51.82 Degree days -57.7%
1961 34.46 Degree days -166.5%
1962 6.74 Degree days -80.4%
1963 -95.15 Degree days -1512.1%
1964 86.76 Degree days -191.2%
1965 -35.41 Degree days -140.8%
1966 -86.39 Degree days +144.0%
1967 -96.34 Degree days +11.5%
1968 -50.33 Degree days -47.8%
1969 -162.63 Degree days +223.1%
1970 -54.36 Degree days -66.6%
1971 -183.34 Degree days +237.3%
1972 -289.76 Degree days +58.0%
1973 -109.39 Degree days -62.2%
1974 -69.69 Degree days -36.3%
1975 -172.93 Degree days +148.1%
1976 -178.98 Degree days +3.5%
1977 -228.67 Degree days +27.8%
1978 -165.26 Degree days -27.7%
1979 -126.41 Degree days -23.5%
1980 -9.98 Degree days -92.1%
1981 25.05 Degree days -350.9%
1982 -66.51 Degree days -365.5%
1983 -36.79 Degree days -44.7%
1984 -107.14 Degree days +191.2%
1985 42.39 Degree days -139.6%
1986 -33.66 Degree days -179.4%
1987 -38.72 Degree days +15.0%
1988 -32.19 Degree days -16.9%
1989 54.04 Degree days -267.9%
1990 3.41 Degree days -93.7%
1991 8.27 Degree days +142.5%
1992 -58.26 Degree days -804.5%
1993 -163.23 Degree days +180.2%
1994 -5.25 Degree days -96.8%
1995 46.62 Degree days -987.5%
1996 -98.34 Degree days -311.0%
1997 -109.47 Degree days +11.3%
1998 -21.92 Degree days -80.0%
1999 -15.48 Degree days -29.4%
2000 69.51 Degree days -549.0%
2001 22.6 Degree days -67.5%
2002 -94.23 Degree days -517.0%
2003 107.4 Degree days -214.0%
2004 75.57 Degree days -29.6%
2005 139.63 Degree days +84.8%
2006 109.51 Degree days -21.6%
2007 -66.53 Degree days -160.8%
2008 -38.37 Degree days -42.3%
2009 187.85 Degree days -589.6%
2010 94.26 Degree days -49.8%
2011 111.39 Degree days +18.2%
2012 168.12 Degree days +50.9%
2013 60.12 Degree days -64.2%
2014 10.91 Degree days -81.8%
2015 200.22 Degree days +1734.6%
2016 196.08 Degree days -2.1%
2017 312.93 Degree days +59.6%
2018 39.58 Degree days -87.4%
2019 111.21 Degree days +181.0%
2020 124.04 Degree days +11.5%
2021 27.11 Degree days -78.1%
2022 176.72 Degree days +551.7%
2023 232 Degree days +31.3%
2024 60.96 Degree days -73.7%
2025 215.01 Degree days +252.7%

Averages by decade

DecadeAverage LowestHighest Years
1950s -7.86 Degree days -129.26 Degree days 88.62 Degree days 10
1960s -45.01 Degree days -162.63 Degree days 86.76 Degree days 10
1970s -157.88 Degree days -289.76 Degree days -54.36 Degree days 10
1980s -20.35 Degree days -107.14 Degree days 54.04 Degree days 10
1990s -41.37 Degree days -163.23 Degree days 46.62 Degree days 10
2000s 51.29 Degree days -94.23 Degree days 187.85 Degree days 10
2010s 130.48 Degree days 10.91 Degree days 312.93 Degree days 10
2020s 139.31 Degree days 27.11 Degree days 232 Degree days 6

More reference data data for Sevilla

All data for Sevilla →

Frequently asked questions

What is cooling and heating degree days - cities and fuas — change in cooling in Sevilla?
Cooling and heating degree days - cities and fuas — change in cooling in Sevilla was 215.01 Degree days in 2025, according to Organisation for Economic Co-operation and Development.
What is the highest cooling and heating degree days - cities and fuas — change in cooling recorded in Sevilla?
The highest recorded value was 312.93 Degree days in 2017.
What is the lowest cooling and heating degree days - cities and fuas — change in cooling recorded in Sevilla?
The lowest recorded value was -289.76 Degree days in 1972.
How does Sevilla rank for cooling and heating degree days - cities and fuas — change in cooling?
Sevilla ranks 42nd out of 1314 regions with data for 2025.
Is cooling and heating degree days - cities and fuas — change in cooling rising or falling in Sevilla?
Over the last ten years it is up 7.4%. The long-run trend across the full record is volatile.
Where does this Sevilla data come from?
The figures come from Organisation for Economic Co-operation and Development, published as part of Cooling and heating degree days - Cities and FUAs — Change in cooling degree days from 1981–2010 period to 2020–24 period. Statizoid updates them automatically from the source API.

Download this data

CSV · JSON — 76 observations, free to reuse under OECD Terms and Conditions (attribution required).

Share, cite or embed this page

Cite this page

Cooling and heating degree days - Cities and FUAs — Change in cooling in Sevilla. Statizoid, drawing on Organisation for Economic Co-operation and Development. Retrieved 22 August 2026, from https://reference.statizoid.com/stat/cooling-and-heating-degree-days-cities-and-fuas-change-in-cooling-degree-days-from-1981/sevilla/

Embed or link this data

Paste this into a page to link back to these figures. The data itself is free to reuse under OECD Terms and Conditions (attribution required); please keep the attribution.

<a href="https://reference.statizoid.com/stat/cooling-and-heating-degree-days-cities-and-fuas-change-in-cooling-degree-days-from-1981/sevilla/">Cooling and heating degree days - Cities and FUAs — Change in cooling in Sevilla</a> — Statizoid

About this data

Indicator
Cooling and heating degree days - Cities and FUAs — Change in cooling degree days from 1981–2010 period to 2020–24 period
Unit
Degree days
Source
Organisation for Economic Co-operation and Development
Licence
OECD Terms and Conditions (attribution required)
Coverage
1,325 places, 100,700 data points, 1950–2025
Last refreshed

This dataset provides indicators of Cooling and Heating Degree Days (CDDs and HDDs) for FUAs and cities. CDDs and HDDs are measurements used to estimate energy usage based on outdoor temperature. CDD measures the demand for cooling, while HDD measures the demand for heating, both calculated relative to a baseline temperature. Data sources and methodology The indicators use 0.1-degree resolution grids from the ERA5-Land dataset. ERA5-Land is used as it provides harmonised, globally consistent coverage at fine spatial resolution (0.1 degree), enabling the production of comparable subnational indicators also where national meteorological data are not available at the required scale. Annual CDDs are the sum over a year of the differences between the daily mean outdoor air temperature and the threshold temperature when the outdoor temperature is above the threshold temperature. HDDs are the sum over a year of the differences between the threshold temperature and the daily mean outdoor air temperature when the outdoor temperature is below the threshold temperature. Threshold temperatures are set to 22°C for CDDs and 15°C for HDDs. These estimates may differ from official subnational climate statistics due to differences in methodological approaches, such as the use of reanalysis based top down modelling versus in situ observations, along with variations in input data sources, spatial resolution, and the models and algorithms used to generate temperature estimates. Defining FUAs and cities The OECD, in cooperation with the EU, has developed a harmonised definition of functional urban areas (FUAs) to capture the economic and functional reach of cities based on daily commuting patterns (OECD, 2012). FUAs consist of: A city – defined by urban centres in the degree of urbanisation, adapted to the closest local administrative units to define a city. A commuting zone – including all local areas where at least 15% of employed residents work in the city. The delineation process includes: Assigning municipalities surrounded by a single FUA to that FUA. Excluding non-contiguous municipalities. The correspondence table between SAUs and FUAs/cities is available in parquet and csv format. The definition identifies 1 272 FUAs and 1 269 cities in all OECD member countries except Costa Rica and three accession countries. Cite this dataset OECD Regions, cities and local areas database (Cooling and heating degree days - Cities and FUAs), http://oe.cd/geostats Further information OECD Local Data Portal OECD Regions and Cities at a Glance For questions and/or comments, please email CitiesStat@oecd.org