Climate projections by scenario, 2030–2060 – Cities and FUAs in Greater Melbourne
Greater Melbourne: Climate projections by scenario, 2030–2060 – Cities and FUAs was 1.17 Degrees celsius in 2060. ▲ Rising
Climate projections by scenario, 2030–2060 – Cities and FUAs in Greater Melbourne, 2030–2060
Source: Organisation for Economic Co-operation and Development. Measured in Degrees celsius.
Analysis
In 2060, climate projections by scenario, 2030–2060 – cities and fuas in Greater Melbourne stood at 1.17 Degrees celsius. That is the highest value across all 31 years on record.
That represents a change of up 24.4% on the previous year and up 22.1% over ten years.
Over the whole period, climate projections by scenario, 2030–2060 – cities and fuas in Greater Melbourne peaked at 1.17 Degrees celsius in 2060 and was at its lowest, 0.6125 Degrees celsius, in 2039.
Greater Melbourne ranks 1262nd of 1364 regions on this measure, in the bottom quarter.
The long-run direction has been consistently rising across the 31 years of available data.
Climate projections by scenario, 2030–2060 – Cities and FUAs in Greater Melbourne, year by year
| Year | Degrees celsius | Change |
|---|---|---|
| 2030 | 0.8433 Degrees celsius | — |
| 2031 | 0.6215 Degrees celsius | -26.3% |
| 2032 | 0.6342 Degrees celsius | +2.0% |
| 2033 | 0.8338 Degrees celsius | +31.5% |
| 2034 | 0.8034 Degrees celsius | -3.6% |
| 2035 | 0.9643 Degrees celsius | +20.0% |
| 2036 | 0.9128 Degrees celsius | -5.3% |
| 2037 | 0.9187 Degrees celsius | +0.7% |
| 2038 | 0.7744 Degrees celsius | -15.7% |
| 2039 | 0.6125 Degrees celsius | -20.9% |
| 2040 | 0.7332 Degrees celsius | +19.7% |
| 2041 | 0.888 Degrees celsius | +21.1% |
| 2042 | 0.7685 Degrees celsius | -13.5% |
| 2043 | 0.8813 Degrees celsius | +14.7% |
| 2044 | 0.8256 Degrees celsius | -6.3% |
| 2045 | 0.9374 Degrees celsius | +13.5% |
| 2046 | 0.997 Degrees celsius | +6.4% |
| 2047 | 0.9343 Degrees celsius | -6.3% |
| 2048 | 0.9855 Degrees celsius | +5.5% |
| 2049 | 1.11 Degrees celsius | +12.6% |
| 2050 | 0.9553 Degrees celsius | -13.9% |
| 2051 | 1.08 Degrees celsius | +12.6% |
| 2052 | 0.8426 Degrees celsius | -21.7% |
| 2053 | 0.8725 Degrees celsius | +3.5% |
| 2054 | 0.963 Degrees celsius | +10.4% |
| 2055 | 0.9875 Degrees celsius | +2.5% |
| 2056 | 0.8696 Degrees celsius | -11.9% |
| 2057 | 0.8899 Degrees celsius | +2.3% |
| 2058 | 0.9641 Degrees celsius | +8.3% |
| 2059 | 0.938 Degrees celsius | -2.7% |
| 2060 | 1.17 Degrees celsius | +24.4% |
Averages by decade
| Decade | Average | Lowest | Highest | Years |
|---|---|---|---|---|
| 2030s | 0.7919 Degrees celsius | 0.6125 Degrees celsius | 0.9643 Degrees celsius | 10 |
| 2040s | 0.9061 Degrees celsius | 0.7332 Degrees celsius | 1.11 Degrees celsius | 10 |
| 2050s | 0.9358 Degrees celsius | 0.8426 Degrees celsius | 1.08 Degrees celsius | 10 |
| 2060s | 1.17 Degrees celsius | 1.17 Degrees celsius | 1.17 Degrees celsius | 1 |
More climate change data for Greater Melbourne
- Air temperature, hot days, tropical nights and icing days - Cities 14.7 Degrees celsius (2025)
- Air temperature, hot days, tropical nights and icing days - Cities 0.9193 Degrees celsius (2025)
- Climate projections by scenario, 2030–2060 – Cities and FUAs 16.09 Degrees celsius (2060)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions from 0.04 Tonnes of CO2-equivalent (2024)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions from 2.31 Tonnes of CO2-equivalent (2024)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions from 8.19 Tonnes of CO2-equivalent (2024)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions from 7.97 Tonnes of CO2-equivalent (2024)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions from power 0.92 Tonnes of CO2-equivalent (2024)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions from road 3.87 Tonnes of CO2-equivalent (2024)
- Greenhouse gas emissions - Cities and FUAs — GHG emissions total 19.79 Tonnes of CO2-equivalent (2024)
Frequently asked questions
- What is climate projections by scenario, 2030–2060 – cities and fuas in Greater Melbourne?
- Climate projections by scenario, 2030–2060 – cities and fuas in Greater Melbourne was 1.17 Degrees celsius in 2060, according to Organisation for Economic Co-operation and Development.
- What is the highest climate projections by scenario, 2030–2060 – cities and fuas recorded in Greater Melbourne?
- The highest recorded value was 1.17 Degrees celsius in 2060.
- What is the lowest climate projections by scenario, 2030–2060 – cities and fuas recorded in Greater Melbourne?
- The lowest recorded value was 0.6125 Degrees celsius in 2039.
- How does Greater Melbourne rank for climate projections by scenario, 2030–2060 – cities and fuas?
- Greater Melbourne ranks 1262nd out of 1364 regions with data for 2060.
- Is climate projections by scenario, 2030–2060 – cities and fuas rising or falling in Greater Melbourne?
- Over the last ten years it is up 22.1%. The long-run trend across the full record is rising.
- Where does this Greater Melbourne data come from?
- The figures come from Organisation for Economic Co-operation and Development, published as part of Climate projections by scenario, 2030–2060 – Cities and FUAs — Projected air temperature change compared to 1981-2010 average. Statizoid updates them automatically from the source API.
Download this data
CSV · JSON — 31 observations, free to reuse under OECD Terms and Conditions (attribution required).
About this data
This dataset provides sub-national indicators on 2030-2060 projections by scenario on air temperature, hot days, icing days, tropical nights, total precipitation and extreme precipitation days in FUAs and Cities. Data sources and methodology Projections are based on NASA NEX-GDDP CMIP6 data, which provides average air temperature projections at a 0.25° spatial resolution for different scenarios - Shared Socioeconomic Pathways (SSPs). Hot days refer to days during which the maximum temperature is higher than 35°C) Tropical nights refer to nights during which the minimum temperature is higher than 20°C. Icing days are defined as days during which the maximum temperature is lower than 0°C. Extreme precipitation days are defined as days during which the total precipitation is higher than 20 mm. SSPs are climate scenarios up to 2100 that model how socio‑economic factors may change over the next century. These scenarios are combined with Representative Concentration Pathways (RCPs), which outline different greenhouse gas (GHG) concentration levels and their radiative forcings. Radiative forcing quantifies how factors like GHGs, aerosols and solar changes affect Earth’s atmospheric energy balance. This dataset covers highlights four scenarios: SSP1-2.6: Sustainability. 2.6 watts per square metre (W/m2) radiative forcing, 1.8°C warming by 2100. SSP2-4.5: Middle-of-the-road. 4.5 W/m2 radiative forcing, 2.7°C warming by 2100. SSP3-7.0: Regional rivalry. 7.0 W/m2 radiative forcing, 3.6°C warming by 2100. SSP5-8.5: Fossil fuel development. 8.5 W/m2 radiative forcing, 4.4°C warming by 2100. 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 definition identifies 1 285 FUAs and 1 402 cities in all OECD member countries except Costa Rica and three accession countries. Cite this dataset OECD Regions, cities and local areas database (Climate projections by scenario, 2030-2060 – 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