🇱🇦 Lao People's Democratic Republic's Sources of CH₄ Emissions

Lao People's Democratic Republic's Sources of CH4 Emissions

Key Insights

2024 CH4 Emissions Profile

In 2024, Lao People's Democratic Republic emitted around 11.4 megatonnes CO2e of methane from these sources. Livestock was largest at around 6.4 megatonnes CO2e, or 56%, followed by crop production at 2.2 megatonnes CO2e (20%) and fugitive emissions at 1.9 megatonnes CO2e (17%). Waste and fuel combustion each contributed about 4%. Over the ten years to 2024, livestock, fugitive and waste emissions rose, while crop and fuel emissions declined.

Historic Livestock Emissions

Livestock emissions rose from around 0.4 megatonnes CO2e in 1851 to roughly 1.2 in the early 1950s, then increased more gradually into the late 1970s. Growth accelerated thereafter, reaching a record peak of around 6.4 megatonnes CO2e in 2024.

Historic Fugitive Emissions

Fugitive emissions were near zero through most of the twentieth century, reaching only around 0.05 megatonnes CO2e by 1997. They then rose to about 1.0 by 2020 and accelerated sharply afterwards, peaking at around 1.9 megatonnes CO2e in 2024.

Historic Waste Emissions

Waste emissions began at around 0.08 megatonnes CO2e in 1851 and remained low, with fluctuations through the twentieth century. They rose from about 0.1 in the mid-1980s to a peak of roughly 0.6 in 2018, before falling back to around 0.5 megatonnes CO2e in 2024.

Historic Crop Emissions

Crop emissions increased from around 0.4 megatonnes CO2e in 1851 to roughly 2.6 by the mid-1960s, then declined into the early 1990s. They subsequently rose and peaked at about 3.0 megatonnes CO2e in 2016, ending at around 2.2 in 2024.

Historic Fuel Emissions

Fuel combustion emissions rose from around 0.2 megatonnes CO2e in 1851 to a peak of roughly 0.7 in 1920. They then declined to around 0.2 by the early 1970s, recovered to about 0.5 in 2008, and eased to around 0.4 megatonnes CO2e in 2024.

Background

The chart shows a national breakdown by source of the yearly methane (CH4) emissions from human activities expressed as weight in megatonnes (Mt). In the scientific literature, these are referred to as anthropogenic emissions. Human-induced methane emissions increase atmospheric methane, which is warming the Earth. The sources of human methane emissions are

  • Livestock
  • Fugitive emissions from the fossil fuel industry
  • Crop production
  • Fossil fuel combustion
  • Waste management
  • Other processes

Methane's Global Warming Potential

Methane has a much higher Global Warming Potential (GWP) than CO2. However, Methane emissions in the atmosphere decay with an average lifetime of about 12 years so its long term warming-effect is much less compared to CO2 which stays on average for hundreds of years in the atmosphere. Meaning: Methane's short term warming effect is much higher, but long term warming effect is much lower. A reduction in emissions can cause a rapid decline in its atmospheric levels.

Livestock

Livestock emits methane that is produced in the animals' digestive system. Most methane is emitted from the mouth during rumination. A much smaller amount of methane is emitted from the manure. Depending on how the manure is managed, i.e., wet or dry, more methane is emitted. Wet management leads to higher methane emissions than dry management. However, dry management also emits nitrous oxide (N2O), which is another potent greenhouse gas.

Fugitive emissions from fossil fuel industry

Fugitive methane emissions are from the intentional and accidental release of methane, which happens during the extraction, storage, and transportation processes in the fossil fuel industry. Examples are methane leaks during oil and gas handling, storage, transport, incomplete combustion, and many more. Also, methane is deliberately ventilated from mines during the extraction of coal.


Methane is a primary part of “gas”, also called “natural gas” or “fossil gas”. Natural gas is used, for example, for heating and electricity generation, whereby it emits CO2 during the combustion process. However, when natural gas leaks (unburned) it contains a lot of fugitive methane emissions.

Waste

Waste from landfills and wastewater produces a lot of methane when biodegradable material breaks down without oxygen.

Crop production

Crop production emissions are largely from rice cultivation, which generates large amounts of methane during plant growth. These emissions are from flooded paddies, which create the swamp-like environment of rice fields. There are agricultural techniques to reduce emissions significantly, like periodic drainage and aeration. Rice is the main staple for about half the world's population, and its emissions are a significant part of total human methane emissions.

Fuel combustion

Fuel combustion emissions are mostly from the incomplete combustion of fossil fuels. As mentioned before, natural gas consists largely of methane, and when the combustion does not happen completely, methane enters the atmosphere.

Other

Other human-induced methane emissions include industrial processes and product uses.

Wikipedia: Anthropogenic Sources of Atmospheric Methane
IPCC: AR6, 5.2.2.2 Anthropogenic CH4 emissions

Units and Measures

CH4 emissions are expressed in the total weight in megatonnes per year. 1 Megatonne is equal to 1 million tonnes.

Wikipedia: Megatonne
Wikipedia: Global warming potential

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About the Data

National methane emissions data through 2024 is from the PRIMAP-hist dataset, which combines several published sources into a historical emissions time series.

The Key Insights paragraph was created using a large language model (LLM) in combination with our data, historic events, and a structured approach for best accuracy by separating the context generation from the interpretation and narrative.

Data Sources

PRIMAP-hist The PRIMAP-hist national historical emissions time series (1750-2024)
Update cycle: Every few monthsDelay: Less than 1 yearCredits: Gütschow, J.; Busch, D.; Pflüger, M. (2025): The PRIMAP-hist national historical emissions time series v2.7 (1750-2024). zenodo. doi:10.5281/zenodo.17090760

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