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result(s) for
"Leblanc, Florian"
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Global energy sector emission reductions and bioenergy use: overview of the bioenergy demand phase of the EMF-33 model comparison
by
Kato, Etsushi
,
Strefler, Jessica
,
Rose, Steven K
in
Atmospheric models
,
Availability
,
Biomass
2020
We present an overview of results from 11 integrated assessment models (IAMs) that participated in the 33rd study of the Stanford Energy Modeling Forum (EMF-33) on the viability of large-scale deployment of bioenergy for achieving long-run climate goals. The study explores future bioenergy use across models under harmonized scenarios for future climate policies, availability of bioenergy technologies, and constraints on biomass supply. This paper provides a more transparent description of IAMs that span a broad range of assumptions regarding model structures, energy sectors, and bioenergy conversion chains. Without emission constraints, we find vastly different CO2 emission and bioenergy deployment patterns across models due to differences in competition with fossil fuels, the possibility to produce large-scale bio-liquids, and the flexibility of energy systems. Imposing increasingly stringent carbon budgets mostly increases bioenergy use. A diverse set of available bioenergy technology portfolios provides flexibility to allocate bioenergy to supply different final energy as well as remove carbon dioxide from the atmosphere by combining bioenergy with carbon capture and sequestration (BECCS). Sector and regional bioenergy allocation varies dramatically across models mainly due to bioenergy technology availability and costs, final energy patterns, and availability of alternative decarbonization options. Although much bioenergy is used in combination with CCS, BECCS is not necessarily the driver of bioenergy use. We find that the flexibility to use biomass feedstocks in different energy sub-sectors makes large-scale bioenergy deployment a robust strategy in mitigation scenarios that is surprisingly insensitive with respect to reduced technology availability. However, the achievability of stringent carbon budgets and associated carbon prices is sensitive. Constraints on biomass feedstock supply increase the carbon price less significantly than excluding BECCS because carbon removals are still realized and valued. Incremental sensitivity tests find that delayed readiness of bioenergy technologies until 2050 is more important than potentially higher investment costs.
Journal Article
Implications of climate change mitigation strategies on international bioenergy trade
by
van Vuuren Detlef P
,
Kato Etsushi
,
Junginger, Martin
in
Climate change
,
Climate change mitigation
,
Climate models
2020
Most climate change mitigation scenarios rely on increased use of bioenergy to decarbonize the energy system. Here we use results from the 33rd Energy Modeling Forum study (EMF-33) to investigate projected international bioenergy trade for different integrated assessment models across several climate change mitigation scenarios. Results show that in scenarios with no climate policy, international bioenergy trade is likely to increase over time, and becomes even more important when climate targets are set. More stringent climate targets, however, do not necessarily imply greater bioenergy trade compared to weaker targets, as final energy demand may be reduced. However, the scaling up of bioenergy trade happens sooner and at a faster rate with increasing climate target stringency. Across models, for a scenario likely to achieve a 2 °C target, 10–45 EJ/year out of a total global bioenergy consumption of 72–214 EJ/year are expected to be traded across nine world regions by 2050. While this projection is greater than the present trade volumes of coal or natural gas, it remains below the present trade of crude oil. This growth in bioenergy trade largely replaces the trade in fossil fuels (especially oil) which is projected to decrease significantly over the twenty-first century. As climate change mitigation scenarios often show diversified energy systems, in which numerous world regions can act as bioenergy suppliers, the projections do not necessarily lead to energy security concerns. Nonetheless, rapid growth in the trade of bioenergy is projected in strict climate mitigation scenarios, raising questions about infrastructure, logistics, financing options, and global standards for bioenergy production and trade.
Journal Article
Integrated assessment model diagnostics: key indicators and model evolution
by
Harmsen, Mathijs
,
Arroyo, Eveline Vasquez
,
van Ruijven, Bas J
in
6th Assessment Report IPCC
,
Climate change mitigation
,
climate mitigation strategies, Climate Models
2021
Integrated assessment models (IAMs) form a prime tool in informing about climate mitigation strategies. Diagnostic indicators that allow comparison across these models can help describe and explain differences in model projections. This increases transparency and comparability. Earlier, the IAM community has developed an approach to diagnose models (Kriegler (2015 Technol. Forecast. Soc. Change 90 45–61)). Here we build on this, by proposing a selected set of well-defined indicators as a community standard, to systematically and routinely assess IAM behaviour, similar to metrics used for other modeling communities such as climate models. These indicators are the relative abatement index, emission reduction type index, inertia timescale, fossil fuel reduction, transformation index and cost per abatement value. We apply the approach to 17 IAMs, assessing both older as well as their latest versions, as applied in the IPCC 6th Assessment Report. The study shows that the approach can be easily applied and used to indentify key differences between models and model versions. Moreover, we demonstrate that this comparison helps to link model behavior to model characteristics and assumptions. We show that together, the set of six indicators can provide useful indication of the main traits of the model and can roughly indicate the general model behavior. The results also show that there is often a considerable spread across the models. Interestingly, the diagnostic values often change for different model versions, but there does not seem to be a distinct trend.
Journal Article
Bioenergy technologies in long-run climate change mitigation: results from the EMF-33 study
by
van Vuuren Detlef P
,
Rose, Steven K
,
Kato Etsushi
in
Availability
,
Biomass
,
Carbon capture and storage
2020
Bioenergy is expected to play an important role in long-run climate change mitigation strategies as highlighted by many integrated assessment model (IAM) scenarios. These scenarios, however, also show a very wide range of results, with uncertainty about bioenergy conversion technology deployment and biomass feedstock supply. To date, the underlying differences in model assumptions and parameters for the range of results have not been conveyed. Here we explore the models and results of the 33rd study of the Stanford Energy Modeling Forum to elucidate and explore bioenergy technology specifications and constraints that underlie projected bioenergy outcomes. We first develop and report consistent bioenergy technology characterizations and modeling details. We evaluate the bioenergy technology specifications through a series of analyses—comparison with the literature, model intercomparison, and an assessment of bioenergy technology projected deployments. We find that bioenergy technology coverage and characterization varies substantially across models, spanning different conversion routes, carbon capture and storage opportunities, and technology deployment constraints. Still, the range of technology specification assumptions is largely in line with bottom-up engineering estimates. We then find that variation in bioenergy deployment across models cannot be understood from technology costs alone. Important additional determinants include biomass feedstock costs, the availability and costs of alternative mitigation options in and across end-uses, the availability of carbon dioxide removal possibilities, the speed with which large scale changes in the makeup of energy conversion facilities and integration can take place, and the relative demand for different energy services.
Journal Article
International shipping in a world below 2 °C
by
Le Gallic, Thomas
,
Schaeffer, Roberto
,
Leblanc, Florian
in
639/4077/2790
,
704/106/694/682
,
706/4066/4080
2024
The decarbonization of shipping has become an important policy goal. While integrated assessment models (IAMs) are often used to explore climate mitigation strategies, they typically provide little information on international shipping, which accounts for emissions of around 0.7 GtCO
2
yr
−1
. Here we perform a multi-IAM analysis of international shipping and show the potential for decreasing annual emissions in the next decades, with reductions of up to 86% by 2050. This is primarily achieved through the deployment of low-carbon fuels. Models that represent several potential low-carbon alternatives tend to show a deeper decarbonization of international shipping, with drop-in biofuels, renewable alcohols and green ammonia standing out as the main substitutes for conventional maritime fuels. While our results align with the 2018 emission reduction goal of the International Maritime Organization, their compatibility with the agency’s revised target is still subject to a more definitive interpretation.
International maritime shipping accounts for an important proportion of global CO
2
emissions, but its role in a world with deep decarbonization has not been thoroughly examined. Through a multi-model comparison, this study reveals the necessity of reducing and stabilizing emissions from this sector in the next few decades.
Journal Article
A mix of policies is needed to close the climate ambition gap
2026
We compare eight integrated assessment models (IAMs) to analyze the effects of addtional climate policies targeting production and energy supply, consumption and energy demand, and the land sector on top of a moderate carbon price. We find that the combination of these additional policies can close the gap between well-below 2°C and 1.5°C pathways with overshoot assuming the same carbon price trajectory. While production and energy supply policies are necessary to decarbonize the energy sector in the long run, consumption and demand-side transformations can reduce emissions especially in the short-term, thus enabling lower cumulative emissions leading to lower peak temperature. Additional land policies can not only reduce CO2 emissions further, but also target non-CO2 emissions and reduce global warming even further.
Journal Article
Demand-side strategies enable rapid and deep cuts in buildings and transport emissions to 2050
by
Le Gallic, Thomas
,
Schaeffer, Roberto
,
Wilson, Charlie
in
704/844/2175
,
704/844/4066/4065
,
704/844/4066/4069
2025
Decarbonization of energy-using sectors is essential for tackling climate change. We use an ensemble of global integrated assessment models to assess CO2 emissions reduction potentials in buildings and transport, accounting for system interactions. We focus on three intervention strategies with distinct emphases: reducing or changing activity, improving technological efficiency and electrifying energy end use. We find that these strategies can reduce emissions by 51–85% in buildings and 37–91% in transport by 2050 relative to a current policies scenario (ranges indicate model variability). Electrification has the largest potential for direct emissions reductions in both sectors. Interactions between the policies and measures that comprise the three strategies have a modest overall effect on mitigation potentials. However, combining different strategies is strongly beneficial from an energy system perspective as lower electricity demand reduces the need for costly supply-side investments and infrastructure.
Journal Article
The contribution of bioenergy to the decarbonization of transport: a multi-model assessment
by
van Vuuren Detlef P
,
Rose, Steven K
,
Sakamoto Shogo
in
Alternative fuels
,
Biodiesel fuels
,
Biofuels
2022
The expected growth in the demand for passenger and freight services exacerbates the challenges of reducing transport GHG emissions, especially as commercial low-carbon alternatives to petroleum fuels are limited for shipping, air and long-distance road travel. Biofuels can offer a pathway to significantly reduce emissions from these sectors, as they can easily substitute for conventional liquid fuels in internal combustion engines. In this paper, we assess the potential of bioenergy to reduce transport GHG emissions through an analysis leveraging various integrated assessment models and scenarios, as part of the 33rd Energy Modeling Forum study (EMF-33). We find that bioenergy can contribute a significant, albeit not dominant, proportion of energy supply to the future transport sector: in scenarios aiming to keep the temperature increase below 2 °C by the end of the twenty-first century, models project that in 2100 bioenergy can provide on average 42 EJ/yr (ranging from 5 to 85 EJ/yr) for transport (compared to 3.7 EJ in 2018), mainly through lignocellulosic fuels. This makes up 9–62% of final transport energy use. Only a small amount of bioenergy is projected to be used in transport through electricity and hydrogen pathways, with a larger role for biofuels in road passenger transport than in freight. The association of carbon capture and storage (CCS) with bioenergy technologies (BECCS) is a key determinant in the role of biofuels in transport, because of the competition for biomass feedstock to provide other final energy carriers along with carbon removal. Among models that consider CCS in the biofuel conversion process the average market share of biofuels is 21% in 2100 (ranging from 2 to 44%), compared to 10% (0–30%) for models that do not. Cumulative direct emissions from the transport sector account for half of the emission budget (from 306 to 776 out of 1,000 GtCO2). However, the carbon intensity of transport decreases as much as other energy sectors in 2100 when accounting for process emissions, including carbon removal from BECCS. Lignocellulosic fuels become more attractive for transport decarbonization if BECCS is not feasible for any energy sectors. Since global transport service demand increases and biomass supply is limited, its allocation to and within the transport sector is uncertain and sensitive to assumptions about political as well as technological and socioeconomic factors.
Journal Article
An assessment of the alignment of the COP28 energy pledges with the Paris Agreement Goals
by
Le Gallic, Thomas
,
Strefler, Jessica
,
Fricko, Oliver
in
Alignment
,
Climate action
,
Climate change
2026
COP28 marked the first time that climate negotiations at the highest level, i.e. an official Conference of the Parties’ (COP) decision, indicated clear energy-related milestones for urgent climate action by adopting specific renewable energy and energy efficiency targets for 2030, and phasing down fossil fuels by 2050. These milestones are meant to serve as yardsticks to guide the path towards mitigating climate change and meeting the Paris Agreement (PA) goals. We assess the alignment of COP28 energy outcomes with the PA goals using several leading Integrated Assessment Models (IAMs) featuring high technological, sectoral, and regional detail. This detailed assessment could inform country- and technology-specific target design, which is becoming increasingly important in a fragmented world and under growing uncertainty regarding the prioritization of climate protection in governmental agendas. We additionally use and quantify novel transformation narratives such as “electrification” versus “combustion”, which could help develop a new generation of demand-side COP mitigation targets.
Journal Article
Demand-side policies can significantly reduce emissions from energy use in buildings and transport
by
Le Gallic, Thomas
,
Schaeffer, Roberto
,
Wilson, Charlie
in
Buildings
,
Decarbonization
,
Efficiency
2025
Large emission reductions in buildings and transport are possible by integrating demand-side strategies to electrify energy use, improve technological efficiency, and reduce or shift patterns of activity. With enabling policies and infrastructures, final energy users can make significant contributions to climate goals, particularly through widespread deployment of heat pumps and electric vehicles.Messages for policyDeveloping targets and corresponding policies to increase the share of electricity and sustainable fuels in energy-using sectors globally will yield significant emission reductions, especially in the medium term.Adopting a mix of policy measures, including both technological solutions and in support of behavioural changes, can alleviate the burden of mitigation on energy supply and infrastructure.End-use policies, such as efficiency improvements and promoting electrification, mostly interact synergistically with minimal trade-offs. A coordinated mix of these policies accelerates decarbonization.Transformative changes in buildings and transport can significantly reduce emissions. Key actions include electrification, smarter use of space, better insulation, enhanced vehicle efficiency, less driving, more biking, and better public transport.
Journal Article