Search

Begin New Search
Proceed to Checkout

Search Results for All:
(Showing results 1 to 2 of 2)



The Impact of a Carbon Tax on the CO2 Emissions Reduction of Wind

Chi Kong Chyong, Bowei Guo, and David Newbery

Year: 2020
Volume: Volume 41
Number: Number 1
DOI: 10.5547/01956574.41.1.cchy
View Abstract

Abstract:
Energy policy aims to reduce emissions at least long-run cost while ensuring reliability. Its effecacy depends on the cost of emissions reduced. Britain introduced an additional carbon tax (the Carbon Price Support, CPS) for fuels used to generate electricity that by 2015 added £18/t CO2, dramatically reducing the coal share from 41% in 2013 to 6% in 2018. Policies have both short and long-run impacts. Both need to be estimated to measure carbon savings. The paper shows how to measure the Marginal Displacement Factor (MDF, tonnes CO2 /MWh) for wind. The short-run (SR) MDF is estimated econometrically while the long-run (LR) MDF is calculated from a unit commitment model of the GB system in 2015. We examine counter-factual fuel and carbon price scenarios. The CPS lowered the SR-MDF by 7% in 2015 but raised the LR-MDF (for a 25% increase in wind capacity) by 18%. We discuss reasons for the modest differences in the SR- and LR-MDFs.



Mitigating Climate Change While Producing More Oil: Economic Analysis of Government Support for CCS-EOR

Hossa Almutairi and Axel Pierru

Year: 2024
Volume: Volume 45
Number: Special Issue
DOI: 10.5547/01956574.44.SI1.halm
View Abstract

Abstract:
By storing CO2 captured from the atmosphere or point sources into oil fields, carbon capture and storage with enhanced oil recovery (CCS-EOR) increases the fields' output by raising reservoir pressures. Since CO2-EOR has been experimented with for decades and the revenues from the additional oil production improve projects' economics, CCS-EOR is the most readily deployable CCS technology. However, government support for CCS-EOR projects is sometimes contested on the grounds that the resulting increase in oil production undermines their environmental benefits. Addressing this concern requires determining the effects of implementing CCS-EOR on global CO2 emissions. This paper presents a simple approach based on a marginal reasoning consistent with economic decision-making. It produces analytical formulas that account for the effects on the global oil market of incentivizing CCS-EOR. In addition, we quantify the volume of oil that can be decarbonized by storing a ton of captured CO2 through EOR from different perspectives. We produce numerical results based on a first-cut calibration. They suggest that, from an economic perspective, CCS-EOR is a technology that mitigates global emissions. However, after accounting for the need to decarbonize the EOR oil, the reduction in emissions is significantly less than the stored quantity of CO2. If fully allocated to oil production, the environmental benefits of capturing a ton of CO2 and storing it through conventional EOR can allow the oil producer to decarbonize 3.4 barrels on a well-to-wheel basis and 14.4 barrels when offsetting its oil-upstream emissions only. Fiscal incentives granted by governments to support CCS-EOR as a climate-change mitigation technology should be sized accordingly. We compare our findings to the size of the subsidy in the revised Section 45Q of the 2022 United States Inflation Reduction Act.





Begin New Search
Proceed to Checkout

 

© 2025 International Association for Energy Economics | Privacy Policy | Return Policy