Techno-economic feasibility assessment of calcium looping combustion using commercial technology appraisal tools

Оценка технико-экономической целесообразности сжигания с кальциевым циклом с использованием коммерческих инструментов технико-экономической оценки
Sebastian Michalski, Dawid P. Hanak, Vasilije Manović
2019-02-11

break-even cost of electricitycalcium looping combustionnet present valuesupercritical CO2 cycletechno-economic assessment
Calcium looping combustion (CaLC) is a new class of lowCO2emission technologies for thermochemical conversion of carbonaceous fuels that can help achieve the emissions reduction targets set out in the Paris Agreement. Compared to mature CO2 capture technologies, which cause net efficiency penalties higher than 7% points, CaLC results in a net efficiency penalty of 2.9% points. However, a thorough economic assessment of CaLC needs to be undertaken to evaluate its economic viability. The levelised cost of electricity is commonly used to assess the economic performance of clean energy systems. However, this method does not account for commercially important parameters, such as tax, interest, and depreciation charges. This study aimed to improve the reliability and accuracy of economic assessments of clean energy systems by implementing the net present value (NPV) approach. This approach was applied to assess the economic performance of two concepts of the CaLC-based power plant with either the conventional steam cycle (SC) or the supercritical CO2 cycle (s-CO2) for heat utilisation along with the bottom-up approach to total capital cost estimation. A parametric study for both concepts was also conducted to assess the impact of the key thermodynamic parameters on the economic performance. Although the s-CO2 case with revised assumptions was shown to result in a 1%-point lower net efficiency compared to the SC case, its break-even cost of electricity was lower by 0.81 €/MWh. Further improvements of the techno-economic performance can be sought by optimisation of the s-CO2 cycle structure.
1
Calcium looping combustion achieves a 2.9-percentage-point net efficiency penalty, substantially below the higher-than-7-point penalties of mature CO₂ capture technologies.
2
Further techno-economic improvements may be achieved by optimizing the supercritical CO₂ cycle structure.
3
NPV analysis compares CaLC power plants using conventional steam and supercritical CO₂ cycles, with parametric studies evaluating key thermodynamic impacts on economics.
4
The study improves economic assessment reliability by applying net present value, incorporating tax, interest, and depreciation alongside bottom-up total capital-cost estimation.
5
Under revised assumptions, the supercritical CO₂ configuration has 1 percentage point lower net efficiency than the steam-cycle case but a €0.81/MWh lower break-even electricity cost.

CaLC-based power plant concepts using either a conventional steam cycle or a supercritical CO2 cycle for heat utilisation

Techno-economic performance and economic viability, including net efficiency, break-even electricity cost, and sensitivity to key thermodynamic parameters

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2019-02-11
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Sebastian Michalski
Dawid P. Hanak
Vasilije Manović
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