Techno-economic analysis of supercritical carbon dioxide cycle integrated with coal-fired power plant

Технико-экономический анализ цикла на сверхкритическом диоксиде углерода, интегрированного с угольной электростанцией
Dhinesh Thanganadar, Faisal Asfand, Kumar Patchigolla, Peter Turner
2021-05-30

coal-fired power plantcost of electricitygenetic algorithm optimizationsupercritical carbon dioxide cyclestechno-economic analysis
Supercritical carbon dioxide (sCO2) cycles can achieve higher efficiencies than an equivalent steam Rankine cycle at higher turbine inlet temperatures (>550 °C) with a compact footprint (tenfold). sCO2 cycles are low-pressure ratio cycles (~4–7), therefore recuperation is necessary, which reduces the heat-addition temperature range. Integration of sCO2 cycles with the boiler requires careful management of low-temperature heat to achieve higher plant efficiency. This study analyses four novel sCO2 cycle configurations which capture the low-temperature heat in an efficient way and the performance is benchmarked against the state-of-the-art steam Rankine cycle. The process parameters (13–16 variables) of all the cycle configurations are optimised using a genetic algorithm for two different turbine inlet temperatures (620 °C and 760 °C) and their techno-economic performance are compared against the advanced ultra-supercritical steam Rankine cycle. A sCO2 power cycle can achieve a higher efficiency than a steam Rankine cycle by about 3–4% points, which is correspond to a plant level efficiency of 2–3% points, leading to cost of electricity (COE) reduction. Although the cycle efficiency has increased when increasing turbine inlet temperature from 620 °C to 760 °C, the COE does not notably reduce owing to the increased capital cost. A detailed sensitivity study is performed for variations in compressor and turbine isentropic efficiency, pressure drop, recuperator approach temperature and capacity factor. The Monte-Carlo analysis shows that the COE can be reduced up to 6–8% compared to steam Rankine cycle, however, the uncertainty of the sCO2 cycle cost functions can diminish this to 0–3% at 95% percentile cumulative probability.
1
Compared with advanced ultra-supercritical steam Rankine cycles, sCO2 cycles improve cycle efficiency by approximately 3–4 percentage points and plant efficiency by 2–3 points.
2
Four novel sCO2 cycle configurations were developed to efficiently recover low-temperature heat when integrated with a coal-fired boiler.
3
Genetic-algorithm optimization of 13–16 process variables was performed at turbine inlet temperatures of 620 °C and 760 °C.
4
Increasing turbine inlet temperature from 620 °C to 760 °C raises cycle efficiency but does not notably reduce cost of electricity because of higher capital costs.
5
Monte Carlo analysis indicates potential COE reductions of 6–8% versus steam Rankine cycles, decreasing to 0–3% at the 95th-percentile cumulative probability due to cost-function uncertainty.

supercritical carbon dioxide (sCO2) power cycles integrated with a coal-fired power plant

techno-economic performance, efficiency, cost of electricity, and sensitivity to operating and cost parameters compared with advanced ultra-supercritical steam Rankine cycles

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2021-05-30
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Dhinesh Thanganadar
Faisal Asfand
Kumar Patchigolla
Peter Turner
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