Co-enhancement of energy efficiency and dynamic flexibility for indirect air-cooled systems under frequent peak-shaving: Trade-offs of cost, performance and robustness

Deep peak-shaving operation of coal-fired power units requires heat-exchange equipment to rapidly track varying loads. Indirect air-cooled units are central to power supply in water-scarce regions, and their cold-end system rejects heat to ambient air and possesses substantial thermal inertia, so its heat-rejection capacity responds sluggishly to changes in unit load and ambient temperature. Existing heat-exchanger designs address only rated-condition heat rejection, without jointly considering air-side, water-side, and heat-capacity effects, so steady-state efficiency and dynamic flexibility cannot be improved concurrently. To address this gap, an integrated optimization framework is proposed for heat-exchanger design, with the steady-state back pressure P s,end and the dynamic recovery time Δt as coordinated optimization objectives. Air-side correlations obtained from computational fluid dynamics are embedded in a cold-end dynamic model driven by turbine off-design boundaries. Neural-network surrogates with prediction errors below 0.33% accelerate the genetic-algorithm search, while Shapley-value analysis interprets the design parameters. For a 2 × 350 MW unit, the optimal structure reduces P s,end from 8.25 to 7.55 kPa and shortens Δt from 765.85 to 655.05 s, but requires higher circulating-pump power. Under the reference economic assumptions, the coal-cost saving (about 528 CNY/h) does not offset the additional pump-power cost (about 1867 CNY/h), giving net economic effect near −1339 CNY/h. This performance oriented structure is therefore not the lowest-cost design. The study provides a structural route to reconcile efficiency and flexibility in air-cooled units, supporting their peak-shaving role under high renewable penetration.

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Journal
Energy
Published
2026-10-07
DOI
https://doi.org/10.1016/j.energy.2026.142579
Primary Topic
Heat Transfer and Optimization
Type
article
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article

Co-enhancement of energy efficiency and dynamic flexibility for indirect air-cooled systems under frequent peak-shaving: Trade-offs of cost, performance and robustness

Huimin Wei, Tao Jing, Shan Qing, Jingyao Wang et al.
Energy
Heat Transfer and Optimization
article

Co-enhancement of energy efficiency and dynamic flexibility for indirect air-cooled systems under frequent peak-shaving: Trade-offs of cost, performance and robustness

Huimin Wei, Tao Jing, Shan Qing, Jingyao Wang, Jingqi Zhang, Hao Wang, Xue Liu, Xiaoze Du, Xiaojun Bian
article en

Abstract

Deep peak-shaving operation of coal-fired power units requires heat-exchange equipment to rapidly track varying loads. Indirect air-cooled units are central to power supply in water-scarce regions, and their cold-end system rejects heat to ambient air and possesses substantial thermal inertia, so its heat-rejection capacity responds sluggishly to changes in unit load and ambient temperature. Existing heat-exchanger designs address only rated-condition heat rejection, without jointly considering air-side, water-side, and heat-capacity effects, so steady-state efficiency and dynamic flexibility cannot be improved concurrently. To address this gap, an integrated optimization framework is proposed for heat-exchanger design, with the steady-state back pressure P s,end and the dynamic recovery time Δt as coordinated optimization objectives. Air-side correlations obtained from computational fluid dynamics are embedded in a cold-end dynamic model driven by turbine off-design boundaries. Neural-network surrogates with prediction errors below 0.33% accelerate the genetic-algorithm search, while Shapley-value analysis interprets the design parameters. For a 2 × 350 MW unit, the optimal structure reduces P s,end from 8.25 to 7.55 kPa and shortens Δt from 765.85 to 655.05 s, but requires higher circulating-pump power. Under the reference economic assumptions, the coal-cost saving (about 528 CNY/h) does not offset the additional pump-power cost (about 1867 CNY/h), giving net economic effect near −1339 CNY/h. This performance oriented structure is therefore not the lowest-cost design. The study provides a structural route to reconcile efficiency and flexibility in air-cooled units, supporting their peak-shaving role under high renewable penetration.

EnergyVol. 365
North China Electric Power University (CN), Lanzhou University of Technology (CN), Thermal Power Research Institute (CN), China Huadian Corporation (China) (CN), State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources
Openalex Percentile: Top 22%
Heat Transfer and Optimization
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