TY - JOUR
T1 - Comprehensive evaluation of all-element flexibility resources in data centers
T2 - considering synergistic benefits of computing, electricity, and heat
AU - Wang, Yongzhen
AU - Lin, Jiayu
AU - Han, Yibo
AU - Han, Kai
AU - Han, Juntao
AU - Han, Te
AU - Wei, Yiming
N1 - Publisher Copyright:
© 2025
PY - 2025/12/1
Y1 - 2025/12/1
N2 - The exploration of internal resource flexibility in data centers is a significant trend for energy conservation, emission reduction, and sustainable development. To systematically quantify the coupling mechanisms and potential of flexibility in the computing, electricity, and heat side, this paper develops a multi-element flexibility resource evaluation method integrated capacity planning and operation scheduling for data centers. It reveals the impact of each flexibility resource on the data center's energy consumption, carbon emissions, economic costs, Power Usage Effectiveness (PUE), computing efficiency, and other integrated performance metrics. An optimization and scheduling framework for all-element flexibility resources is developed based on a collaborative operation model for flexibility resources established in this paper. The results show that the flexibility is able to reduce carbon emissions by 38.5 %, energy consumption by 22.8 %, and economic costs by 21.6 %, while significantly improving PUE and computing efficiency. In particular, the utilization of electricity flexibility notably reduces carbon emissions by 21.5 %, while the coordinated regulation of computing flexibility and heat flexibility has a significant effect on reducing energy consumption (by 11.1 % and 13.1 %, respectively). Furthermore, the impact of factors like time-of-use tariff, workload status, and rack occupancy rate on flexibility resource utilization is analyzed through sensitivity analysis, revealing how these factors influence the optimization of the data center's performance metrics.
AB - The exploration of internal resource flexibility in data centers is a significant trend for energy conservation, emission reduction, and sustainable development. To systematically quantify the coupling mechanisms and potential of flexibility in the computing, electricity, and heat side, this paper develops a multi-element flexibility resource evaluation method integrated capacity planning and operation scheduling for data centers. It reveals the impact of each flexibility resource on the data center's energy consumption, carbon emissions, economic costs, Power Usage Effectiveness (PUE), computing efficiency, and other integrated performance metrics. An optimization and scheduling framework for all-element flexibility resources is developed based on a collaborative operation model for flexibility resources established in this paper. The results show that the flexibility is able to reduce carbon emissions by 38.5 %, energy consumption by 22.8 %, and economic costs by 21.6 %, while significantly improving PUE and computing efficiency. In particular, the utilization of electricity flexibility notably reduces carbon emissions by 21.5 %, while the coordinated regulation of computing flexibility and heat flexibility has a significant effect on reducing energy consumption (by 11.1 % and 13.1 %, respectively). Furthermore, the impact of factors like time-of-use tariff, workload status, and rack occupancy rate on flexibility resource utilization is analyzed through sensitivity analysis, revealing how these factors influence the optimization of the data center's performance metrics.
KW - Capacity planning and operation scheduling
KW - Computing-heat coupling
KW - Data center
KW - Flexibility resources
UR - http://www.scopus.com/pages/publications/105011172416
U2 - 10.1016/j.apenergy.2025.126442
DO - 10.1016/j.apenergy.2025.126442
M3 - Article
AN - SCOPUS:105011172416
SN - 0306-2619
VL - 399
JO - Applied Energy
JF - Applied Energy
M1 - 126442
ER -