Energy-aware and Sustainable Cloud Computing: Dynamic Scheduling, Pricing-Driven Resource Management, and Renewable Intermittency

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Raed A Hasan
Omar A. Hammood
Mostafa A. Mohammed
Khalil F. Yassin
Mehdi Qahraman Fakhruldin
Waleed A. Hammood

Abstract

Data centers are now the largest users of electricity, carbon, and water, driving rapid cloud computing growth and a global shift to renewable-powered, sustainable cloud infrastructure. The large-scale integration of solar and wind energy creates fundamental operational challenges due to their intermittency, uncertainty, and non-dispatchability. This paper presents dynamic energy-aware cloud computing as a pathway toward sustainability by modeling renewable variability with service reliability assurance aligned workload scheduling with forecast green energy availability. Recent advances in energy-and carbon-aware orchestration (2023-2025) have been reviewed where critically missing gaps are unified frameworks integrating renewable forecasting with stochastic robust optimization SLA aware scheduling plus demand-and supply-side contingencies like storage backup provisioning plus adaptive load management. Based on these gaps an elawful operations model for the co-optimization of power use carbon footprints quality of service under time-varying energy conditions is described that uses elastic resource management supported by probabilistic solar/wind forecasts plus risk-sensitive scheduling. New directions for more sustainable clouds include decentralized speculative renewables infrastructures; this paper also describes some concepts in that area. This work lays out a structured foundation toward next-generation green cloud platforms moving beyond static efficiency metrics into predictive reliability-driven environmentally responsive cloud operations.

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How to Cite
Hasan, R. A., Hammood, O. A. ., Mohammed, M. A., Yassin, K. F., Fakhruldin, M. Q., & Hammood, W. A. (2026). Energy-aware and Sustainable Cloud Computing: Dynamic Scheduling, Pricing-Driven Resource Management, and Renewable Intermittency. ESTIDAMAA, 2026, 131-145. https://doi.org/10.70470/ESTIDAMAA/2026/009
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