- Jiachang Yuan
- DOI: 10.5281/zenodo.22078536
- GAS Journal of Engineering and Technology (GASJET)
Under
China’s strategic commitment to peak carbon emissions by 2030 and achieve
carbon neutrality by 2060 (the “Dual Carbon Goals”), renewable energy
enterprises face unprecedented pressure to simultaneously expand capacity,
reduce costs, enhance supply chain resilience, and minimize carbon footprints.
This study systematically investigates supply chain synergy optimization for
wind and solar power enterprises within the Dual Carbon policy framework.
Employing a multi-method approach integrating literature review, system
analysis, and a case study of LONGi Green Energy, this research identifies
three core synergy barriers: geographic fragmentation and policy decoupling,
carbon traceability credibility crises, and inherent conflicts among
efficiency, decarbonization, and resilience objectives. A three-tier
collaborative optimization framework is proposed, comprising: (1) an
information synergy layer based on blockchain-enabled carbon data pools; (2) an
operational synergy engine integrating multi-objective optimization models with
dynamic carbon taxation and shared warehousing; and (3) a carbon synergy
mechanism incorporating tiered supplier incentives and green transition funds.
Empirical validation through the LONGi case demonstrates significant
improvements: total supply chain costs reduced by 15.3%, lifecycle carbon
emissions per watt decreased by 39.6%, and disruption recovery time shortened
by 58.3%. This research contributes a “policy-geography-technology”
three-dimensional synergy blockage theory, a tri-objective dynamic equilibrium
model, and a responsibility-sharing carbon governance framework, offering both
theoretical advancements and practical pathways for sustainable energy supply
chain management.
Keywords: Dual Carbon Goals, Renewable Energy, Supply Chain Synergy, Carbon Traceability, Supply Chain Resilience, Blockchain, Multi-Objective Optimization, Green Supply Chain.
