Aug 2026· ACS Sustainable Chemistry & Engineering· 0 citations· 65 references
Abstract
Cement production contributes about 8% of global CO2 emissions, but conventional assessments often overlook spatiotemporal heterogeneity in demand, energy resources, infrastructure, and policy constraints. This study develops a high-resolution whole-system optimization framework to evaluate deep decarbonization pathways for China’s cement industry across 31 mainland provinces from 2025 to 2060. The model compares a methane-reforming-based cement process, carbon capture and storage (CCS), and hydrogen-based carbon capture and utilization (CCU) under regional renewable-energy constraints, inter-provincial clinker and CO2 logistics, and dynamic policy and market conditions. Results show that the cost-effective pathway is not a uniform technology replacement but a heterogeneous three-phase transition in which CCS serves as a bridging option before hydrogen-based CCU becomes competitive after 2052. An interim 2040 emission level of approximately 400 Mt CO2 is identified as a critical transition benchmark. Inter-provincial clinker and CO2 flows allow renewable-rich regions to transfer low-carbon production advantages to demand-intensive regions, alleviating spatial mismatches between renewable supply and cement demand. Regional archetypes further show that natural gas prices shape the competitiveness of methane-reforming-based routes. Policy analysis identifies two key thresholds: an annual carbon-price increase exceeding 25 CNY/ton (3.5 USD/ton) CO2 accelerates mitigation, while a methanol price above 2750 CNY/ton (382 USD/ton) supports hydrogen-based CCU adoption. These findings frame cement decarbonization as a coupled energy-industrial system planning problem and provide transferable insights for hard-to-abate sectors facing spatial resource constraints.
Germany's climate target requires carbon capture and sequestration for residual emissions from hard-to-abate sectors such as cement production and waste incineration. Planning this infrastructure is challenging because capture investments and CO2 transport networks are strongly interdependent. Existing energy system mo...
China’s iron and steel sector is pivotal to global industrial decarbonization, yet near-zero transition pathways under heterogeneous regional resource endowments remain poorly understood. Here we develop a plant-resolved, spatially explicit framework that integrates a facility-level emission database, a cost-minimizing...
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Decarbonizing existing coal-fired power plants can contribute to near-term climate mitigation, but identifying cost-effective retrofit strategies is complicated by interactions among mitigation technologies. Here we develop an interaction-aware optimization framework that jointly evaluates energy conservation, biomass...
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Southeast Asia’s steel sector faces the dual challenge of expanding production to meet rising demand while reducing carbon emissions. This study develops a bottom-up cost minimization model with 19 steelmaking technologies for six Southeast Asian countries over 2020–2070 and applies a three-dimensional scenario design...
Tae Yong Jung, Yoonha Lee, Hyunkyung Joo et al.· Environmental Research Lette...· 0 citations
The decarbonization of energy-intensive industries, particularly in petrochemical refineries, is critical to achieving global net-zero targets. The objective of this study was to develop a structured methodological framework for refinery decarbonization planning under confined industrial data availability. This appro...
Ngo Hoang To Tran, Hao Nhat Dam, Thoa Thị Kim Đào· Frontiers in Chemical Engine...· 0 citations
Scaling Carbon Capture and Storage (CCS) worldwide is critical for achieving net-zero targets and ensuring clean energy transition. Current development efforts focus on hard-to-abate CO2 emissions from cement, chemical and steel industries. As a bridging technology CCS may also be applied to emissions from combustion p...
D. Radies, M. Zarfl· GOTECH· 0 citations
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