Schlagwort: CO2 storage

  • Carbonation Alone Is Not Enough: Dynamic CO2 Accounting Prioritizes Measures for Hollow Concrete Blocks

    Carbonation Alone Is Not Enough: Dynamic CO2 Accounting Prioritizes Measures for Hollow Concrete Blocks

    A new dynamic life-cycle assessment (cradle-to-grave) for hollow concrete blocks reaches a clear conclusion: the largest CO2 savings come from CO2 capture and from foregoing energy‑intensive steam curing. Carbonation processes and the use of mineral carbonates provide additional—but comparatively small—contributions and mainly reduce the need for geological storage.

    Background

    Concrete causes roughly seven percent of global anthropogenic CO2 emissions. A major share arises from the calcination of limestone during clinker production for cement. Part of these emissions is naturally reabsorbed over the lifetime of concrete: through carbonation the material takes up CO2 from the air and forms stable carbonates—however slowly, over decades to centuries.

    Method and scenarios

    The study evaluates six production and use scenarios for hollow concrete blocks using dynamic accounting. It compares conventional manufacturing with variants that include CO2 capture, carbonation curing during hardening, and strategies for active mineral carbonate use. The time‑dependent CO2 uptake during the service life, demolition and backfilling is considered, including interactions with technical mitigation measures.

    Key findings

    – Biggest lever: CO2 capture directly reduces process emissions that are otherwise hard to avoid and delivers the largest emission reduction. – Second most important: abandoning energy‑intensive steam curing lowers energy demand and associated emissions significantly. – Complementary measures: carbonation curing and mineral carbonate use increase the product‑level CO2 binding, but add only modest additional savings compared with capture and process changes. Their main contribution is reducing the requirement for geological storage.

    Why dynamic accounting matters

    Conventional, static CO2 balances often treat natural carbonation as an instantaneous offset. Dynamic analysis shows instead that uptake is spread over long periods and depends on mix design, exposure and end‑of‑life pathway. Ignoring these temporal dimensions overestimates short‑term climate benefits. While carbonation curing increases long‑term binding, its incremental benefit is limited in a dynamic comparison with CO2 capture and process changes.

    Temporal aspects and storage needs

    Scenarios relying on capture alone create a need for permanent geological storage. If part of the captured CO2 is converted to carbonates or bound already during curing, this storage demand declines—but does not disappear. This is particularly relevant in regions with limited storage acceptance or lacking infrastructure.

    Implications for industry and policy

    – Priority should be investments in CO2 capture and in process changes that replace steam curing. – Carbonation techniques and mineral carbonate use are sensible supplements, especially where geological storage is limited. – Accounting rules should reflect time‑differentiated CO2 uptake, avoid double counting and ensure that credits represent real, timely climate benefits. – Life‑cycle assessments should use dynamic models to underpin regulatory and market decisions.

    Research needs

    – More precise measurements and models on the rate and magnitude of natural carbonation across different concrete compositions and exposure scenarios. – Field‑oriented studies on integrating CO2 capture and carbonation processes into existing production chains to assess scalability and economic viability.

    Outlook

    The results move away from the idea of a single silver‑bullet solution. Technical CO2 capture and process changes make the largest contribution to decarbonizing concrete products; carbonation and mineral carbonates complement these pathways and primarily reduce the need for geological storage. In practice, combined, regionally adapted strategies are likely to be the most effective.

  • IPCC author team consults in Mexico City on methodology for CO2 removal and storage

    IPCC author team consults in Mexico City on methodology for CO2 removal and storage

    More than 120 authors of the Intergovernmental Panel on Climate Change (IPCC) are meeting in Mexico City from 11 to 14 August to discuss the First Order Draft of a methodological report intended to clarify the accounting of CO2 removal as well as the capture, utilization and storage of carbon dioxide (CDR/CCUS). The report is being prepared by the Task Force on National Greenhouse Gas Inventories and is scheduled for 2027.

    Why the methodology matters

    National greenhouse gas inventories are the basis for climate policy, international reporting and the review of emissions targets. A consistent, scientifically robust methodology for CO2 removals and storage creates comparability between countries and projects — from government reports to voluntary mitigation programs. Inconsistent rules, overestimations or double counting undermine the credibility of climate action.

    Points of contention on the agenda

    The discussions center on measurability, uncertainties and the temporal dimension of reliable storage (permanence). While geological storage can potentially remain stable over long periods, biological sinks — such as afforestation — carry risks from fire, pests or land-use change.

    Other core questions concern accounting rules: How are life-cycle emissions included? What thresholds and definitions apply to leakage effects? How can double counting between the country of origin, buyers and international mechanisms be avoided? And how are baselines and additionality determined, i.e., the demonstration that projects remove CO2 beyond business-as-usual developments?

    Terms and technologies: CDR and CCUS

    CDR refers to measures that remove CO2 from the atmosphere — for example, afforestation, improved soil management, bioenergy with carbon capture and storage (BECCS), direct air capture or enhanced rock weathering. CCUS encompasses the capture of CO2 at emission sources, its utilization and/or storage. Not every CCUS application results in a net removal from the atmosphere; that depends on the accounting rules and the permanence of storage.

    Risks and social aspects

    Large-scale CDR projects can create trade-offs in land use, biodiversity and water resources. Geological storage requires strict safety standards to minimize risks such as induced seismicity or impacts on groundwater. Questions of justice and participation are also central: the rights of local communities, inclusion of indigenous groups and clear requirements for monitoring, reporting and verification.

    Process and outlook

    The current draft represents an early step in the IPCC process. The First Order Draft will be followed by expert and government reviews and revisions before the final report is published in 2027. In Mexico City, wording will be refined, methodological gaps addressed and responsibilities clarified.

    International dimension

    The author team brings together expertise from atmospheric sciences, geology, engineering, ecology, economics and the social sciences. The broad composition aims to ensure that the guidance remains applicable across different geographic, economic and legal contexts — from countries with limited monitoring capacity to industrialized nations with extensive technical infrastructure. Clear, verifiable rules increase transparency around CO2 removals and storage — but do not replace the need to rapidly and permanently reduce emissions.