持続可能な建設に向けた都市固形廃棄物焼却底灰およびシリカフュームを混和したモルタルの諸特性とライフサイクルアセスメント
Selected properties and life cycle assessment of mortars incorporating municipal solid waste bottom ash and silica fume for sustainable construction (原題)
Fouadi AlZaatiti, Abdulkader El-Mir, Firas Barraj, Youmn Al-Rawi, Rayan Najjar, Mohamad Ezzedine El Dandachy
🤖 gxceed AI 要約
日本語
都市固形廃棄物焼却底灰(MSWBA)を細骨材の代替として、シリカフュームを混和材として用いたモルタルの工学性能と環境影響を検討した。最適化した配合(T4・T7・T8)は強度・超音波速度・吸水性能のバランスが良好で、シリカフュームがMSWBAの多孔性による悪影響を緩和した。LCAの結果、天然砂をMSWBAで置換することでcradle-to-gateの炭素排出量を最大21.0%削減できることが示された。
English
This study evaluates mortars using municipal solid waste bottom ash (MSWBA) as partial fine-aggregate replacement and silica fume as a supplementary cementitious material. Optimized mixes (T4, T7, T8) balanced strength, UPV, and water absorption, with silica fume mitigating MSWBA porosity effects. LCA showed replacing natural sand with MSWBA cut cradle-to-gate embodied carbon by up to 21.0% without compromising engineering performance.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
建設資材の低炭素化はScope 3上流(購入品)排出削減に直結し、SSBJ・有報でのサプライチェーン排出開示や建設業の脱炭素調達基準に関連する。廃棄物由来材料の活用は循環経済と資源制約対応の両面で日本企業の調達戦略に示唆を与える。
In the global GX context
Embodied-carbon reduction in construction materials feeds directly into Scope 3 upstream accounting and disclosure under ISSB/CSRD and green-building procurement rules. The paper offers a concrete LCA-based pathway for circular-economy material substitution relevant to global construction decarbonization.
👥 読者別の含意
🔬研究者:廃棄物由来骨材と混和材の複合効果をLCAと性能評価で定量化した実証データを提供する。
🏢実務担当者:建設・建材調達において、廃棄物由来材料による埋め込み炭素削減と性能維持の両立可能性を判断する材料となる。
🏛政策担当者:循環経済と建設脱炭素を両立する材料規格・調達基準の設計に資するエビデンスを提供する。
📄 Abstract(原文)
The use of municipal solid waste bottom ash (MSWBA) as a sustainable alternative construction material is an effective approach to reduce natural resource depletion and advance circular economy concepts. The combined effects of MSWBA as a partial replacement of natural fine aggregate and silica fume (SF) as a supplementary cementitious material on the engineering performance and environmental sustainability of mortar were investigated in this study. Mortar mixtures were prepared with different binder content (389.6–524.9 kg/m 3 ), water to binder (w/b) ratio (0.526–0.663), MSWBA replacement level (60%–90%) and silica fume content (2%–8%). Ten mortar mixtures were prepared, including one control and nine modified mixtures. Tests for workability, setting time, compressive strength, flexural strength, ultrasonic pulse velocity (UPV), unit weight and water absorption were carried out for fresh and hardened properties evaluation. Correlation analyses, contour analysis and life cycle assessment (LCA) were also performed. The results showed that optimizing the w/b ratio produced satisfactory workability for all the mixtures. Although the early-age mechanical performance was reduced with high MSWBA replacement, mixtures with higher binder contents and silica fume had higher strength, density and durability. Among the MSWBA-modified mixtures, T4, T7, and T8 exhibited the most favorable overall combination of mechanical strength, UPV, and water-absorption performance. These optimized mixtures achieved comparatively high compressive and flexural strengths and UPV while maintaining relatively low water absorption, suggesting that the incorporation of silica fume helped mitigate the adverse effects associated with the porous nature of MSWBA. Correlation and contour analyses indicated that lower w/b ratios, particularly approximately 0.53–0.55, were associated with more favorable compressive-strength performance within the investigated mixture range. Results of the environmental assessment showed that the replacement of natural sand by MSWBA reduced the cradle-to-gate embodied carbon by up to 21.0%. This suggests the potential of optimized MSWBA–SF mortars to produce sustainable and low-carbon cementitious materials without compromising engineering performance.
🔗 Provenance — このレコードを発見したソース
- semanticscholar https://www.frontiersin.org/journals/built-environment/articles/10.3389/fbuil.2026.1952676/pdffirst seen 2026-09-26 05:22:08 · last seen 2026-09-29 05:32:45
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