Rice Husk Ash Concrete: A Circular Economy Framework Integrating Material Performance, Management and Accounting for Sustainable Construction
籾殻灰コンクリート:持続可能な建設のための材料性能・管理・会計を統合した循環経済フレームワーク (AI 翻訳)
P. HemaBindu, R.R.L.Birali
🤖 gxceed AI 要約
日本語
本研究は、籾殻灰(RHA)をセメントの部分代替として用いたコンクリートの技術的・経済的・環境的評価を行い、20%代替で圧縮強度が最大となり、材料費11.2%削減、CO2排出量24.2%削減を達成。調達から品質管理、供給までの4段階管理モデルと意思決定支援システムを提案し、農業廃棄物の建設資材への転換による循環経済モデルを示した。
English
This study evaluates rice husk ash (RHA) as a partial cement replacement in concrete, finding that 20% replacement yields maximum compressive strength with 11.2% material cost savings and 24.2% CO2 emission reduction. A 4-stage management model covering procurement, processing, quality testing, and delivery, along with a decision support system, is proposed to enable circular economy adoption in construction.
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
日本の建設業界では、カーボンニュートラル達成に向けてセメント代替材料の需要が高まっており、本研究成果は国産の農業副産物を活用した低炭素コンクリートの実用化に寄与する。また、サプライチェーン排出量(Scope3)の削減にも貢献し、建設会社の環境報告やSSBJ対応に有用な知見を提供する。
In the global GX context
This research aligns with global efforts to decarbonize the construction sector, offering a circular economy approach that reduces cement-related emissions. The proposed management and accounting framework supports corporate sustainability reporting under ISSB and CSRD, and provides a replicable model for agricultural waste valorization in construction supply chains.
👥 読者別の含意
🔬研究者:Provides experimental data and a management framework for RHA concrete, useful for further research on sustainable cementitious materials.
🏢実務担当者:Offers a practical 4-stage management model and decision support system for adopting RHA concrete in construction projects, with cost and carbon savings quantified.
🏛政策担当者:Highlights the potential of agricultural waste in construction to meet circular economy and carbon reduction targets, informing policy on sustainable building materials.
📄 Abstract(原文)
The increasing environmental concerns associated with cement production have encouraged the development of sustainable cementitious materials utilizing agricultural waste products. This study investigates the performance of Rice Husk Ash (RHA) as a partial replacement for Ordinary Portland Cement (OPC) in concrete. Concrete mixes containing 0%, 5%, 10%, 15%, 20%, and 25% RHA were prepared and tested after 7, 14, 28, and 56 days of curing. The mechanical property such as compression strength, flexural strength, split tensile strength, durability parameters like water absorption, chloride penetration and acid resistance were examined. The results showed that strength has been improved with curing ages for all the mixes, where the RHA-10 mix has the highest compressive strength value of 53.1MPa, flexural strength value of 6.38 MPa and split tensile strength value of 4.70 MPa at 56 days. The durability performance was also greatly enhanced characteristics such as water absorption (3.90%), chloride penetration (10.8 mm) and minimum acid induced weight loss (3.5%) at 56 days were obtained. Microstructural analysis showed that a denser matrix was formed because the pozzolanic activity was enhanced. In addition, RHA incorporation resulted in a decrease in energy demand, production costs, CO₂ emissions and cement use. Hence, the present results showed that RHA can be employed in the concrete sector as a potential source of income for the development of sustainable high-performance concrete. This research evaluates the technical, economic, and environmental viability of Rice Husk Ash concrete by integrating experimental data with management accounting and supply chain approaches. Laboratory results reveal that 20% cement replacement with RHA provides the highest compressive strength. At this level, material expenses decrease by 11.2% and carbon emissions drop by 24.2%, with no compromise in structural performance. For practical implementation, a 4-stage RHA management model is proposed covering husk procurement, controlled incineration and milling, quality testing per IS 456, and delivery to ready-mix concrete units. Centralized purchasing and inventory practices ensure uniform quality and minimize supply disruptions. Economic assessment was carried out using Life Cycle Costing and Activity-Based Costing, while logistics were examined for feasibility. A decision support system for RHA mix proportioning was also developed. The findings offer guidance for construction managers to adopt circular economy models by converting agricultural waste into valuable building material.
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