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Circular Recovery of Organic Waste from Mining Canteens for the Production of Biofertilizers: Life Cycle Assessment and Circularity Indicators in High-Andean Regions

高地アンデス地域における鉱山食堂由来有機廃棄物の循環回収によるバイオ肥料生産:ライフサイクルアセスメントと循環性指標 (AI 翻訳)

Angel Benjamin Fernandez Canchos, José Antonio Reyes Rodríguez, Ricardo Giancarlo Gamarra Condori, Giovanni Martín Champin Luy, Berlan Rodríguez Pérez, Reinier Jiménez Borges, Yoisdel Castillo Alvarez

Fermentation📚 査読済 / ジャーナル2026-08-03#circular_economy対象セクター: mining
DOI: 10.3390/fermentation12080362
原典: https://www.mdpi.com/2311-5637/12/8/362/pdf?version=1785768457
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🤖 gxceed AI 要約

日本語

ペルー北部の高地鉱山で、食堂の有機廃棄物を乳酸発酵でバイオ肥料に変える実システムの初の一次データに基づく環境評価。ISO 14040/44に準拠したLCAと循環経済指標を組み合わせ、材料・栄養ループの閉鎖性(WVI=0.97)を示す一方、エネルギー回収は設計上ゼロ。気候影響は肥料代替クレジットが非メタン排出を上回る条件を提示するが、メタン未測定のため仮説段階。改善優先度はメタン管理より容器や電力由来と特定。

English

This study provides the first primary-data environmental characterization of a real system converting organic waste from a high-altitude mining canteen in northern Peru into biofertilizers via lactic fermentation. Combining ISO-compliant LCA with circularity indicators, it shows robust material and nutrient loop closure (WVI=0.97) despite no energy recovery (ESSR=0). The climate benefit is conditional on a narrow fugitive-methane threshold, presented as a hypothesis since methane was not measured. Key improvement levers are polypropylene containers and grid electricity, not the biological process.

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

日本の鉱山や遠隔地事業では、廃棄物の現地循環処理が求められるケースが増えており、本手法はLCAと循環指標を組み合わせた評価枠組みとして参考になる。特に、エネルギー回収を前提としない循環モデルの評価方法は、SSBJ開示での資源循環や廃棄物管理の定量化に応用可能。

In the global GX context

This paper extends circularity assessment to non-energy-recovery systems, a gap in existing biogas-centered frameworks. It offers a methodological template for LCA-based circularity evaluation that could inform ISSB-aligned disclosures on waste management and resource efficiency, particularly for extractive industries operating in remote or ecologically sensitive areas.

👥 読者別の含意

🔬研究者:Provides a methodological extension of circularity indicators to non-energy-recovery systems, with a transparent treatment of uncertainty and conditional claims.

🏢実務担当者:Offers a framework for assessing organic waste valorization in remote operations, highlighting that material and electricity inputs may dominate impacts over biological processes.

🏛政策担当者:Demonstrates the need for measuring methane in such systems to substantiate climate benefits, informing regulatory expectations for biofertilizer production from waste.

📄 Abstract(原文)

The management of organic waste in high-altitude mining poses a distinctive circularity challenge: waste is generated at sites decoupled from agricultural systems, while the same operations are legally required to revegetate the land they disturb. This study provides, to the best of our knowledge, the first primary-data environmental characterization of a real system that valorizes dining-facility organic waste from a high-altitude mining unit in northern Peru into a solid biofertilizer and a liquid biol, both applied in situ for land reclamation. Unlike methanogenic digesters, the system operates under a lactic (acidogenic) fermentation regime inoculated with effective microorganisms and does not recover biogas. A cradle-to-gate life cycle assessment (ISO 14040/14044) with Monte Carlo uncertainty propagation was combined with a well-established family of five circular economy indicators, adapted to the non-energy-recovery case by redefining the Energy Self-Sufficiency Ratio (ESSR) and the Decarbonization Circularity Indicator (DCI). The principal contribution is methodological: the framework is extended to a circularity archetype that previous, biogas-centered formulations could not represent, showing that a system can close its material and nutrient loops robustly (WVI = 0.97) while the energy loop is absent by design (ESSR = 0). The climate result is conditional and is a first-order greenhouse-gas (GHG) screening balance, not a physical carbon-sequestration claim: under the upper-bound assumption of full fertilizer substitution, the avoided fertilizer credit outweighs non-methane process emissions only below a narrow fugitive-methane threshold (≈0.32 kg CH4 per ton), a margin that narrows further once agronomic equivalence is discounted. The measured product acidity suggests that this condition is plausible, but, because methane was not measured directly, the low-emission interpretation is presented as a hypothesis requiring confirmation rather than as a demonstrated result. The environmental burden is driven by material and electricity inputs—chiefly the polypropylene containers and grid electricity—rather than by the biological process, which broadens the set of improvement priorities beyond methane management to include capital-good reuse and electricity decarbonization, without implying that methane can be neglected.

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