病院建物のライフサイクル炭素排出とカーボンニュートラル経路:中国深センからのエビデンス
Life-Cycle Carbon Emissions and Carbon-Neutrality Pathways of Hospital Buildings: Evidence from Shenzhen, China (原題)
Jing Bai, Lijia Fan, Yangxue Ding, Jianchun Wang, Kai Chen, Huabo Duan
🤖 gxceed AI 要約
日本語
深センの総合病院を対象に、LCAに基づくライフサイクル炭素排出評価フレームワークを構築。運用段階が排出の約88%を占め、電力が94%を占めることを特定。LMDI分解とLEAPシナリオ分析により、2060年までに68%削減可能な経路を示した。
English
This study develops a life-cycle carbon assessment framework for hospital buildings, using a Shenzhen hospital as a case. Operational emissions dominate (88%), with electricity accounting for 94%. LMDI and LEAP analyses identify drivers and show a 68% reduction pathway by 2060, emphasizing coordinated building and energy system decarbonization.
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
日本では、病院などの公共施設の脱炭素化が重要課題であり、SSBJ開示や自治体のゼロカーボン施策に資する。本研究成果は、建物のLCA評価手法や部門別排出ホットスポットの特定方法を提供し、日本の医療施設の排出削減計画に示唆を与える。
In the global GX context
Globally, this study contributes to the growing literature on life-cycle carbon assessment of public buildings, particularly hospitals, which are energy-intensive. The methodological framework combining LCA, LMDI, and LEAP can inform decarbonization strategies for healthcare infrastructure, aligning with ISSB and CSRD disclosure requirements for building-related emissions.
👥 読者別の含意
🔬研究者:Provides a comprehensive LCA framework and scenario analysis for hospital buildings, useful for comparative studies and methodology refinement.
🏢実務担当者:Identifies operational hotspots (HVAC, diagnostic departments) and quantifies reduction potential, aiding facility managers in prioritizing energy efficiency measures.
🏛政策担当者:Highlights the need for coordinated policies on building energy efficiency, healthcare infrastructure planning, and energy system decarbonization to achieve carbon neutrality.
📄 Abstract(原文)
Hospital buildings (HBs) are among the most energy-intensive public buildings, yet their life-cycle carbon characteristics, emission drivers, and long-term mitigation potential remain insufficiently quantified. This study establishes a comprehensive life-cycle carbon assessment framework for HBs based on life cycle assessment (LCA), using a Grade-A tertiary hospital in Shenzhen, China, as a case study. The framework quantifies carbon emissions across the materialization, operation, and demolition stages, and estimates operational emissions from public hospital buildings at the city scale. Logarithmic Mean Divisia Index (LMDI) decomposition and Long-range Energy Alternatives Planning (LEAP) modeling were subsequently applied to identify historical drivers and evaluate future mitigation pathways. The results show that the case hospital generated approximately 0.57 Mt CO2e of gross life-cycle carbon emissions over a 50-year service life, with the operational stage dominating approximately 88% of net emissions. Electricity consumption accounted for 94% of operational energy-related emissions, while HVAC systems and the Diagnostic departments were identified as major carbon hotspots. At the city scale, the gross operational emissions of 73 public hospitals in Shenzhen were estimated at approximately 0.74 Mt CO2e in 2020 within the defined accounting boundary. For the broader citywide hospital sector, LMDI analysis revealed that annual operational emissions increased from approximately 0.25 Mt CO2e in 2006 to 0.91 Mt CO2e in 2020, primarily driven by healthcare service demand and hospital infrastructure expansion, whereas the declining operational carbon emission coefficient provided a partial offset. LEAP scenario analysis further demonstrated that net operational emissions peaked in 2050 under BS and in 2030 under SI and SII. Under SIII, emissions declined continuously from the 2020 base-year level to approximately 0.29 Mt CO2e in 2060, representing a reduction of approximately 68%. These findings highlight the necessity of coordinate building energy optimization, healthcare infrastructure development, and energy system decarbonization for low-carbon transformation of hospital buildings.
🔗 Provenance — このレコードを発見したソース
- openalex https://doi.org/10.3390/buildings16163271first seen 2026-08-19 04:38:50
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