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May 20, 2026Buildings0 citationsOpen Access

Life Cycle Carbon Emission Accounting of an Old Residential Community Based on Digital Technologies: A Case Study of Nanyuan Xincun, Hefei

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GHGuanjun HuangCZCan ZhouSZShaojie Zhang

Key Points

  • This study aims to create a framework for accurately accounting carbon emissions in old residential communities using advanced digital technologies.
  • Integration of life cycle assessment (LCA), BIM reverse modeling, and 3D point clouds.
  • Application of DesignBuilder simulation and inventory-based accounting for operational energy.
  • Assessment of vegetation carbon sequestration using the i-Tree Eco tool.
  • Operation and maintenance phases contribute to 82.52% of total emissions, highlighting a dominant operation-led emission pattern.
  • Annual carbon sequestration from vegetation reaches 16.95 t-CO2e/a, with trees and shrubs accounting for 92.85% of total vegetation storage.
  • Current vegetation conditions allow for sequestration that offsets 32.99% of annual landscape operation emissions.

Abstract

Global urbanization is shifting from incremental expansion to stock optimization, and old residential communities have become important spatial units for low-carbon transition. However, in existing built environments, traditional process-based inventory methods face practical constraints, including missing original drawings, complex site conditions, and severe vegetation obstruction. As a result, systematic accounting of buildings, landscapes, and natural carbon sinks remains difficult. This study integrates life cycle assessment (LCA), BIM reverse modeling, 3D point clouds, DesignBuilder simulation, inventory-based accounting, and i-Tree Eco to construct a life cycle carbon emission accounting framework for old residential communities. The framework links current-condition data reconstruction, quantity take-off, operational energy simulation, landscape inventory accounting, and vegetation carbon sequestration assessment. It is applied to Nanyuan Xincun in Hefei to quantify the community-scale carbon source–sink structure. The results show that Nanyuan Xincun presents a clear operation-led emission pattern, with the operation and maintenance phase accounting for 82.52% of total positive emissions. Within architectural engineering, operation and maintenance accounts for 82.91%, while material production accounts for 13.28%. Landscape engineering shows a more mixed structure, with operation and maintenance accounting for 52.95% and material production accounting for 36.49%. Vegetation carbon sequestration analysis shows that mature trees and shrubs are the main ecological carbon assets. Annual sequestration reaches 16.95 t-CO2e/a, and trees and shrubs contribute 92.85% of total vegetation carbon storage. Under current vegetation conditions, annual sequestration is equivalent to 32.99% of annual landscape operation emissions, indicating considerable ecological compensation potential. Based on these findings, this study proposes four optimization pathways: operational energy reduction, low-carbon material substitution, construction and demolition waste recycling, and mature tree protection. These pathways provide data support for refined carbon management and low-carbon renewal in existing communities.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/6a0d50aef03e14405aa9c9e8https://doi.org/10.3390/buildings16101988
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