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April 19, 2026Buildings0 citationsOpen Access

A Blockchain-Integrated IoT–BIM Platform for Real-Time Carbon Monitoring in Modular Integrated Construction

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YZYiyu ZhaoYZYaning ZhangXWXiaohan Wu

Key Points

  • This research aims to enhance carbon monitoring in modular integrated construction by integrating IoT, BIM, and blockchain technologies.
  • Developed a Blockchain-enabled IoT-BIM Platform (BIBP) for carbon monitoring.
  • Automated data capture through IoT sensors and visualized it using BIM.
  • Utilized Hyperledger Fabric blockchain for data authenticity and traceability.
  • Tested BIBP on a 15-story modular integrated construction project in Hong Kong.
  • Established a baseline carbon footprint of 949.84 kgCO2e/m2 for the construction project.
  • Identified steel and concrete as the main sources of emissions (80% of total material emissions).
  • Achieved over 20% carbon savings through specific material substitutions and transport methods.
  • Improved assessment efficiency by 92.4% with automated data acquisition.

Abstract

Modular integrated construction (MiC) is an innovative construction method that shifts on-site activities to a controlled factory environment, thereby offering sustainability benefits. However, current carbon management relies on labor-intensive manual data collection, causing delayed and inaccurate carbon accounting that increases greenwashing risks. Existing approaches lack real-time, automated, and trustworthy carbon tracking capabilities across fragmented supply chains. This study develops and validates the Blockchain-enabled IoT-BIM Platform (BIBP), which combines Internet of Things (IoT), Building Information Modeling (BIM), and blockchain for real-time carbon monitoring. IoT sensors automate data capture from construction equipment and BIM provides spatial visualization of carbon at the module and building levels. A Hyperledger Fabric blockchain ensures the authenticity, immutability, and traceability of carbon records. Validated on a 15-story MiC project in Hong Kong, BIBP established a cradle-to-end-of-construction baseline of 949.84 kgCO2e/m2, identifying steel and concrete as the primary hotspots (80% of material emissions). Real-time analytics demonstrated that combining high-volume ground granulated blast furnace slag (GGBS) concrete substitution, new energy sea–land multimodal transport, and 10% steel waste reduction achieves over 20% carbon savings. Furthermore, the BIBP automated data acquisition and calculation, improving assessment efficiency by 92.4%. The platform demonstrates the potential to transform carbon management from a static, retrospective evaluation into a proactive, data-driven monitoring process, equipping stakeholders with a tool to dynamically track emissions and make timely interventions toward carbon reduction targets.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69e472fc010ef96374d8ee0bhttps://doi.org/10.3390/buildings16081587
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