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April 23, 2026Nanomaterials0 citationsOpen Access

Study of PEG/Biochar Cementitious Cold-Bonded Aggregate for Thermal Energy Storage

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RLRongji LiCZChong ZhangYZYuechao Zhao

Key Points

  • The aim is to enhance thermal energy storage in concrete while maintaining mechanical strength by utilizing a phase change aggregate.
  • Developed a phase change aggregate via cold-bonding and vacuum impregnation methods.
  • Regulated nanoscale pore structure by adjusting biochar content to improve phase-change material loading capacity.
  • Characterized properties including crushing strength, water absorption, and microstructure analysis.
  • The phase change aggregate achieved a crushing strength over 5 MPa and latent heat of 42.84 J/g.
  • The phase change temperature was determined to be 29.17 °C, ensuring effective thermal energy storage.
  • Concrete incorporating this aggregate met structural strength requirements while reducing CO2 emissions.

Abstract

The incorporation of phase change materials in concrete is a practical strategy that holds great promise for enhancing the energy efficiency of buildings and reducing CO2 emissions. However, the direct contact between phase change materials and cement interferes with the cement hydration reaction, leading to a significant reduction in the mechanical strength of cementitious composites. To encapsulate polyethylene glycol and prevent leakage, this study developed a shape-stabilized phase change aggregate via the cold-bonding method and the vacuum impregnation method. The nanoscale pore structure of the aggregate was regulated by adjusting the biochar content to enhance the phase-change material loading capacity. The phase change aggregate was characterized by indicators including crushing strength and water absorption. Meanwhile, its microstructure, the correlations between nano-sized hydration products, chemical compatibility, and phase change properties were analyzed. The fabricated phase change aggregate has a crushing strength of over 5 MPa, latent heat of 42.84 J/g, and phase change temperature of 29.17 °C while also exhibiting good mechanical properties and thermal energy storage performance. The compressive strength of phase change concrete can meet the strength requirements for structural building material. Moreover, phase change aggregate contributed to reduced CO2 emissions during service, with favorable economic and low-carbon benefits over its service life, demonstrating good performance in both economic efficiency and CO2 emission reduction.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69e9baa885696592c86ecc0fhttps://doi.org/10.3390/nano16080492
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