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February 8, 2026Journal of Natural Fibers4 citationsOpen Access

Review of Natural Fiber-Reinforced Compressed Earth Blocks: Toward Enhanced Performance and Environmental Sustainability

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SRSomaya RiffiEGElhem GhorbelFSFranziska Schmidt

Key Points

  • This work aims to analyze the performance of natural fiber-reinforced compressed earth blocks in terms of strength and environmental impact.
  • Conducted a comprehensive literature review based on PRISMA technique.
  • Utilized statistical data analysis with R programming.
  • Compared chemical, physical, and thermal treatment methods for fiber-matrix bonding.
  • Analyzed environmental trade-offs through Life Cycle Assessment (LCA).
  • Identified key performance factors related to fiber type and earth composition.
  • Revealed sustainability potential of natural fibers compared to cement and lime stabilizers.
  • Highlighted information gaps, including the need for standardized methods and long-term durability studies.

Abstract

Earthen construction is gaining popularity because low-carbon, locally produced, and sustainable building materials are needed. However, Compressed Earth Blocks (CEBs) still struggle with strength, water sensitivity, and durability particularly when assessed at the material scale or under insufficient stabilization and moisture-protection conditions. Due to their renewability, quantity, and ability to enhance mechanical and environmental performance, natural fibers are a viable reinforcement strategy. This work goes beyond a state-of-the-art synthesis to examine natural fiber-reinforced CEB studies quantitatively. A comprehensive literature review based-on PRISMA technique and statistical data analysis utilizing R programming associate fiber type, treatment methods, and earth composition with important performance factors. Chemical, physical, and thermal treatments are critically compared for fiber-matrix bonding, mechanical properties, and environmental trade-offs. It also compares fiber integration to cement and lime stabilizers in Life Cycle Assessment (LCA), revealing their sustainability potential. Finally, this study addresses information gaps, including the lack of standardized methods, long-term durability studies under varied climates, and suggests further research and large-scale implementation. This study contributes to the development of performance-enhanced earthen building materials with potentially reduced embodied carbon, based on environmental assessment, quantitative synthesis, and critical evaluation.

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Cite This Study

Riffi et al. (2026) studied this question.

synapsesocial.com/papers/698827570fc35cd7a8845ff4https://doi.org/10.1080/15440478.2026.2619017
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