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September 18, 2025Sustainability7 citationsOpen Access

Life Cycle Assessment of Biocomposite Production in Development Stage from Coconut Fiber Utilization

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VSViviana Cecilia Soto-BarreraFBFernando Begambre-GonzálezKVKarol Edith Vellojín-Muñoz

Key Points

  • Biocomposites utilizing coconut fiber can reduce CO2 emissions by up to 7.4%, improving environmental outcomes.
  • The study evaluates six scenarios, showing that lower fiber content leads to better environmental performance without chemical treatment.
  • Life cycle assessment was conducted using cradle-to-gate methodology and key methods like IPCC 2021 and ReCiPe Midpoint.
  • The findings indicate that reducing reliance on conventional materials supports more sustainable practices, calling for broader adoption.

Abstract

Agricultural biowaste poses a major environmental challenge when improperly disposed of. An alternative to this is their utilization for producing natural fibers (NFs) to manufacture biocomposites, promoting a circular economy. However, the fact that a product is classified as renewable does not necessarily imply that its environmental performance is superior when compared to its conventional market counterpart. For this reason, this study conducted a Life Cycle Assessment (LCA) of biocomposites reinforced with coconut fiber and a polyester resin matrix, using a “cradle-to-gate” approach. Six scenarios were evaluated, grouped into S1 (2–5% fiber) and S2 (20–30% fiber), with and without chemical treatment, plus a reference scenario without fiber utilization. The IPCC 2021 GWP 100 and ReCiPe Midpoint (H) 2016 methods were applied. The results show that the scenarios without chemical treatment (RF-CCT) were environmentally more optimal, reducing CO2 emissions by up to 7.4% (RF-CCT/H) and 1.70 kg CO2-eq (RF-CCT/L) compared to conventional practices. The main reasons for these reductions are the avoidance of emissions associated with disposal, decreased reliance on conventional materials, and the omission of chemical treatment, which in turn mitigates critical impacts such as ozone depletion potential (ODP) linked to N2O emissions from fertilizers (93% contribution) and terrestrial/marine toxicity.

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Cite This Study

Soto-Barrera et al. (2025) studied this question.

synapsesocial.com/papers/68d461cb31b076d99fa612c9https://doi.org/10.3390/su17188338
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