Low-Temperature Asphalt Design for Energy-Resilient Rural Infrastructure: A Humanitarian Engineering Experimental Assessment in Peru

Autores/as

  • Alan Garcia Mendoza Universidad Nacional de Barranca - (PE)
  • Luis Alex Alzamora De Los Godos Urcia Universidad Norbert Wiener - (PE)
  • Jully Pahola Calderón Saldaña Universidad San Martín de Porras - (PE)
  • Fiorella Sthefany Valladolid Marcos Universidad Norbert Wiener - (PE)
  • Rossina Dany De La Rosa Condormango Universidad Nacional de Trujillo - (PE)
  • Gladys Huarachi Chuquimia Universidad Nacional Jorge Basadre Grohmann - (PE)
  • Mariela Eraida Quispe Bardales Universidad San Ignacio de Loyola - (PE)

DOI:

https://doi.org/10.18687/LACCEI2026.1.1.2632

Palabras clave:

Humanitarian engineering, low-temperature asphalt, energy resilience, rural infrastructure, Marshall test.

Resumen

Energy-intensive pavement production represents a structural barrier for rural and low-resource municipalities in developing countries. This study reframes a 2021 experimental asphalt design dataset within a Humanitarian Engineering perspective, evaluating low-temperature asphalt mixtures as an energy-resilient alternative for rural infrastructure systems in Peru. A quantitative, experimental, longitudinal laboratory design was employed using 24 Marshall specimens (12 conventional hot mix asphalt and 12 low-temperature modified mixtures). Mechanical performance indicators included bulk specific gravity, air voids, flow, corrected stability, and stiffness index. Statistical analysis was conducted using one-way ANOVA to compare performance behavior across mixture types. Results demonstrated statistically significant differences in flow (F=9.523; p<0.001), corrected stability (F=9.019; p<0.001), and stiffness index (F=20.144; p<0.001), while air void content showed no significant variation (p=0.519). Although conventional asphalt exhibited higher structural rigidity, the low-temperature mixture maintained acceptable mechanical performance within national specifications while enabling reduced production temperatures. From a humanitarian engineering standpoint, these findings suggest that controlled reduction in mixture rigidity may enhance constructability, decrease energy demand, and improve feasibility of pavement production in energy-constrained rural contexts. The study proposes a resilience-based framework for asphalt design prioritizing energy efficiency, local adaptability, and environmental mitigation over maximum mechanical rigidity.

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Publicado

2026-07-27

Número

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Articles

Licencia

Licencia Creative Commons

Esta obra está bajo una Licencia Creative Commons Atribución-NoComercial-CompartirIgual 4.0 Internacional.

LACCEI conserva el copyright de todos los artículos publicados bajo los términos de su acuerdo de transferencia de copyright. Como titular del copyright, LACCEI distribuye los artículos al público bajo la Licencia Internacional Creative Commons Atribución-NoComercial-CompartirIgual 4.0 (CC BY-NC-SA 4.0).

Cómo citar

Garcia Mendoza, A., Alzamora De Los Godos Urcia, L. A., Calderón Saldaña, J. P., Valladolid Marcos, F. S., De La Rosa Condormango, R. D., Huarachi Chuquimia, G., & Quispe Bardales, M. E. (2026). Low-Temperature Asphalt Design for Energy-Resilient Rural Infrastructure: A Humanitarian Engineering Experimental Assessment in Peru. LACCEI, 1(14). https://doi.org/10.18687/LACCEI2026.1.1.2632

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