LAPSE:2023.16125
Published Article

LAPSE:2023.16125
Available Technologies and Commercial Devices to Harvest Energy by Human Trampling in Smart Flooring Systems: A Review
March 3, 2023
Abstract
Technological innovation has increased the global demand for electrical power and energy. Accordingly, energy harvesting has become a research area of primary interest for the scientific community and companies because it constitutes a sustainable way to collect energy from various sources. In particular, kinetic energy generated from human walking or vehicle movements on smart energy floors represents a promising research topic. This paper aims to analyze the state-of-art of smart energy harvesting floors to determine the best solution to feed a lighting system and charging columns. In particular, the fundamentals of the main harvesting mechanisms applicable in this field (i.e., piezoelectric, electromagnetic, triboelectric, and relative hybrids) are discussed. Moreover, an overview of scientific works related to energy harvesting floors is presented, focusing on the architectures of the developed tiles, the transduction mechanism, and the output performances. Finally, a survey of the commercial energy harvesting floors proposed by companies and startups is reported. From the carried-out analysis, we concluded that the piezoelectric transduction mechanism represents the optimal solution for designing smart energy floors, given their compactness, high efficiency, and absence of moving parts.
Technological innovation has increased the global demand for electrical power and energy. Accordingly, energy harvesting has become a research area of primary interest for the scientific community and companies because it constitutes a sustainable way to collect energy from various sources. In particular, kinetic energy generated from human walking or vehicle movements on smart energy floors represents a promising research topic. This paper aims to analyze the state-of-art of smart energy harvesting floors to determine the best solution to feed a lighting system and charging columns. In particular, the fundamentals of the main harvesting mechanisms applicable in this field (i.e., piezoelectric, electromagnetic, triboelectric, and relative hybrids) are discussed. Moreover, an overview of scientific works related to energy harvesting floors is presented, focusing on the architectures of the developed tiles, the transduction mechanism, and the output performances. Finally, a survey of the commercial energy harvesting floors proposed by companies and startups is reported. From the carried-out analysis, we concluded that the piezoelectric transduction mechanism represents the optimal solution for designing smart energy floors, given their compactness, high efficiency, and absence of moving parts.
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Keywords
electromagnetic mechanism, energy harvesting, piezoelectric mechanism, rectifiers, signal regulation systems, smart energy floors, triboelectric mechanism, wearable technology
Subject
Suggested Citation
Visconti P, Bagordo L, Velázquez R, Cafagna D, De Fazio R. Available Technologies and Commercial Devices to Harvest Energy by Human Trampling in Smart Flooring Systems: A Review. (2023). LAPSE:2023.16125
Author Affiliations
Visconti P: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy; Facultad de Ingeniería, Universidad Panamericana, Aguascalientes 20290, Mexico [ORCID]
Bagordo L: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy
Velázquez R: Facultad de Ingeniería, Universidad Panamericana, Aguascalientes 20290, Mexico [ORCID]
Cafagna D: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy
De Fazio R: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy; Facultad de Ingeniería, Universidad Panamericana, Aguascalientes 20290, Mexico [ORCID]
Bagordo L: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy
Velázquez R: Facultad de Ingeniería, Universidad Panamericana, Aguascalientes 20290, Mexico [ORCID]
Cafagna D: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy
De Fazio R: Department of Innovation Engineering, University of Salento, 73100 Lecce, Italy; Facultad de Ingeniería, Universidad Panamericana, Aguascalientes 20290, Mexico [ORCID]
Journal Name
Energies
Volume
15
Issue
2
First Page
432
Year
2022
Publication Date
2022-01-07
ISSN
1996-1073
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Original Submission
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PII: en15020432, Publication Type: Review
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LAPSE:2023.16125
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https://doi.org/10.3390/en15020432
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Mar 3, 2023
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