Energy Harvesting from Moving Vehicles: A Compressed-Air-Based Hybrid System for Electricity Generation
DOI:
https://doi.org/10.53724/lrd/v9n4.5Keywords:
Energy harvesting, pneumatic turbine, sustainable electricity generation, compressed air storage, renewable energy systems, vehicle-induced energy, smart road infrastructure, hybrid power technology, kinetic energy conversionAbstract
The rapid increase in vehicular population and the growing demand for clean, renewable energy have highlighted the need for innovative technologies capable of harvesting wasted mechanical energy. This study explores a novel compressed-air-based hybrid system designed to capture and convert kinetic energy from moving vehicles into electrical power. The proposed mechanism operates through an embedded pressure-responsive platform integrated into road surfaces. As vehicles pass over the surface, downward force drives a pneumatic compression assembly that stores pressurized air in reinforced cylinders. The stored compressed air is subsequently released through an air turbine coupled with an electric generator, converting pneumatic energy into usable electrical output. Experimental simulations and prototype analysis demonstrate that even moderate traffic flow can generate meaningful energy output, particularly in urban, industrial, highway, and toll-plaza environments. The system offers advantages such as low maintenance, modular installation, environmental sustainability, and integration with smart-grid infrastructure. The findings indicate that compressed-air energy harvesting from vehicular motion is technically feasible and economically viable as a supplementary renewable energy solution. Further optimization in material design, turbine efficiency, and pressure management can enhance long-term performance and scalability. This research contributes to the advancement of sustainable road infrastructure and supports the global transition to green energy systems.
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