This hybrid setup solves the critical issue of renewable energy intermittency at an industrial volume: the 500kW wind turbines harness urban wind energy around the clock, while the solar arrays generate peak power during daylight hours, ensuring a consistent . This hybrid setup solves the critical issue of renewable energy intermittency at an industrial volume: the 500kW wind turbines harness urban wind energy around the clock, while the solar arrays generate peak power during daylight hours, ensuring a consistent . -in hybrid electric vehicles leads to the need for fast charging rates. Higher charging rates lead o high power demands, which cannot be supported by the electrical grid. In this. framework underpinning this review defines key constructs such as hybrid renewable energy systems (HRES), EV charging infrastructure, and energy management systems (EMS) [19–21]. These concepts are interrelat d, with HRES providing sustainable power, EMS optimizing energy flows, and EV charging. Parking lots are no longer just spaces for vehicle storage—they are emerging as frontiers for urban renewable energy, and SMRAAD's latest project in Wuxi brings this vision to life at scale. The 2025-completed distributed grid-connected system, featuring 500kW H-type vertical axis wind turbines. In this activity, a hybrid solar-wind powered charging station is planned to deliver electricity for the electric vehicles. The new hybrid vehicle charging station brings with it completely different sources like PV systems, wind systems, the AC delivered, batteries area unit used as a main energy. A hybrid combination of two energy supplies, namely wind power and solar power, is taking effect. We can have continuous electricity by using a hybrid energy device. The key components including wind turbines, PV modules, batteries, an inverter and other controllers.