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Efficient V2G Model on Smart Grid Power Systems Using Genetic Algorithm

机译:遗传算法高效V2G模型智能电网电力系统

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The adaptation of electric vehicles has impacted various fields, like power grid, intelligent transport system etc. Despite the benefits of these vehicles, they do have negative influence on existing network operations due to their charging strategies. To control electric vehicles in uncertain environments, planning the path and dynamic steering control can be used. Relaxation of the path is beneficial for computing censorious points across a world-wide preferable path by the data of sensors. Automated parking and driving is envisaged that it will be the base of the structure. Vehicle to grid technology is advanced by the concept of development of smart grid. Smart grid development allows two-directional energy interchange among vehicles and power grid. To overcome the environmental issues, integration of energy systems that is renewable in electric vehicles. In the upcoming era, three advancements will be made in this technology, potential of in vehicle systems, worldliness of the driver and vehicle interface, and capability of vehicles to liaise with each other. The issue of energy is still present in V2G systems while implementing or upgrading power systems. In this paper an efficient model is presented which will save energy in power systems and smart grid using Genetic Algorithm. Genetic algorithm take input from user and get better solution from trained modeled.
机译:电动车辆的改编已经影响了各种领域,如电网,智能运输系统等。尽管这些车辆的好处,但由于其充电策略,它们对现有网络运营产生负面影响。为了控制不确定环境中的电动车辆,可以使用规划路径和动态转向控制。通过传感器的数据,对路径的放松是有利于计算世界范围内的最佳路径的抗照点。设想自动停车和驾驶,这将是结构的基础。通过智能电网的发展概念推进了网格技术的车辆。智能电网开发允许车辆和电网之间的双向能量交换。克服环境问题,在电动车中可再生能源系统的整合。在即将到来的时代,将在这项技术中提出三个进步,车辆系统的潜力,驾驶员和车辆界面的世俗,以及车辆彼此联络的能力。在实施或升级电力系统时,能量问题仍然存在于V2G系统中。在本文中,提出了一种有效的模型,它将使用遗传算法节省电力系统和智能电网的能量。遗传算法从用户输入并获得更好的培训模型解决方案。

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