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Application of a New Type of Lithium‐sulfur Battery and Reinforcement Learning in Plug-in Hybrid Electric Vehicle Energy Management by Yiming Ye; Jiangfeng Zhang; Srikanth Pilla; Apparao M. Rao; Bin Xu is a Engineering article available to read on EtoBox.
What is Application of a New Type of Lithium‐sulfur Battery and Reinforcement Learning in Plug-in Hybrid Electric Vehicle Energy Management about?
The continuous increase in vehicle ownership has caused overall energy consumption to increase rapidly. Developing new energy vehicle technologies and improving energy utilization efficiency are significant in saving energy. Plug-in hybrid electric vehicles (PHEVs) present a practical solution to the arising energy shortage concerns. However, existing battery technologies restrict PHEV application as the most popular lithium-ion battery has a relatively high capital cost and degradation during service time. This paper studies the application of a new type of lithium-sulfur (Li-S) battery with bilateral solid electrolyte interphases in the PHEV. Compared with metals such as cobalt and nickel used in conventional lithium-ion batteries, sulfur utilized in Li -S is cheaper and easier to manufacture. The high energy density of the new Li -S battery also provides a longer range for PHEVs. In this paper, a PHEV propulsion system model is introduced, which includes vehicle dynamics, engine, electric motor, and Li -S battery models. Dynamic programming is formulated as a benchmark energy management strategy to reduce energy consumption. Besides the offline global optimal benchmark from dyna
Who reads Application of a New Type of Lithium‐sulfur Battery and Reinforcement Learning in Plug-in Hybrid Electric Vehicle Energy Management?
It is typically read by researchers, students, and practitioners in Engineering.
- Author
- Yiming Ye; Jiangfeng Zhang; Srikanth Pilla; Apparao M. Rao; Bin Xu
- Publisher
- Elsevier BV
- Published
- 2023
- Language
- EN
- Field
- Engineering (Physical Sciences)