Transmotor-Based Powertrain for High-Performance Electric Vehicle
Ramin Tafazzoli Mehrjardi, Nima Farrokhzad Ershad, M. Ehsani
Abstract
Ramin Tafazzoli Mehrjardi, Nima Farrokhzad Ershad, M. Ehsani
Abstract
This article presents a Transmotor-based powertrain in order to improve the performance of the powertrain on electric vehicles. In the proposed powertrain, the maximum torque can be available at a larger speed range. This feature leads to three notable improvements that enhance the powertrain performance and efficiency. First, higher gradeability is achievable at any vehicle speed that enables maintaining the desired speed at a higher road grade. Furthermore, acceleration and deceleration (regenerative braking) are significantly improved, in comparison to the conventional powertrain, without increasing the powertrain electrical rating. Finally, the efficiency can be improved due to the effective kinetic energy recovery at higher speeds. Numerical simulations and emulation tests are presented to demonstrate the above improvements.
OpenAlex reports 22 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
This article presents a Transmotor-based powertrain in order to improve the performance of the powertrain on electric vehicles. In the proposed powertrain, the maximum torque can be available at a larger speed range. This feature leads to three notable improvements that enhance the powertrain performance and efficiency. First, higher gradeability is achievable at any vehicle speed that enables maintaining the desired speed at a higher road grade. Furthermore, acceleration and deceleration (regenerative braking) are significantly improved, in comparison to the conventional powertrain, without increasing the powertrain electrical rating. Finally, the efficiency can be improved due to the effective kinetic energy recovery at higher speeds. Numerical simulations and emulation tests are presented to demonstrate the above improvements.
Key concepts: Powertrain, Automotive engineering, Emulation, Electric vehicle, Acceleration, Torque, Range (aeronautics), Computer science