Battery-electric rail vehicles are a sustainable alternative for diesel-powered vehicles on tracks without catenary. However, the energy demand to heat and cool the cabin limits the vehicle range, and the applied synthetic refrigerants are environmentally harmful. Therefore, this paper studies how energy demand and load on the battery in battery-electric rail vehicles can be reduced using heat pumps with natural refrigerants and efficient thermal management. A heat pump and thermal car body model are developed and validated, which calculate the energy demand in battery-electric rail vehicles. In these models, an optimized thermal management strategy is implemented, which changes the cabin set-point temperature based on catenary availability. For a two-car battery-electric rail vehicle in the climate zone II of Central Europe, the annual thermal energy demand is up to 110 MWh. The application of a heat pump with R290 (propane) can reduce the annual electrical energy demand for heating and cooling by up to 55%. The load on the battery can be mitigated further with the optimized thermal management strategy, reducing the equivalent full cycles by 3%. Overall, the heat pump operation and efficient thermal management strategy lead to higher vehicle range and flexibility in daily operation, increasing the acceptance of battery-electric rail vehicles.
The rapid growth of electric vehicles (EVs) has transformed the transportation sector by reducing dependence on fossil
fuels and minimizing greenhouse gas emissions. However, the reliability, safety, and efficiency of EVs strongly depend on
effective thermal management. Electric vehicle subsystems such as lithium-ion b...
A. B. Akhade· International Journal for Re...· 0 citations
As new energy vehicles develop toward higher energy density, higher power output, ultra-fast charging, and operation over a wide temperature range, thermal management has become a critical factor affecting vehicle safety, service life, driving range, and overall vehicle efficiency. This paper systematically reviews the...
Yun-Ze Liu· Applied and Computational En...· 0 citations
: To address the cooling and preheating requirements of traction batteries in pure electric vehicles, this study proposes an integrated thermal management system coupling the refrigerant, battery, cabin heating, and motor/power-electronics cooling circuits. The system enables indirect natural cooling, chiller-assisted...
Battery thermal management is no longer a secondary subsystem in electric vehicles; it directly affects charging capability, usable energy, ageing, safety, and auxiliary energy consumption. This focused review compares the principal cooling approaches used for lithium-ion battery packs, including air cooling, indirect...
Cao Đức Thanh, Toan Khanh Nguyen· International Journal of Fut...· 0 citations
Electric vehicles (EVs) have become an essential component of the global drive towards sustainable development due to their low carbon emissions and high efficiency, increasing demands for reliable thermal-electrical safety in lithium-ion Power Battery Packs. However, traditional single-point thermistor sensing cannot...
Si-Tong Man· European Conference on Elect...· 0 citations
Electric vehicles (EVs) rely heavily on lithium-ion batteries, whose temperature strongly affects performance, ageing, efficiency and safety. Heat is generated during battery charging and discharging, and excessive temperature rise can accelerate degradation and increase safety risks. This research presents a case stud...
Honey Dehariya· International Journal For Mu...· 0 citations
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