Title of article :
Conceptual design and operating modes comparison of parallel, series and hydro-mechanical hydraulic hybrid power train with hydraulic hybrid auxiliary system
Author/Authors :
Pakdelbonab, Sohrab Mechanical Engineering Department - Shahid Rajaee Teacher Training University - Tehran, Iran , Kazerooni, Afshin Mechanical Engineering Department - Shahid Rajaee Teacher Training University - Tehran, Iran , Payganeh, Gholamhassan Mechanical Engineering Department - Shahid Rajaee Teacher Training University - Tehran, Iran , Esfahanian, Mohsen Department of Mechanical Engineering - Isfahan University of Technology - Isfahan, Iran
Abstract :
Global restrictions on the use of fossil fuels in the transportation sector and
the commitment to rapid response to the climate change have created a
strong incentive to develop fuel-efficient and low-emission vehicle
systems. Hydraulic hybrid power train technology is one of the temporary
solutions introduced to optimize internal combustion engine (ICE)
operation and regenerate braking energy. The hydraulic hybrid power train
system (HHPS) has a higher power density than the electric one. So, it is
used in heavy vehicles, agricultural and construction machinery that need
a high-power density to accelerate or recover the braking energy. In some
trucks, such as refuses collection trucks, fire trucks and delivery trucks, a
high percentage of the ICE energy is consumed by the auxiliary systems.
In this type of trucks, the hydraulic hybrid power train systems are not very
efficient. This paper introduces a hydraulic hybrid auxiliary system
(HHAS) concept to manage the energy consumed by the auxiliary system
in refuse collection trucks. In the first part of the paper, the configurations
and operating modes of series, parallel and hydro-mechanical HHPS are
discussed and compared with the HHAS concept. In the following, the
conventional refuse collection truck model and refuse truck equipped with
HHAS model was developed in MATLAB/SINMULINK and simulated
in Tehran refuse collection truck driving cycle. The simulation results
show that by using the HHAS concept, the fuel consumption is reduced by
15 percent.
Keywords :
Refuse collection truck , Power train , Hydraulic hybrid vehicle , Auxiliary system
Journal title :
Automotive Science and Engineering