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As public attention on energy conservation and emission reduction
has increased in recent years, engine idling has become a growing
concern due to its low efficiency and high emissions. Service
vehicles equipped with auxiliary systems, such as refrigeration,
air conditioning, PCs, and electronics, usually have to idle to
power them. The number of service vehicles (e.g. public-school-tour
buses, delivery-refrigerator trucks, police cars, ambulances, armed
vehicles, firefighter vehicles) is increasing significantly with
tremendous social development. Therefore, introducing new
anti-idling solutions is inevitably vital for controlling energy
unsustainability and poor air quality. There are a few books about
the idling disadvantages and anti-idling solutions. Most of them
are more concerned with different anti-idling technologies and
their effects on the society rather than elaborating an anti-idling
system design considering different applications and limitations.
There is still much room to improve existing anti-idling
technologies and products. In this book, we took a service vehicle,
refrigerator truck, as an example to demonstrate the whole process
of designing, optimizing, controlling, and developing a smart
charging system for the anti-idling purpose. The proposed system
cannot only electrify the auxiliary systems to achieve anti-idling,
but also utilize the concepts of regenerative braking and optimal
charging strategy to arrive at an optimum solution. Necessary
tools, algorithms, and methods are illustrated and the benefits of
the optimal anti-idling solution are evaluated.
The number of heavy-duty construction vehicles is increasing
significantly with growing urban development causing poor air
quality and higher emissions. The electrification of construction
vehicles is a way to mitigate the resulting air pollution and
emissions. In this book, we consider tracked bulldozers, as an
example, to demonstrate the approach and evaluate the benefits of
the electrification of construction vehicles. The book is intended
for senior undergraduate students, graduate students, and anyone
with an interest in the electrification of heavy vehicles. The book
begins with an introduction to electrification of heavy-duty
construction vehicles. The second chapter is focused on the
terramechanics and interactions between track and blades with soil.
The third chapter presents the architecture and modeling of a
series hybrid bulldozer. Finally, the fourth chapter discusses
energy management systems for electrified heavy construction
vehicles.
Thanks to the potential of reducing fuel consumption and emissions,
hybrid electric vehicles (HEVs) have been attracting more and more
attention from car manufacturers and researchers. Due to involving
two energy sources, i.e., engine and battery, the powertrain in
HEVs is a complicated electromechanical coupling system that
generates noise and vibration different from that of a traditional
vehicle. Accordingly, it is very important to explore the noise and
vibration characteristics of HEVs. In this book, a hybrid vehicle
with two motors is taken as an example, consisting of a compound
planetary gear set (CPGS) as the power-split device, to analyze the
noise and vibration characteristics. It is specifically intended
for graduates and anyone with an interest in the electrification of
full hybrid vehicles. The book begins with the research background
and significance of the HEV. The second chapter presents the
structural description and working principal of the target hybrid
vehicle. Chapter 3 highlights the noise, vibration, and harshness
(NVH) tests and corresponding analysis of the hybrid powertrain.
Chapter 4 provides transmission system parameters and meshing
stiffness calculation. Chapter 5 discusses the mathematical
modeling and analyzes torsional vibration (TV) of HEVs. Finally,
modeling of the hybrid powertrain with ADAMS is given in Chapter 6.
Ever stringent vehicle safety legislation and consumer expectations
inspire the improvement of vehicle dynamic performance, which
result in a rising number of control strategies for vehicle
dynamics that rely on driving conditions. Road profiles, as the
primary excitation source of vehicle systems, play a critical role
in vehicle dynamics and also in public transportation. Knowledge of
precise road conditions can thus be of great assistance for vehicle
companies and government departments to develop proper dynamic
control algorithms, and to fix roads in a timely manner and at the
minimum cost, respectively. As a result, developing easy-to-use and
accurate road estimation methods are of great importance in terms
of reducing the cost related to vehicles and road maintenance as
well as improving passenger comfort and handling capacity. A few
books have already been published on road profile modeling and the
influence of road unevenness on vehicle response. However, there is
still room to discuss road assessment methods based on vehicle
response and how road conditions can be used to improve vehicle
dynamics. In this book, we use several generalized vehicle models
to demonstrate the concepts, methods, and applications of vehicle
response-based road estimation algorithms. In addition, necessary
tools, algorithms, and methods are illustrated, and the benefits of
the road estimation algorithms are evaluated. Furthermore, several
case studies of controllable suspension systems to improve vehicle
vertical dynamics are presented.
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