|
Books > Professional & Technical > Transport technology > Aerospace & aviation technology
This book presents the relationships between tensile damage and
fracture, fatigue hysteresis loops, stress-rupture, fatigue life
and fatigue limit stress, and stochastic loading stress.
Ceramic-matrix composites (CMCs) possess low material density
(i.e., only 1/4 - 1/3 of high-temperature alloy) and
high-temperature resistance, which can reduce cooling air and
improve structure efficiency. Understanding the failure mechanisms
and internal damage evolution represents an important step to
ensure reliability and safety of CMCs. This book investigates
damage and fracture of fiber-reinforced ceramic-matrix composites
(CMCs) subjected to stochastic loading, including: (1) tensile
damage and fracture of fiber-reinforced CMCs subjected to
stochastic loading; (2) fatigue hysteresis loops of
fiber-reinforced CMCs subjected to stochastic loading; (3) stress
rupture of fiber-reinforced CMCs with stochastic loading at
intermediate temperature; (4) fatigue life prediction of
fiber-reinforced CMCs subjected to stochastic overloading stress at
elevated temperature; and (5) fatigue limit stress prediction of
fiber-reinforced CMCs with stochastic loading. This book helps the
material scientists and engineering designers to understand and
master the damage and fracture of ceramic-matrix composites under
stochastic loading.
Product information not available.
Contemporary engineering design is heavily based on computer
simulations. Accurate, high-fidelity simulations are used not only
for design verification but, even more importantly, to adjust
parameters of the system to have it meet given performance
requirements. Unfortunately, accurate simulations are often
computationally very expensive with evaluation times as long as
hours or even days per design, making design automation using
conventional methods impractical. These and other problems can be
alleviated by the development and employment of so-called
surrogates that reliably represent the expensive, simulation-based
model of the system or device of interest but they are much more
reasonable and analytically tractable.
This volume features surrogate-based modeling and optimization
techniques, and their applications for solving difficult and
computationally expensive engineering design problems. It begins
bypresentingthe basic concepts and formulations of the
surrogate-based modeling and optimization paradigm and
thendiscusses relevant modeling techniques, optimization algorithms
and design procedures, as well as state-of-the-art developments.
The chapters are self-contained with basic concepts and
formulations along with applications and examples. The book will be
useful toresearchers in engineering and mathematics, in particular
those who employ computationally heavy simulations in their design
work.
Aircraft are becoming increasingly reliant on computing and
networking technologies, with the advent of the Internet of Things,
but this makes them vulnerable to cyber-attacks. This
multidisciplinary book is at the cross section of aircraft systems,
cybersecurity, and defence technologies. It covers the very latest
in defending military and commercial aircraft against
cyber-attacks. The interdisciplinary nature of aviation
cybersecurity and its wide-ranging impact in various arenas require
contributions of expertise from multiple disciplines to collaborate
in identifying the most feasible ways forward. This book provides
an understanding of the key technical, social and legal issues in
aviation cybersecurity, explains the range of technical challenges
involved, and proposes innovative solutions. Aviation
Cybersecurity: Foundations, principles, and applications is a
valuable resource for aviation and cybersecurity researchers and
professionals in academia, industry, and military organisations.
This book explores creative solutions to the unique challenges
inherent in crafting livable spaces in extra-terrestrial
environments. The goal is to foster a constructive dialogue between
the researchers and planners of future (space) habitats. The
authors explore the diverse concepts of the term Habitability from
the perspectives of the inhabitants as well as the planners and
social sciences. The book provides an overview of the evolution and
advancements of designed living spaces for manned space craft, as
well as analogue research and simulation facilities in extreme
environments on Earth. It highlights how various current and future
concepts of Habitability have been translated into design and which
ones are still missing. The main emphasis of this book is to
identify the important factors that will provide for well-being in
our future space environments and promote creative solutions to
achieving living spaces where humans can thrive. Selected aspects
are discussed from a socio-spatial professional background and
possible applications are illustrated. Human factors and
habitability design are important topics for all working and living
spaces. For space exploration, they are vital. While human factors
and certain habitability issues have been integrated into the
design process of manned spacecraft, there is a crucial need to
move from mere survivability to factors that support thriving. As
of today, the risk of an incompatible vehicle or habitat design has
already been identified by NASA as recognized key risk to human
health and performance in space. Habitability and human factors
will become even more important determinants for the design of
future long-term and commercial space facilities as larger and more
diverse groups occupy off-earth habitats. The book will not only
benefit individuals and organizations responsible for manned space
missions and mission simulators, but also provides relevant
information to designers of terrestrial austere environments (e.g.,
remote operational and research facilities, hospitals, prisons,
manufacturing). In addition it presents general insights on the
socio-spatial relationship which is of interest to researchers of
social sciences, engineers and architects.
This book systematically describes the concepts and principles for
multi-satellite relative motion, passive and near passive formation
designs, trajectory planning and control for fuel optimal formation
maneuvers, and formation flying maintenance control design. As
such, it provides a sound foundation for researchers and engineers
in this field to develop further theories and pursue their
implementations. Though satellite formation flying is widely
considered to be a major advance in space technology, there are few
systematic treatments of the topic in the literature. Addressing
that gap, the book offers a valuable resource for academics,
researchers, postgraduate students and practitioners in the field
of satellite science and engineering.
This book gathers the outcomes of the second ECCOMAS CM3 Conference
series on transport, which addressed the main challenges and
opportunities that computation and big data represent for transport
and mobility in the automotive, logistics, aeronautics and
marine-maritime fields. Through a series of plenary lectures and
mini-forums with lectures followed by question-and-answer sessions,
the conference explored potential solutions and innovations to
improve transport and mobility in surface and air applications. The
book seeks to answer the question of how computational research in
transport can provide innovative solutions to Green Transportation
challenges identified in the ambitious Horizon 2020 program. In
particular, the respective papers present the state of the art in
transport modeling, simulation and optimization in the fields of
maritime, aeronautics, automotive and logistics research. In
addition, the content includes two white papers on transport
challenges and prospects. Given its scope, the book will be of
interest to students, researchers, engineers and practitioners
whose work involves the implementation of Intelligent Transport
Systems (ITS) software for the optimal use of roads, including
safety and security, traffic and travel data, surface and air
traffic management, and freight logistics.
This book presents papers surrounding the extensive discussions
that took place from the 'Variational Analysis and Aerospace
Engineering' workshop held at the Ettore Majorana Foundation and
Centre for Scientific Culture in 2015. Contributions to this volume
focus on advanced mathematical methods in aerospace engineering and
industrial engineering such as computational fluid dynamics
methods, optimization methods in aerodynamics, optimum controls,
dynamic systems, the theory of structures, space missions, flight
mechanics, control theory, algebraic geometry for CAD applications,
and variational methods and applications. Advanced graduate
students, researchers, and professionals in mathematics and
engineering will find this volume useful as it illustrates current
collaborative research projects in applied mathematics and
aerospace engineering.
The third edition of Human Factors in Aviation and Aerospace is a
fully updated and expanded version of the highly successful second
edition. Written for the widespread aviation community including
students, engineers, scientists, pilots, managers, government
personnel, etc., this edition continues to offer a comprehensive
overview, including pilot performance, human factors in aircraft
design, and vehicles and systems. With new editors, this edition
adds chapters on aviator attention and perception, accident
investigations, automated systems in civil transport airplanes, and
aerospace. Multicontributed by leading professionals in the field,
this book is the ultimate resource for anyone in the aviation and
aerospace industries.
This book provides detailed insights into how space and popular
culture intersect across a broad spectrum of examples, including
cinema, music, art, arcade games, cartoons, comics, and
advertisements. This is a pertinent topic since the use of space
themes differs in different cultural contexts, and these themes can
be used to explore various aspects of the human condition and
provide a context for social commentary on politically sensitive
issues. With the use of space imagery evolving over the past sixty
years of the space age, this is a topic ripe for in-depth
exploration. The book also discusses the contrasting visions of
space from the late 19th and early 20th centuries and the reality
of today, and analyzes space vehicles and habitats in popular
depictions of space from an engineering perspective, exploring how
many of those ideas have actually been implemented in practice, and
why or why not (a case of life imitating art and vice versa). As
such, it covers a wide array of relevant and timely topics
examining intersections between space and popular culture, and
offering accounts of space and its effect on culture, language, and
storytelling from the southern regions of the world.
China Satellite Navigation Conference (CSNC 2021) Proceedings
presents selected research papers from CSNC 2021 held during
22nd-25th May, 2021 in Nanchang, China. These papers discuss the
technologies and applications of the Global Navigation Satellite
System (GNSS), and the latest progress made in the China BeiDou
System (BDS) especially. They are divided into 10 topics to match
the corresponding sessions in CSNC2021 which broadly covered key
topics in GNSS. Readers can learn about the BDS and keep abreast of
the latest advances in GNSS techniques and applications.
This book introduces a stability and control methodology named
AeroMech, capable of sizing the primary control effectors of fixed
wing subsonic to hypersonic designs of conventional and
unconventional configuration layout. Control power demands are
harmonized with static-, dynamic-, and maneuver stability
requirements, while taking the six-degree-of-freedom trim state
into account. The stability and control analysis solves the static-
and dynamic equations of motion combined with non-linear vortex
lattice aerodynamics for analysis. The true complexity of
addressing subsonic to hypersonic vehicle stability and control
during the conceptual design phase is hidden in the objective to
develop a generic (vehicle configuration independent) methodology
concept. The inclusion of geometrically asymmetric aircraft
layouts, in addition to the reasonably well-known symmetric
aircraft types, contributes significantly to the overall technical
complexity and level of abstraction. The first three chapters
describe the preparatory work invested along with the research
strategy devised, thereby placing strong emphasis on systematic and
thorough knowledge utilization. The engineering-scientific method
itself is derived throughout the second half of the book. This book
offers a unique aerospace vehicle configuration independent
(generic) methodology and mathematical algorithm. The approach
satisfies the initial technical quest: How to develop a
'configuration stability & control' methodology module for an
advanced multi-disciplinary aerospace vehicle design synthesis
environment that permits consistent aerospace vehicle design
evaluations?
The key principle of systems engineering is that an aircraft should
be considered as a whole and not as a collection of parts. Another
principle is that the requirements for the aircraft and its
subsystems emanate from a logical set of organized functions and
from economic or customer-oriented requirements as well as the
regulatory requirements for certification. The resulting process
promises to synthesize and validate the design of aircraft which
are higher in quality, better meet customer requirements and are
most economical to operate. This book is more of a how to and a why
to rather than a what to guide. It stresses systems engineering is
an integrated technical-managerial process that can be adapted
without sacrificing quality in which risk handling and management
is a major part. It explains that the systems view applies to both
the aircraft and the entire air transport system. The book
emphasizes that system engineering is not an added layer of
processes on top of the existing design processes; it is the glue
that holds all the other processes together. The readership
includes the aircraft industry, suppliers and regulatory
communities, especially technical, program and procurement
managers; systems, design and specialty engineers (human factors,
reliability, safety, etc.); students of aeronautical and systems
engineering and technical management; and government agencies such
as FAA and JAA.
This book presents a comprehensive overview of the recent advances
in the domain of optimal guidance, exploring the characteristics of
various optimal guidance algorithms and their pros and cons.
Optimal guidance is based on the concept of trajectory
optimization, which minimizes the meaningful performance index
while satisfying certain terminal constraints, and by properly
designing the cost function the guidance command can serve as a
desired pattern for a variety of mission objectives. The book
allows readers to gain a deeper understanding of how optimal
guidance law can be utilized to achieve different mission
objectives for missiles and UAVs, and also explores the physical
meaning and working principle of different new optimal guidance
laws. In practice, this information is important in ensuring
confidence in the performance and reliability of the guidance law
when implementing it in a real-world system, especially in
aerospace engineering where reliability is the first priority.
This expansive reference on the use of clean energy technologies in
the aviation industry focuses on tools and solutions for maximizing
the energy efficiency of aircrafts, airports, and other auxiliary
components of air transit. Key topics range from predicting impacts
of avionics and control systems to energy/exergy performance
analyses of flight mechanics and computational fluid dynamics. The
book includes findings both from experimental investigations and
functional extant systems, ranging from propulsion technologies for
aerospace vehicles to airport design to energy recovery systems.
Engineers, researchers and students will benefit from the broad
reach and numerous engineering examples provided.
This book demonstrates the potential of the blended wing body (BWB)
concept for significant improvement in both fuel efficiency and
noise reduction and addresses the considerable challenges raised
for control engineers because of characteristics like open-loop
instability, large flexible structure, and slow control surfaces.
This text describes state-of-the-art and novel modeling and control
design approaches for the BWB aircraft under consideration. The
expert contributors demonstrate how exceptional robust control
performance can be achieved despite such stringent design
constraints as guaranteed handling qualities, reduced vibration,
and the minimization of the aircraft's structural loads during
maneuvers and caused by turbulence. As a result, this innovative
approach allows the building of even lighter aircraft structures,
and thus results in considerable efficiency improvements per
passenger kilometer. The treatment of this large, complex,
parameter-dependent industrial control problem highlights relevant
design issues and provides a relevant case study for modeling and
control engineers in many adjacent disciplines and applications.
Modeling and Control for a Blended Wing Body Aircraft presents
research results in numeric modeling and control design for a
large, flexible, civil BWB aircraft in the pre-design stage as
developed within the EU FP7 research project ACFA 2020. It is a
useful resource for aerospace and control engineers as it shows the
complete BWB aircraft modeling and control design process, carried
out with the most recent tools and techniques available. presents
research results in numeric modeling and control design for a
large, flexible, civil BWB aircraft in the pre-design stage as
developed within the EU FP7 research project ACFA 2020. It is a
useful resource for aerospace and control engineers as it shows the
complete BWB aircraft modeling and control design process, carried
out with the most recent tools and techniques available. Advances
in Industrial Control aims to report and encourage the transfer of
technology in control engineering. The rapid development of control
technology has an impact on all areas of the control discipline.
The series offers an opportunity for researchers to present an
extended exposition of new work in all aspects of industrial
control.
This book compares the cultural politics of the U.S. space and
Antarctic programs during the Cold War. It analyzes how culturally
salient terms, especially the nationalist motif of the frontier,
were used to garner public support for these strategic initiatives
and, more generally, United States internationalism during this
period.
This edited volume includes thoroughly collected on sensing and
control for autonomous vehicles. Guidance, navigation and motion
control systems for autonomous vehicles are increasingly important
in land-based, marine and aerial operations. Autonomous underwater
vehicles may be used for pipeline inspection, light intervention
work, underwater survey and collection of oceanographic/biological
data. Autonomous unmanned aerial systems can be used in a large
number of applications such as inspection, monitoring, data
collection, surveillance, etc. At present, vehicles operate with
limited autonomy and a minimum of intelligence. There is a growing
interest for cooperative and coordinated multi-vehicle systems,
real-time re-planning, robust autonomous navigation systems and
robust autonomous control of vehicles. Unmanned vehicles with high
levels of autonomy may be used for safe and efficient collection of
environmental data, for assimilation of climate and environmental
models and to complement global satellite systems. The target
audience primarily comprises research experts in the field of
control theory, but the book may also be beneficial for graduate
students.
This book analyzes the commercial space activities and
commercialization processes of the last fifteen years and maps the
future challenges that NewSpace companies will face developing
commercial space markets. What is new and what has happened in
these markets up till now? Is there a business case for private
companies for commercial space? What are the targeted commercial
space markets? Who are the future customers for commercial space
transportation markets? How can NewSpace companies attract
investors? Can we learn lessons from traditional space industries
or other companies in other areas? In what way have the last
fifteen years made a difference in the evolution of space markets?
Is there a future for in-situ resource mining, space debris
services, in-orbit satellite servicing and sub-orbital
transportation? What are the lessons learned from ISS
commercialization? In addition the reader will find a synopsis of
several space transportation programs, commercial space markets,
future Moon and Mars missions, in-situ resource exploitation
concepts, space debris mitigation projects and sub-orbital
commercial markets. Major lessons learned are identified, related
to the attraction of first time customers and long term R&D
funding, managing technological and market risks and developing new
markets and applications.
|
|