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This second volume of a series dedicated to the reliability of
high-power mechatronic systems focuses specifically on issues,
testing and analysis in automotive and aerospace applications. In
the search to improve industrial competitiveness, the development
of methods and tools for the design of products is especially
pertinent in the context of cost reduction. This book proposes new
methods that simultaneously allow for a quicker design of future
mechatronic devices in the automotive and aerospace industries
while guaranteeing their increased reliability. The reliability of
these critical elements is further validated digitally through new
multi-physical and probabilistic models that could ultimately lead
to new design standards and reliable forecasting.
This first volume of a set dedicated to the reliability of
high-power mechatronic systems focuses specifically on simulation,
modeling and optimization in automotive and aerospace applications.
In the search to improve industrial competitiveness, the
development of methods and tools for the design of products is
especially pertinent in the context of cost reduction. This book
seeks to propose new methods that simultaneously allow for a
quicker design of future mechatronic devices in the automotive and
aerospace industries while guaranteeing their increased
reliability. The reliability of these critical elements is further
validated digitally through new multi-physical and probabilistic
models that could ultimately lead to new design standards and
reliable forecasting.
Applied Reliability for Industry 2 illustrates the
multidisciplinary state-of-the-art science of experimental
reliability. Many experts are now convinced that reliability is not
limited to statistical sciences. In fact, many different
disciplines interact in order to bring a product to its highest
possible level of reliability, made available through today's
technologies, developments and production methods. These three
books, of which this is the second, propose new methods for
analyzing the lifecycle of a system, enabling us to record the
development phases according to development time and levels of
complexity for its integration. Experimental reliability, as
advanced in Applied Reliability for Industry 2, examines all the
tools and testing methods used to demonstrate the reliability of
the final mechatronic system.
Applied Reliability for Industry 1 illustrates the
multidisciplinary state-of-the-art science of predictive
reliability. Many experts are now convinced that reliability is not
limited to statistical sciences. In fact, many different
disciplines interact in order to bring a product to its highest
possible level of reliability, made available through today's
technologies, developments and production methods. These three
books, of which this is the first, propose new methods for
analyzing the lifecycle of a system, enabling us to record the
development phases according to development time and levels of
complexity for its integration. Predictive reliability, as
particularly focused on in Applied Reliability for Industry 1,
examines all the engineering activities used to estimate or predict
the reliability performance of the final mechatronic system.
Applied Reliability for Industry 3 illustrates the
multidisciplinary state-of-the-art science of operational
reliability. Many experts are now convinced that reliability is not
limited to statistical sciences. In fact, many different
disciplines interact in order to bring a product to its highest
possible level of reliability, made available through today’s
technologies, developments and production methods. These three
books, of which this is the third, propose new methods for
analyzing the lifecycle of a system, enabling us to record the
development phases according to development time and levels of
complexity for its integration. Operational reliability, as
presented in Applied Reliability for Industry 3, verifies the
reliability performance of the mechatronic system in real life
through an analysis of field data.
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