Surface Engineering Foundational Concepts Techniques And Applications


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Surface Engineering - Foundational Concepts, Techniques and Applications


Surface Engineering - Foundational Concepts, Techniques and Applications

Author:

language: en

Publisher: BoD – Books on Demand

Release Date: 2025-07-02


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Surface Engineering - Foundational Concepts, Techniques and Applications provides a cutting-edge exploration of advanced surface modification technologies and their critical role in enhancing material performance across industries. As industrial demands grow for components that can withstand extreme conditions, such as high temperatures, corrosive environments, and heavy wear, surface engineering emerges as a vital solution to improve durability, efficiency, and sustainability. This book explores key methods, including laser surface treatment, plasma modification, and ion implantation, while addressing real-world challenges in the aerospace, automotive, energy, and manufacturing sectors. Bridging theory and practice, it offers insights into friction reduction, corrosion protection, and hybrid material joining, equipping researchers and engineers with actionable strategies to extend component lifespans and optimize industrial processes. A must-read for professionals in materials science, mechanical engineering, and tribology, this volume combines foundational knowledge with innovative applications, making it an essential reference for advancing surface technology in modern industry.

Concrete Surface Engineering


Concrete Surface Engineering

Author: Benoit Bissonnette

language: en

Publisher: CRC Press

Release Date: 2018-10-09


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Applying any material to an existing concrete surface intrinsically entails the development of a bond. Considering the ever increasing importance of concrete repair and protection, which imply the creation of an interface between two materials, an improved knowledge of concrete surface characteristics is paramount. Surface engineering, which has evolved from the world of metallurgy, addresses all surface-related considerations, notably adhesion. It provides a fundamental understanding of what will make the contact between two materials effective or not, allowing for interactions of variable intensity. It also comes with a variety of scientific tools for characterizing the quality of the substrate, the properties of the new material layer and their interface. In the case of concrete surface treatment, this is especially important for achieving lasting results. This book addresses the essentials of concrete surface engineering in view of a wide variety of concrete surface treatments, from protective coatings to repairs. It provides a leading-edge source of information for practicing engineers, architects, repair specialists, and researchers on the following topics: Surface engineering principles applied to concrete Methods and techniques for assessing concrete surface characteristics Fundamentals of adhesion between concrete and surface repairs/treatments Compatibility requirements for concrete surface repairs/treatments Review of surface preparation techniques available for concrete Achievement and appraisal of bond between existing concrete and surface repairs/treatments Benoît Bissonnette is professor of civil engineering at Laval University in Quebec City, Canada. Luc Courard is professor of building materials at the University of Liège in Belgium. Andrzej Garbacz is professor of building materials engineering in the Department of Building Materials Engineering at the Warsaw University of Technology in Poland.

Fast Radial Basis Functions for Engineering Applications


Fast Radial Basis Functions for Engineering Applications

Author: Marco Evangelos Biancolini

language: en

Publisher: Springer

Release Date: 2018-03-29


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This book presents the first “How To” guide to the use of radial basis functions (RBF). It provides a clear vision of their potential, an overview of ready-for-use computational tools and precise guidelines to implement new engineering applications of RBF. Radial basis functions (RBF) are a mathematical tool mature enough for useful engineering applications. Their mathematical foundation is well established and the tool has proven to be effective in many fields, as the mathematical framework can be adapted in several ways. A candidate application can be faced considering the features of RBF: multidimensional space (including 2D and 3D), numerous radial functions available, global and compact support, interpolation/regression. This great flexibility makes RBF attractive – and their great potential has only been partially discovered. This is because of the difficulty in taking a first step toward RBF as they are not commonly part of engineers’ cultural background, but also due to the numerical complexity of RBF problems that scales up very quickly with the number of RBF centers. Fast RBF algorithms are available to alleviate this and high-performance computing (HPC) can provide further aid. Nevertheless, a consolidated tradition in using RBF in engineering applications is still missing and the beginner can be confused by the literature, which in many cases is presented with language and symbolisms familiar to mathematicians but which can be cryptic for engineers. The book is divided in two main sections. The first covers the foundations of RBF, the tools available for their quick implementation and guidelines for facing new challenges; the second part is a collection of practical RBF applications in engineering, covering several topics, including response surface interpolation in n-dimensional spaces, mapping of magnetic loads, mapping of pressure loads, up-scaling of flow fields, stress/strain analysis by experimental displacement fields, implicit surfaces, mesh to cad deformation, mesh morphing for crack propagation in 3D, ice and snow accretion using computational fluid dynamics (CFD) data, shape optimization for external aerodynamics, and use of adjoint data for surface sculpting. For each application, the complete path is clearly and consistently exposed using the systematic approach defined in the first section.