The Magnetic Shape Memory Alloy Ni-Mn-Sn in Thin Films

The Magnetic Shape Memory Alloy Ni-Mn-Sn in Thin Films
Title The Magnetic Shape Memory Alloy Ni-Mn-Sn in Thin Films PDF eBook
Author Alexander Auge
Publisher
Pages
Release 2012
Genre
ISBN

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Characterization of Mechanical and Magnetic Properties of Ni-Mn-Ga Shape Memory Thin Films Deposited Onto Silicon and Alumina Substrates

Characterization of Mechanical and Magnetic Properties of Ni-Mn-Ga Shape Memory Thin Films Deposited Onto Silicon and Alumina Substrates
Title Characterization of Mechanical and Magnetic Properties of Ni-Mn-Ga Shape Memory Thin Films Deposited Onto Silicon and Alumina Substrates PDF eBook
Author Michael Hagler
Publisher
Pages 266
Release 2008
Genre Gallium alloys
ISBN

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Magnetic Shape Memory Alloys

Magnetic Shape Memory Alloys
Title Magnetic Shape Memory Alloys PDF eBook
Author Xuexi Zhang
Publisher Springer Nature
Pages 273
Release 2021-11-14
Genre Technology & Engineering
ISBN 981166336X

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This book systematically describes the fundamentals of Magnetic shape memory alloys (MSMAs), with an emphasis on low-dimensional structures such as foams, microwires and micro-particles. The respective chapters address basic concepts and theories, the fabrication of various architectures, microstructure tailoring, property optimization and cutting-edge applications. Taken together, they provide a clear understanding of the correlation between processing and the microstructural properties of MSMAs, which are illustrated in over two hundred figures and schematics. Given its scope and format, the book offers a valuable resource for a broad readership in various fields of materials science and engineering, especially for researchers, students and engineers.

Shape Memory Alloys 2017

Shape Memory Alloys 2017
Title Shape Memory Alloys 2017 PDF eBook
Author Takuo Sakon
Publisher MDPI
Pages 193
Release 2018-03-15
Genre Science
ISBN 303842773X

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This book is a printed edition of the Special Issue Shape Memory Alloys 2017" that was published in Metals

Shape Memory Alloys

Shape Memory Alloys
Title Shape Memory Alloys PDF eBook
Author Farzad Ebrahimi
Publisher BoD – Books on Demand
Pages 138
Release 2017-09-20
Genre Technology & Engineering
ISBN 9535134558

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This book is a result of contributions of experts from international scientific community working in different aspects of shape memory alloys (SMAs) and reports on the state-of-the-art research and development findings on this topic through original and innovative research studies. Through its five chapters, the reader will have access to works related to ferromagnetic SMAs, while it introduces some specific applications like development of faster SMA actuators and application of nanostructural SMAs in medical devices. The book contains up-to-date publications of leading experts, and the edition is intended to furnish valuable recent information to the professionals involved in shape memory alloys analysis and applications. The text is addressed not only to researchers but also to professional engineers, students, and other experts in a variety of disciplines, both academic and industrial, seeking to gain a better understanding of what has been done in the field recently and what kind of open problems are in this area.

Advances in Shape Memory Materials

Advances in Shape Memory Materials
Title Advances in Shape Memory Materials PDF eBook
Author Qingping Sun
Publisher Springer
Pages 245
Release 2017-03-14
Genre Technology & Engineering
ISBN 3319533061

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This book is devoted to the development of the shape memory materials and their applications. It covers many aspects of smart materials. It also describes the method on how we can obtain not only large recovery strains but also high recovery stress, energy storage and energy dissipation in applications. This volume treats the mechanical properties of shape memory alloys, shape memory polymers and the constitutive equations of the materials which are necessary to design the shape memory elements in applications. It also deals with the fatigue properties of materials, the method to design the shape memory elements, and the shape memory composites. The authors are international experts on shape memory alloys and shape memory polymers in the metallurgical, chemical, mechanical and engineering fields. The book will be of interest to graduate students, engineers, scientists and designers who are working in the field of electric and mechanical engineering, industries, medical engineering, aerospace engineering, robots, automatic machines, clothes and recycling for research, design and manufacturing.

Crystallographic Study on Ni-Mn-Sn Metamagnetic Shape Memory Alloys

Crystallographic Study on Ni-Mn-Sn Metamagnetic Shape Memory Alloys
Title Crystallographic Study on Ni-Mn-Sn Metamagnetic Shape Memory Alloys PDF eBook
Author Chunqing Lin
Publisher
Pages 0
Release 2017
Genre
ISBN

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Being a novel magnetic shape memory material, Ni-Mn-Sn based alloy systems possess multiple physical properties, such as shape memory effect of polycrystalline alloys, giant magnetocaloric effect, large magnetoresistance effect and exchange bias effect. So far, most studies have been focused on the improvement of the multifunctionalities of these alloys, but the fundamental information which is highly associated with these properties is still unclear. Thus, a thorough study on the crystal structures of martensite and austenite, microstructural and crystallographic features of martensitic transformation has been conducted in the present PhD work. The austenite of Ni50Mn37.5Sn12.5 was confirmed to possess a L21 cubic structure (Fm"3" ̅m, No.225). The lattice parameter of austenite in Ni50Mn37.5Sn12.5 is aA=5.9813 Å. The martensite possesses a four-layered orthorhombic (4O) structure (Pmma, No.51). The lattice parameters of martensite in Ni50Mn38Sn12 and Ni50Mn37.5Sn12.5 are a4O = 8.6068 Å; b4O = 5.6226 Å and c4O = 4.3728 Å, and a4O = 8.6063 Å, b4O = 5.6425 Å, and c4O = 4.3672Å, respectively. The 4O Ni-Mn-Sn martensite exhibits a hierarchically twinned microstructure. The martensite is organized into broad plates in the original austenite grain. The plates contain irregularly shaped colonies with two characteristic microstructural patterns: classical lamellar pattern and herring-bone pattern. In each colony, there are four orientation variants (A, B, C and D) and they form three types of twins (Type I, Type II and compound twin). The interfaces between the corresponding variants are in coincidence with their twinning plane K1. The interface planes of the compound twin pairs A-D and B-C can have one or two different orientations, which leads to the two microstructural patterns. The corresponding variants in the neighboring colonies within one broad plate (intra plate colonies) possess close orientations and colony boundary is curved, whereas the inter plate colony boundary is relatively straight. The Pitsch OR, specified as "{1 0 1}" A//"{2 " "2" ̅" " "1" ̅"}" 4O and "1 0 " "1" ̅"" A//"" "1" ̅" " "2" ̅" 2" 4O, was uniquely determined to be an effective OR between the cubic austenite and 4O modulated martensite. Under this OR, 24 variants can be generated within one austenite grain. Such 24 variants are organized into 6 groups and each group corresponds to a martensite colony. The finely twinned martensite structure (sandwich microstructure) is the basic microstructural constitute produced by martensitic transformation. Such a structure ensures an invariant phase interface (habit plane) for the transformation. During the transformation, martensite variants are organized into diamond shaped clusters composed of variant colonies and with wedge shaped structures at the transformation front. Each wedge is composed of two sandwich structures separating by a midrib plane {1 0 1}A. The variant pairs in each wedge should have the same twin type with either Type I or Type II relation to ensure good geometrical compatibilities of the variants at phase interface and at the midrib plane. Within the diamonds, colonies are separated by step-like boundaries with low interfacial energy that evolve into the intra plate colony boundaries and by straight boundaries that become the inter plate colony boundaries. The diamonds elongates along the direction nearly paralleled to the midrib planes of the wedges and plate shape of martensite is finally formed. Such features of the diamond structure in Ni-Mn-Sn alloys are realized by self-accommodation of transformation strains for energy minimization. The present work provides comprehensive microstructural and crystallographic information on martensite and on martensitic transforamtion of Ni-Mn-Sn alloys and it is useful for understanding their multi functionalities associated with martensitic transformation and helpful on property optimization.