My Account Log in

1 option

Acoustic Emission : Fracture Detection in Structural Materials / by Valentyn Skalskyi, Zinoviy Nazarchuk, Olena Stankevych.

Springer eBooks EBA - Springer Chemistry and Material Science Collection 2022 Available online

View online
Format:
Book
Author/Creator:
Skalskyi, Valentyn, author.
Nazarchuk, Z. T. (Zinoviĭ Teodorovich), author.
Stankevych, Olena, author.
Series:
Foundations of Engineering Mechanics, 1860-6237
Language:
English
Subjects (All):
Building materials.
Materials--Fatigue.
Materials.
Materials--Analysis.
Acoustics.
Continuum mechanics.
Structural Materials.
Materials Fatigue.
Materials Characterization Technique.
Continuum Mechanics.
Local Subjects:
Structural Materials.
Materials Fatigue.
Materials Characterization Technique.
Acoustics.
Continuum Mechanics.
Physical Description:
1 online resource (231 pages)
Edition:
1st ed. 2022.
Place of Publication:
Cham : Springer International Publishing : Imprint: Springer, 2022.
Summary:
The book presents topical theoretical and experimental studies for developing advanced methods of detecting materials fracture and assessing their structural state using acoustic emission. It introduces new mathematical models characterizing the displacement fields arising from crack-like defects and establishes a new criterion for classifying different types of materials fracture based on specific parameters obtained from wavelet transforms of acoustic emission signals. The book applies this approach to experimental studies in three types of materials—fiber-reinforced composites, dental materials, and hydrogen-embrittled steels.
Contents:
Macrofracture of Structural Materials and Methods of Determining its Type
Mathematical Models for Displacement Fields Caused by the Crack in an Elastic Half-Space
Energy Criterion for Identification of the Types of Material Macrofracture
Evaluation of the Types and Mechanisms of Fracture of Composite Materials According to Energy Criteria
Ranking of Dental Materials and Orthopedic Constructions by their Tendency to Fracture
Rating of Hydrogen Damaging of Steels by Wavelet Transform of Magnetoelastic Acoustic Emission Signals.
Notes:
Includes bibliographical references.
Other Format:
Print version: Skalskyi, Valentyn Acoustic Emission
ISBN:
3-031-11291-1

The Penn Libraries is committed to describing library materials using current, accurate, and responsible language. If you discover outdated or inaccurate language, please fill out this feedback form to report it and suggest alternative language.

My Account

Shelf Request an item Bookmarks Fines and fees Settings

Guides

Using the Library Catalog Using Articles+ Library Account