Fr. 135.00

The Kolsky-Hopkinson Bar Machine - Selected Topics

English · Paperback / Softback

Shipping usually within 6 to 7 weeks

Description

Read more

In this book, leading scientists share their vision on the Kolsky-Hopkinson bar technique , which is a well-established experimental technique widely used to characterize materials and structures under dynamic, impact and explosion loads. Indeed, the Kolsky-Hopkinson bar machine is not a simple experimental device. It is rather a philosophical approach to solve the problem of measuring impact events. The split Hopkinson pressure bar conventional device is mainly limited to test homogeneous ductile non-soft materials under uni-axial compression. Extending the use of this device to more versatile applications faces several challenges such as controlling the stress state within the specimen and mastering the measurement of forces and velocities at the specimen-bar interfaces and then the material properties. Thus, the topics discussed in this book mainly focused on the loading and processing parts.

List of contents

Introduction.- Part I Conventional Kolsky-Hopkinson bar machine.- Part II Specific Processing of the Kolsky-Hopkinson bar machine.- Extensions of the strain rate range and strain rate control.- Specific loadings of the Kolsky-Hopkinson bar machine.- Use of the Kolsky-Hopkinson bar machine to test specific materials and structures.

About the author

Ramzi Othman received M.S. from Ecole Polytechnique de Tunisie in 1998.  In 1999, he completed a M.S. in Structural Engineering from Ecole Centrale Paris. In 2002, he got his Ph.D. from Ecole Polytechnique (France). In 2005 he became an Associate Professor at Ecole Centrale Nantes (France). Since 2012, he has been on leave from Ecole Centrale de Nantes and working as Associate Professor in King Abdulaziz University, Jeddah, Saudi Arabia. His major research interests are characterization and modelling of the dynamic behavior of materials. He is author and co-author of more than 90 publications in refereed journals, conference proceedings and presentations.

Summary

In this book, leading scientists share their vision on the Kolsky-Hopkinson bar technique, which is a well-established experimental technique widely used to characterize materials and structures under dynamic, impact and explosion loads. Indeed, the Kolsky-Hopkinson bar machine is not a simple experimental device. It is rather a philosophical approach to solve the problem of measuring impact events. The split Hopkinson pressure bar conventional device is mainly limited to test homogeneous ductile non-soft materials under uni-axial compression. Extending the use of this device to more versatile applications faces several challenges such as controlling the stress state within the specimen and mastering the measurement of forces and velocities at the specimen-bar interfaces and then the material properties. Thus, the topics discussed in this book mainly focused on the loading and processing parts.

Product details

Assisted by Ramz Othman (Editor), Ramzi Othman (Editor)
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 01.01.2019
 
EAN 9783030101305
ISBN 978-3-0-3010130-5
No. of pages 282
Dimensions 155 mm x 16 mm x 235 mm
Weight 462 g
Illustrations XV, 282 p. 186 illus., 77 illus. in color.
Subjects Natural sciences, medicine, IT, technology > Technology > Mechanical engineering, production engineering

B, Chemistry and Materials Science, Measurement, Solid Mechanics, Characterization and Analytical Technique, Materials science, Characterization and Evaluation of Materials, Mechanics, Mechanics of solids, Mechanics, Applied, Scientific standards, measurement etc, Measurement Science and Instrumentation, Physical measurements

Customer reviews

No reviews have been written for this item yet. Write the first review and be helpful to other users when they decide on a purchase.

Write a review

Thumbs up or thumbs down? Write your own review.

For messages to CeDe.ch please use the contact form.

The input fields marked * are obligatory

By submitting this form you agree to our data privacy statement.