Engineering Mechanics: Dynamics
Nelson Engineering (Publisher)
2nd Edition
Published on 10. December 1998
Book
Hardback
672 pages
978-0-534-95742-1 (ISBN)
Description
This second volume of Pytel/Kiusalaas's two-volume series teaches students the basic mechanical behaviour of materials in motion (dynamics), while developing their mastery of engineering methods of analyzing and solving problems. It is accompanied by a second book by Pytel/Kiusalaas, "Engineering Mechanics: Statics 2/e" for the preceding statics course. It is also available, with "Statics 2/e", in a one-volume combined edition. Traditionally, books for the statics and dynamics courses (such as Beer/Johnston) require students simply to plug problem data into standardized mathematical formulas, and then compute an answer, without thinking through the problem beforehand. Pytel and Kiusalaas reject this plug-and-chug approach. In sample problems throughout the book, the authors direct students to identify the number of unknowns and independent equations in the problem first, before they attempt to calculate an answer.
More details
Edition
2nd Revised edition
Language
English
Place of publication
Florence, KY
United States
Publishing group
Cengage Learning, Inc
Target group
College/higher education
Professional and scholarly
Edition type
Revised edition
Illustrations
index
Dimensions
Height: 267 mm
Width: 210 mm
Weight
1338 gr
ISBN-13
978-0-534-95742-1 (9780534957421)
Copyright in bibliographic data is held by Nielsen Book Services Limited or its licensors: all rights reserved.
Schweitzer Classification
Other editions
Previous edition
Andrew Pytel | Jaan Kiusalaas
Engineering Mechanics
Software
02/1994
Longman
€62.20
Article exhausted; check for reprint
Content
Introduction to dynamics; dynamics of a particle - rectangular co-ordinates; dynamics of a particle - curvilinear co-ordinates; work-energy and impulse-momentum principles for a particle; dynamics of particle dystems; planar kinematics of rigid bodies; planar kinematics of rigid bodies - force-mass-acceleration method; planar kinematics of rigid bodies - work-energy and impulse-momentum methods; rigid-body dynamics in three dimensions; vibrations. Appendices: proof of the relative velocity equation for rigid-body motion; numerical differentiation; mass moments and products of inertia.