Robert L. Mott (USA University of Dayton), Joseph A. Untener (USA University of Dayton)
	
		
	Applied Strength of Materials
Robert L. Mott (USA University of Dayton), Joseph A. Untener (USA University of Dayton)
Applied Strength of Materials
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An established best seller in Engineering Technology programs, the seventh edition of Applied Strength of Materials continues to provide comprehensive coverage of the mechanics of materials. Focusing on active learning, and consistently reinforcing key concepts, the book is designed to aid students in their first course on strength of materials.
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					An established best seller in Engineering Technology programs, the seventh edition of Applied Strength of Materials continues to provide comprehensive coverage of the mechanics of materials. Focusing on active learning, and consistently reinforcing key concepts, the book is designed to aid students in their first course on strength of materials.				
				Produktdetails
					- Produktdetails
 - Verlag: Taylor & Francis Ltd
 - 7 ed
 - Seitenzahl: 1172
 - Erscheinungstermin: 5. Juli 2021
 - Englisch
 - Abmessung: 165mm x 242mm x 64mm
 - Gewicht: 2062g
 - ISBN-13: 9780367820787
 - ISBN-10: 0367820781
 - Artikelnr.: 62265710
 
- Herstellerkennzeichnung
 - Libri GmbH
 - Europaallee 1
 - 36244 Bad Hersfeld
 - gpsr@libri.de
 
- Verlag: Taylor & Francis Ltd
 - 7 ed
 - Seitenzahl: 1172
 - Erscheinungstermin: 5. Juli 2021
 - Englisch
 - Abmessung: 165mm x 242mm x 64mm
 - Gewicht: 2062g
 - ISBN-13: 9780367820787
 - ISBN-10: 0367820781
 - Artikelnr.: 62265710
 
- Herstellerkennzeichnung
 - Libri GmbH
 - Europaallee 1
 - 36244 Bad Hersfeld
 - gpsr@libri.de
 
Robert L. Mott is professor emeritus of engineering technology at the University of Dayton. He is a member of ASEE, SME, and ASME. He is a Fellow of ASEE and a recipient of the ASEE James H. McGraw Award, Frederick J. Berger Award, and the Archie Higdon Distinguished Educator Award (From Applied Mechanics Division). He is a recipient of the SME Education Award. He holds the Bachelor of Mechanical Engineering degree from General Motors Institute (now Kettering University) and the Master of Science in Mechanical Engineering from Purdue University. His industry experience includes General Motors Corporation, consulting for several companies, and serving as an expert witness on numerous legal cases. He is the author of three textbooks: Applied Fluid Mechanics 7th ed. (co-authored with Joseph A. Untener) and Machine Elements in Mechanical Design 6th ed., published by Pearson/Prentice-Hall; Applied Strength of Materials 6th ed. (co-authored with Joseph A. Untener) with CRC Press. Joseph A. Untener, P.E. is a professor of engineering technology at the University of Dayton. He is a member of ASEE, SME, and ASME. He holds the Bachelor of Mechanical Engineering degree from General Motors Institute (now Kettering University) and the Master of Science in Industrial Administration from Purdue University. He has worked on the design and implementation of manufacturing equipment at General Motors, and served as an engineering consultant for many other companies. He teaches courses in Mechanical Engineering Technology at UD. He has co-authored two textbooks with Robert L. Mott: Applied Fluid Mechanics 7th ed. published by Pearson/Prentice-Hall, and Applied Strength of Materials 6th ed. with CRC Press.
	1. Basic Concepts in Strength of Materials 2. Design Properties of
Materials 3. Direct Stress, Deformation, and Design 4. Design for Direct
Shear, Torsional Shear, and Torsional Deformation 5. Shearing Forces and
Bending Moments in Beams 6. Centroids and Moments of Inertia of Areas 7.
Stress due to Bending 8. Shearing Stresses in Beams 9. Deflection of Beams
10. Combined Stresses 11. Columns 12. Pressure Vessels 13. Connections 14.
Thermal Effects and Elements of More than One Material
	Materials 3. Direct Stress, Deformation, and Design 4. Design for Direct
Shear, Torsional Shear, and Torsional Deformation 5. Shearing Forces and
Bending Moments in Beams 6. Centroids and Moments of Inertia of Areas 7.
Stress due to Bending 8. Shearing Stresses in Beams 9. Deflection of Beams
10. Combined Stresses 11. Columns 12. Pressure Vessels 13. Connections 14.
Thermal Effects and Elements of More than One Material
1. Basic Concepts in Strength of Materials 2. Design Properties of
Materials 3. Direct Stress, Deformation, and Design 4. Design for Direct
Shear, Torsional Shear, and Torsional Deformation 5. Shearing Forces and
Bending Moments in Beams 6. Centroids and Moments of Inertia of Areas 7.
Stress due to Bending 8. Shearing Stresses in Beams 9. Deflection of Beams
10. Combined Stresses 11. Columns 12. Pressure Vessels 13. Connections 14.
Thermal Effects and Elements of More than One Material
				Materials 3. Direct Stress, Deformation, and Design 4. Design for Direct
Shear, Torsional Shear, and Torsional Deformation 5. Shearing Forces and
Bending Moments in Beams 6. Centroids and Moments of Inertia of Areas 7.
Stress due to Bending 8. Shearing Stresses in Beams 9. Deflection of Beams
10. Combined Stresses 11. Columns 12. Pressure Vessels 13. Connections 14.
Thermal Effects and Elements of More than One Material







