LEADER 05317nam 2200637Ia 450 001 9911006704203321 005 20200520144314.0 010 $a1-281-79590-9 010 $a9786611795900 010 $a0-08-050914-2 010 $a0-585-47066-9 035 $a(CKB)111087027779238 035 $a(EBL)404635 035 $a(OCoLC)437245591 035 $a(SSID)ssj0000182550 035 $a(PQKBManifestationID)12056494 035 $a(PQKBTitleCode)TC0000182550 035 $a(PQKBWorkID)10171999 035 $a(PQKB)11232524 035 $a(MiAaPQ)EBC404635 035 $a(EXLCZ)99111087027779238 100 $a20000623d1999 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aIntroduction to engineering design $emodelling, synthesis and problem solving strategies /$fAndrew Samuel, John Weir 210 $aOxford ;$aBoston $cButterworth-Heinemann$d1999 215 $a1 online resource (425 p.) 300 $aDescription based upon print version of record. 311 $a0-7506-4282-3 320 $aIncludes bibliographical references and index. 327 $aFront Cover; Introduction to Engineering Design: Modelling, Synthesis and Problem Solving Strategies; Copyright Page; CONTENTS; Acknowledgement; Commonly used symbols and design terminology; Preface : The need for this book; PART 1: MODELLING AND SYNTHESIS; Chapter 1. Introducing modelling and synthesis for structural integrity; 1.1 Structural integrity and the nature of failure; 1.2 Units, estimation and things we expect you to know; Case example 1.1: Dolphin enclosure; Case example 1.2: A Christmas tale; 1.3 Structural distillation; Case example 1.3: Pliers; Case example 1.4: Multigrips 327 $aCase example 1.5: Paper clipCase example 1.6: Scissors; 1.4 Assignment on Structural distillation; 1.5 Solutions to exercises; 1.6 Assignment in modelling: Rural power distribution system; Chapter 2. Design against failure; 2.1 Introducing engineering materials and modes of failure; 2.2 Material selection; 2.3 Design for static loading, introducing failure predictors and factors of safety; 2.4 Assignment in design for structural integrity :Airline service table; 2.5 Design for dynamic loading (fatigue); 2.6 Assignment on design to resist fatigue failure; 2.7 Design for contact loading 327 $a2.8 Chapter SummaryChapter 3. Design synthesis of some generic engineering components; 3.1 Shafts: bending and torsion; 3.2 Assignment on shaft design; 3.3 Mechanical springs: bending and torsion; 3.4 Columns: axial loading and static instability; 3.5 Assignment on column design; 3.6 Pressure vessels: internal pressure; 3.7 Assignment on pressure vessel design; Chapter 4. Design of mechanical connections; 4.1 The nature of mechanical connections; 4.2 Bolted joints and screws: design for clamping contact; 4.3 Pinned joints and shear connectors; 4.4 Welded joints 327 $a4.5 Assignment on bolted and welded jointsChapter 5. Review: Structural integrity of engineering systems; 5.1 Designing engineering systems: the 'big picture'; 5.2 Some 'radical new theories' in engineering design; 5.3 Review questions; 5.4 Design assignments; 5.5 Some cautionary notes; PART 2: PROBLEM SOLVING STRATEGIES: AN ENGINEERING CULTURE; Chapter 6. The evolution of problems; 6.1 Cultural development of the designer; 6.2 Design problem solving; 6.3 Evolution and enformulation of design problems; Case example 6.1: Level crossing problem; Case example 6.2: Portable water heater 327 $a6.4 The design process6.5 Generating ideas (solutions); 6.6 Generic barriers to idea generation; 6.7 Evaluating designs and decision support systems; Case example 6.3: Site for a power station; 6.8 Decision making strategies; Case example 6.4: Design of a washing machine; Case example 6.5: proposal for a new processing plant; Case example 6.6: Automobile horn; Case example 6.7: Electric power distribution; Case example 6.8: Wind load on chimney; Case example 6.9: Heat-exchanger design; 6.9 Assignment on problem evolution and enformulation: Bicycle Security 327 $a6.10 A brief note about technical reporting 330 $aIntroduction to Engineering Design is a completely novel text covering the basic elements of engineering design for structural integrity. Some of the most important concepts that students must grasp are those relating to 'design thinking' and reasoning, and not just those that relate to simple theoretical and analytical approaches. This is what will enable them to get to grips with *practical* design problems, and the starting point is thinking about problems in a 'deconstructionist' sense.By analysing design problems as sophisticated systems made up of simpler constituents, and evol 606 $aEngineering design 606 $aIndustrial design 615 0$aEngineering design. 615 0$aIndustrial design. 676 $a620.0042 676 $a620/.0042 21 676 $a620.0042 700 $aSamuel$b A. 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