Engineering design synthesis: understanding, approaches and tools
Gespeichert in:
Format: | Buch |
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Sprache: | English |
Veröffentlicht: |
London [u.a.]
Springer
2002
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Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis |
Beschreibung: | XXVIII, 356 S. Ill., graph. Darst. |
ISBN: | 1852334924 |
Internformat
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adam_text | Amaresh Chakrabarti (Ed)
Engineering
Design Synthesis
Understanding, Approaches and Tools
Springer
Contents
Preface v
Editor s introduction vii
Contents xvii
Contributors xxvii
Part 1: Understanding
1 Denning synthesis: on the senses and the logic of design synthesis
Norbert EM Roozenburg 3
1 1 Senses of synthesis 3
111 General meanings of synthesis and analysis 3
112 Synthesis and analysis as phases of the design process 4
113 Synthesis and analysis as functions of problem solving 6
114 Synthesis as assemblage of subsystems 7
115 Synthesis as integration of ideas 8
1 2 The logic of synthesis 9
121 Form and function 9
122 Reasoning from function to form 10
123 The pattern of reasoning of synthesis 12
124 Conclusions 16
2 Insight, design principles and systematic invention
Michael J French 19
2 1 Introduction 19
2 2 The opportunistic designer 19
221 The opportunistic approach 20
2 3 Parallels with mathematics 20
231 Poincares sieve 22
232 Visual thought 22
2 4 Insight 23
2 5 Developing insight 24
251 Sufficient insight 25
2 6 Design principles 25
261 Kinematic design (least constraint) 25
262 The small, fast principle 26
263 Matching 27
264 Prefer pivots to slides and flexures to either 27
265 Where possible, transfer complexity to the software 28
xviii Contents
2 7 Systematic synthesis 28
271 Clothes-peg example 28
2 8 Insight and systematic invention in power from sea waves 29
281 Background 29
282 An abstract view 29
283 Table of options 30
284 Embodiment 31
285 The checking of systematic design
processes-link-breaking 32
2 9 Summary 32
Appendix 2A 33
3 Synthesis and theory of knowledge: general design theory as a theory of
knowledge, and its implication to design
Yoram Reich 35
3 1 Introduction 35
3 2 The domain of chairs 36
3 3 GDT 38
331 Preliminary definitions 38
332 GDT s axioms 39
333 Ideal knowledge 40
3331 Summary of ideal knowledge 42
334 Real knowledge 42
3341 Summary of real knowledge 44
3 4 Contribution of GDT 45
341 Representation of design knowledge 45
342 Design process 46
3 5 Summary 47
4 Theory of technical systems and engineering design synthesis
Vladimir Hubka and W Ernst Eder 49
4 1 Introduction 49
4 2 Design science and the theory of TSs 50
4 3 Designing - general 56
431 Starting designing - clarifying the problem - design
specification 61
432 Designing - design procedure - novel products 62
433 Designing - design procedure - redesigned products 65
5 A knowledge operation model of synthesis
Tetsuo Tomiyama, Masaharu Yoshioka and Akira Tsumaya 67
5 1 Introduction 67
5 2 Related work 68
5 3 Design process modelling 69
54A formal model of synthesis 69
541 Mathematical preparation 71
542 Analysis versus synthesis 73
543 Multiple model-based reasoning 74
544 Function modelling 76
545A reasoning framework of design 77
Contents xix
5451 Knowledge operations in design 77
5452A hypothetical reasoning framework of design 78
5453 Modelling operations in the object-dependent
models 78
5454 Logical reasoning operations in the object
independent level workspace 79
5455 Formalising knowledge operations in design 79
5 5 The implementation strategy of the framework 79
551 Multiple model-based reasoning system 80
552 Thought-process model 80
553 Model-based abduction 80
5531 Strategy for modelling of abduction operation 80
5532 Model-based abduction 82
5533 Algorithm of model-based abduction 83
5 6 Verification of the model of synthesis 84
561 Selection of data for verification 84
562 The reference model 85
563 Verification of the knowledge operation model 85
564 Vocabulary about design 86
565 Verification through implementation of the reasoning
framework 87
5 7 Conclusions 88
Part 2: Approaches
6 Two approaches to synthesis based on the domain theory
Claus Thorp Hansen and Mogens Myrup Andreasen 93
6 1 Introduction 93
6 2 The domain theory 94
621 Systems theory 94
622 The domain theory 95
6221 The transformation domain 95
6222 The organ domain 96
6223 The part domain 97
6224 Visualising the domain theory 98
6 3 The function-means law 99
631 The function-means tree (F/M-tree) 99
6 4 Engineering design synthesis 99
641 The design object and its synthesis 100
642 Process-oriented synthesis 101
6421 Problem analysis 105
643 Artefact-oriented synthesis approach 105
6431 Utilising the F/M-tree 105
6432 Developing a product model 106
6 5 Implications and conclusion 107
7 Using the concept of functions to help synthesise solutions
Gerhard Pahl and Ken Wallace 109
7 1 Introduction 109
7 2 Functional interrelationship 110
ex Contents
7 3 Handling the concept of functions in practice 114
7 4 Inappropriate use of the concept of functions 118
7 5 Summary of the approach and its advantages 118
8 Design catalogues and their usage
Karlheinz Roth 121
8 1 Purpose of design catalogues 121
8 2 Types and structure of design catalogues 121
821 Object catalogues 121
822 Solution catalogues 123
823 Operation catalogues 125
8 3 Requirements placed on design catalogues 127
8 4 Desirable forms of design catalogue 127
8 5 Use of design catalogues 128
9 TRIZ, the Altshullerian approach to solving innovation problems
Denis Cavallucci 131
9 1 The genesis of a theory 131
911 Introduction 131
912 Altshuller: evaluation of a life dedicated to others 132
913 Opening to the West gives TRIZ the opportunity to
develop 133
9 2 An approach to classifying Altshuller s work 133
921 Introduction 133
922 Basic notions 134
923 Spotting Altshuller s original idea: the laws (or regularities)
of developing technical systems 134
9231 The static laws 134
9232 The cinematic laws 136
9233 The dynamic laws 136
9234 Summary of the laws 137
924 Case study: improving the performance of an intake
manifold [10] 137
9241 Description of the problem 137
9242 Positioning the manifold in relation to the laws of
evolution • 137
9243 Interpreting the positioning 139
9244 Findings of the study 139
925 Tools for breaking down the blockages of psychological
inertia 140
926 Problem-solving tools 141
927 ARIZ, the algorithm for applying TRIZ 141
9 3 TRIZ s contribution to integration in the design process 142
931 Using TRIZ in an approach consisting of applying a series
of tools 142
932 TRIZ as a meta-method 143
933 TRIZ as a component part of an existing method 143
934 The intuitive design model approach to methodological
integration 143
Contents
9 4 Potential development of the theory in research 144
941 Contributions to integrating TRIZ in one or more existing
methods 144
942 Contributions to the development of TRIZ itself 145
943 Contributions to other fields of activity 145
9 5 Orchestrating the work in Altshuller s wake 145
9 6 Conclusions 146
961 Industrial integration strategies 146
962 Creativity and innovation: the missing (or forgotten) link in
the design process 147
963 An asset for product design 147
Part 3: Tools
10 Synthesis of schematic descriptions in mechanical design
Karl T Ulrich and Warren P Seering 153
10 1 Introduction 153
10 1 1 What is schematic synthesis? 154
10 1 2 Schematic synthesis of SISO systems 155
10 1 3 Importance of schematic synthesis 156
10 131 Reducing complexity 157
10 132 Decoupling functional and physical issues 157
10 2 Domain description 157
10 2 1 SISO dynamic systems 157
10 2 2 Representing schematic descriptions 158
10 2 3 Classifying the behaviour of a schematic description 158
10 2 4 Specifying a problem 160
10 241 Example specification 161
10 3 Solution technique 162
10 3 1 Generating candidate descriptions 162
10 311 Concept of a power spine 162
10 312 Connecting input to output 163
10 3 2 Classifying behaviour 163
10 3 3 Modifying candidate schematic descriptions 163
10 331 Transform the candidate design to a compact
description 163
10 332 Based on domain knowledge, generate
modifications 165
10 333 Reverse compacting transformation 166
10 4 A complete example 167
10 5 Discussion 170
10 5 1 Importance and utility of technique 171
10 5 2 Completeness of the technique 171
10 5 3 Extensibility 172
10 531 Extension within dynamic systems domain 172
10 532 Extension to other domains 173
10 5 4 Computer implementation 173
10 6 Related work 174
xxii Contents
Appendix 10A 175
10A I Determining the type number from the system equations 175
10A 2 An explanation of isolated groups using bond graphs 176
11 An approach to compositional synthesis of mechanical design
concepts using computers
Amaresh Chakrabarti, Patrick Langdon, Yieng-Chieh Liu and
Thomas P Bligh 179
11 1 Objective 179
11 2 Research approach 180
11 3 Synthesis approach: representation, reasoning and example 182
11 3 1 Develop theory from known design problems and
solutions 182
11 3 2 Generate solutions to known problems and compare with
existing designs 186
11 4 Evaluation of the synthesis approach 188
11 4 1 MAS project case studies 188
11 4 2 Hands-on experiments by experienced designers 188
11 5 Further developments 190
11 5 1 Resolving the first problem: managing the number of
solutions generated 191
11 511 Improving efficiency of the synthesis procedure 191
11 512 Using additional constraints 192
11 513 Grouping solutions using similarity 192
11 5 2 Resolving the second problem: strategies for aiding
visualisation 193
11 521 Embodiment at the generic physical level 193
11 522 Three-dimensional representation of the solution
space 194
11 6 Conclusions and further work 194
12 Synthesis based on function-means trees: Schemebuilder
Rob Bracewell 199
12 1 Background 199
12 2 Key concepts of Schemebuilder 200
12 2 1 Hierarchical schematic diagrams 200
12 2 2 Scheme generation by combination of alternative
subsolutions 200
12 2 3 Function-means trees 201
12 2 4 Artificial intelligence (AI) support for design context
decomposition and recombination 201
12 2 5 Computer support for simulation and evaluation of
schemes 204
12 2 6 Bond-graph-based functional synthesis 205
12 3 Design synthesis example: telechiric hand 205
12 4 Implementation of function-means-based synthesis 209
13 Design processes and context for the support of design synthesis
Ralf-Stefan Lossack 213
13 1 Introduction and overview of the design process 213
Contents xxiii
13 2 Solution patterns 217
13 2 1 Artefact and process knowledge 217
13 3 Design working space 220
13 4 The DIICAD Entwurf design system 224
13 5 Conclusion 224
13 6 Future work 225
14 Retrieval using configuration spaces
Tamotsu Murakami 229
14 1 Introduction - 229
14 2 Mechanism library 229
14 2 1 Mechanism and configuration space 230
14 2 2 Kinematic behaviour and configuration space 231
14 2 3 Additional behavioural information description 232
14 3 Required behaviour as retrieval key 233
14 3 1 Required behaviour description 233
14 311 Timing charts of input/output motions 233
14 312 Types of input/output motion 234
14 313 Motion speed dependence 234
14 3 2 Required locus pattern generation 234
14 4 Locus pattern and configuration space matching 234
14 4 1 Locus along region boundary 235
14 411 Motion by object contact 235
14 412 Compliance 236
14 4 2 Locus along range limit 236
14 4 3 Locus through free region 237
14 4 4 Generation of entire locus from segments 237
14 4 5 Check additional conditions on motion 238
14 5 Implementation and execution examples 238
14 5 1 Mechanism library 238
14 5 2 Specifying required behaviour 239
14 5 3 Example 1: mechanism for shutter release 239
14 5 4 Example 2: mechanism in sewing machine 241
14 6 Conclusions and discussions 242
15 Creative design by analogy
Lena Qian 245
15 1 Introduction 245
15 2 Knowledge representation for design retrieval based on analogy 246
15 2 1 Structure 246
15 211 Primitive element and structural element 248
15 212 Attribute 248
15 213 Relationship 248
15 214 Operation and process 249
15 215 Static and dynamic structure 249
15 2 2 Behaviour 250
15 2 3 Function 253
15 2 4 Qualitative causal knowledge 256
15 2 5 Design prototype 257
15 3 An ABD model 258
xxiv Contents
15 3 1 Design retrieval process 259
15 3 2 Analogy elaboration process 260
15 3 3 Mapping and transference 260
15 3 4 Analogy evaluation process 263
15 4 Design support system using analogy 263
15 5 An example of designing a new door by behaviour analogy 264
15 6 Conclusion 267
16 Design patterns and creative design
Sambasiva R Bhatta and Ashok K Goel 271
16 1 Background, motivations and goals 271
16 2 MBA 272
16 2 1 SBF models of devices 273
16 2 2 Design patterns 275
16 3 Acquisition of GTMs 276
16 4 Analogical transfer based on GTMs 277
16 5 Evaluation 282
16 6 Related research 282
16 7 Conclusions 283
17 FAMING: supporting innovative design using adaptation -
a description of the approach, implementation, illustrative
example and evaluation
Boi Faltings 285
17 1 Introduction 285
17 1 1 Model-based design 286
17 1 2 Prototype-based design 287
17 1 3 Case-based design 287
17 1 4 Annotating cases with functional models 287
17 1 5 Case adaptation using SBF models 288
17 1 6 Innovation in case-based design 288
17 1 7 FAMING: an interactive design tool 289
17 2 Qualitative SBF models used in FAMING 289
17 2 1 Structure: metric diagram 290
17 2 2 Qualitative behaviour 290
17 221 Qualitative motions 290
17 222 External influences 291
17 223 Place vocabulary 291
17 224 Behaviour = envisionments of kinematic states 292
17 23A language for specifying function 292
17 231 Quantitative constraints on behaviour 294
17 3 Inverting the FBS model 294
17 3 1 Matching behaviour to functional specification 294
17 3 2 S-B inversion 295
17 4 Case adaptation 295
17 4 1 Case combination 296
17 4 2 Modification operators 297
17 4 3 Discovering and satisfying compositional constraints 298
17 5 Conclusions 299
Contents xxv
18 Transforming behavioural and physical representations of mechanical
designs
Susan Finger and James R Rinderle 303
18 1 Introduction 303
18 2 Related work 304
18 21A brief introduction to bond graphs 305
18 2 2 Representation of function and behaviour 305
18 2 3 Grammars for representation of geometry 306
18 2 4 Configuration design 307
18 3 Representation of behaviour of specifications and components 307
18 3 1 Representation of design specifications 307
18 3 2 Representation of behavioural requirements of mechanical
systems 308
18 3 3 Representation of behavioural characteristics of
components 309
18 3 4 Representation of designs 309
18 4 Transformation of specifications into physical descriptions 310
18 4 1 Behaviour-preserving transformations 310
18 4 2 Component-directed transformations 311
18 5 The shaft matrix 312
18 6 Conclusions 316
19 Automatic synthesis of both the topology and numerical parameters for
complex structures using genetic programming
John R Koza 319
19 1 Introduction 319
19 2 Genetic programming 320
19 3 Automatic synthesis of analog electrical circuits 322
19 3 1 Lowpass filter circuit 324
19 311 Preparatory steps for lowpass filter circuit 324
19 312 Results for lowpass filter circuit 326
19 3 2 Squaring computational circuit 329
19 321 Preparatory steps for squaring computational
circuit 329
19 322 Results for squaring computational circuit 329
19 4 Automatic synthesis of controllers 331
19 5 Other examples 333
19 6 Conclusions 335
Index 339
|
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spelling | Engineering design synthesis understanding, approaches and tools Amaresh Chakrabarti (ed.) London [u.a.] Springer 2002 XXVIII, 356 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Engineering design Entwurf (DE-588)4121208-3 gnd rswk-swf Technisches System (DE-588)4126276-1 gnd rswk-swf Konstruktion (DE-588)4032231-2 gnd rswk-swf Technisches Produkt (DE-588)4059262-5 gnd rswk-swf Konstruieren (DE-588)4139312-0 gnd rswk-swf Technisches System (DE-588)4126276-1 s Entwurf (DE-588)4121208-3 s Konstruktion (DE-588)4032231-2 s DE-604 Technisches Produkt (DE-588)4059262-5 s Konstruieren (DE-588)4139312-0 s Chakrabarti, Amaresh 1963- Sonstige (DE-588)121252027 oth HEBIS Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=009594999&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Engineering design synthesis understanding, approaches and tools Engineering design Entwurf (DE-588)4121208-3 gnd Technisches System (DE-588)4126276-1 gnd Konstruktion (DE-588)4032231-2 gnd Technisches Produkt (DE-588)4059262-5 gnd Konstruieren (DE-588)4139312-0 gnd |
subject_GND | (DE-588)4121208-3 (DE-588)4126276-1 (DE-588)4032231-2 (DE-588)4059262-5 (DE-588)4139312-0 |
title | Engineering design synthesis understanding, approaches and tools |
title_auth | Engineering design synthesis understanding, approaches and tools |
title_exact_search | Engineering design synthesis understanding, approaches and tools |
title_full | Engineering design synthesis understanding, approaches and tools Amaresh Chakrabarti (ed.) |
title_fullStr | Engineering design synthesis understanding, approaches and tools Amaresh Chakrabarti (ed.) |
title_full_unstemmed | Engineering design synthesis understanding, approaches and tools Amaresh Chakrabarti (ed.) |
title_short | Engineering design synthesis |
title_sort | engineering design synthesis understanding approaches and tools |
title_sub | understanding, approaches and tools |
topic | Engineering design Entwurf (DE-588)4121208-3 gnd Technisches System (DE-588)4126276-1 gnd Konstruktion (DE-588)4032231-2 gnd Technisches Produkt (DE-588)4059262-5 gnd Konstruieren (DE-588)4139312-0 gnd |
topic_facet | Engineering design Entwurf Technisches System Konstruktion Technisches Produkt Konstruieren |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=009594999&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT chakrabartiamaresh engineeringdesignsynthesisunderstandingapproachesandtools |