Engineering analysis of smart material systems:
Gespeichert in:
1. Verfasser: | |
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Hoboken, N.J.
Wiley
2007
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Schlagworte: | |
Online-Zugang: | Table of contents only Contributor biographical information Publisher description Inhaltsverzeichnis |
Beschreibung: | Includes bibliographical references (p. 545-552) and index |
Beschreibung: | XIV, 556 S. Ill., graph. Darst. |
ISBN: | 0471684775 9780471684770 |
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245 | 1 | 0 | |a Engineering analysis of smart material systems |c Donald J. Leo |
264 | 1 | |a Hoboken, N.J. |b Wiley |c 2007 | |
300 | |a XIV, 556 S. |b Ill., graph. Darst. | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
500 | |a Includes bibliographical references (p. 545-552) and index | ||
650 | 4 | |a Smart materials | |
650 | 4 | |a Electronic apparatus and appliances | |
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adam_text | ENGINEERING ANALYSIS OF SMART MATERIAL SYSTEMS DONALD J. LEO DEPARTMENT
OF MECHANICAL ENGINEERING VIRGINIA POLYTECHNIC INSTITUTE AND STATE
UNIVERSITY BLACKSBURG, VIRGINIA CENTENNIAL 3ICENTENNIAL JOHN WILEY &
SONS, INC. CONTENTS PREFACE XIII 1 INTRODUCTION TO SMART MATERIAL
SYSTEMS 1 1.1 TYPES OF SMART MATERIALS, 2 1.2 HISTORICAL OVERVIEW OF
PIEZOELECTRIC MATERIALS, SHAPE MEMORY ALLOYS, AND ELECTROACTIVE
POLYMERS, 5 1.3 RECENT APPLICATIONS OF SMART MATERIALS AND SMART
MATERIAL SYSTEMS, 6 1.4 ADDITIONAL TYPES OF SMART MATERIALS, 11 1.5
SMART MATERIAL PROPERTIES, 12 1.6 ORGANIZATION OF THE BOOK, 16 1.7
SUGGESTED COURSE OUTLINES, 19 1.8 UNITS, EXAMPLES, AND NOMENCLATURE, 20
PROBLEMS, 22 NOTES, 22 2 MODELING MECHANICAL AND ELECTRICAL SYSTEMS 24
2.1 FUNDAMENTAL RELATIONSHIPS IN MECHANICS AND ELECTROSTATICS, 24 2.1.1
MECHANICS OF MATERIALS, 25 2.1.2 LINEAR MECHANICAL CONSTITUTIVE
RELATIONSHIPS, 32 2.1.3 ELECTROSTATICS, 35 2.1.4 ELECTRONIC CONSTITUTIVE
PROPERTIES OF CONDUCTING AND INSULATING MATERIALS, 43 2.2 WORK AND
ENERGY METHODS, 48 2.2.1 MECHANICAL WORK, 48 2.2.2 ELECTRICAL WORK, 54
2.3 BASIC MECHANICAL AND ELECTRICAL ELEMENTS, 56 2.3.1 AXIALLY LOADED
BARS, 56 2.3.2 BENDING BEAMS, 58 VII VIII CONTENTS 2.3.3 CAPACITORS, 64
2.3.4 SUMMARY, 66 2.4 ENERGY-BASED MODELING METHODS, 67 2.4.1
VARIATIONAL MOTION, 68 2.5 VARIATIONAL PRINCIPLE OF SYSTEMS IN STATIC
EQUILIBRIUM, 70 2.5.1 GENERALIZED STATE VARIABLES, 72 2.6 VARIATIONAL
PRINCIPLE OF DYNAMIC SYSTEMS, 78 2.7 CHAPTER SUMMARY, 84 PROBLEMS, 85
NOTES, 89 3 MATHEMATICAL REPRESENTATIONS OF SMART MATERIAL SYSTEMS 91
3.1 ALGEBRAIC EQUATIONS FOR SYSTEMS IN STATIC EQUILIBRIUM, 91 3.2
SECOND-ORDER MODELS OF DYNAMIC SYSTEMS, 92 3.3 FIRST-ORDER MODELS OF
DYNAMIC SYSTEMS, 97 3.3.1 TRANSFORMATION OF SECOND-ORDER MODELS TO
FIRST-ORDER FORM, 98 3.3.2 OUTPUT EQUATIONS FOR STATE VARIABLE MODELS,
99 3.4 INPUT-OUTPUT MODELS AND FREQUENCY RESPONSE, 101 3.4.1 FREQUENCY
RESPONSE, 103 3.5 IMPEDANCE AND ADMITTANCE MODELS, 109 3.5.1 SYSTEM
IMPEDANCE MODELS AND TERMINAL CONSTRAINTS, 113 3.6 CHAPTER SUMMARY, 118
PROBLEMS, 118 NOTES, 121 4 PIEZOELECTRIC MATERIALS 122 4.1
ELECTROMECHANICAL COUPLING IN PIEZOELECTRIC DEVICES: ONE-DIMENSIONAL
MODEL, 122 4.1.1 DIRECT PIEZOELECTRIC EFFECT, 122 4.1.2 CONVERSE EFFECT,
124 4.2 PHYSICAL BASIS FOR ELECTROMECHANICAL COUPLING IN PIEZOELECTRIC
MATERIALS, 126 4.2.1 MANUFACTURING OF PIEZOELECTRIC MATERIALS, 127 4.2.2
EFFECT OF MECHANICAL AND ELECTRICAL BOUNDARY CONDITIONS, 131 4.2.3
INTERPRETATION OF THE PIEZOELECTRIC COUPLING COEFFICIENT, 133 CONTENTS
IX 4.3 CONSTITUTIVE EQUATIONS FOR LINEAR PIEZOELECTRIC MATERIAL, 135
4.3.1 COMPACT NOTATION FOR PIEZOELECTRIC CONSTITUTIVE EQUATIONS, 137 4.4
COMMON OPERATING MODES OF A PIEZOELECTRIC TRANSDUCER, 141 4.4.1 33
OPERATING MODE, 142 4.4.2 TRANSDUCER EQUATIONS FOR A 33 PIEZOELECTRIC
DEVICE, 147 4.4.3 PIEZOELECTRIC STACK ACTUATOR, 150 4.4.4 PIEZOELECTRIC
STACK ACTUATING A LINEAR ELASTIC LOAD, 152 4.5 DYNAMIC FORCE AND MOTION
SENSING, 157 4.6 31 OPERATING MODE OF A PIEZOELECTRIC DEVICE, 160 4.6.1
EXTENSIONAL 31 PIEZOELECTRIC DEVICES, 162 4.6.2 BENDING 31 PIEZOELECTRIC
DEVICES, 166 4.6.3 TRANSDUCER EQUATIONS FOR A PIEZOELECTRIC BIMORPH, 172
4.6.4 PIEZOELECTRIC BIMORPHS INCLUDING SUBSTRATE EFFECTS, 175 4.7
TRANSDUCER COMPARISON, 178 4.7.1 ENERGY COMPARISONS, 182 4.8
ELECTROSTRICTIVE MATERIALS, 184 4.8.1 ONE-DIMENSIONAL ANALYSIS, 186
4.8.2 POLARIZATION-BASED MODELS OF ELECTROSTRICTION, 188 4.8.3
CONSTITUTIVE MODELING, 192 4.8.4 HARMONIE RESPONSE OF ELECTROSTRICTIVE
MATERIALS, 196 4.9 CHAPTER SUMMARY, 199 PROBLEMS, 200 NOTES, 203 5
PIEZOELECTRIC MATERIAL SYSTEMS 205 5.1 DERIVATION OF THE PIEZOELECTRIC
CONSTITUTIVE RELATIONSHIPS, 205 5.1.1 ALTERNATIVE ENERGY FORMS AND
TRANSFORMATION OF THE ENERGY FUNCTIONS, 208 5.1.2 DEVELOPMENT OF THE
ENERGY FUNCTIONS, 210 5.1.3 TRANSFORMATION OF THE LINEAR CONSTITUTIVE
RELATIONSHIPS, 212 5.2 APPROXIMATION MEFHODS FOR STATIC ANALYSIS OF
PIEZOLECTRIC MATERIAL SYSTEMS, 217 5.2.1 GENERAL SOLUTION FOR FREE
DEFLECTION AND BLOCKED FORCE, 221 5.3 PIEZOELECTRIC BEAMS, 223 5.3.1
CANTILEVERED BIMORPHS, 223 5.3.2 PINNED-PINNED BIMORPHS, 227 X CONTENTS
5.4 PIEZOELECTRIC MATERIAL SYSTEMS: DYNAMIC ANALYSIS, 232 5.4.1 GENERAL
SOLUTION, 233 5.5 SPATIAL FILTERING AND MODAL FILTERS IN PIEZOELECTRIC
MATERIAL SYSTEMS, 235 5.5.1 MODAL FILTERS, 239 5.6 DYNAMIC RESPONSE OF
PIEZOELECTRIC BEAMS, 241 5.6.1 CANTILEVERED PIEZOELECTRIC BEAM, 249
5.6.2 GENERALIZED COUPLING COEFFICIENTS, 263 5.6.3 STRUCTURAL DAMPING,
264 5.7 PIEZOELECTRIC PLATES, 268 5.7.1 STATIC ANALYSIS OF PIEZOELECTRIC
PLATES, 269 5.7.2 DYNAMIC ANALYSIS OF PIEZOELECTRIC PLATES, 281 5.8
CHAPTER SUMMARY, 289 PROBLEMS, 290 NOTES, 297 6 SHAPE MEMORY ALLOYS 298
6.1 PROPERTIES OF THERMALLY ACTIVATED SHAPE MEMORY MATERIALS, 298 6.2
PHYSICAL BASIS FOR SHAPE MEMORY PROPERTIES, 300 6.3 CONSTITUTIVE
MODELING, 302 6.3.1 ONE-DIMENSIONAL CONSTITUTIVE MODEL, 302 6.3.2
MODELING THE SHAPE MEMORY EFFECT, 307 6.3.3 MODELING THE PSEUDOELASTIC
EFFECT, 311 6.4 MULTIVARIANT CONSTITUTIVE MODEL, 320 6.5 ACTUATION
MODELS OF SHAPE MEMORY ALLOYS, 326 6.5.1 FREE STRAIN RECOVERY, 327 6.5.2
RESTRAINED RECOVERY, 327 6.5.3 CONTROLLED RECOVERY, 329 6.6 ELECTRICAL
ACTIVATION OF SHAPE MEMORY ALLOYS, 330 6.7 DYNAMIC MODELING OF SHAPE
MEMORY ALLOYS FOR ELECTRICAL ACTUATION, 335 6.8 CHAPTER SUMMARY, 341
PROBLEMS, 342 NOTES, 345 7 ELECTROACTIVE POLYMER MATERIALS 346 7.1
FUNDAMENTAL PROPERTIES OF POLYMERS, 347 7.1.1 CLASSIFICATION OF
ELECTROACTIVE POLYMERS, 349 CONTENTS XI 7.2 DIELECTRIC ELASTOMERS, 355
7.3 CONDUCTING POLYMER ACTUATORS, 362 7.3.1 PROPERTIES OF CONDUCTING
POLYMER ACTUATORS, 363 7.3.2 TRANSDUCER MODELS OF CONDUCTING POLYMERS,
367 7.4 IONOMERIC POLYMER TRANSDUCERS, 369 7.4.1 INPUT-OUTPUT TRANSDUCER
MODELS, 369 7.4.2 ACTUATOR AND SENSOR EQUATIONS, 375 7.4.3 MATERIAL
PROPERTIES OF IONOMERIC POLYMER TRANSDUCERS, 377 7.5 CHAPTER SUMMARY,
382 PROBLEMS, 383 NOTES, 384 8 MOTION CONTROL APPLICATIONS 385 8.1
MECHANICALLY LEVERAGED PIEZOELECTRIC ACTUATORS, 386 8.2 POSITION CONTROL
OF PIEZOELECTRIC MATERIALS, 391 8.2.1 PROPORTIONAL-DERIVATIVE CONTROL,
392 8.2.2 PROPORTIONAL-INTEGRAL-DERIVATIVE CONTROL, 396 8.3
FREQUENCY-LEVERAGED PIEZOELECTRIC ACTUATORS, 402 8.4 ELECTROACTIVE
POLYMERS, 409 8.4.1 MOTION CONTROL USING IONOMERS, 409 8.5 CHAPTER
SUMMARY, 412 PROBLEMS, 413 NOTES, 414 9 PASSIVE AND SEMIACTIVE DAMPING
416 9.1 PASSIVE DAMPING, 416 9.2 PIEZOELECTRIC SHUNTS, 419 9.2.1
INDUCTIVE-RESISTIVE SHUNTS, 425 9.2.2 COMPARISON OF SHUNT TECHNIQUES,
431 9.3 MULTIMODE SHUNT TECHNIQUES, 432 9.4 SEMIACTIVE DAMPING METHODS,
440 9.4.1 SYSTEM NORMS FOR PERFORMANCE DEFINITION, 441 9.4.2 ADAPTIVE
SHUNT NETWORKS, 443 9.4.3 PRACTICAL CONSIDERATIONS FOR ADAPTIVE SHUNT
NETWORKS, 447 9.5 SWITCHED-STATE ABSORBERS AND DAMPERS, 448 9.6 PASSIVE
DAMPING USING SHAPE MEMORY ALLOY WIRES, 453 XII CONTENTS 9.6.1 PASSIVE
DAMPING VIA THE PSEUDOELASTIC EFFECT, 454 9.6.2 PARAMETRIC STUDY OF
SHAPE MEMORY ALLOY PASSIVE DAMPING, 460 9.7 CHAPTER SUMMARY, 464
PROBLEMS, 465 NOTES, 466 10 ACTIVE VIBRATION CONTROL 467 10.1
SECOND-ORDER MODELS FOR VIBRATION CONTROL, 467 10.1.1 OUTPUT FEEDBACK,
468 10.2 ACTIVE VIBRATION CONTROL EXAMPLE, 471 10.3 DYNAMIC OUTPUT
FEEDBACK, 475 10.3.1 PIEZOELECTRIC MATERIAL SYSTEMS WITH DYNAMIC OUTPUT
FEEDBACK, 480 10.3.2 SELF-SENSING ACTUATION, 483 10.4 DISTRIBUTED
SENSING, 486 10.5 STATE-SPACE CONTROL METHODOLOGIES, 488 10.5.1
TRANSFORMATION TO FIRST-ORDER FORM, 488 10.5.2 FULL-STATE FEEDBACK, 491
10.5.3 OPTIMAL FULL-STATE FEEDBACK: LINEAR QUADRATIC REGULATOR PROBLEM,
496 10.5.4 STATE ESTIMATION, 505 10.5.5 ESTIMATOR DESIGN, 507 10.6
CHAPTER SUMMARY, 508 PROBLEMS, 509 NOTES, 510 11 POWER ANALYSIS FOR
SMART MATERIAL SYSTEMS 511 11.1 ELECTRICAL POWER FOR RESISTIVE AND
CAPACITIVE ELEMENTS, 511 11.2 POWER AMPLIFIER ANALYSIS, 520 11.2.1
LINEAR POWER AMPLIFIERS, 520 11.2.2 DESIGN OF LINEAR POWER AMPLIFIERS,
524 11.2.3 SWITCHING AND REGENERATIVE POWER AMPLIFIERS, 530 11.3 ENERGY
HARVESTING, 533 11.4 CHAPTER SUMMARY, 542 PROBLEMS, 543 NOTES, 544
REFERENCES INDEX 545 553
|
adam_txt |
ENGINEERING ANALYSIS OF SMART MATERIAL SYSTEMS DONALD J. LEO DEPARTMENT
OF MECHANICAL ENGINEERING VIRGINIA POLYTECHNIC INSTITUTE AND STATE
UNIVERSITY BLACKSBURG, VIRGINIA CENTENNIAL 3ICENTENNIAL JOHN WILEY &
SONS, INC. CONTENTS PREFACE XIII 1 INTRODUCTION TO SMART MATERIAL
SYSTEMS 1 1.1 TYPES OF SMART MATERIALS, 2 1.2 HISTORICAL OVERVIEW OF
PIEZOELECTRIC MATERIALS, SHAPE MEMORY ALLOYS, AND ELECTROACTIVE
POLYMERS, 5 1.3 RECENT APPLICATIONS OF SMART MATERIALS AND SMART
MATERIAL SYSTEMS, 6 1.4 ADDITIONAL TYPES OF SMART MATERIALS, 11 1.5
SMART MATERIAL PROPERTIES, 12 1.6 ORGANIZATION OF THE BOOK, 16 1.7
SUGGESTED COURSE OUTLINES, 19 1.8 UNITS, EXAMPLES, AND NOMENCLATURE, 20
PROBLEMS, 22 NOTES, 22 2 MODELING MECHANICAL AND ELECTRICAL SYSTEMS 24
2.1 FUNDAMENTAL RELATIONSHIPS IN MECHANICS AND ELECTROSTATICS, 24 2.1.1
MECHANICS OF MATERIALS, 25 2.1.2 LINEAR MECHANICAL CONSTITUTIVE
RELATIONSHIPS, 32 2.1.3 ELECTROSTATICS, 35 2.1.4 ELECTRONIC CONSTITUTIVE
PROPERTIES OF CONDUCTING AND INSULATING MATERIALS, 43 2.2 WORK AND
ENERGY METHODS, 48 2.2.1 MECHANICAL WORK, 48 2.2.2 ELECTRICAL WORK, 54
2.3 BASIC MECHANICAL AND ELECTRICAL ELEMENTS, 56 2.3.1 AXIALLY LOADED
BARS, 56 2.3.2 BENDING BEAMS, 58 VII VIII CONTENTS 2.3.3 CAPACITORS, 64
2.3.4 SUMMARY, 66 2.4 ENERGY-BASED MODELING METHODS, 67 2.4.1
VARIATIONAL MOTION, 68 2.5 VARIATIONAL PRINCIPLE OF SYSTEMS IN STATIC
EQUILIBRIUM, 70 2.5.1 GENERALIZED STATE VARIABLES, 72 2.6 VARIATIONAL
PRINCIPLE OF DYNAMIC SYSTEMS, 78 2.7 CHAPTER SUMMARY, 84 PROBLEMS, 85
NOTES, 89 3 MATHEMATICAL REPRESENTATIONS OF SMART MATERIAL SYSTEMS 91
3.1 ALGEBRAIC EQUATIONS FOR SYSTEMS IN STATIC EQUILIBRIUM, 91 3.2
SECOND-ORDER MODELS OF DYNAMIC SYSTEMS, 92 3.3 FIRST-ORDER MODELS OF
DYNAMIC SYSTEMS, 97 3.3.1 TRANSFORMATION OF SECOND-ORDER MODELS TO
FIRST-ORDER FORM, 98 3.3.2 OUTPUT EQUATIONS FOR STATE VARIABLE MODELS,
99 3.4 INPUT-OUTPUT MODELS AND FREQUENCY RESPONSE, 101 3.4.1 FREQUENCY
RESPONSE, 103 3.5 IMPEDANCE AND ADMITTANCE MODELS, 109 3.5.1 SYSTEM
IMPEDANCE MODELS AND TERMINAL CONSTRAINTS, 113 3.6 CHAPTER SUMMARY, 118
PROBLEMS, 118 NOTES, 121 4 PIEZOELECTRIC MATERIALS 122 4.1
ELECTROMECHANICAL COUPLING IN PIEZOELECTRIC DEVICES: ONE-DIMENSIONAL
MODEL, 122 4.1.1 DIRECT PIEZOELECTRIC EFFECT, 122 4.1.2 CONVERSE EFFECT,
124 4.2 PHYSICAL BASIS FOR ELECTROMECHANICAL COUPLING IN PIEZOELECTRIC
MATERIALS, 126 4.2.1 MANUFACTURING OF PIEZOELECTRIC MATERIALS, 127 4.2.2
EFFECT OF MECHANICAL AND ELECTRICAL BOUNDARY CONDITIONS, 131 4.2.3
INTERPRETATION OF THE PIEZOELECTRIC COUPLING COEFFICIENT, 133 CONTENTS
IX 4.3 CONSTITUTIVE EQUATIONS FOR LINEAR PIEZOELECTRIC MATERIAL, 135
4.3.1 COMPACT NOTATION FOR PIEZOELECTRIC CONSTITUTIVE EQUATIONS, 137 4.4
COMMON OPERATING MODES OF A PIEZOELECTRIC TRANSDUCER, 141 4.4.1 33
OPERATING MODE, 142 4.4.2 TRANSDUCER EQUATIONS FOR A 33 PIEZOELECTRIC
DEVICE, 147 4.4.3 PIEZOELECTRIC STACK ACTUATOR, 150 4.4.4 PIEZOELECTRIC
STACK ACTUATING A LINEAR ELASTIC LOAD, 152 4.5 DYNAMIC FORCE AND MOTION
SENSING, 157 4.6 31 OPERATING MODE OF A PIEZOELECTRIC DEVICE, 160 4.6.1
EXTENSIONAL 31 PIEZOELECTRIC DEVICES, 162 4.6.2 BENDING 31 PIEZOELECTRIC
DEVICES, 166 4.6.3 TRANSDUCER EQUATIONS FOR A PIEZOELECTRIC BIMORPH, 172
4.6.4 PIEZOELECTRIC BIMORPHS INCLUDING SUBSTRATE EFFECTS, 175 4.7
TRANSDUCER COMPARISON, 178 4.7.1 ENERGY COMPARISONS, 182 4.8
ELECTROSTRICTIVE MATERIALS, 184 4.8.1 ONE-DIMENSIONAL ANALYSIS, 186
4.8.2 POLARIZATION-BASED MODELS OF ELECTROSTRICTION, 188 4.8.3
CONSTITUTIVE MODELING, 192 4.8.4 HARMONIE RESPONSE OF ELECTROSTRICTIVE
MATERIALS, 196 4.9 CHAPTER SUMMARY, 199 PROBLEMS, 200 NOTES, 203 5
PIEZOELECTRIC MATERIAL SYSTEMS 205 5.1 DERIVATION OF THE PIEZOELECTRIC
CONSTITUTIVE RELATIONSHIPS, 205 5.1.1 ALTERNATIVE ENERGY FORMS AND
TRANSFORMATION OF THE ENERGY FUNCTIONS, 208 5.1.2 DEVELOPMENT OF THE
ENERGY FUNCTIONS, 210 5.1.3 TRANSFORMATION OF THE LINEAR CONSTITUTIVE
RELATIONSHIPS, 212 5.2 APPROXIMATION MEFHODS FOR STATIC ANALYSIS OF
PIEZOLECTRIC MATERIAL SYSTEMS, 217 5.2.1 GENERAL SOLUTION FOR FREE
DEFLECTION AND BLOCKED FORCE, 221 5.3 PIEZOELECTRIC BEAMS, 223 5.3.1
CANTILEVERED BIMORPHS, 223 5.3.2 PINNED-PINNED BIMORPHS, 227 X CONTENTS
5.4 PIEZOELECTRIC MATERIAL SYSTEMS: DYNAMIC ANALYSIS, 232 5.4.1 GENERAL
SOLUTION, 233 5.5 SPATIAL FILTERING AND MODAL FILTERS IN PIEZOELECTRIC
MATERIAL SYSTEMS, 235 5.5.1 MODAL FILTERS, 239 5.6 DYNAMIC RESPONSE OF
PIEZOELECTRIC BEAMS, 241 5.6.1 CANTILEVERED PIEZOELECTRIC BEAM, 249
5.6.2 GENERALIZED COUPLING COEFFICIENTS, 263 5.6.3 STRUCTURAL DAMPING,
264 5.7 PIEZOELECTRIC PLATES, 268 5.7.1 STATIC ANALYSIS OF PIEZOELECTRIC
PLATES, 269 5.7.2 DYNAMIC ANALYSIS OF PIEZOELECTRIC PLATES, 281 5.8
CHAPTER SUMMARY, 289 PROBLEMS, 290 NOTES, 297 6 SHAPE MEMORY ALLOYS 298
6.1 PROPERTIES OF THERMALLY ACTIVATED SHAPE MEMORY MATERIALS, 298 6.2
PHYSICAL BASIS FOR SHAPE MEMORY PROPERTIES, 300 6.3 CONSTITUTIVE
MODELING, 302 6.3.1 ONE-DIMENSIONAL CONSTITUTIVE MODEL, 302 6.3.2
MODELING THE SHAPE MEMORY EFFECT, 307 6.3.3 MODELING THE PSEUDOELASTIC
EFFECT, 311 6.4 MULTIVARIANT CONSTITUTIVE MODEL, 320 6.5 ACTUATION
MODELS OF SHAPE MEMORY ALLOYS, 326 6.5.1 FREE STRAIN RECOVERY, 327 6.5.2
RESTRAINED RECOVERY, 327 6.5.3 CONTROLLED RECOVERY, 329 6.6 ELECTRICAL
ACTIVATION OF SHAPE MEMORY ALLOYS, 330 6.7 DYNAMIC MODELING OF SHAPE
MEMORY ALLOYS FOR ELECTRICAL ACTUATION, 335 6.8 CHAPTER SUMMARY, 341
PROBLEMS, 342 NOTES, 345 7 ELECTROACTIVE POLYMER MATERIALS 346 7.1
FUNDAMENTAL PROPERTIES OF POLYMERS, 347 7.1.1 CLASSIFICATION OF
ELECTROACTIVE POLYMERS, 349 CONTENTS XI 7.2 DIELECTRIC ELASTOMERS, 355
7.3 CONDUCTING POLYMER ACTUATORS, 362 7.3.1 PROPERTIES OF CONDUCTING
POLYMER ACTUATORS, 363 7.3.2 TRANSDUCER MODELS OF CONDUCTING POLYMERS,
367 7.4 IONOMERIC POLYMER TRANSDUCERS, 369 7.4.1 INPUT-OUTPUT TRANSDUCER
MODELS, 369 7.4.2 ACTUATOR AND SENSOR EQUATIONS, 375 7.4.3 MATERIAL
PROPERTIES OF IONOMERIC POLYMER TRANSDUCERS, 377 7.5 CHAPTER SUMMARY,
382 PROBLEMS, 383 NOTES, 384 8 MOTION CONTROL APPLICATIONS 385 8.1
MECHANICALLY LEVERAGED PIEZOELECTRIC ACTUATORS, 386 8.2 POSITION CONTROL
OF PIEZOELECTRIC MATERIALS, 391 8.2.1 PROPORTIONAL-DERIVATIVE CONTROL,
392 8.2.2 PROPORTIONAL-INTEGRAL-DERIVATIVE CONTROL, 396 8.3
FREQUENCY-LEVERAGED PIEZOELECTRIC ACTUATORS, 402 8.4 ELECTROACTIVE
POLYMERS, 409 8.4.1 MOTION CONTROL USING IONOMERS, 409 8.5 CHAPTER
SUMMARY, 412 PROBLEMS, 413 NOTES, 414 9 PASSIVE AND SEMIACTIVE DAMPING
416 9.1 PASSIVE DAMPING, 416 9.2 PIEZOELECTRIC SHUNTS, 419 9.2.1
INDUCTIVE-RESISTIVE SHUNTS, 425 9.2.2 COMPARISON OF SHUNT TECHNIQUES,
431 9.3 MULTIMODE SHUNT TECHNIQUES, 432 9.4 SEMIACTIVE DAMPING METHODS,
440 9.4.1 SYSTEM NORMS FOR PERFORMANCE DEFINITION, 441 9.4.2 ADAPTIVE
SHUNT NETWORKS, 443 9.4.3 PRACTICAL CONSIDERATIONS FOR ADAPTIVE SHUNT
NETWORKS, 447 9.5 SWITCHED-STATE ABSORBERS AND DAMPERS, 448 9.6 PASSIVE
DAMPING USING SHAPE MEMORY ALLOY WIRES, 453 XII CONTENTS 9.6.1 PASSIVE
DAMPING VIA THE PSEUDOELASTIC EFFECT, 454 9.6.2 PARAMETRIC STUDY OF
SHAPE MEMORY ALLOY PASSIVE DAMPING, 460 9.7 CHAPTER SUMMARY, 464
PROBLEMS, 465 NOTES, 466 10 ACTIVE VIBRATION CONTROL 467 10.1
SECOND-ORDER MODELS FOR VIBRATION CONTROL, 467 10.1.1 OUTPUT FEEDBACK,
468 10.2 ACTIVE VIBRATION CONTROL EXAMPLE, 471 10.3 DYNAMIC OUTPUT
FEEDBACK, 475 10.3.1 PIEZOELECTRIC MATERIAL SYSTEMS WITH DYNAMIC OUTPUT
FEEDBACK, 480 10.3.2 SELF-SENSING ACTUATION, 483 10.4 DISTRIBUTED
SENSING, 486 10.5 STATE-SPACE CONTROL METHODOLOGIES, 488 10.5.1
TRANSFORMATION TO FIRST-ORDER FORM, 488 10.5.2 FULL-STATE FEEDBACK, 491
10.5.3 OPTIMAL FULL-STATE FEEDBACK: LINEAR QUADRATIC REGULATOR PROBLEM,
496 10.5.4 STATE ESTIMATION, 505 10.5.5 ESTIMATOR DESIGN, 507 10.6
CHAPTER SUMMARY, 508 PROBLEMS, 509 NOTES, 510 11 POWER ANALYSIS FOR
SMART MATERIAL SYSTEMS 511 11.1 ELECTRICAL POWER FOR RESISTIVE AND
CAPACITIVE ELEMENTS, 511 11.2 POWER AMPLIFIER ANALYSIS, 520 11.2.1
LINEAR POWER AMPLIFIERS, 520 11.2.2 DESIGN OF LINEAR POWER AMPLIFIERS,
524 11.2.3 SWITCHING AND REGENERATIVE POWER AMPLIFIERS, 530 11.3 ENERGY
HARVESTING, 533 11.4 CHAPTER SUMMARY, 542 PROBLEMS, 543 NOTES, 544
REFERENCES INDEX 545 553 |
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author | Leo, Donald J. |
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author_sort | Leo, Donald J. |
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callnumber-subject | TA - General and Civil Engineering |
classification_rvk | UQ 8050 |
ctrlnum | (OCoLC)86115598 (DE-599)BVBBV023049622 |
dewey-full | 620.1/1 |
dewey-hundreds | 600 - Technology (Applied sciences) |
dewey-ones | 620 - Engineering and allied operations |
dewey-raw | 620.1/1 |
dewey-search | 620.1/1 |
dewey-sort | 3620.1 11 |
dewey-tens | 620 - Engineering and allied operations |
discipline | Physik |
discipline_str_mv | Physik |
format | Book |
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id | DE-604.BV023049622 |
illustrated | Illustrated |
index_date | 2024-07-02T19:24:08Z |
indexdate | 2024-07-09T21:09:49Z |
institution | BVB |
isbn | 0471684775 9780471684770 |
language | English |
lccn | 2006103082 |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-016253022 |
oclc_num | 86115598 |
open_access_boolean | |
owner | DE-703 DE-634 |
owner_facet | DE-703 DE-634 |
physical | XIV, 556 S. Ill., graph. Darst. |
publishDate | 2007 |
publishDateSearch | 2007 |
publishDateSort | 2007 |
publisher | Wiley |
record_format | marc |
spelling | Leo, Donald J. Verfasser aut Engineering analysis of smart material systems Donald J. Leo Hoboken, N.J. Wiley 2007 XIV, 556 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Includes bibliographical references (p. 545-552) and index Smart materials Electronic apparatus and appliances Neue Technologie (DE-588)4194462-8 gnd rswk-swf Intelligenter Werkstoff (DE-588)4274825-2 gnd rswk-swf Neue Technologie (DE-588)4194462-8 s Intelligenter Werkstoff (DE-588)4274825-2 s DE-604 http://www.loc.gov/catdir/toc/ecip077/2006103082.html Table of contents only http://www.loc.gov/catdir/enhancements/fy0740/2006103082-b.html Contributor biographical information http://www.loc.gov/catdir/enhancements/fy0740/2006103082-d.html Publisher description GBV Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016253022&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Leo, Donald J. Engineering analysis of smart material systems Smart materials Electronic apparatus and appliances Neue Technologie (DE-588)4194462-8 gnd Intelligenter Werkstoff (DE-588)4274825-2 gnd |
subject_GND | (DE-588)4194462-8 (DE-588)4274825-2 |
title | Engineering analysis of smart material systems |
title_auth | Engineering analysis of smart material systems |
title_exact_search | Engineering analysis of smart material systems |
title_exact_search_txtP | Engineering analysis of smart material systems |
title_full | Engineering analysis of smart material systems Donald J. Leo |
title_fullStr | Engineering analysis of smart material systems Donald J. Leo |
title_full_unstemmed | Engineering analysis of smart material systems Donald J. Leo |
title_short | Engineering analysis of smart material systems |
title_sort | engineering analysis of smart material systems |
topic | Smart materials Electronic apparatus and appliances Neue Technologie (DE-588)4194462-8 gnd Intelligenter Werkstoff (DE-588)4274825-2 gnd |
topic_facet | Smart materials Electronic apparatus and appliances Neue Technologie Intelligenter Werkstoff |
url | http://www.loc.gov/catdir/toc/ecip077/2006103082.html http://www.loc.gov/catdir/enhancements/fy0740/2006103082-b.html http://www.loc.gov/catdir/enhancements/fy0740/2006103082-d.html http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016253022&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT leodonaldj engineeringanalysisofsmartmaterialsystems |