Engineering with rubber: how to design rubber components
Gespeichert in:
Format: | Buch |
---|---|
Sprache: | English |
Veröffentlicht: |
Munich
Hanser [u.a.]
2001
|
Ausgabe: | 2. ed. |
Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis |
Beschreibung: | 365 S. Ill., graph. Darst. |
ISBN: | 3446214038 1569902992 |
Internformat
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245 | 1 | 0 | |a Engineering with rubber |b how to design rubber components |c ed. by Alan N. Gent. With contrib. by R. P. Campion ... |
250 | |a 2. ed. | ||
264 | 1 | |a Munich |b Hanser [u.a.] |c 2001 | |
300 | |a 365 S. |b Ill., graph. Darst. | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
650 | 7 | |a Caoutchouc |2 ram | |
650 | 4 | |a Engineering design | |
650 | 4 | |a Rubber | |
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650 | 0 | 7 | |a Kautschuk |0 (DE-588)4030108-4 |2 gnd |9 rswk-swf |
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650 | 0 | 7 | |a Entwurf |0 (DE-588)4121208-3 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Technik |0 (DE-588)4059205-4 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Gummiformteil |0 (DE-588)4196984-4 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Gummi |0 (DE-588)4022538-0 |2 gnd |9 rswk-swf |
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Datensatz im Suchindex
_version_ | 1816443620769660928 |
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adam_text |
CONTENTS
PREFACE
V
1
INTRODUCTION
.
1
DANIEL
L.
HERTZ,
JR.
1.1
RUBBER
IN
ENGINEERING
.
2
1.2
ELASTOMERS
.
2
1.3
DYNAMIC
APPLICATION
.
3
1.4
GENERAL
DESIGN
PRINCIPLES
.
4
1.5
THERMAL
EXPANSIVITY,
PRESSURE,
AND
SWELLING
.
4
1.6
SPECIFIC
APPLICATIONS
AND
OPERATING
PRINCIPLES
.
5
1.7
SEAL
LIFE
.
8
1.8
SEAL
FRICTION
.
8
1.9
ACKNOWLEDGMENTS
.
8
1.10
REFERENCES
.
9
2
MATERIALS
AND
COMPOUNDS
.
11
GARY
R.
HAMED
2.1
INTRODUCTION
.
13
2.2
ELASTOMER
TYPES
.
13
2.2.1
GENERAL-PURPOSE
ELASTOMERS
.
13
2.2.1.1
STYRENE-BUTADIENE
RUBBER
(SBR)
.
13
2.2.1.2
POLYISOPRENE
(NR,
IR)
.
14
2.2.1.3
POLYBUTADIENE
(BR)
.
15
2.2.2
SPECIALTY
ELASTOMERS
.
15
2.2.2.1
POLYCHLOROPRENE
(CR)
.
15
2.2.2.2
ACRYLONITRILE-BUTADIENE
RUBBER
(NBR)
.
16
2.2.2.3
HYDROGENATED
NITRILE
RUBBER
(HNBR)
.
16
2.2.2.4
BUTYL
RUBBER
(IIR)
.
16
2.2.2.5
ETHYLENE-PROPYLENE
RUBBER
(EPR,
EPDM)
.
16
2.2.2.6
SILICONE
RUBBER
(MQ)
.
17
2.2.2.7
POLYSULFIDE
RUBBER
(T)
.
17
2.2.2.8
CHLOROSULFONATED
POLYETHYLENE
(CSM)
.
17
2.2.2.9
CHLORINATED
POLYETHYLENE
(CM)
.
17
2.2.2.10
ETHYLENE-METHYL
ACRYLATE
RUBBER
(AEM)
.
18
2.2.2.11
ACRYLIC
RUBBER
(ACM)
.
18
2.2.2.12
FLUOROCARBON
RUBBERS
(FKM)
.
18
2.2.2.13
EPICHLOROHYDRIN
RUBBER
(ECO)
.
18
2.2.2.14
URETHANE
RUBBER
.
18
2.3
COMPOUNDING
.
19
2.3.1
VULCANIZATION
AND
CURING
.
19
2.3.1.1
SULFUR
CURING
.
19
2.3.1.2
DETERMINATION
OF
CROSSLINK
DENSITY
.
21
2.3.1.3
INFLUENCE
OF
CROSSLINK
DENSITY
.
22
2.3.1.4
OTHER
CURE
SYSTEMS
.
23
2.3.2
REINFORCEMENT
.
23
2.3.3
ANTI-DEGRADANTS
.
25
2.3.3.1
OZONE
ATTACK
.
25
2.3.3.2
OXIDATION
.
26
2.3.4
PROCESS
AIDS
.
28
2.3.5
EXTENDERS
.
28
2.3.6
TACKIFIERS
.
29
2.4
TYPICAL
RUBBER
COMPOUNDS
.
29
BIBLIOGRAPHY
.
33
PROBLEMS
.
34
ANSWERS
.
34
3
ELASTICITY
.
35
ALAN
N.
GENT
3.1
INTRODUCTION
.
37
3.2
ELASTIC
PROPERTIES
AT
SMALL
STRAINS
.
37
3.2.1
ELASTIC
CONSTANTS
.
37
3.2.2
RELATION
BETWEEN
SHEAR
MODULUS
G
AND
COMPOSITION
.
40
3.2.3
STIFFNESS
OF
COMPONENTS
.
42
3.2.3.1
CHOICE
OF
SHEAR
MODULUS
.
42
3.2.3.2
SHEAR
DEFORMATION
OF
BONDED
BLOCKS
AND
HOLLOW
CYLINDRICAL
TUBES
.
42
3.2.3.3
SMALL
COMPRESSIONS
OR
EXTENSIONS
OF
BONDED
BLOCKS
.
44
3.2.3.4
MAXIMUM
PERMITTED
LOADS
IN
TENSION
AND
COMPRESSION
.
46
3.2.3.5
INDENTATION
OF
RUBBER
BLOCKS
BY
RIGID
INDENTORS
.
47
3.2.3.6
PROTRUSION
OF
RUBBER
THROUGH
A
HOLE
IN
A
RIGID
PLATE
.
49
3.3
LARGE
DEFORMATIONS
.
50
3.3.1
GENERAL
THEORY
OF
LARGE
ELASTIC
DEFORMATIONS
.
50
3.3.2
STRESS-STRAIN
RELATIONS
IN
SELECTED
CASES
.
51
3.3.2.1
GENERAL
RELATIONS
BETWEEN
STRESS
AND
STRAIN
.
51
3.3.2.2
SIMPLE
EXTENSION
.
51
3.3.2.3
EVALUATION
OF
THE
STRAIN
ENERGY
FUNCTION
W
.
52
3.3.2.4
ELASTIC
BEHAVIOR
OF
FILLED
RUBBER
VULCANIZATES
.
54
3.3.2.5
EQUI-BIAXIAL
STRETCHING
.
56
3.3.2.6
CONSTRAINED
TENSION
(PURE
SHEAR)
.
57
3.3.2.7
INFLATION
OF
A
SPHERICAL
SHELL
(BALLOON)
.
58
3.3.2.8
INFLATION
OF
A
SPHERICAL
CAVITY
.
59
3.3.3
SECOND-ORDER
STRESSES
.
60
3.3.3.1
SIMPLE
SHEAR
.
60
3.3.3.2
TORSION
.
62
3.4
MOLECULAR
THEORY
OF
RUBBER
ELASTICITY
.
63
3.4.1
ELASTIC
BEHAVIOR
OF
A
SINGLE
MOLECULAR
STRAND
.
63
3.4.2
ELASTICITY
OF
A
MOLECULAR
NETWORK
.
64
3.4.3
EFFECTIVE
DENSITY
OF
NETWORK
STRANDS
.
66
3.4.4
THE
SECOND
TERM
IN
THE
STRAIN
ENERGY
FUNCTION
.
66
3.4.5
CONCLUDING
REMARKS
ON
MOLECULAR
THEORIES
.
68
ACKNOWLEDGMENTS
.
68
REFERENCES
.
68
PROBLEMS
.
70
ANSWERS
TO
SELECTED
PROBLEMS
.
70
4
DYNAMIC
MECHANICAL
PROPERTIES
.
73
ALAN
N.
GENT/KENNETH
W.
SCOTT
4.1
INTRODUCTION
.
74
4.2
VISCOELASTICITY
.
74
4.3
DYNAMIC
EXPERIMENTS
.
78
4.4
ENERGY
CONSIDERATIONS
.
82
4.5
MOTION
OF
A
SUSPENDED
MASS
.
82
4.6
EXPERIMENTAL
TECHNIQUES
.
87
4.6.1
FORCED
NONRESONANCE
VIBRATION
.
87
4.6.2
FORCED
RESONANCE
VIBRATION
.
87
4.6.3
FREE
VIBRATION
METHODS
.
87
4.6.4
REBOUND
RESILIENCE
.
87
4.6.5
EFFECT
OF
STATIC
AND
DYNAMIC
STRAIN
LEVELS
.
88
4.7
APPLICATION
OF
DYNAMIC
MECHANICAL
MEASUREMENTS
.
89
4.7.1
HEAT
GENERATION
IN
RUBBER
COMPONENTS
.
89
4.7.2
VIBRATION
ISOLATION
.
89
4.7.3
SHOCK
ABSORBERS
.
90
4.8
EFFECTS
OF
TEMPERATURE
AND
FREQUENCY
.
90
4.9
THIXOTROPIC
EFFECTS
IN
FILLED
RUBBER
COMPOUNDS
.
94
ACKNOWLEDGEMENTS
.
96
REFERENCES
.
96
PROBLEMS
.
96
ANSWERS
.
.'
.
97
5
STRENGTH
.
99
GRAHAM
J.
LAKE!ALAN
G.
THOMAS
5.1
INTRODUCTION
.
100
5.2
FRACTURE
MECHANICS
.
100
5.2.1
ANALYSIS
OF
THE
TEST
PIECES
.
102
5.2.2
THE
STRAIN
ENERGY
CONCENTRATION
AT
A
CRACK
TIP
.
103
5.3
TEAR
BEHAVIOR
.
104
5.4
CRACK
GROWTH
UNDER
REPEATED
LOADING
.
109
5.4.1
THE
FATIGUE
LIMIT
AND
THE
EFFECT
OF
OZONE
.
ILL
5.4.2
PHYSICAL
INTERPRETATION
OF
G
O
.
113
5.4.3
EFFECTS
OF
TYPE
OF
ELASTOMER
AND
FILLER
.
114
5.4.4
EFFECT
OF
OXYGEN
.
114
5.4.5
EFFECTS
OF
FREQUENCY
AND
TEMPERATURE
.
116
5.4.6
NONRELAXING
EFFECTS
.
116
5.4.7
TIME-DEPENDENT
FAILURE
.
117
5.5
OZONE
ATTACK
.
117
5.6
TENSILE
STRENGTH
.
121
5.7
CRACK
GROWTH
IN
SHEAR
AND
COMPRESSION
.
122
5.8
CAVITATION
AND
RELATED
FAILURES
.
125
5.9
CONCLUSIONS
.
126
BIBLIOGRAPHY
.
126
PROBLEMS
.
129
ANSWERS
.
131
6
MECHANICAL
FATIGUE
.
137
MARIA
D.
ELLUL
6.1
INTRODUCTION
.
139
6.2
APPLICATION
OF
FRACTURE
MECHANICS
TO
MECHANICAL
FATIGUE
OF
RUBBER
.
140
6.3
INITIATION
AND
PROPAGATION
OF
CRACKS
.
142
6.3.1
FATIGUE
CRACK
INITIATION
.
142
6.3.2
FATIGUE
LIFE
AND
CRACK
GROWTH
.
143
6.3.3
FATIGUE
CRACK
PROPAGATION:
THE
FATIGUE
CRACK
GROWTH
CHARACTERISTIC
.
144
6.3.4
FATIGUE
LIFE
DETERMINATIONS
FROM
THE
CRACK
GROWTH
CHARACTERISTICS
.
146
6.4
FATIGUE
CRACK
GROWTH
TEST
METHODOLOGY
.
148
6.4.1
EXPERIMENTAL
DETERMINATION
OF
DYNAMIC
TEARING
ENERGIES
FOR
FATIGUE
FATIGUE
CRACK
PROPAGATION
.
148
6.4.2
KINETICS
OF
CRACK
GROWTH
.
149
6.4.3
EFFECTS
OF
TEST
VARIABLES
ON
FATIGUE
CRACK
GROWTH
CHARACTERISTICS
AND
DYNAMIC
FATIGUE
LIFE
.
150
6.4.3.1
WAVEFORM
.
150
6.4.3.2
FREQUENCY
.
150
6.4.3.3
TEMPERATURE
.
150
6.4.3.4
STATIC
STRAIN/STRESS
.
152
6.5
MATERIAL
VARIABLES
AND
THEIR
EFFECT
ON
FATIGUE
CRACK
GROWTH
.
154
6.5.1
REINFORCING
FILLERS
AND
COMPOUND
MODULUS
.
154
6.5.2
ELASTOMER
TYPE
.
156
6.5.3
VULCANIZING
SYSTEM
.
157
6.6
FATIGUE
AND
CRACK
GROWTH
OF
RUBBER
UNDER
BIAXIAL
STRESSES
.
158
6.7
FATIGUE
IN
RUBBER
COMPOSITES
.
159
6.7.1
EFFECT
OF
WIRES,
CORDS,
AND
THEIR
SPACING
ON
FATIGUE
CRACK
PROPAGATION
.
160
6.7.2
EFFECT
OF
MINIMUM
STRAIN
OR
STRESS
.
160
6.7.3
COMPARISON
OF
S-N
CURVE
AND
FATIGUE
CRACK
PROPAGATION
CONSTANTS
FOR
RUBBER-WIRE
COMPOSITES
.
163
6.7.4
FATIGUE
OF
TWO-PLY
RUBBER-CORD
LAMINATES
.
164
6.8
FATIGUE
CRACKING
OF
RUBBER
IN
COMPRESSION
AND
SHEAR
APPLICATIONS
.
165
6.8.1
CRACK
GROWTH
IN
COMPRESSION
.
165
6.8.2
CRACK
GROWTH
IN
SHEAR
.
167
6.9
ENVIRONMENTAL
EFFECTS
.
168
6.10
MODELING
AND
LIFE
PREDICTIONS
OF
ELASTOMERIC
COMPONENTS
.
169
6.11
FATIGUE
CRACK
PROPAGATION
IN
THERMOPLASTIC
ELASTOMERS
.
170
6.12
DURABILITY
OF
THERMOPLASTIC
ELASTOMERS
.
170
6.13
SUMMARY
.
172
ACKNOWLEDGMENTS
.
173
REFERENCES
.
173
PROBLEMS
.
174
ANSWERS
.
175
7
DURABILITY
.
177
ANDREW
STEVENSON/ROBERT
CAMPION
7.1
INTRODUCTION
.
179
7.2
CREEP,
STRESS
RELAXATION,
AND
SET
.
180
7.2.1
CREEP
.
181
7.2.2
STRESS
RELAXATION
.
181
7.2.3
PHYSICAL
RELAXATION
.
182
7.2.4
CHEMICAL
RELAXATION
.
183
7.2.5
COMPRESSION
SET
AND
RECOVERY
.
184
7.2.6
CASE
STUDY
.
185
7.3
LONGEVITY
OF
ELASTOMERS
IN
AIR
.
186
7.3.1
DURABILITY
AT
AMBIENT
TEMPERATURES
.
186
7.3.2
SUNLIGHT
AND
WEATHERING
.
186
7.3.3
OZONE
CRACKING
.
187
7.3.4
STRUCTURAL
BEARINGS:
CASE
STUDIES
.
187
7.3.4.1
NATURAL
RUBBER
PADS
ON
A
RAIL
VIADUCT
AFTER
100
YEARS
OF
SERVICE
.
187
7.3.4.2
LAMINATED
BRIDGE
BEARINGS
AFTER
20
YEARS
OF
SERVICE
.
189
7.4
EFFECT
OF
LOW
TEMPERATURES
.
192
7.4.1
GLASS
TRANSITION
.
192
7.4.2
CRYSTALLIZATION
.
192
7.4.3
REVERSIBILITY
OF
LOW
TEMPERATURE
EFFECTS
.
193
7.5
EFFECT
OF
ELEVATED
TEMPERATURES
.
193
7.6
EFFECT
OF
FLUID
ENVIRONMENTS
.
195
7.6.1
AQUEOUS
LIQUIDS
.
199
7.6.2
HYDROCARBON
LIQUIDS
.
201
7.6.3
HYDROCARBON
AND
OTHER
GASES
.
203
7.6.4
EFFECTS
OF
TEMPERATURE
AND
CHEMICAL
ATTACK
.
207
7.6.5
EFFECT
OF
RADIATION
.
209
7.7
DURABILITY
OF
RUBBER-METAL
BONDS
.
209
7.7.1
ADHESION
TESTS
.
210
7.7.2
RUBBER-METAL
ADHESIVE
SYSTEMS
.
211
7.7.3
DURABILITY
IN
SALT
WATER:
ROLE
OF
ELECTROCHEMICAL
POTENTIALS
.
212
7.8
LIFE
PREDICTION
METHODOLOGY
.
214
ACKNOWLEDGEMENT
.
217
REFERENCES
.
217
PROBLEMS
.
218
ANSWERS
.
220
8
DESIGN
OF
COMPONENTS
.
223
PATRICK
M.
SHERIDAN!FRANK
O.
JAMESITHOMAS
S.
MILLER
8.1
INTRODUCTION
.
224
8.2
SHEAR
AND
COMPRESSION
BEARINGS
.
226
8.2.1
PLANAR
SANDWICH
FORMS
.
226
8.2.1.1
PROBLEM
.
230
8.2.2
LAMINATE
BEARINGS
.
231
8.2.2.1
PROBLEM
.
231
8.2.3
TUBE
FORM
BEARINGS
AND
MOUNTINGS
.
233
8.2.3.1
PROBLEM
.
233
8.2.3.2
PROBLEM
.
236
8.2.4
EFFECTIVE
SHAPE
FACTORS
.
237
8.3
VIBRATION
AND
NOISE
CONTROL
.
238
8.3.1
VIBRATION
BACKGROUND
INFORMATION
.
239
8.3.2
DESIGN
REQUIREMENTS
.
241
8.3.3
SAMPLE
PROBLEMS
.
241
8.3.3.1
PROBLEM
.
241
8.3.3.2
PROBLEM
.
245
8.3.3.3
PROBLEM
.
246
8.4
PRACTICAL
DESIGN
GUIDELINES
.
249
8.5
SUMMARY
AND
ACKNOWLEDGMENTS
.
250
NOMENCLATURE
.
251
REFERENCES
.
251
PROBLEMS
FOR
CHAPTER
8
.
252
SOLUTIONS
FOR
PROBLEMS
FOR
CHAPTER
8
.
253
9
FINITE
ELEMENT
ANALYSIS
.
257
ROBERT
H.
FINNEY
9.1
INTRODUCTION
.
259
9.2
MATERIAL
SPECIFICATION
.
260
9.2.1
METAL
.
260
9.2.2
ELASTOMERS
.
260
9.2.2.1
LINEAR
.
260
9.2.2.2
NON-LINEAR
.
265
9.2.3
ELASTOMER
MATERIAL
MODEL
CORRELATION
.
274
9.2.3.1
ASTM
412
TENSILE
CORRELATION
.
274
9.2.3.2
PURE
SHEAR
CORRELATION
.
274
9.2.3.3
BI-AXIAL
CORRELATION
.
275
9.2.3.4
SIMPLE
SHEAR
CORRELATION
.
276
9.3
TERMINOLOGY
AND
VERIFICATION
.
276
9.3.1
TERMINOLOGY
.
276
9.3.2
TYPES
OF
FEA
MODELS
.
277
9.3.3
MODEL
BUILDING
.
278
9.3.3.1
MODELING
HINTS
FOR
NON-LINEAR
FEA
.
278
9.3.4
BOUNDARY
CONDITIONS
.
279
9.3.5
SOLUTION
.
280
9.3.5.1
TANGENT
STIFFNESS
.
280
9.3.5.2
NEWTON-RAPHSON
.
281
9.3.5.3
NON-LINEAR
MATERIAL
BEHAVIOR
.
281
9.3.5.4
VISCO-ELASTICITY
(SEE
CHAPTER
4)
.
281
9.3.5.5
MODEL
VERIFICATION
.
282
9.3.6
RESULTS
.
282
9.3.7
LINEAR
VERIFICATION
.
283
9.3.8
CLASSICAL
VERIFICATION
-
NON-LINEAR
.
283
9.4
EXAMPLE
APPLICATIONS
.
287
9.4.1
POSITIVE
DRIVE
TIMING
BELT
.
287
9.4.2
DOCK
FENDER
.
288
9.4.3
RUBBER
BOOT
.
289
9.4.4
BUMPER
DESIGN
.
291
9.4.5
LAMINATED
BEARING
.
293
9.4.6
DOWN
HOLE
PACKER
.
297
9.4.7
BONDED
SANDWICH
MOUNT
.
297
9.4.8
O-RING
.
299
9.4.9
ELASTOMER
HOSE
MODEL
.
301
9.4.10
SAMPLE
BELT
.
301
REFERENCES
.
304
10
TESTS
AND
SPECIFICATIONS
.
307
JOHN
G.
SOMMER
I
OON
HOCK
YEOH
10.1
INTRODUCTION
.
309
10.1.1
STANDARD
TEST
METHODS
.
309
10.1.2
PURPOSE
OF
TESTING
.
309
10.1.3
TEST
PIECE
PREPARATION
.
310
10.1.4
TIME
BETWEEN
VULCANIZATION
AND
TESTING
.
310
10.1.5
SCOPE
OF
THIS
CHAPTER
.
310
10.2
MEASUREMENT
OF
DESIGN
PARAMETERS
.
311
10.2.1
YOUNG'S
MODULUS
.
311
10.2.2
SHEAR
MODULUS
.
313
10.2.3
CREEP
AND
STRESS
RELAXATION
.
315
10.2.3.1
CREEP
.
316
10.2.3.2
STRESS
RELAXATION
.
316
10.3
QUALITY
CONTROL
TESTS
.
317
10.3.1
HARDNESS
.
317
10.3.1.1
DUROMETER
.
317
10.3.1.2
INTERNATIONAL
RUBBER
HARDNESS
.
318
10.3.2
TENSILE
PROPERTIES
.
319
10.3.3
COMPRESSION
SET
.
321
10.3.4
ACCELERATED
AGING
.
322
10.3.4.1
AGING
IN
AN
AIR
OVEN
.
322
10.3.4.2
OZONE
CRACKING
.
323
10.3.5
LIQUID
RESISTANCE
.
324
10.3.5.1
FACTORS
IN
SWELLING
.
325
10.3.5.2
SWELLING
TESTS
.
325
10.3.6
ADHESION
TO
RIGID
SUBSTRATES
.
325
10.3.7
PROCESSABILITY
.
327
10.4
DYNAMIC
PROPERTIES
.
328
10.4.1
RESILIENCE
.
330
10.4.2
YERZLEY
OSCILLOGRAPH
.
331
10.4.3
RESONANT
BEAM
.
332
10.4.4
SERVOHYDRAULIC
TESTERS
.
333
10.4.5
ELECTRODYNAMIC
TESTERS
.
334
10.4.6
PREFERRED
TEST
CONDITIONS
.
335
10.5
TESTS
FOR
TIRES
.
335
10.5.1
BEAD
UNSEATING
RESISTANCE
.
336
10.5.2
TIRE
STRENGTH
.
336
10.5.3
TIRE
ENDURANCE
.
338
10.5.4
HIGH
SPEED
PERFORMANCE
.
338
10.6
SPECIFICATIONS
.
338
10.6.1
CLASSIFICATION
SYSTEM
.
339
10.6.1.1
TYPE
.
339
10.6.1.2
CLASS
.
340
10.6.1.3
FURTHER
DESCRIPTION
.
341
10.6.2
TOLERANCES
.
342
10.6.2.1
MOLDED
PRODUCTS
.
342
10.6.2.2
EXTRUDED
PRODUCTS
.
344
10.6.2.3
LOAD-DEFLECTION
CHARACTERISTICS
.
345
10.6.3
RUBBER
BRIDGE
BEARINGS
.
345
10.6.3.1
FUNCTION
.
345
10.6.3.2
DESIGN
CODE
.
346
10.6.3.3
MATERIALS
SPECIFICATION
.
347
10.6.4
PIPE
SEALING
RINGS
.
348
10.6.4.1
FUNCTION
.
348
10.6.4.2
MATERIALS
.
349
10.6.4.3
TENSILE
PROPERTIES
.
349
10.6.4.4
COMPRESSION
SET
.
349
10.6.4.5
LOW
TEMPERATURE
FLEXIBILITY
.
350
10.6.4.6
OVEN
AGING
.
350
10.6.4.7
OIL
RESISTANCE
.
350
10.6.4.8
CLOSING
REMARKS
.
351
REFERENCES
.
351
PROBLEMS
.
353
ANSWERS
.
354
APPENDIX:
TABLES
OF
PHYSICAL
CONSTANTS
.
357
INDEX
.
361 |
any_adam_object | 1 |
author_GND | (DE-588)112448097 |
building | Verbundindex |
bvnumber | BV013325352 |
callnumber-first | T - Technology |
callnumber-label | TA455 |
callnumber-raw | TA455.R8 |
callnumber-search | TA455.R8 |
callnumber-sort | TA 3455 R8 |
callnumber-subject | TA - General and Civil Engineering |
classification_rvk | UV 9150 ZM 5300 |
classification_tum | WER 670f |
ctrlnum | (OCoLC)231876146 (DE-599)BVBBV013325352 |
dewey-full | 620.1/94 |
dewey-hundreds | 600 - Technology (Applied sciences) |
dewey-ones | 620 - Engineering and allied operations |
dewey-raw | 620.1/94 |
dewey-search | 620.1/94 |
dewey-sort | 3620.1 294 |
dewey-tens | 620 - Engineering and allied operations |
discipline | Physik Werkstoffwissenschaften Werkstoffwissenschaften / Fertigungstechnik |
edition | 2. ed. |
format | Book |
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id | DE-604.BV013325352 |
illustrated | Illustrated |
indexdate | 2024-11-22T17:13:45Z |
institution | BVB |
isbn | 3446214038 1569902992 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-009087637 |
oclc_num | 231876146 |
open_access_boolean | |
owner | DE-703 DE-210 DE-91G DE-BY-TUM DE-12 DE-29T DE-634 DE-83 DE-1047 DE-522 |
owner_facet | DE-703 DE-210 DE-91G DE-BY-TUM DE-12 DE-29T DE-634 DE-83 DE-1047 DE-522 |
physical | 365 S. Ill., graph. Darst. |
publishDate | 2001 |
publishDateSearch | 2001 |
publishDateSort | 2001 |
publisher | Hanser [u.a.] |
record_format | marc |
spelling | Engineering with rubber how to design rubber components ed. by Alan N. Gent. With contrib. by R. P. Campion ... 2. ed. Munich Hanser [u.a.] 2001 365 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Caoutchouc ram Engineering design Rubber Gummibauteil (DE-588)4158551-3 gnd rswk-swf Kautschuk (DE-588)4030108-4 gnd rswk-swf Werkstoffgerechtes Konstruieren (DE-588)4233887-6 gnd rswk-swf Konstruieren (DE-588)4139312-0 gnd rswk-swf Entwurf (DE-588)4121208-3 gnd rswk-swf Technik (DE-588)4059205-4 gnd rswk-swf Gummiformteil (DE-588)4196984-4 gnd rswk-swf Gummi (DE-588)4022538-0 gnd rswk-swf Gummiformteil (DE-588)4196984-4 s Entwurf (DE-588)4121208-3 s DE-604 Gummibauteil (DE-588)4158551-3 s Werkstoffgerechtes Konstruieren (DE-588)4233887-6 s Kautschuk (DE-588)4030108-4 s Konstruieren (DE-588)4139312-0 s 1\p DE-604 Gummi (DE-588)4022538-0 s Technik (DE-588)4059205-4 s 2\p DE-604 Gent, Alan N. Sonstige (DE-588)112448097 oth Campion, Robert P. Sonstige oth DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=009087637&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis 1\p cgwrk 20201028 DE-101 https://d-nb.info/provenance/plan#cgwrk 2\p cgwrk 20201028 DE-101 https://d-nb.info/provenance/plan#cgwrk |
spellingShingle | Engineering with rubber how to design rubber components Caoutchouc ram Engineering design Rubber Gummibauteil (DE-588)4158551-3 gnd Kautschuk (DE-588)4030108-4 gnd Werkstoffgerechtes Konstruieren (DE-588)4233887-6 gnd Konstruieren (DE-588)4139312-0 gnd Entwurf (DE-588)4121208-3 gnd Technik (DE-588)4059205-4 gnd Gummiformteil (DE-588)4196984-4 gnd Gummi (DE-588)4022538-0 gnd |
subject_GND | (DE-588)4158551-3 (DE-588)4030108-4 (DE-588)4233887-6 (DE-588)4139312-0 (DE-588)4121208-3 (DE-588)4059205-4 (DE-588)4196984-4 (DE-588)4022538-0 |
title | Engineering with rubber how to design rubber components |
title_auth | Engineering with rubber how to design rubber components |
title_exact_search | Engineering with rubber how to design rubber components |
title_full | Engineering with rubber how to design rubber components ed. by Alan N. Gent. With contrib. by R. P. Campion ... |
title_fullStr | Engineering with rubber how to design rubber components ed. by Alan N. Gent. With contrib. by R. P. Campion ... |
title_full_unstemmed | Engineering with rubber how to design rubber components ed. by Alan N. Gent. With contrib. by R. P. Campion ... |
title_short | Engineering with rubber |
title_sort | engineering with rubber how to design rubber components |
title_sub | how to design rubber components |
topic | Caoutchouc ram Engineering design Rubber Gummibauteil (DE-588)4158551-3 gnd Kautschuk (DE-588)4030108-4 gnd Werkstoffgerechtes Konstruieren (DE-588)4233887-6 gnd Konstruieren (DE-588)4139312-0 gnd Entwurf (DE-588)4121208-3 gnd Technik (DE-588)4059205-4 gnd Gummiformteil (DE-588)4196984-4 gnd Gummi (DE-588)4022538-0 gnd |
topic_facet | Caoutchouc Engineering design Rubber Gummibauteil Kautschuk Werkstoffgerechtes Konstruieren Konstruieren Entwurf Technik Gummiformteil Gummi |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=009087637&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT gentalann engineeringwithrubberhowtodesignrubbercomponents AT campionrobertp engineeringwithrubberhowtodesignrubbercomponents |