Structural alloys for power plants: operational challenges and high-termperature materials
Gespeichert in:
Format: | Buch |
---|---|
Sprache: | English |
Veröffentlicht: |
Amsterdam [u.a]
Elsevier, Woodhead Publ.
2014
|
Schriftenreihe: | Woodhead publishing series in energy
45 |
Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis Klappentext |
Beschreibung: | XXII, 494 S. Ill., graph. Darst. |
ISBN: | 9780857092380 |
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Datensatz im Suchindex
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adam_text | Contents/9
Contributor contact details
xi
Woodhead Publishing Series in Energy
xv
Preface
xxi
Part I Operational challenges and structural alloy
requirements
1
1
Gas turbines: operating conditions, components and
material requirements
3
A. W. James and S. Rajagopalan, Siemens Energy Inc., USA
1.1
Introduction
3
1.2
Overview of materials systems and their role in gas
turbines
6
1.3
Operating conditions and materials selection
10
1.4
Critical degradation mechanisms, aging and monitoring
13
1.5
Materials performance assessment and life management
16
1.6
Materials limitations, challenges and future directions
17
1.7
Acknowledgements
20
1.8
Sources of further information and advices
20
1.9
References
20
2
Steam turbines: operating conditions, components
and material requirements
22
S. Osgerby,
Al stom
Power, UK
2.1
Introduction
22
2.2
High temperature cylinder components
23
2.3
Factors affecting the service life of high temperature
components
27
2.4
Low temperature cylinder components
28
2.5
Factors affecting the service life of low temperature
components
31
vi
Contents
2.6
Conclusion
34
2.7
References
35
3
High temperature materials issues in the design and
operation of coal-fired steam turbines and plant
36
F. Starr, Consultant, UK
3.1
Introduction
36
3.2
Recent power plant history and its lessons
38
3.3
Challenges of advanced plants
40
3.4
Thermodynamics and design of the steam and water
circuits
44
3.5
Design and operation of furnace and boiler
48
3.6
Superheater design issues
53
3.7
Two shift cycling
60
3.8
Material issues in the development of advanced steam
plants
62
3.9
Discussion
64
3.10
Conclusions
66
3.11
References
66
4
Nuclear power plants: types, components and
material requirements
69
J. F.
Knott,
The University of Birmingham, UK
4.
1 Introduction
69
4.2
UK gas-cooled reactors: Magnox and advanced gas-
cooled reactors
(AGR)
74
4.3
The pressurised water reactor (PWR)
88
4.4
Generation IV systems: the fusion reactor
95
4.5
Conclusion
99
4.6
References
100
Part II Structural alloys and their development
103
5
Austenitic steels and alloys for power plants
105
Y. Yin and R. Faulkner, Loughborough University, UK and
F. Starr, Consultant, European Technology Ltd, UK
5Л
Introduction
105
5.2
The
Fe
-С
phase diagram and austenitic steels
106
5.3
Microstructure
and properties of austenitic steels
108
5.4
Other problems with the use of austenitics
137
5.5
Modern Japanese alloys
142
5.6
Discussion and future work
146
Contents
vii
5.7
Sources
of further
information
and
advice
147
5.8
References
148
6
Bainitic steels and alloys for power plants
153
M. J.
Peet,
University
of Cambridge, UK
6.1
Introduction
153
6.2
Transformations in steels
156
6.3
Tempering heat treatment and service
173
6.4
Desirable properties for high temperature components
used in power plants
176
6.5
Developments of bainitic power plant steels
178
6.6
Conclusion
182
6.7
References
183
7
Ferritic and martensitic steels for power plants
188
P. J. Ennis, University of Leicester, UK
7.1
Introduction
188
7.2
Metallurgical background
191
7.3
Power plant ferritic, bainitic and martensitic steels
196
7.4
Steam oxidation
209
7.5
Production and fabrication of power plant components
212
7.6
Power plant experience with most recently developed
steels
214
7.7
Further development of power plant steels
215
7.8
Sources of further information and advice
216
7.9
References and further reading
217
8
Structural materials containing nanofeatures for
advanced energy plants
221
W. Hoffelner, RWH consult GmbH, Switzerland
8.1
Introduction
221
8.2
Oxide dispersion strengthening
(ODS)
224
8.3
Ferri
tic-martensitic
ODS
steels
226
8.4
ODS
materials based on a non-ferrous matrix
231
8.5
Production of nanoparticles containing alloys and
components
232
8.6
Components manufactured from
ODS
alloys
234
8.7
Properties of nanoparticle-containing steels
235
8.8
Other nanofeatures used to strengthen alloys for high
temperature applications
238
8.9
Conclusion
242
8.10
Acknowledgement
243
8.
Π
References
243
viii Contents
9 Development
of creep-resistant steels and alloys for
use in power plants
250
F. Abe, National Institute for Materials Science (NIMS), Japan
9.1
Introduction
250
9.2
Basic methods of strengthening steels and alloys at
elevated temperatures
255
9.3
Development progress of creep-resistant steels and
alloys
259
9.4
Degradation in creep strength of components subjected to
elevated temperature
268
9.5
Advanced alloy design of creep-resistant steels and
Ni
-base superalloys to mitigate materials
degradation
277
9.6
Conclusion and future trends
289
9.7
References
290
10
Development of advanced alloys with improved
resistance to corrosion and stress
corrosión
cracking (SCO in power plants
294
S. Prakash, Indian Institute of Technology, India
10.1
Introduction
294
10.2
Overview of corrosion and stress corrosion
297
10.3
Development of alloys
301
10.4
Creep-fatigue behaviour of steels and superalloys
308
10.5
Advanced design and use of alloys
309
10.6
Future trends
314
10.7
References and further reading
314
11
Design and material issues in improving fracture/
fatigue resistance and structural integrity in power
plants
319
J. F.
Knott,
The University of Birmingham, UK
11.1
Introduction
319
11.2
Engineering design and brittle fracture
321
11.3
Linear elastic fracture mechanics
322
11.4
Yielding fracture mechanics: the failure assessment
diagram (FAD)
324
11
.5
Brittle fracture in power plant steels
327
11.6
Inter-granular fracture in turbine disc steel
329
11.7
Potential concerns in nuclear reactor pressure vessel
(RPV) steels
333
11.8
Fatigue: S-N curves, Miner s Law, stress concentrators
335
11.9
Fatigue crack propagation
340
Contents ix
1
1.10
Fatigue induced by thermal strain
343
11.11
Fatigue crack growth and interactions
345
11.12
Conclusion
350
11.13
References
353
12
Radiation damage to structural alloys in nuclear
power plants: mechanisms and remediation
355
G. S. Was, University of Michigan, USA and P. L. Andresen,
General Electric Global Research, USA
12.1
Introduction
355
12.2
Overview: the radiation damage event
356
12.3
Physical degradation
360
12.4
Stress-related degradation
370
12.5
Environmental factors in cracking
381
12.6
Environmental factors in fracture
385
12.7
The response of stainless steel to irradiation
389
12.8
The response of pressure vessel steels to irradiation
402
12.9
The response of advanced alloys to irradiation
407
12.10
Conclusion
410
12.11
Sources of further information and advice
411
12.12
References
412
13
The use of advanced alloys to resolve welding
problems in power plants
421
D. J. Abson, TWi, UK and G. Mathers, Consultant, UK
13.1
Introduction
421
13.2
Parent steel behaviour and the analysis of creep rupture
data
427
13.3
Welding and the resulting residual stresses
428
13.4
Advantages and limitations of particular alloys
433
13.5
Advanced design and use of newer alloys
436
13.6
Future trends
436
13.7
Sources of further information and advice
442
13.8
References and further reading
442
14
Modelling creep in nickel alloys in high temperature
power plants
447
H. V. Atkinson and S. P. A. Gill, University of Leicester, UK
14.1
Introduction
447
14.2
Empirical methods
449
14.3
Semi-empirical models
451
14.4
Neural network approaches
453
χ
Contents
14.5
Physics-based approaches
455
14.6
Conclusion
474
14.7
References
474
Index
479
WOODHEAD PUBLISHING
SERIES IN ENERGY
The demand for increased efficiency of conventional power plants, particularly in
response to new national and international legislation concerning reduction in
greenhouse gases, requires that these plants operate at higher temperatures. The
main limiting factor is the availability of suitable materials to withstand the higher
operating temperatures required.
The introduction of renewable energy generators, such as wind turbines and solar
panels, imposes further operational demands on existing power plants as they are
required to shut down and restart more frequently because of intermittent energy
supply.
Structural Alloys for Power Plants outlines some of the challenges faced by the power
industry and covers recent developments in structural materials for conventional
and nuclear energy applications. The book begins with a discussion of the operating
environments, material requirements and degradation mechanisms as well as
lifetime-management issues within power plants. Chapters cover gas turbines, steam
turbines and nuclear power plants. Part II focuses on structural alloys and their
development, with chapters devoted to austenitic, bainitic, ferritic and martensitic
steels and structural materials containing nanofeatures for advanced energy plants.
Later chapters discuss methods for improving the materials resistance to creep,
corrosion, stress-corrosion cracking, fracture and fatigue, as well as damage caused
by radiation and welding.
Structural Alloys for Power Plants provides a helpful overview of the topic for materials
scientists, metallurgists and engineers in
academia
as well as in industry.
Amir A. Shirzadi is a Lecturer in Materials Science at The Open University, UK and a
research scientist at the Department of Materials Science and Metallurgy, University
of Cambridge, UK. Susan Jackson is a Fellow at Lucy Cavendish College, University of
Cambridge, working in the Department of Engineering.
Cover image: Siemens gas turbine SCTS^OOOe; permission from Siemens is
gratefully acknowledged (www.siemens.com/press).
|
any_adam_object | 1 |
author_GND | (DE-588)1058013491 |
building | Verbundindex |
bvnumber | BV041766752 |
classification_rvk | UQ 8400 |
ctrlnum | (OCoLC)894910818 (DE-599)BSZ376234806 |
discipline | Physik |
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id | DE-604.BV041766752 |
illustrated | Illustrated |
indexdate | 2024-07-10T01:04:55Z |
institution | BVB |
isbn | 9780857092380 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-027212818 |
oclc_num | 894910818 |
open_access_boolean | |
owner | DE-703 DE-29T DE-634 |
owner_facet | DE-703 DE-29T DE-634 |
physical | XXII, 494 S. Ill., graph. Darst. |
publishDate | 2014 |
publishDateSearch | 2014 |
publishDateSort | 2014 |
publisher | Elsevier, Woodhead Publ. |
record_format | marc |
series | Woodhead publishing series in energy |
series2 | Woodhead publishing series in energy |
spelling | Structural alloys for power plants operational challenges and high-termperature materials ed. by Amir Shirzadi ... Amsterdam [u.a] Elsevier, Woodhead Publ. 2014 XXII, 494 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Woodhead publishing series in energy 45 Hochtemperatur (DE-588)4282597-0 gnd rswk-swf Energieerzeugung (DE-588)4070813-5 gnd rswk-swf Hochleistungswerkstoff (DE-588)4312250-4 gnd rswk-swf Hochwarmfeste Legierung (DE-588)4756709-0 gnd rswk-swf Werkstoffkunde (DE-588)4079184-1 gnd rswk-swf Legierung (DE-588)4035035-6 gnd rswk-swf Turbinenbau (DE-588)4186453-0 gnd rswk-swf Hochtemperaturwerkstoff (DE-588)4025280-2 gnd rswk-swf Kraftwerk (DE-588)4032728-0 gnd rswk-swf Hochwarmfeste Legierung (DE-588)4756709-0 s DE-604 Werkstoffkunde (DE-588)4079184-1 s Hochtemperatur (DE-588)4282597-0 s Legierung (DE-588)4035035-6 s Hochleistungswerkstoff (DE-588)4312250-4 s Hochtemperaturwerkstoff (DE-588)4025280-2 s Kraftwerk (DE-588)4032728-0 s Energieerzeugung (DE-588)4070813-5 s Turbinenbau (DE-588)4186453-0 s Shirzadi, Amir Sonstige (DE-588)1058013491 oth Erscheint auch als Online-Ausgabe 978-0-85709-755-2 Woodhead publishing series in energy 45 (DE-604)BV036553081 45 Digitalisierung UB Bayreuth - ADAM Catalogue Enrichment application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027212818&sequence=000003&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis Digitalisierung UB Bayreuth - ADAM Catalogue Enrichment application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027212818&sequence=000004&line_number=0002&func_code=DB_RECORDS&service_type=MEDIA Klappentext |
spellingShingle | Structural alloys for power plants operational challenges and high-termperature materials Woodhead publishing series in energy Hochtemperatur (DE-588)4282597-0 gnd Energieerzeugung (DE-588)4070813-5 gnd Hochleistungswerkstoff (DE-588)4312250-4 gnd Hochwarmfeste Legierung (DE-588)4756709-0 gnd Werkstoffkunde (DE-588)4079184-1 gnd Legierung (DE-588)4035035-6 gnd Turbinenbau (DE-588)4186453-0 gnd Hochtemperaturwerkstoff (DE-588)4025280-2 gnd Kraftwerk (DE-588)4032728-0 gnd |
subject_GND | (DE-588)4282597-0 (DE-588)4070813-5 (DE-588)4312250-4 (DE-588)4756709-0 (DE-588)4079184-1 (DE-588)4035035-6 (DE-588)4186453-0 (DE-588)4025280-2 (DE-588)4032728-0 |
title | Structural alloys for power plants operational challenges and high-termperature materials |
title_auth | Structural alloys for power plants operational challenges and high-termperature materials |
title_exact_search | Structural alloys for power plants operational challenges and high-termperature materials |
title_full | Structural alloys for power plants operational challenges and high-termperature materials ed. by Amir Shirzadi ... |
title_fullStr | Structural alloys for power plants operational challenges and high-termperature materials ed. by Amir Shirzadi ... |
title_full_unstemmed | Structural alloys for power plants operational challenges and high-termperature materials ed. by Amir Shirzadi ... |
title_short | Structural alloys for power plants |
title_sort | structural alloys for power plants operational challenges and high termperature materials |
title_sub | operational challenges and high-termperature materials |
topic | Hochtemperatur (DE-588)4282597-0 gnd Energieerzeugung (DE-588)4070813-5 gnd Hochleistungswerkstoff (DE-588)4312250-4 gnd Hochwarmfeste Legierung (DE-588)4756709-0 gnd Werkstoffkunde (DE-588)4079184-1 gnd Legierung (DE-588)4035035-6 gnd Turbinenbau (DE-588)4186453-0 gnd Hochtemperaturwerkstoff (DE-588)4025280-2 gnd Kraftwerk (DE-588)4032728-0 gnd |
topic_facet | Hochtemperatur Energieerzeugung Hochleistungswerkstoff Hochwarmfeste Legierung Werkstoffkunde Legierung Turbinenbau Hochtemperaturwerkstoff Kraftwerk |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027212818&sequence=000003&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027212818&sequence=000004&line_number=0002&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV036553081 |
work_keys_str_mv | AT shirzadiamir structuralalloysforpowerplantsoperationalchallengesandhightermperaturematerials |