Acoustics of wood: with 202 figures and 126 tables
Gespeichert in:
1. Verfasser: | |
---|---|
Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Berlin ; Heidelberg ; New York
Springer
[2006]
|
Ausgabe: | 2nd edition |
Schriftenreihe: | Springer series in wood science
|
Schlagworte: | |
Online-Zugang: | Inhaltstext Inhaltsverzeichnis |
Beschreibung: | Literaturverz. S. 347 - 386 |
Beschreibung: | XVIII, 393 Seiten Diagramme 24 cm |
ISBN: | 9783540261230 3540261230 |
Internformat
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245 | 1 | 0 | |a Acoustics of wood |b with 202 figures and 126 tables |c Voichita Bucur |
250 | |a 2nd edition | ||
264 | 1 | |a Berlin ; Heidelberg ; New York |b Springer |c [2006] | |
264 | 4 | |c © 2006 | |
300 | |a XVIII, 393 Seiten |b Diagramme |c 24 cm | ||
336 | |b txt |2 rdacontent | ||
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490 | 0 | |a Springer series in wood science | |
500 | |a Literaturverz. S. 347 - 386 | ||
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Datensatz im Suchindex
_version_ | 1804177594174668801 |
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adam_text | CONTENTS
1
INTRODUCTION
................................................
1
1.1
GENERAL
REMARKS
ON
WOOD MATERIAL
..........................
1
1.2
OUTLINE
OF
THE
BOOK
.........................................
3
PART I ENVIRONMENTAL
ACOUSTICS
.....................................
5
2
ACOUSTICS
OF
FORESTS
AND
ACOUSTIC
QUALITY
CONTROL
OF
SOME
FOREST
PRODUCTS
......................................
7
2.1
ACOUSTICS
OF
FORESTS
AND
FOREST
PRODUCTS
......................
7
2.2
ULTRASONIC
SENSING
OF
THE
CHARACTERISTICS
OF
STANDING
TREES
.....
14
2.3
ULTRASOUND
FOR
DETECTION
OF
GERMINABILITY
OF
ACORNS
...........
14
2.4
SUMMARY
.................................................
19
3
WOOD
AND
WOOD-BASED
MATERIALS
IN ARCHITECTURAL
ACOUSTICS
....................................
21
3.1
INFLUENCE
OF
THE
ANATOMIC
STRUCTURE
OF
WOOD
ON
SOUND
ABSORPTION
.......................................
21
3.2
WOOD
MATERIALS
AS
ACOUSTICAL INSULATORS
23
3.3 WOOD
AND
THE
ACOUSTICS
OF
CONCERT
HALLS
.....................
30
3.4 SUMMARY
.................................................
36
PART II MATERIAL
CHARACTERIZATION
....................................
37
4
THEORY
OF
AND
EXPERIMENTAL
METHODS
FOR
THE
ACOUSTIC
CHARACTERIZATION
OF
WOOD
.....................
39
4.1
ELASTIC
SYMMETRY
OF
PROPAGATION MEDIA
......................
40
4.1.1
ISOTROPIC
SOLIDS
............................................
40
4.1.2
ANISOTROPIC
SOLIDS
..........................................
41
4.2
WAVE
PROPAGATION
IN
ANISOTROPIC MEDIA
......................
49
4.2.1
PROPAGATION
OF
ULTRASONIC
BULK WAVES
IN
ORTHOTROPIC
MEDIA
.......................................
50
4.2.1.1
VELOCITIES
AND
STIFFNESSES,
THE
EIGENVALUES
OF
CHRISTOFFEL S EQUATIONS
.....................
52
4.2.1.2
THE EIGENVECTORS
OF
CHRISTOFFEL S EQUATIONS
....................
58
4.2.2
MECHANICAL
VIBRATIONS
IN
THE
ACOUSTIC
FREQUENCY
RANGE
........
62
4.2.2.1
RESONANCE
VIBRATION
MODES
IN
RODS
AND
PLATES
................
62
4.2.2.2
ENGINEERING
CONSTANTS
......................................
63
XIV
CONTENTS
4.3
VELOCITY
OF
ULTRASONIC
WAVES
IN
WOOD
........................
69
4.3.1 MEASUREMENT SYSTEM
.......................................
71
4.3.1.1 DEVICES
...................................................
71
4.3.1.2
TRANSDUCERS
...............................................
72
4.3.2
SPECIMENS
FOR
ULTRASONIC TESTING
............................
74
4.3.2.1
PREPARATION
OF
SAMPLES
.....................................
75
4.3.2.2
COUPLING
MEDIA
............................................
80
4.3.2.3
SPECIMENS
OF
FINITE DIMENSIONS
.............................
82
4.3.2.4
INFLUENCE
OF
THE
PHYSICAL PROPERTIES
OF
WOOD
ON
MEASUREMENT
OF
ULTRASONIC
VELOCITY
.......................
86
4.4 ATTENUATION
OF
ULTRASONIC
WAVES
IN
WOOD
.....................
90
4.4.1
THEORETICAL
CONSIDERATIONS
..................................
91
4.4.2 MEASUREMENT
TECHNIQUE
....................................
92
4.4.3 FACTORS AFFECTING
ATTENUATION
MEASUREMENTS IN
WOOD
..........
92
4.4.3.1
GEOMETRY
OF
THE
SPECIMEN
..................................
92
4.4.3.2
CHARACTERISTICS
OF
THE
MATERIAL
...............................
94
4.5 INTERNAL FRICTION IN
WOOD
IN
THE
AUDIBLE
FREQUENCY
RANGE
......
98
4.5.1
TYPICAL
VALUES
OF
DAMPING
COEFFICIENTS
.......................
99
4.5.2 DAMPING COEFFICIENTS
AS
INDICATORS
OF
MICROSTRUCTURAL
MODIFICATIONS
INDUCED
BY
DIFFERENT FACTORS
................................
99
4.5.2.1
TEMPERATURE
AND
MOISTURE CONTENT
..........................
100
4.5.2.2
CHEMICAL
TREATMENT
........................................
101
4.5.2.3 DYNAMIC
LOADING
..........................................
103
4.6
SUMMARY
.................................................
103
5
ELASTIC CONSTANTS
OF
WOOD MATERIAL
...........................
105
5.1
GLOBAL
ELASTIC
CHARACTERIZATION
..............................
105
5.1.1
WOOD
AS AN
ORTHOTROPIC
SOLID
WITH
WELL-DEFINED
ANISOTROPIC DIRECTIONS
....................
106
5.1.1.1
OPTIMIZATION
OF
CRITERIA
FOR
OFF-DIAGONAL
TERMS
OF
THE
STIFFNESS MATRIX
DETERMINED
BY
BULK
WAVES
AND
ORTHOTROPIC
SYMMETRY
..................................
106
5.1.1.2
STIFFNESSES
AND
MODE CONVERSION
PHENOMENA
FROM
BULK
TO
SURFACE
WAVES
.................................
118
5.1.1.3
YOUNG S
MODULI, SHEAR
MODULI,
AND
POISSON S
RATIOS
FROM
DYNAMIC
(ULTRASONIC
AND
FREQUENCY
RESONANCE)
AND
STATIC TESTS
............................................
122
5.1.2
WOOD
AS A
TRICLINIC
SOLID
WITH
UNKNOWN
ANISOTROPIC DIRECTIONS
........................
124
5.1.2.1 ULTRASONIC MEASUREMENTS
...................................
127
5.1.2.2 DISCREPANCY
FROM
THE
RAW STIFFNESS
TENSOR
TO
EACH SYMMETRY
LEVEL
....................................
127
5.2 LOCAL
ELASTIC CHARACTERIZATION
...............................
128
5.2.1 ACOUSTIC
MICROSCOPY
.......................................
129
5.2.1.1
OPERATING
PRINCIPLE
........................................
129
5.2.1.2
ACOUSTIC
IMAGES
...........................................
131
5.2.2
PHOTOACOUSTICS IN
WOOD SCIENCE
.............................
134
5.2.2.1
PRINCIPLE
..................................................
134
CONTENTS
XV
5.2.2.2
INSTRUMENTATION
...........................................
135
5.2.2.3
APPLICATIONS
...............................................
136
5.3
SUMMARY
.................................................
138
6
WOOD
STRUCTURAL
ANISOTROPY
AND
ULTRASONIC PARAMETERS
.......
141
6.1
FILTERING
ACTION
INDUCED
BY
ANATOMICAL STRUCTURE
OF
WOOD
.....
141
6.2
ESTIMATION
OF
ANISOTROPY
BY
VELOCITIES
OF
LONGITUDINAL
AND
TRANSVERSE
BULK WAVES
...................
143
6.3
ESTIMATION
OF
ANISOTROPY
BY
INVARIANTS
.......................
148
6.3.1
ACOUSTIC
INVARIANTS
........................................
148
6.3.2
ELASTIC
INVARIANTS
..........................................
152
6.4
NONLINEARITY
AND
WOOD ANISOTROPY
..........................
156
6.4.1
NONLINEARITY
IN
SOLIDS
......................................
156
6.4.2
NONLINEAR
RESPONSE
OF
WOOD
IN
NONLINEAR
ACOUSTIC
EXPERIMENTS
..........................
157
6.4.3
NONLINEARITY
RESPONSE
OF
WOOD
IN
ACOUSTOELASTIC
EXPERIMENTS
...............................
158
6.4.3.1
ACOUSTOELASTIC
EXPERIMENTS
UNDER CONFINING
PRESSURE
.........
159
6.4.3.2
ACOUSTOELASTIC EXPERIMENTS UNDER
STATIC
STRESS
................
167
6.5
SUMMARY
.................................................
168
PART
III
QUALITY
ASSESSMENT
..........................................
171
7
WOOD SPECIES
FOR
MUSICAL INSTRUMENTS
........................
173
7.1
ACOUSTICAL
PROPERTIES
OF
WOOD
SPECIES
........................
173
7.1.1
ACOUSTICAL
PROPERTIES
OF
RESONANCE
WOOD
FOR
VIOLINS
...........
174
7.1.1.1
SPRUCE
RESONANCE WOOD
....................................
176
7.1.1.2
CURLY MAPLE
...............................................
179
7.1.1.3
WOOD
FOR
THE
BOW
..........................................
180
7.1.1.4
WOOD
FOR
OTHER
COMPONENTS
................................
180
7.1.2
ACOUSTICAL
PROPERTIES
OF
WOOD
FOR
GUITARS
....................
181
7.1.3
ACOUSTICAL PROPERTIES
OF
WOOD
FOR
WOODWIND
INSTRUMENTS
..................................
182
7.1.4
ACOUSTICAL PROPERTIES
OF
WOOD
FOR
PERCUSSION INSTRUMENTS
..................................
183
7.1.5
ACOUSTICAL
PROPERTIES
OF
WOOD
FOR
KEYBOARD INSTRUMENTS:
THE PIANO
........................
184
7.1.6
RELATIONSHIPS
BETWEEN
ELASTIC PROPERTIES
OF
RESONANCE
WOOD
AND
ITS
TYPICAL STRUCTURAL
CHARACTERISTICS
.....................
187
7.1.6.1
MACROSCOPIC STRUCTURAL
PARAMETERS
..........................
187
7.1.6.1.1
GROWTH
RING PATTERN
.......................................
187
7.1.6.1.2
DENSITOMETRIC
PATTERN
OF
ANNUAL RINGS
IN
RESONANCE WOOD
........................................
190
7.1.6.2
MICROSCOPIC
AND
SUBMICROSCOPIC
STRUCTURAL
PARAMETERS
........
192
7.1.6.2.1
FINE
ANATOMIC
SCALE
........................................
192
7.1.6.2.2
MINERAL
CONSTITUENTS
OF
THE
CELL WALL
.........................
195
7.1.7
TONE
QUALITY
OF
MUSICAL
INSTRUMENTS
AND
WOOD PROPERTIES
.....
196
7.2
FACTORS
AFFECTING
ACOUSTICAL
PROPERTIES
OF
WOOD
FOR
MUSICAL INSTRUMENTS
....................................
198
XVI CONTENTS
7.2.1 INFLUENCE
OF
NATURAL
AGING
ON
RESONANCE
WOOD
...............
198
7.2.2
INFLUENCE
OF
ENVIRONMENTAL
CONDITIONS
.......................
201
7.2.3 INFLUENCE
OF
LONG-TERM
LOADING
.............................
202
7.2.4
INFLUENCE
OF
VARNISHING
.....................................
205
7.3
CHEMICAL
TREATMENTS
TO
IMPROVE
THE
ACOUSTICAL
PROPERTIES
OF
COMMON
SOLID WOOD
USED
FOR
MASS-PRODUCED
INSTRUMENTS
........................
211
7.4
COMPOSITES
AS
SUBSTITUTES
FOR
RESONANCE
WOOD
................
212
7.5
SUMMARY
.................................................
214
8 ACOUSTIC
METHODS
AS
A
NONDESTRUCTIVE
TOOL
FOR
WOOD QUALITY
ASSESSMENT
.................................
217
8.1 ACOUSTICS
AND
WOOD QUALITY
................................
217
8.2 ACOUSTIC METHODS
EMPLOYED
ON
TREES,
LOGS, LUMBER,
AND
WOOD-BASED
COMPOSITES
................................
218
8.2.1 QUALITY
OF
ASSESSMENT
OF
TREES
...............................
218
8.2.1.1 DETECTION
OF
THE
SLOPE
OF
THE
GRAIN
WITH
ULTRASOUND
............
218
8.2.1.2 DETECTION
OF
REACTION
WOOD
.................................
220
8.2.1.3 DETECTION
OF
CURLY
FIGURES
IN
TREES
...........................
226
8.2.1.4 SYLVICULTURAL
TREATMENT
(PRUNING,
THINNING)
..................
227
8.2.1.5
GENETIC
ASPECTS
............................................
229
8.2.2
GRADING
OF
LOGS
............................................
230
8.2.3 GRADING
OF
LUMBER
.........................................
231
8.2.3.1
THE
ULTRASONIC
VELOCITY
METHOD
FOR
GRADING LUMBER
...........
231
8.2.3.2 STRESS-WAVE
GRADING
TECHNIQUE
FOR
TESTING
LUMBER
............
234
8.3 CONTROL
OF
THE
QUALITY
OF
WOOD-BASED
COMPOSITES
.............
235
8.4
OTHER
NONDESTRUCTIVE
TECHNIQUES
FOR
DETECTION
OF
DEFECTS
IN
WOOD
.............................
238
8.5
SUMMARY
.................................................
238
9 ENVIRONMENTAL
MODIFIERS
OF
WOOD
STRUCTURAL
PARAMETERS
DETECTED
WITH
ULTRASONIC
WAVES
..............................
241
9.1 DEPENDENCY
OF
ULTRASONIC
VELOCITY
AND
RELATED
MECHANICAL
PARAMETERS
OF
WOOD
ON
MOISTURE
CONTENT
AND
TEMPERATURE
........................
241
9.1.1 INFLUENCE
OF
MOISTURE CONTENT
ON
SOLID WOOD
.................
241
9.1.2 INFLUENCE
OF
TEMPERATURE
ON
SOLID WOOD
......................
245
9.1.3 INFLUENCE
OF
HYGROTHERMAL
TREATMENT
ON
THE
QUALITY
OF
WOOD-BASED
COMPOSITES
....................
252
9.1.4 INFLUENCE
OF
PRESSURE
.......................................
253
9.1.5 INFLUENCE
OF
IONIZING
RADIATION
..............................
256
9.2 ULTRASONIC
PARAMETERS
AND
BIOLOGICAL
DETERIORATION
OF
WOOD
.........................
256
9.2.1
BACTERIAL
ATTACK
............................................
256
9.2.2 FUNGAL
ATTACK
.............................................
258
9.2.3
WOOD-BORING
AGENTS
.......................................
263
9.2.4 ARCHEOLOGICAL
WOOD
........................................
268
9.3
SUMMARY
.................................................
270
CONTENTS
XVII
10
ACOUSTIC
EMISSION
...........................................
271
10.1
PRINCIPLE
AND
INSTRUMENTATION
...............................
271
10.1.1
PRINCIPLE
..................................................
271
10.1.2
INSTRUMENTATION
...........................................
274
10.1.2.1
SYSTEMS
...................................................
274
10.1.2.2
MATERIAL CONDITIONING
......................................
276
10.1.2.3
TRANSDUCERS
...............................................
276
10.1.2.4
AMPLIFIERS
AND
SIGNAL
PROCESSORS
............................
277
10.1.2.5
SIGNAL
PROCESSING
..........................................
277
10.1.2.6
FACTORS
AFFECTING ACOUSTIC
EMISSION
RESPONSE
FROM
WOODEN
MATERIALS
.....................................
278
10.2
ACOUSTIC
EMISSION
FOR
THE
STRUCTURAL
EVALUATION
OF
TREES,
SOLID
WOOD, PARTICLEBOARD,
AND
OTHER
WOOD-BASED COMPOSITES
..........................
279
10.2.1
CAVITATION
.................................................
279
10.2.2
DETECTING
THE
ACTIVITY
OF
BIOLOGICAL AGENTS
....................
283
10.2.3
ACOUSTIC
EMISSION
AND
FRACTURE
MECHANICS
IN
SOLID
WOOD
AND
WOOD-BASED
COMPOSITES
...................
285
10.2.3.1
SOLID
WOOD
................................................
285
10.2.3.2
WOOD-BASED
COMPOSITES
....................................
291
10.3
ACOUSTIC EMISSION
FOR
MONITORING TECHNOLOGICAL
PROCESSES
.....
295
10.3.1
ADHESIVE
CURING
AND
ADHESIVE
STRENGTH
......................
296
10.3.2
ACOUSTIC
EMISSION
TO
CONTROL
THE
DRYING
OF
LUMBER
............
300
10.3.3
ACOUSTIC
EMISSION
AS A
STRENGTH PREDICTOR
IN
TIMBER
AND
LARGE
WOOD
STRUCTURES
........................
304
10.3.4
WOOD MACHINING
..........................................
307
10.4
SUMMARY
.................................................
312
11
ACOUSTO-ULTRASONICS
.........................................
315
11.1
INTRODUCTION
...............................................
315
11.2
PRINCIPLE
AND
INSTRUMENTATION
...............................
315
11.2.1
PRINCIPLE
..................................................
315
11.2.2
INSTRUMENTATION
...........................................
316
11.2.3
SIGNAL
PROCESSING
..........................................
317
11.2.4
TRANSDUCERS
...............................................
321
11.3
APPLICATIONS
...............................................
322
11.3.1
DEFECT DETECTION IN
WOOD
...................................
322
11.3.2
DECAY DETECTION
IN
STRUCTURAL
ELEMENTS
.......................
324
11.3.3
DETECTION
OF
ADHESIVE
BOND
IN
WOOD-BASED COMPOSITES
........
328
11.3.4
DETECTION
OF
INTEGRITY
OF
JOINTS
IN
STRUCTURAL
ELEMENTS
..........
331
11.4
SUMMARY
.................................................
331
12
HIGH-POWER
ULTRASONIC
TREATMENT
FOR
WOOD
PROCESSING
........
333
12.1
WOOD
PROCESSING
...........................................
333
12.1.1
DRYING
....................................................
334
12.1.2
DEFIBERING
................................................
336
12.1.3
CUTTING
...................................................
340
12.1.4
PLASTICIZING
EFFECT
..........................................
341
12.1.5
IMPROVEMENT
OF
EXTRACTION
..................................
341
XVIII
CONTENTS
12.1.6
THE REGENERATION
EFFECT
OF
ULTRASOUND
ON
AGED
GLUE RESINS
........................................
342
12.2
IMPROVEMENT
OF
WOOD PRESERVATION
..........................
342
12.3
SUMMARY
.................................................
345
REFERENCES
................................................
347
SUBJECT INDEX
..............................................
387
|
any_adam_object | 1 |
author | Bucur, Voichita |
author_facet | Bucur, Voichita |
author_role | aut |
author_sort | Bucur, Voichita |
author_variant | v b vb |
building | Verbundindex |
bvnumber | BV044352490 |
ctrlnum | (OCoLC)992514185 (DE-599)DNB975230468 |
discipline | Maschinenbau / Maschinenwesen |
edition | 2nd edition |
format | Book |
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id | DE-604.BV044352490 |
illustrated | Not Illustrated |
indexdate | 2024-07-10T07:50:33Z |
institution | BVB |
isbn | 9783540261230 3540261230 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-029755247 |
oclc_num | 992514185 |
open_access_boolean | |
owner | DE-210 |
owner_facet | DE-210 |
physical | XVIII, 393 Seiten Diagramme 24 cm |
publishDate | 2006 |
publishDateSearch | 2006 |
publishDateSort | 2006 |
publisher | Springer |
record_format | marc |
series2 | Springer series in wood science |
spelling | Bucur, Voichita Verfasser aut Acoustics of wood with 202 figures and 126 tables Voichita Bucur 2nd edition Berlin ; Heidelberg ; New York Springer [2006] © 2006 XVIII, 393 Seiten Diagramme 24 cm txt rdacontent n rdamedia nc rdacarrier Springer series in wood science Literaturverz. S. 347 - 386 Holz (DE-588)4025668-6 gnd rswk-swf Holzwerkstoff (DE-588)4131006-8 gnd rswk-swf Akustische Analyse (DE-588)4387976-7 gnd rswk-swf Schallausbreitung (DE-588)4179359-6 gnd rswk-swf Ultraschallprüfung (DE-588)4061563-7 gnd rswk-swf Akustik (DE-588)4000988-9 gnd rswk-swf Akustische Eigenschaft (DE-588)4729048-1 gnd rswk-swf wood Holz acoustics Akkustik, Holz mechanics Mechanik, Holz instruments, musical Holz (DE-588)4025668-6 s Akustische Eigenschaft (DE-588)4729048-1 s DE-604 Holzwerkstoff (DE-588)4131006-8 s Akustik (DE-588)4000988-9 s Schallausbreitung (DE-588)4179359-6 s Akustische Analyse (DE-588)4387976-7 s Ultraschallprüfung (DE-588)4061563-7 s X:MVB text/html http://deposit.dnb.de/cgi-bin/dokserv?id=2647697&prov=M&dok_var=1&dok_ext=htm Inhaltstext Digitalisierung Deutsches Museum application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=029755247&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Bucur, Voichita Acoustics of wood with 202 figures and 126 tables Holz (DE-588)4025668-6 gnd Holzwerkstoff (DE-588)4131006-8 gnd Akustische Analyse (DE-588)4387976-7 gnd Schallausbreitung (DE-588)4179359-6 gnd Ultraschallprüfung (DE-588)4061563-7 gnd Akustik (DE-588)4000988-9 gnd Akustische Eigenschaft (DE-588)4729048-1 gnd |
subject_GND | (DE-588)4025668-6 (DE-588)4131006-8 (DE-588)4387976-7 (DE-588)4179359-6 (DE-588)4061563-7 (DE-588)4000988-9 (DE-588)4729048-1 |
title | Acoustics of wood with 202 figures and 126 tables |
title_auth | Acoustics of wood with 202 figures and 126 tables |
title_exact_search | Acoustics of wood with 202 figures and 126 tables |
title_full | Acoustics of wood with 202 figures and 126 tables Voichita Bucur |
title_fullStr | Acoustics of wood with 202 figures and 126 tables Voichita Bucur |
title_full_unstemmed | Acoustics of wood with 202 figures and 126 tables Voichita Bucur |
title_short | Acoustics of wood |
title_sort | acoustics of wood with 202 figures and 126 tables |
title_sub | with 202 figures and 126 tables |
topic | Holz (DE-588)4025668-6 gnd Holzwerkstoff (DE-588)4131006-8 gnd Akustische Analyse (DE-588)4387976-7 gnd Schallausbreitung (DE-588)4179359-6 gnd Ultraschallprüfung (DE-588)4061563-7 gnd Akustik (DE-588)4000988-9 gnd Akustische Eigenschaft (DE-588)4729048-1 gnd |
topic_facet | Holz Holzwerkstoff Akustische Analyse Schallausbreitung Ultraschallprüfung Akustik Akustische Eigenschaft |
url | http://deposit.dnb.de/cgi-bin/dokserv?id=2647697&prov=M&dok_var=1&dok_ext=htm http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=029755247&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT bucurvoichita acousticsofwoodwith202figuresand126tables |