Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace:
Gespeichert in:
1. Verfasser: | |
---|---|
Weitere Verfasser: | , , |
Format: | Abschlussarbeit Buch |
Sprache: | English |
Veröffentlicht: |
Garbsen
TEWISS Verlag
[2019]
|
Schriftenreihe: | Berichte aus dem IPH
Band 2/2019 |
Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis Inhaltsverzeichnis |
Beschreibung: | XI, 107 Seiten Illustrationen, Diagramme 21 cm, 180 g |
ISBN: | 9783959003964 395900396X |
Internformat
MARC
LEADER | 00000nam a2200000 cb4500 | ||
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003 | DE-604 | ||
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008 | 200812s2019 gw a||| m||| 00||| eng d | ||
015 | |a 20,N04 |2 dnb | ||
015 | |a 20,B13 |2 dnb | ||
015 | |a 20,H04 |2 dnb | ||
020 | |a 9783959003964 |c Broschur : EUR 38.00 (DE), EUR 39.10 (AT) |9 978-3-95900-396-4 | ||
020 | |a 395900396X |9 3-95900-396-X | ||
024 | 3 | |a 9783959003964 | |
028 | 5 | 2 | |a Bestellnummer: IPH 02/2019 |
035 | |a (OCoLC)1137274971 | ||
035 | |a (DE-599)DNB1202986447 | ||
040 | |a DE-604 |b ger |e rda | ||
041 | 0 | |a eng | |
044 | |a gw |c XA-DE-NI | ||
049 | |a DE-29T |a DE-83 | ||
084 | |a ZM 4610 |0 (DE-625)157051: |2 rvk | ||
084 | |a 670 |2 sdnb | ||
100 | 1 | |a Mohammadifard, Sara |d 1983- |e Verfasser |0 (DE-588)1204863229 |4 aut | |
245 | 1 | 0 | |a Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |c Sara Mohammadifard |
264 | 1 | |a Garbsen |b TEWISS Verlag |c [2019] | |
264 | 4 | |c © 2019 | |
300 | |a XI, 107 Seiten |b Illustrationen, Diagramme |c 21 cm, 180 g | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
490 | 1 | |a Berichte aus dem IPH |v Band 2/2019 | |
502 | |b Dissertation |c Gottfried Wilhelm Leibniz Universität Hannover |d 2019 | ||
650 | 0 | 7 | |a Prozessüberwachung |0 (DE-588)4133922-8 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Aluminiumschmelzflusselektrolyse |0 (DE-588)4128234-6 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Plenoptische Kamera |0 (DE-588)1103236075 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Musteranalyse |0 (DE-588)4226567-8 |2 gnd |9 rswk-swf |
650 | 0 | 7 | |a Schmelzen |0 (DE-588)4179780-2 |2 gnd |9 rswk-swf |
653 | |a Analysealgorithmus | ||
653 | |a Analysis algorithm | ||
653 | |a Lichtfeldkamera | ||
653 | |a Light-field camera | ||
653 | |a Melting process | ||
653 | |a Process monitoring | ||
653 | |a Prozessüberwachung | ||
653 | |a Schmelzprozess | ||
655 | 7 | |0 (DE-588)4113937-9 |a Hochschulschrift |2 gnd-content | |
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689 | 0 | |5 DE-604 | |
700 | 1 | |a Behrens, Bernd-Arno |4 edt | |
700 | 1 | |a Nyhuis, Peter |4 edt | |
700 | 1 | |a Overmeyer, Ludger |4 edt | |
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999 | |a oai:aleph.bib-bvb.de:BVB01-032259852 |
Datensatz im Suchindex
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adam_text | CONTENTS
SYMBOLS
.............................................................................................................................
VIII
1
INTRODUCTION
................................................................
1
2
STATE
OF
THE
ART
......................................................................................................................
3
2.1
PROPERTIES
AND
USES
OF
ALUMINUM
...............................................................................
3
2.2
PROCESS
CLASSIFICATION
OF
ALUMINUM
DIE
CASTING
...........................................................
4
2.3
TYPES
OF
ALUMINUM
MELTING
FURNACES
USED
IN
DIE
CASTING
..........................................
5
2.3.1
CRUCIBLE
FURNACE
..............................................................................................
6
2.3.2
REVERBERATORY
FURNACE
....................................................................................
7
2.3.3
GAS
STACK
FURNACE
............................................................................................
8
2.4
DEVELOPMENT
OF
THE
MODERN
MELTING
FURNACE
.............................................................
9
2.5
MEASUREMENT
METHODS
FOR
SPATIAL
SHAPE
DETECTION
.................................................
11
2.5.1
TIME-OF-FLIGHT
(TOP)
PRINCIPLE
........................................................................
12
2.5.2
INTERFEROMETRY
PRINCIPLE
.................................................................................
13
2.5.3
TRIANGULATION
PRINCIPLE
....................................................................................
14
2.6
3D
LIGHT-FIELD
CAMERA
.................................................................................................
17
2.6.1
DEVELOPMENT
OF
LIGHT-FIELD
FUNCTION
...............................................................
17
2.6.2
CONCEPT
OF
LIGHT-FIELD
CAMERA
........................................................................
18
2.6.3
IMAGE
RECONSTRUCTION
WITH
LIGHT-FIELD
CAMERA
...............................................
22
2.7 STATISTICAL
METHOD
FOR
OUTLIER
DETECTION
......................................................................
25
2.8
MATHEMATICAL
FOUNDATIONS
OF
GEOMETRIC
MODELING
....................................................
26
2.8.1
SURFACE
MODELING
...........................................................................................
27
2.8.2
UNCERTAINTY
ANALYSIS
.......................................................................................
29
3
PROBLEM
STATEMENT,
RESEARCH
HYPOTHESIS,
AND
OBJECTIVES
................................................
34
4
TEST
SETUP
............................................................................................................................
36
4.1
MELTING
FURNACE
..........................................................................................................
38
4.2 SELECTION
OF
OPTICAL
SYSTEMS
FOR
MONITORING
MELTING
PROCESS
...................................
40
4.3
3D
LIGHT-FIELD
CAMERA
.................................................................................................
41
4.4
3D
LIGHT-FIELD
CAMERA
CALIBRATION
...............................................................................
42
4.4.1
MICROLENS
ARRAY
(MLA)
CALIBRATION
................................................................43
4.4.2
METRIC
CALIBRATION
...........................................................................................44
4.4.3
CHECKING
CAMERA
CALIBRATION
.........................................................................
46
CONTENTS
VII
4.4.4
ELIMINATING
OUTLIER
DATA
................................................................................
47
4.5
DEVELOPING
PROGRAMMABLE
LOGIC
CONTROLLER
(PLC )
INTERFACE
FOR
AUTOMATIC
IMAGE
ACQUISITION
...........................................................................................................................
48
5
METHODS,
TECHNIQUES,
AND
RESULTS
......................................................................................
53
5.1
DEVELOPING
ANALYSIS
SOFTWARE
FOR
CONTINUOUS
REAL-TIME
MONITORING
OF
ALUMINUM
STATE
IN
FURNACE
...................................................................................................................
53
5.1.1
INITIAL
CHECKING
OF
CAPTURED
DATA
...................................................................
58
5.1.2 HEIGHT
ANALYSIS
RESULTS
..................................................................................
60
5.1.3
VOLUME
ANALYSIS
RESULTS
................................................................................
60
6
MODELING
AND
PREDICTION
OF
AN
ALUMINUM
MELTING
PROCESS*
................................................
64
6.1
DIFFERENT
METHODS
OF
APPROXIMATION
AND
INTERPOLATION
............................................
66
6.2
CURVE
MODELING
AND
ERROR
CALCULATION
ACROSS
ALUMINUM
SURFACE
WITH
CUBIC
SPLINE
INTERPOLATION
........................................................................................................................
67
6.3 SURFACE
MODELING
OF
ALUMINUM
WITH
CUBIC
SPLINE
INTERPOLATION
................................
68
6.4
CURVE
MODELING
ACROSS
ALUMINUM
SURFACE
WITH
NEWTON
POLYNOMIAL
INTERPOLATION
.
70
6.5 CURVE
MODELING
ACROSS
ALUMINUM
SURFACE
WITH
LEAST
SQUARES
APPROXIMATION
.......
72
6.6
ERROR
CALCULATION
FOR
NEWTON
INTERPOLATION
AND
LEAST
SQUARES
APPROXIMATION
..........
73
6.7 SURFACE
MODELING
OF
ALUMINUM
WITH
LEAST
SQUARES
APPROXIMATION
.........................
77
6.8
ANALYZING
AND
ASSESSING
MODEL
...............................................................................
79
6.8.1
RESULTS
OF
DISTRIBUTION
FITTING
.........................................................................
81
6.8.2 RESULTS
OF
MONTE
CARLO
METHOD
...................................................................
85
6.8.3 RESULTS
OF
MODEL
VALIDATION
..........................................................................
86
7
CONCLUSION
AND
OUTLOOK
......................................................................................................
90
8
REFERENCES
.........................................................................................................................
94
9
APPENDIX
...........................................................................................................................
104
LEBENSLAUF
...............................................................................................................................
107
|
adam_txt |
CONTENTS
SYMBOLS
.
VIII
1
INTRODUCTION
.
1
2
STATE
OF
THE
ART
.
3
2.1
PROPERTIES
AND
USES
OF
ALUMINUM
.
3
2.2
PROCESS
CLASSIFICATION
OF
ALUMINUM
DIE
CASTING
.
4
2.3
TYPES
OF
ALUMINUM
MELTING
FURNACES
USED
IN
DIE
CASTING
.
5
2.3.1
CRUCIBLE
FURNACE
.
6
2.3.2
REVERBERATORY
FURNACE
.
7
2.3.3
GAS
STACK
FURNACE
.
8
2.4
DEVELOPMENT
OF
THE
MODERN
MELTING
FURNACE
.
9
2.5
MEASUREMENT
METHODS
FOR
SPATIAL
SHAPE
DETECTION
.
11
2.5.1
TIME-OF-FLIGHT
(TOP)
PRINCIPLE
.
12
2.5.2
INTERFEROMETRY
PRINCIPLE
.
13
2.5.3
TRIANGULATION
PRINCIPLE
.
14
2.6
3D
LIGHT-FIELD
CAMERA
.
17
2.6.1
DEVELOPMENT
OF
LIGHT-FIELD
FUNCTION
.
17
2.6.2
CONCEPT
OF
LIGHT-FIELD
CAMERA
.
18
2.6.3
IMAGE
RECONSTRUCTION
WITH
LIGHT-FIELD
CAMERA
.
22
2.7 STATISTICAL
METHOD
FOR
OUTLIER
DETECTION
.
25
2.8
MATHEMATICAL
FOUNDATIONS
OF
GEOMETRIC
MODELING
.
26
2.8.1
SURFACE
MODELING
.
27
2.8.2
UNCERTAINTY
ANALYSIS
.
29
3
PROBLEM
STATEMENT,
RESEARCH
HYPOTHESIS,
AND
OBJECTIVES
.
34
4
TEST
SETUP
.
36
4.1
MELTING
FURNACE
.
38
4.2 SELECTION
OF
OPTICAL
SYSTEMS
FOR
MONITORING
MELTING
PROCESS
.
40
4.3
3D
LIGHT-FIELD
CAMERA
.
41
4.4
3D
LIGHT-FIELD
CAMERA
CALIBRATION
.
42
4.4.1
MICROLENS
ARRAY
(MLA)
CALIBRATION
.43
4.4.2
METRIC
CALIBRATION
.44
4.4.3
CHECKING
CAMERA
CALIBRATION
.
46
CONTENTS
VII
4.4.4
ELIMINATING
OUTLIER
DATA
.
47
4.5
DEVELOPING
PROGRAMMABLE
LOGIC
CONTROLLER
(PLC')
INTERFACE
FOR
AUTOMATIC
IMAGE
ACQUISITION
.
48
5
METHODS,
TECHNIQUES,
AND
RESULTS
.
53
5.1
DEVELOPING
ANALYSIS
SOFTWARE
FOR
CONTINUOUS
REAL-TIME
MONITORING
OF
ALUMINUM
STATE
IN
FURNACE
.
53
5.1.1
INITIAL
CHECKING
OF
CAPTURED
DATA
.
58
5.1.2 HEIGHT
ANALYSIS
RESULTS
.
60
5.1.3
VOLUME
ANALYSIS
RESULTS
.
60
6
MODELING
AND
PREDICTION
OF
AN
ALUMINUM
MELTING
PROCESS*
.
64
6.1
DIFFERENT
METHODS
OF
APPROXIMATION
AND
INTERPOLATION
.
66
6.2
CURVE
MODELING
AND
ERROR
CALCULATION
ACROSS
ALUMINUM
SURFACE
WITH
CUBIC
SPLINE
INTERPOLATION
.
67
6.3 SURFACE
MODELING
OF
ALUMINUM
WITH
CUBIC
SPLINE
INTERPOLATION
.
68
6.4
CURVE
MODELING
ACROSS
ALUMINUM
SURFACE
WITH
NEWTON
POLYNOMIAL
INTERPOLATION
.
70
6.5 CURVE
MODELING
ACROSS
ALUMINUM
SURFACE
WITH
LEAST
SQUARES
APPROXIMATION
.
72
6.6
ERROR
CALCULATION
FOR
NEWTON
INTERPOLATION
AND
LEAST
SQUARES
APPROXIMATION
.
73
6.7 SURFACE
MODELING
OF
ALUMINUM
WITH
LEAST
SQUARES
APPROXIMATION
.
77
6.8
ANALYZING
AND
ASSESSING
MODEL
.
79
6.8.1
RESULTS
OF
DISTRIBUTION
FITTING
.
81
6.8.2 RESULTS
OF
MONTE
CARLO
METHOD
.
85
6.8.3 RESULTS
OF
MODEL
VALIDATION
.
86
7
CONCLUSION
AND
OUTLOOK
.
90
8
REFERENCES
.
94
9
APPENDIX
.
104
LEBENSLAUF
.
107 |
any_adam_object | 1 |
any_adam_object_boolean | 1 |
author | Mohammadifard, Sara 1983- |
author2 | Behrens, Bernd-Arno Nyhuis, Peter Overmeyer, Ludger |
author2_role | edt edt edt |
author2_variant | b a b bab p n pn l o lo |
author_GND | (DE-588)1204863229 |
author_facet | Mohammadifard, Sara 1983- Behrens, Bernd-Arno Nyhuis, Peter Overmeyer, Ludger |
author_role | aut |
author_sort | Mohammadifard, Sara 1983- |
author_variant | s m sm |
building | Verbundindex |
bvnumber | BV046851028 |
classification_rvk | ZM 4610 |
ctrlnum | (OCoLC)1137274971 (DE-599)DNB1202986447 |
discipline | Werkstoffwissenschaften / Fertigungstechnik |
discipline_str_mv | Werkstoffwissenschaften / Fertigungstechnik |
format | Thesis Book |
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genre | (DE-588)4113937-9 Hochschulschrift gnd-content |
genre_facet | Hochschulschrift |
id | DE-604.BV046851028 |
illustrated | Illustrated |
index_date | 2024-07-03T15:10:01Z |
indexdate | 2024-07-10T08:55:34Z |
institution | BVB |
institution_GND | (DE-588)1067143165 |
isbn | 9783959003964 395900396X |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-032259852 |
oclc_num | 1137274971 |
open_access_boolean | |
owner | DE-29T DE-83 |
owner_facet | DE-29T DE-83 |
physical | XI, 107 Seiten Illustrationen, Diagramme 21 cm, 180 g |
publishDate | 2019 |
publishDateSearch | 2019 |
publishDateSort | 2019 |
publisher | TEWISS Verlag |
record_format | marc |
series | Berichte aus dem IPH |
series2 | Berichte aus dem IPH |
spelling | Mohammadifard, Sara 1983- Verfasser (DE-588)1204863229 aut Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace Sara Mohammadifard Garbsen TEWISS Verlag [2019] © 2019 XI, 107 Seiten Illustrationen, Diagramme 21 cm, 180 g txt rdacontent n rdamedia nc rdacarrier Berichte aus dem IPH Band 2/2019 Dissertation Gottfried Wilhelm Leibniz Universität Hannover 2019 Prozessüberwachung (DE-588)4133922-8 gnd rswk-swf Aluminiumschmelzflusselektrolyse (DE-588)4128234-6 gnd rswk-swf Plenoptische Kamera (DE-588)1103236075 gnd rswk-swf Musteranalyse (DE-588)4226567-8 gnd rswk-swf Schmelzen (DE-588)4179780-2 gnd rswk-swf Analysealgorithmus Analysis algorithm Lichtfeldkamera Light-field camera Melting process Process monitoring Prozessüberwachung Schmelzprozess (DE-588)4113937-9 Hochschulschrift gnd-content Aluminiumschmelzflusselektrolyse (DE-588)4128234-6 s Schmelzen (DE-588)4179780-2 s Plenoptische Kamera (DE-588)1103236075 s Musteranalyse (DE-588)4226567-8 s Prozessüberwachung (DE-588)4133922-8 s DE-604 Behrens, Bernd-Arno edt Nyhuis, Peter edt Overmeyer, Ludger edt TEWISS - Technik und Wissen GmbH (DE-588)1067143165 pbl Erscheint auch als Online-Ausgabe 978-3-95900-420-6 Berichte aus dem IPH Band 2/2019 (DE-604)BV023040105 2019,2 B:DE-101 application/pdf https://d-nb.info/1202986447/04 Inhaltsverzeichnis DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032259852&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Mohammadifard, Sara 1983- Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace Berichte aus dem IPH Prozessüberwachung (DE-588)4133922-8 gnd Aluminiumschmelzflusselektrolyse (DE-588)4128234-6 gnd Plenoptische Kamera (DE-588)1103236075 gnd Musteranalyse (DE-588)4226567-8 gnd Schmelzen (DE-588)4179780-2 gnd |
subject_GND | (DE-588)4133922-8 (DE-588)4128234-6 (DE-588)1103236075 (DE-588)4226567-8 (DE-588)4179780-2 (DE-588)4113937-9 |
title | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |
title_auth | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |
title_exact_search | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |
title_exact_search_txtP | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |
title_full | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace Sara Mohammadifard |
title_fullStr | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace Sara Mohammadifard |
title_full_unstemmed | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace Sara Mohammadifard |
title_short | Developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |
title_sort | developing an innovative optical system for automatically monitoring the melting process in an aluminum melting furnace |
topic | Prozessüberwachung (DE-588)4133922-8 gnd Aluminiumschmelzflusselektrolyse (DE-588)4128234-6 gnd Plenoptische Kamera (DE-588)1103236075 gnd Musteranalyse (DE-588)4226567-8 gnd Schmelzen (DE-588)4179780-2 gnd |
topic_facet | Prozessüberwachung Aluminiumschmelzflusselektrolyse Plenoptische Kamera Musteranalyse Schmelzen Hochschulschrift |
url | https://d-nb.info/1202986447/04 http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032259852&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV023040105 |
work_keys_str_mv | AT mohammadifardsara developinganinnovativeopticalsystemforautomaticallymonitoringthemeltingprocessinanaluminummeltingfurnace AT behrensberndarno developinganinnovativeopticalsystemforautomaticallymonitoringthemeltingprocessinanaluminummeltingfurnace AT nyhuispeter developinganinnovativeopticalsystemforautomaticallymonitoringthemeltingprocessinanaluminummeltingfurnace AT overmeyerludger developinganinnovativeopticalsystemforautomaticallymonitoringthemeltingprocessinanaluminummeltingfurnace AT tewisstechnikundwissengmbh developinganinnovativeopticalsystemforautomaticallymonitoringthemeltingprocessinanaluminummeltingfurnace |
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