Open Access
Issue |
MATEC Web Conf.
Volume 364, 2022
International Conference on Concrete Repair, Rehabilitation and Retrofitting (ICCRRR 2022)
|
|
---|---|---|
Article Number | 03007 | |
Number of page(s) | 8 | |
Section | Condition Assessment of Concrete Structures - Degradation and Condition Assessment | |
DOI | https://doi.org/10.1051/matecconf/202236403007 | |
Published online | 30 September 2022 |
- G. Marzahn, Die Tragfähigkeitsreserven vieler älterer Brücken sind weitgehend aufgebraucht: Zur Weiterentwicklung der Nachrechnungsrichtlinie für die Entscheidung über Verstärkung oder Ersatz, Der Prüfingenieur, 20 (2013) [Google Scholar]
- Rechnungshof Rheinland-Pfalz, Bericht nach § 111 Abs. 1 LHO über die Erhaltung und den Zustand von Brücken in kommunaler Baulast: Az.: 2-P0057-39-1/2011. Az.: 2-P-0057-39-1/2011, 2013 [Google Scholar]
- S. Maack, N. Diersch, Einsatz von zerstörungsfreien Prüfverfahren (ZfP-Verfahren) zur Rekonstruktion von Bestandsplänen als Grundlage für die Nachrechnung: Schlussbericht für das Forschungsprojekt FE 29.0333/2013/BASt. Schlussbericht für das Forschungsprojekt FE 29.0333/2013/BASt, 2015 [Google Scholar]
- K. Bergmeister, Monitoring and safety evaluation of existing concrete structures: State-of-art report prepared by Task Group 5.1 (fib, Lausanne, 2003) [Google Scholar]
- J. Fischer, D. Straub, R. Schneider, S. Thöns, W. Rücker, Intelligente Brücke zuverlässigkeitsbasierte Bewertung von Brückenbauwerken unter Berücksichtigung von Inspektionsund Überwachungsergebnissen (Fachverlag NW, Bremen, 2014) [Google Scholar]
- C. Maierhofer, H.-W. Reinhardt, G. Dobmann, eds., Non-Destructive Evaluation of Reinforced Concrete Structures: Volume 2: Non-Destructive Testing Methods (Woodhead Publishing, Cambridge, UK, 2010) [Google Scholar]
- Joint Committee for Guides in Metrology, JCGM 100:2008. Evaluation of measurement data — Guide to the expression of uncertainty in measurement (2008) (2008) [Google Scholar]
- Joint Committee for Guides in Metrology, JCGM 101:2008. Evaluation of measurement data — Supplement 1 to the “Guide to the expression of uncertainty in measurement” — Propagation of distributions using a Monte Carlo method (2008) (2008) [Google Scholar]
- Joint Committee for Guides in Metrology, JCGM 102:2011. Evaluation of measurement data – Supplement 2 to the “Guide to the expression of uncertainty in measurement” – Extension to any number of output quantities (2011) (2011) [Google Scholar]
- Joint Committee for Guides in Metrology, JCGM GUM-6:2020. Guide to the expression of uncertainty in measurement — Part 6: Developing and using measurement models (2020) (2020) [Google Scholar]
- S. Küttenbaum, Zur Validierung von zerstörungsfreien Messverfahren für die probabilistische Beurteilung von Bestandsbauwerken mit gemessenen Daten, Dissertation, Universität der Bundeswehr München, 2021 [Google Scholar]
- M. Krystek, Calculating measurement uncertainties: Basic principles and implementation (Beuth, Berlin, Wien, Zürich, 2016) [Google Scholar]
- W. Hässelbarth, Guide to the Evaluation of Measurement Uncertainty for Quantitative Test Results: EUROLAB Technical Report No. 1/2006. EUROLAB Technical Report No. 1/2006, 2006 [Google Scholar]
- Joint Committee for Guides in Metrology, JCGM 200:2012. International vocabulary of metrology – Basic and general concepts and associated terms (VIM): 3rd edition (2012) (2012) [Google Scholar]
- A. Taffe, Zur Validierung quantitativer zerstörungsfreier Prüfverfahren im Stahlbetonbau am Beispiel der Laufzeitmessung (Beuth, Berlin, Wien u.a., 2008) [Google Scholar]
- Joint Committee for Guides in Metrology, JCGM 104:2009. Evaluation of measurement data — An introduction to the “Guide to the expression of uncertainty in measurement” and related documents, 2009 [Google Scholar]
- S. Küttenbaum, T. Braml, A. Taffe, S. Keßler, S. Maack, Reliability assessment of existing structures using results of nondestructive testing, Structural Concrete 22, 2895 (2021) [CrossRef] [Google Scholar]
- M. Krause, F. Mielentz, B. Milmann, D. Streicher, K. Mayer, Ultrasonic reflection properties at interfaces between concrete steel and air: imaging and modelling, In: Al-Quadi, I. and G. Washer (eds.); Proceedings of the NDE Conference on Civil Engineering, 14.-18.08.2006, St. Louis, MO, USA, 472 (2006) [Google Scholar]
- E. Niederleithinger, Seismic Methods Applied to Ultrasonic Testing in Civil Engineering, Habilitationsschrift, RWTH, 2017 [Google Scholar]
- M. Schickert, M. Krause, Ultrasonic techniques for evaluation of reinforced concrete structures, in NonDestructive Evaluation of Reinforced Concrete Structures: Volume 2: Non-Destructive Testing Methods, edited by C. Maierhofer, H.-W. Reinhardt, G. Dobmann (Woodhead Publishing, Cambridge, UK, 2010), 490 [CrossRef] [Google Scholar]
- M. Schickert, M. Krause, W. Müller, Ultrasonic Imaging of Concrete Elements Using Reconstruction by Synthetic Aperture Focusing Technique, Journal of Materials in Civil Engineering 15, 235 (2003) [CrossRef] [Google Scholar]
- S. Popovics, J. L. Rose, J. S. Popovics, The Behavior of Ultrasonic Pulses in Concrete, Cement and Concrete Research 20, 259 (1990) [CrossRef] [Google Scholar]
- G. I. Crawford, Guide to Nondestructive Testing of Concrete, 1997 [Google Scholar]
- E. Niederleithinger, C. Wunderlich, Influence of small temperature variations on the ultrasonic velocity in concrete (AIP, 2013), 390 [Google Scholar]
- E. Ohdaira, N. Masuzawa, Water content and its effect on ultrasound propagation in concrete — the possibility of NDE, Ultrasonics 38, 546 (2000) [CrossRef] [Google Scholar]
- S. Popovics, Effects of uneven moisture distribution on the strength of and wave velocity in concrete, Ultrasonics 43, 429 (2005) [CrossRef] [Google Scholar]
- U. Lencis, A. Udris, A. Korjakins, Moisture Effect on the Ultrasonic Pulse Velocity in Concrete Cured under Normal Conditions and at Elevated Temperature, Construction Science 14 (2013) [CrossRef] [Google Scholar]
- S. Schulze, Untersuchung von Spannbetonkonstruktionen mit bildgebenden Ultraschallecho-Verfahren, Dissertation, Technische Universität, 2017 [Google Scholar]
- M. Schickert, Messtechnische Untersuchungen zur Charakterisierung der Ausbreitung von Ultraschall in Beton, in Tagungsband zur DGZfP-Jahrestagung 2007, edited by Deutsche Gesellschaft für Zerstörungsfreie Prüfung (DGZfP, Berlin, 2007), V37-1-11 [Google Scholar]
- S. Maack, S. Küttenbaum, N. Epple, M. Aligholizadeh, Die Ultraschall‐Echomethode – von der Messung zur bautechnischen Kenngröße, Betonund Stahlbetonbau 116, 200 (2021) [CrossRef] [Google Scholar]
- Deutsches Institut für Normung e. V., DINFachbericht 101: Einwirkungen auf Brücken (Beuth, Berlin, 2009) (2009) [Google Scholar]
- U. Lichte, Klimatische Temperatureinwirkungen und Kombinationsregeln bei Brückenbauwerken, Dissertation, Universität der Bundeswehr, 2004 [Google Scholar]
- JCSS, Probabilistic Model Code: Part 1-3 (Joint Committee on Structural Safety, Zurich, 2001/2002) [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.