Журнал Российского общества по неразрушающему контролю и технической диагностике
The journal of the Russian society for non-destructive testing and technical diagnostic
 
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18 | 11 | 2024
2019, 01 January

DOI: 10.14489/td.2019.01.pp.022-031

 

Badalyan V. G.
POSSIBILITIES OF ULTRASONIC DEFECT CHARACTERIZATION AND RISK-BASED METHOD IN DIAGNOSTICS
(pp. 22-31)

Abstract. Risk-based method in diagnostics is aimed at the safe operation of high-risk facilities. Risk assessment at the accident is performed on the base of calculations using methods of fracture mechanics and the probabilistic approach to the occurrence of adverse events. Data of the current technical condition of the facility are required to specify the risk assessment of accidents. These data could be obtained by ultrasonic testing using methods and means of ultrasonic flaw detection: synthetic aperture methods and phased antenna arrays. Ultrasonic defect characterization for specification of the risk estimation due to the quantitative estimation of the defects parameters on objects of nuclear energy are considered in this article: •errors in measuring of height and length of planar discontinuities (natural and artificial) using ultrasonic defect characterization instruments; •examples of measuring the developing crack profile and its growth over several yearsare given; •possibility of assessing the allocation of defects by their type, localization in the monitoring object; •results of allocation of defects by their height and length in welded joints 120075 of NPP equipment; •experimental curves of the probability of detection of longitudinal discontinuities in the austenitic welded jointsin the pipeline 32515, obtained using a AUGUR series system with coherent data processing; •results of modeling the POD-curve for transverse defects with experimental measurements in the test sample with models of planar defects are compared. This results allow to estimate the reliability of the calculated POD-curve (a).

Keywords: ultrasonic defect characterization, risk analysis, POD-curve, defect size measurement, measurement error.

 

V. G. Badalyan (Co Ltd “Scientific Production Center of Nondestructive Ultrasonic Testing “ECHO+”, Moscow, Russia) E-mail: Данный адрес e-mail защищен от спам-ботов, Вам необходимо включить Javascript для его просмотра.  

 

 

1. Industrial safety of hazardous production facilities. (2015). Federal Law No. 116-FZ. 21 July 1997. Russian Federation. Moscow: CJSC «Nauchno-tekhnicheskii sentr issledovanii problem promyshlennoi bezopasnosti».
2. The rules of inspection of the base metal, weld and weld-over of the operation of equipment, pipelines and other elements of nuclear power plants. (2015). Rules and norms No. NP-084–15. Moscow: Rostekhnadzor. [in Russian language]
3. Ivanov V. I., Konovalov N. N., Kotel'nikov V. S. et al. (2015). Issues of accident risk assessment using technical diagnostics. Kontrol'. Diagnostika, (5), pp. 12-20. [in Russian language]
4. Ivanov V. I, Musatov V. V., Sazonov A. A. (2016). On the use of non-destructive testing in assessing the risk of an accident. VI Workshop "Assessment and management of industrial risks in industrial safety. Monitoring the risks of complex and unique objects ": a collection of materials, pp. 185-204. Omsk: Omskblankizdat. [in Russian language]
5. Lepihin A. M., Mahutov N. A., Moskvichev V. V., Chernyaev A. P. (2003). Probabilistic risk analysis of technical systems. Novosibirsk: Nauka. [in Russian language]
6. Vopilkin A. H. (Ed.), Badalyan V. G., Bazulin E. G. et al. Ultrasonic defectometry of metals using holographic methods. Moscow: Mashinostroenie. [in Russian language]
7. Badalyan V. G., Vopilkin A. H. (2000). Experience of using an ultrasonic expert system with coherent data processing "Augur" at Russian NPPs. Kontrol'. Diagnostika, (9), pp. 35-39. [in Russian language]
8. Gallagher N. C. (1979). Optimum quantization and relative information content of holographic magnitude and phase. Acoustical imaging and holography, Vol. 1, (2), pp. 119-132.
9. Mahutov N. A. (Ed.), Gadenin M. M. (2009). Risk analysis and improving the safety of water-cooled power reactors. Moscow: Nauka. [in Russian language]
10. Badalyan V. G. (2003). Error measurement of defects using systems with coherent data processing. Defektoskopiya, (3), pp. 12-23. [in Russian language]
11. Badalyan V. G. (2007). Evaluation of control results from acoustic images. Defektoskopiya, (4), pp. 39-58. [in Russian language]
12. Bazulin E. G. (2014). Determination of the type of reflector from an image reconstructed from echo signals measured by ultrasonic antenna arrays. Defektoskopiya, (3), pp. 12-22. [in Russian language]
13. Bazulin E. G., Vopilkin A. H., Tihonov D. S. (2015). Improving the reliability of ultrasonic testing. Part 1. Determination of the type of discontinuity during ultrasound testing with antenna arrays. Kontrol'. Diagnostika, (8), pp. 7-22. [in Russian language] DOI: 10.14489/td.2015.08.pp.007-022
14. Badalyan V. G., Vopilkin A. H. (2004). Monitoring of welded joints of pipelines using automated UT systems with coherent data processing. V mire nerazrushayuschego kontrolya, (4), pp. 22-27. [in Russian language]
15. Badalyan V. G., Vopilkin A. H. (2010). Assessment of the potential hazard of defects with automated ultrasonic monitoring of high-risk objects. V mire nerazrushayuschego kontrolya, (4), pp. 4-7. [in Russian language]
16. Fletcher R., Fenyvesi L. (2004). Validity of the LAPA Method for Assessment of Defects Reported by In-Line Inspection Tools. Proceedings International Pipeline Conference Canada, pp. 1195-1201.
17. The official website of the campaign GEOil & Gas. Available at: https://www.geoilandgas.com/sites/geog/ file/high-speed_integrity_evaluations_case_study.pdf (Accessed: 18.05.2018).
18. Badalyan V. G. (2016). Evaluation of the reliability of ultrasonic testing results in austenitic welded joints (using coherent systems). Kontrol'. Diagnostika, (12), pp. 4-9. [in Russian language] DOI: 10.14489/td.2016.12.pp.004-009
19. Carvalho A. A., Rebello J. M. A., Silva R. R., Sagrilo L. V. S. (2006). Reliability of the manual and automatic ultrasonic technique in the detection of pipe weld defects. Insight, 48(11), pp. 1-6.
20. Badalyan V. G., Bazulin A. E., Bazulin E. G. et al. (2015). Development and certification of AUT methods using the CIVA software package. Kontrol'. Diagnostika, (5), pp. 59-68. [in Russian language] DOI: 10.14489/td.2015.05. pp.059-068
21. The official site of CIVA. Available at: http://www.extende.com/civa-3
22. Badalyan V. G. Bazulin A. E., Vopilkin A. H., Tihonov D. S. (2017). Features of the development of automated control techniques in ultrasonic defectometry. Kontrol'. Diagnostika, (3), pp. 26 – 37. [in Russian language] DOI: 10.14489/td.2017.03.pp.026-037

 

 

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