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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2022, 03 March

DOI: 10.14489/td.2022.03.pp.004-016

Danilov V. N., Voronkova L. V.
ON THE INFLUENCE OF THE PARAMETERS OF GLOBULAR GRAPHITE INCLUSIONS ON THE ACOUSTIC CHARACTERISTICS OF CAST IRON AND ULTRASONIC LONGITUDINAL WAVE SIGNALS
(pp. 4-16)

Abstract. Based on analytical models, the dependence of the velocity and attenuation coefficient of the longitudinal ultrasonic wave in cast iron with globular graphite on the average size of graphite elements and its volume content is shown. Computer modeling of acoustic paths for a medium – cast iron with globular graphite for standard normal probes was carried out to assess the influence of such a medium on the characteristics of the transmitted and recorded signals during ultrasonic testing. Calculations of directivity characteristic of probes with normalization of each directivity characteristic to its maximum for steel and cast iron with globular graphite, a slight change in the width of the directivity characteristics due to the lower velocity of longitudinal waves in cast iron compared to steel. It is established that the amplitude of the bottom signal in cast iron with globular graphite can exceed its values for structural steel. Evaluation of the nonlinearity of attenuation for cast iron with globular graphite showed that it is very small. The features of DGS-diagrams for cast iron with globular graphite are noted, associated with higher attenuation of longitudinal waves than in steel, as well as with lower velocities of their propagation.

Keywords: cast iron, globular graphite, inclusion, longitudinal wave, signal spectrum, attenuation coefficient, normal probe, directivity characteristic, DGS-diagram.

V. N. Danilov, L. V. Voronkova (ROSATOM Scientific Centre of Russian Federation JSC RPA “CNIITMASH”, Moscow, Russia) E-mail: Данный адрес e-mail защищен от спам-ботов, Вам необходимо включить Javascript для его просмотра. , Данный адрес e-mail защищен от спам-ботов, Вам необходимо включить Javascript для его просмотра.  

1. Aleksandrov N. N., Bekh N. I., Radchenko M. V. (2009). Ductile cast iron with nodular graphite is a unique structural material of the 21st century. Liteynoe proizvodstvo, (6), pp. 2 – 4. [in Russian language]
2. Danilov V. N., Voronkova L. V. (2019). Investigation of the effect of attenuation of elastic longitudinal waves in cast iron with flake graphite on the characteristics of signals during ultrasonic testing. Kontrol'. Diagnostika, (6), pp. 18 – 33. [in Russian language] DOI 10.14489/td.2019. 06.pp.018-033
3. Rzhevskiy V. V., Yamshchikov V. S. (1973). Acoustic methods of research and control of rocks in the massif. Moscow: Nauka. [in Russian language]
4. Chaban I. A. (1965). Calculation of Effective Parameters of Microinhomogeneous Media by the Self-Consistent Field Method. Akusticheskiy zhurnal, Vol. 11, (1), pp. 102 – 109. [in Russian language]
5. Danilov V. N., Yamshchikov V. S. (1984). Scattering of longitudinal elastic waves by a set of small spherical inhomogeneities. Defektoskopiya, (5), pp. 14 – 19. [in Russian language]
6. Ermolov I. N. (1981). Theory and practice of ultrasonic control. Moscow: Mashinostroenie. [in Russian language]
7. Danilov V. N. (1989). On the calculation of the damping coefficient of elastic waves during scattering in polycrystalline media. Defektoskopiya, (8), pp. 18 – 23. [in Russian language]
8. Danilov V. N. (1989). On the estimation of the level of structural noises taking into account the rayleigh repeated scattering of elastic waves. Defektoskopiya, (5), pp. 79 – 83. [in Russian language]
9. Ermolov I. N. (2004). Achievements in theoretical issues of ultrasonic flaw detection, tasks and prospects. Defektoskopiya, (10), pp. 13 – 48. [in Russian language]
10. Jing G., Truell R. (1956). Scattering of a Plane Longitudinal Wave by a Spherical Obstacle in an Isotropically Elastic Solid. Journal of Applied Physics, Vol. 27, pp. 1086 – 1097.
11. Merkulova V. M. (1965). Acoustic properties of some solid heterogeneous media at ultrasonic frequencies. Akusticheskiy zhurnal, Vol. XI, (1), pp. 68 – 73. [in Russian language]
12. Himchenko N. V. (1976). Ultrasonic structural analysis of metallic materials and products. Moscow: Mashinostroenie. [in Russian language]
13. Zbinden H. U. (1969). Der ultrashall als Mittel der Wer Kstafforschung. Technica, 14, pp. 3 – 18.
14. Heine H. J. (1975). Using NDT Effectively. Ultrasonics / Foundry M. and T.
15. Klyuev V. V. (Ed.), Ermolov I. N., Lange Yu. V. (2006). Ultrasonic control. Non-destructive testing: reference book: in 8 volumes. Vol. 3. 2nd ed. Moscow: Mashinostroenie. [in Russian language]
16. Ermolov I. N. (1992). Ultrasonic control: a quick reference. Moscow: NPO TsNIITMASh. [in Russian language]
17. Cast iron castings with various forms of graphite. Methods for determining the structure. (2005). Ru Standard No. GOST 3443–87. Moscow: Standartinform. [in Russian language]
18. Mihovski M., Alexiev A., Kovachev B. et al. (2006). Modeling the Propagation of Ultrasonic Waves in a Medium with Non-homogeneities. 9th European Conference on NDT. Berlin.
19. Voronkova L. V. (2006). Control of iron castings by ultrasound. Moscow: Izdatel'stvo MGTU im. N. E. Baumana. [in Russian language]
20. Danilov V. N., Voronkova L. V. (2020). Investigation of the specificity of ultrasonic testing of cast iron with globular graphite using longitudinal elastic waves. Kontrol'. Diagnostika, (2), pp. 6 – 25. [in Russian language] DOI 10.14489/td.2020.02.pp.006-025
21. Danilov V. N. (2006). The program for computer simulation of the operation of electroacoustic paths of flaw detectors "Impulse +". Defektoskopiya, (3), pp. 37 – 43. [in Russian language]
22. Danilov V. N., Voronkova L. V. (2020). Investigation of the possibilities of ultrasonic testing of cast iron with lamellar graphite using standard normal probe. Kontrol'. Diagnostika, (1), pp. 4 – 18. [in Russian language] DOI 10.14489/td.2020.01.pp.004-018
23. Danilov V. N., Izofatova N. Yu., Voronkov V. A. (1997). Comparison of theoretical and experimental results of the study of the operation of direct combined converters. Defektoskopiya, (6), pp. 39 – 49. [in Russian language]
24. Razygraev A. N., Razygraev N. N., Dikov I. A. (2016). Guidelines for the use of DGS diagrams for ultrasonic testing of base metal, welded joints and surfacing. Moscow: Izdatel'skiy dom «Spektr». [in Russian language]
25. Danilov V. N., Ermolov I. N. (2000). On the issue of calculating DGS-diagrams. Defektoskopiya, (6), pp. 35 – 43. [in Russian language]

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