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Erschienen in: Russian Journal of Nondestructive Testing 12/2022

01.12.2022 | ACOUSTIC METHODS

On Spectral-Acoustic Method for Estimating Porosity of Metals Produced by Hot Isostatic Pressing

verfasst von: A. A. Khlybov, A. L. Uglov, A. A. Demchenko

Erschienen in: Russian Journal of Nondestructive Testing | Ausgabe 12/2022

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Abstract

The possibility of using various variants of the nondestructive spectral-acoustic method of monitoring porosity in sintered Kh12MF steel at various stages of its hot isostatic pressing in the range of residual porosity from 0 to 5% is considered. The existing approaches to porosity monitoring are analyzed. New algorithms are proposed that provide the possibility of express porosity monitoring on real objects with single-sided access and the inability of metal thickness gauging in the testing zone with the required accuracy. The results of experimental verification of measuring techniques based on the proposed algorithms are presented, and the corresponding errors and the limits of applicability are assessed.

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Literatur
1.
Zurück zum Zitat Levashov, A.V., Sentyurina, E.A., Loginov, Z.A., Logachev, P.A., and Samokhin, I.A., Microstructure and thermomechanical behavior of heusler phase Ni2AlHF-strengthened NiAl–Cr(Co) alloy produced by HIP of plasma spheroidized powder, Mater. Sci. Eng. A, 2018, vol. 729, pp. 398–410.CrossRef Levashov, A.V., Sentyurina, E.A., Loginov, Z.A., Logachev, P.A., and Samokhin, I.A., Microstructure and thermomechanical behavior of heusler phase Ni2AlHF-strengthened NiAl–Cr(Co) alloy produced by HIP of plasma spheroidized powder, Mater. Sci. Eng. A, 2018, vol. 729, pp. 398–410.CrossRef
2.
Zurück zum Zitat Ageev, S.V. and Girshov, V.L., Hot isostatic pressing in powder metallurgy, Metalloobrabotka, 2015, no. 4 (88), pp. 56–60. Ageev, S.V. and Girshov, V.L., Hot isostatic pressing in powder metallurgy, Metalloobrabotka, 2015, no. 4 (88), pp. 56–60.
3.
Zurück zum Zitat Khlybov, A.A., Ryabov, D.A., Anosov, M.S., and Belyaev, E.S., Investigation of microstructure features and properties of metals obtained by hot isostatic pressing, Vestnik Izhevskogo Gosudarstvennogo Tehnicheskogo Universiteta, 2021, vol. 24, no. 4, pp. 4–10. Khlybov, A.A., Ryabov, D.A., Anosov, M.S., and Belyaev, E.S., Investigation of microstructure features and properties of metals obtained by hot isostatic pressing, Vestnik Izhevskogo Gosudarstvennogo Tehnicheskogo Universiteta, 2021, vol. 24, no. 4, pp. 4–10.
4.
Zurück zum Zitat Khlybov, A.A., Belyaev, E.S., Ryabtsev, A.D., Belyaeva, S.S., Getmanovskii, Yu.A., and Yavtushenko, P.M., Effect of hot isostatic pressing technology on structure and properties of products made of VZh159 heat-temperature alloy, Zagotovitel’nye Proizvod. Mashinostr., 2021, vol. 19, no. 1, pp. 44–48. Khlybov, A.A., Belyaev, E.S., Ryabtsev, A.D., Belyaeva, S.S., Getmanovskii, Yu.A., and Yavtushenko, P.M., Effect of hot isostatic pressing technology on structure and properties of products made of VZh159 heat-temperature alloy, Zagotovitel’nye Proizvod. Mashinostr., 2021, vol. 19, no. 1, pp. 44–48.
5.
Zurück zum Zitat Khomutov, M., Cheverikin, V., Petrovskiy, P., Travyanov, A., Logachev, I., Smurov, I., Potapkin, P., and Sova, A., Effect of hot isostatic pressing on structure and properties of intermetallic NiAl—Cr–Mo alloy produced by selective laser melting, Intermetallics, 2020, vol. 120, p. 106766.CrossRef Khomutov, M., Cheverikin, V., Petrovskiy, P., Travyanov, A., Logachev, I., Smurov, I., Potapkin, P., and Sova, A., Effect of hot isostatic pressing on structure and properties of intermetallic NiAl—Cr–Mo alloy produced by selective laser melting, Intermetallics, 2020, vol. 120, p. 106766.CrossRef
6.
Zurück zum Zitat Huang, S., Li, Z., Xiong, B., Zhang, Y., Li, X., Liu, H., Yan, H., and Yan, L., Microstructure and porous defects of a spray-formed and hot-worked 7000 aluminium alloy, Mater. Sci. Forum, 2017, vol. 879, pp. 1778–1782.CrossRef Huang, S., Li, Z., Xiong, B., Zhang, Y., Li, X., Liu, H., Yan, H., and Yan, L., Microstructure and porous defects of a spray-formed and hot-worked 7000 aluminium alloy, Mater. Sci. Forum, 2017, vol. 879, pp. 1778–1782.CrossRef
7.
Zurück zum Zitat Aleshin, N.P., Grigor’ev, M.V., Shchipakov, N.A., Prilutskii, M.A., and Murashov, V.V., Applying nondestructive testing to quality control of additive manufactured parts, Russ. J. Nondestr. Test., 2016, vol. 52, no. 10, pp. 600–609.CrossRef Aleshin, N.P., Grigor’ev, M.V., Shchipakov, N.A., Prilutskii, M.A., and Murashov, V.V., Applying nondestructive testing to quality control of additive manufactured parts, Russ. J. Nondestr. Test., 2016, vol. 52, no. 10, pp. 600–609.CrossRef
10.
Zurück zum Zitat Wong, B.S. and Ong, M.Y., Nondestructive Testing of Metallic 3D Printed Specimens, Saarbrücken: LAP Lambert Acad. Publ., 2015. Wong, B.S. and Ong, M.Y., Nondestructive Testing of Metallic 3D Printed Specimens, Saarbrücken: LAP Lambert Acad. Publ., 2015.
11.
Zurück zum Zitat Ren, F., Case, E.D., Morrison, A., Tafesse, M., and Baumann, M.J., Resonant ultrasound spectroscopy measurement of Young’s modulus, shear modulus and Poisson’s ratio as a function of porosity for alumina and hydroxyapatite, Philos. Mag., 2009, vol. 89, no. 14, pp. 1163–1182.CrossRef Ren, F., Case, E.D., Morrison, A., Tafesse, M., and Baumann, M.J., Resonant ultrasound spectroscopy measurement of Young’s modulus, shear modulus and Poisson’s ratio as a function of porosity for alumina and hydroxyapatite, Philos. Mag., 2009, vol. 89, no. 14, pp. 1163–1182.CrossRef
12.
Zurück zum Zitat Permikin, V.S., Diagnostics of creep of heat-resistant steels on the basis of measurements of the ultrasonic wave velocity in nondestructive testing of energy equipment: I. probes and tools for measuring the velocity of ultrasound, Russ. J. Nondestr. Test., 2004, vol. 40, no. 1, pp. 35–45.CrossRef Permikin, V.S., Diagnostics of creep of heat-resistant steels on the basis of measurements of the ultrasonic wave velocity in nondestructive testing of energy equipment: I. probes and tools for measuring the velocity of ultrasound, Russ. J. Nondestr. Test., 2004, vol. 40, no. 1, pp. 35–45.CrossRef
13.
Zurück zum Zitat Savchenko, N.L., Sablina, T.Yu., Sevostyanova, I.N., Buyakova, S.P., and Kulkov, S.N., Deformation and destruction of porous brittle materials under various loading schemes, Izv. Vyssh. Uchebn. Zaved., Fiz., 2015, vol. 58, no. 11, pp. 56–60. Savchenko, N.L., Sablina, T.Yu., Sevostyanova, I.N., Buyakova, S.P., and Kulkov, S.N., Deformation and destruction of porous brittle materials under various loading schemes, Izv. Vyssh. Uchebn. Zaved., Fiz., 2015, vol. 58, no. 11, pp. 56–60.
14.
Zurück zum Zitat Adler, L., Ultrasonic method to determinate gas porosity in aluminium alloy costings: theory and experiment, J. Appl. Phys., 1986, vol. 59, no. 2, pp. 336–347.CrossRef Adler, L., Ultrasonic method to determinate gas porosity in aluminium alloy costings: theory and experiment, J. Appl. Phys., 1986, vol. 59, no. 2, pp. 336–347.CrossRef
15.
Zurück zum Zitat Thompson, D.O., Wormley, S.J., Rose James, H., and Thompson, R.B., Elastic wave scattering from multiple voids (porosity), Rev. Progr. Quant. Nondestruct. Eval. Proc. S. Annu. Rev., San Diego, 1983, vol. 2A, pp. 867–882. Thompson, D.O., Wormley, S.J., Rose James, H., and Thompson, R.B., Elastic wave scattering from multiple voids (porosity), Rev. Progr. Quant. Nondestruct. Eval. Proc. S. Annu. Rev., San Diego, 1983, vol. 2A, pp. 867–882.
16.
Zurück zum Zitat Murashov, V.V., Determination of porosity of carbon fiber plastics in aircraft structures by laser-acoustic method of ultrasonic testing, Aviats. Industr., 2011, no. 3, pp. 33–36. Murashov, V.V., Determination of porosity of carbon fiber plastics in aircraft structures by laser-acoustic method of ultrasonic testing, Aviats. Industr., 2011, no. 3, pp. 33–36.
17.
Zurück zum Zitat Murashov, V.V. and Mishurov, K.S., Determination of porosity of carbon fiber plastics in aircraft structures by ultrasonic method, Aviats. Mater. Tekhnol., 2015, no. 2 (35), pp. 88–92. Murashov, V.V. and Mishurov, K.S., Determination of porosity of carbon fiber plastics in aircraft structures by ultrasonic method, Aviats. Mater. Tekhnol., 2015, no. 2 (35), pp. 88–92.
18.
Zurück zum Zitat Boichuk, A.S., Murashov, V.V., Chertischev, V.Yu., and Dikov, I.A., Determination of porosity in monolithic carbon fiber structures by ultrasonic echo method using laser excitation of ultrasonic vibrations, Tr. VIAM, 2016, no. 12 (48), pp. 10–14. Boichuk, A.S., Murashov, V.V., Chertischev, V.Yu., and Dikov, I.A., Determination of porosity in monolithic carbon fiber structures by ultrasonic echo method using laser excitation of ultrasonic vibrations, Tr. VIAM, 2016, no. 12 (48), pp. 10–14.
21.
Zurück zum Zitat Sokolovskaya, Yu.G., Podymova, N.B., and Karabutov, A.A., Quantitative evaluation of porosity in unidirectional CFRPs using laser ultrasonic method, Russ. J. Nondestr. Test., 2020, vol. 56, no. 3, pp. 201–208.CrossRef Sokolovskaya, Yu.G., Podymova, N.B., and Karabutov, A.A., Quantitative evaluation of porosity in unidirectional CFRPs using laser ultrasonic method, Russ. J. Nondestr. Test., 2020, vol. 56, no. 3, pp. 201–208.CrossRef
22.
Zurück zum Zitat Potapov, A.I. and Makhov, V.E., Methods for nondestructive testing and diagnostics of durability of articles made of polymer composite materials, Russ. J. Nondestr. Test., 2018, vol. 54, no. 3, pp. 151–163.CrossRef Potapov, A.I. and Makhov, V.E., Methods for nondestructive testing and diagnostics of durability of articles made of polymer composite materials, Russ. J. Nondestr. Test., 2018, vol. 54, no. 3, pp. 151–163.CrossRef
23.
Zurück zum Zitat Sokolovskaya, Y.G., Podymova, N.B., and Karabutov, A.A., Application of broadband laser-ultrasonic spectroscopy for nondestructive testing of the porosity in carbon fiber reinforced plastics with various volume contents of carbon fibers, Inorg. Mater. Appl. Res., 2021, vol. 12, no. 5, pp. 1428–1433.CrossRef Sokolovskaya, Y.G., Podymova, N.B., and Karabutov, A.A., Application of broadband laser-ultrasonic spectroscopy for nondestructive testing of the porosity in carbon fiber reinforced plastics with various volume contents of carbon fibers, Inorg. Mater. Appl. Res., 2021, vol. 12, no. 5, pp. 1428–1433.CrossRef
24.
Zurück zum Zitat Cheng, W., Ba, J., Fu, L.-Y., and Lebedev, M., Wave-velocity dispersion and rock microstructure, J. Petroleum Sci. Eng., 2019, vol. 183, p. 106466.CrossRef Cheng, W., Ba, J., Fu, L.-Y., and Lebedev, M., Wave-velocity dispersion and rock microstructure, J. Petroleum Sci. Eng., 2019, vol. 183, p. 106466.CrossRef
25.
Zurück zum Zitat Nikolenko, P.V., Shkuratnik, V.l., and Chepur, M.D., The Effect of Limestone Porosity on the Velocity of P- and S-Waves under Mechanical and Thermal Loading, Moscow: MISIS, 2020, vol. 56, no. 5, pp. 695–705. Nikolenko, P.V., Shkuratnik, V.l., and Chepur, M.D., The Effect of Limestone Porosity on the Velocity of P- and S-Waves under Mechanical and Thermal Loading, Moscow: MISIS, 2020, vol. 56, no. 5, pp. 695–705.
26.
Zurück zum Zitat Shermergor, T.D., Teoriya uprugosti mikroneodnorodnykh sred (Theory of Elasticity of Microinhomogeneous Media), Moscow: Nauka, 1977. Shermergor, T.D., Teoriya uprugosti mikroneodnorodnykh sred (Theory of Elasticity of Microinhomogeneous Media), Moscow: Nauka, 1977.
27.
Zurück zum Zitat Adler, L., Ultrasonic method to determinate gas porosity in aluminium alloy castings: theory and experiment, J. Appl. Phys., 1986, vol. 59, no. 2, pp. 336–347.CrossRef Adler, L., Ultrasonic method to determinate gas porosity in aluminium alloy castings: theory and experiment, J. Appl. Phys., 1986, vol. 59, no. 2, pp. 336–347.CrossRef
28.
Zurück zum Zitat Romanishin, R.I. and Romanishin, I.M., Assessment of scattered damage in structural materials, Russ. J. Nondestr. Test., 2019, vol. 55, no. 2, pp. 111–121.CrossRef Romanishin, R.I. and Romanishin, I.M., Assessment of scattered damage in structural materials, Russ. J. Nondestr. Test., 2019, vol. 55, no. 2, pp. 111–121.CrossRef
29.
Zurück zum Zitat Khlybov, A.A., Pichkov, S.N., and Uglov, A.L., Investigation of the accumulation of dispersed microdamages in specimens of steel 08Kh18N10T with low-cycle fatigue, Kontrol’. Diagn., 2011, no. 4, pp. 55–61. Khlybov, A.A., Pichkov, S.N., and Uglov, A.L., Investigation of the accumulation of dispersed microdamages in specimens of steel 08Kh18N10T with low-cycle fatigue, Kontrol’. Diagn., 2011, no. 4, pp. 55–61.
30.
Zurück zum Zitat Mishakin, V.V., Danilova, N.V., Kurashkin, K.V., Klyushnikov, V.A., and Gonchar, A.V., Diagnostics of structural materials at the early stages of fatigue failure and assessment of the VAT of structural material by nondestructive testing methods, Vestn. Samar. Gos. Aerokosm. Univ., 2011, no. 3 (27), pp. 299–307. Mishakin, V.V., Danilova, N.V., Kurashkin, K.V., Klyushnikov, V.A., and Gonchar, A.V., Diagnostics of structural materials at the early stages of fatigue failure and assessment of the VAT of structural material by nondestructive testing methods, Vestn. Samar. Gos. Aerokosm. Univ., 2011, no. 3 (27), pp. 299–307.
31.
Zurück zum Zitat Khlybov, A.A. and Uglov, A.L., Experimental study of the regularities of fatigue damage accumulation in 08X18N10T steel under low-cycle block loading using the acoustic method, Fiz. Mezomekh., 2015, vol. 18, no. 6, pp. 111–115. Khlybov, A.A. and Uglov, A.L., Experimental study of the regularities of fatigue damage accumulation in 08X18N10T steel under low-cycle block loading using the acoustic method, Fiz. Mezomekh., 2015, vol. 18, no. 6, pp. 111–115.
32.
Zurück zum Zitat Nerazrushayushchii kontrol'’. Spravochnik v 8 t. (Nondestructive Testing. A Handbook in 8 Vols.), Klyuev, V.V., Ed., Vol. 3: Yermolov, I.N. and Lange, Yu.V., Ul’trazvukovoi kontrol' (Ultrasonic Testing), Moscow: Mashinostroenie, 2008. Nerazrushayushchii kontrol'’. Spravochnik v 8 t. (Nondestructive Testing. A Handbook in 8 Vols.), Klyuev, V.V., Ed., Vol. 3: Yermolov, I.N. and Lange, Yu.V., Ul’trazvukovoi kontrol' (Ultrasonic Testing), Moscow: Mashinostroenie, 2008.
33.
Zurück zum Zitat Uglov, A.L., Andrianov, V.M., Batalin, O.Yu., and Zhukov, A.Yu., An ultrasonic probe, RF Patent no. 2244918 G01N029/04, 2005. Uglov, A.L., Andrianov, V.M., Batalin, O.Yu., and Zhukov, A.Yu., An ultrasonic probe, RF Patent no. 2244918 G01N029/04, 2005.
Metadaten
Titel
On Spectral-Acoustic Method for Estimating Porosity of Metals Produced by Hot Isostatic Pressing
verfasst von
A. A. Khlybov
A. L. Uglov
A. A. Demchenko
Publikationsdatum
01.12.2022
Verlag
Pleiades Publishing
Erschienen in
Russian Journal of Nondestructive Testing / Ausgabe 12/2022
Print ISSN: 1061-8309
Elektronische ISSN: 1608-3385
DOI
https://doi.org/10.1134/S1061830922700097

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