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Upgrading of the recording system of complex loading testing machine

https://doi.org/10.26896/1028-6861-2021-87-2-65-71

Abstract

The effectiveness of experimental studies of the mechanical properties of materials and the reliability of the results obtained are determined by the technical level of testing machines. The stress-strain state of the object is monitored using recording sensors. The reading accuracy for the existing CL unit is 8%. However, this accuracy appeared insufficient when studying the developed plastic deformations. The problem of insufficient accuracy is partially related to the outdated recording system of the experimental setup, both when taking the results of the experiments and when managing the experiment. Getting of the reliable data upon complex loading is necessary to identify the reserves of the bearing capacity of structural elements in conditions of multi-parameter loading. All the experiments on a CL testing machine were carried out at room temperature. An additional amplifier of the electric signal of the strain gauge sensor was introduced to improve the accuracy of the readings of the recording system. The results of modernizing the recording system of the CL testing machine intended for static isothermal tests of tubular specimens are presented. The testing machine provides testing of the samples under axial tensile force and torque.

About the Authors

V. A. Galiaskarov
Institute of mechanics and seismic stability of structures
Uzbekistan
31, Dormon yoli, Tashkent, 100125, Uzbekistan


F. F. Adilov
Institute of mechanics and seismic stability of structures
Uzbekistan
31, Dormon yoli, Tashkent, 100125, Uzbekistan


R. A. Abirov
Institute of mechanics and seismic stability of structures
Uzbekistan
31, Dormon yoli, Tashkent, 100125, Uzbekistan


References

1. Prokopenko A. K., Golubev A. P. Modernization of an automated mobile system for testing materials of mechanical systems in the metal cladding mode / Élektrotekh. Inf. Kompl. Sist. 2012. Vol. 8. N 3. P. 37 – 45 [in Russian]

2. Novikov Yu. V., Kalashnikov O. A., Gulyaev S. E. Interface Design. — Moscow: Ékom, 2002. — 224 p. [in Russian].

3. Cheremnykh S. V., Skudalov P. O. SN-ÉVM unit for experimental studies of stability in circular cylindrical shells under combined loading / Tekhn. Tekhnol. Transp. 2019. N S13. P. 45. http://transport-kgasu.ru/files/N13-45PIR.19.pdf [in Russian].

4. Ivanov P. A. Optoelectronic sensors / Les. Vestn. 2010. N 1. P. 137 – 139 [in Russian].

5. Okosi T., Okamoto K., Otsu M. Fiber-optic sensors — Leningrad: Énergoatomizdat, 1990. — 256 p. [in Russian].

6. Krasyuk B. A., Korneev G. I. Optical communication systems and light-guide sensors. Technology issues. — Moscow: Radio i svyaz, 1985. — 192 p. [in Russian].

7. Busurin V. I., Nosov Yu. R. Fiber optic sensors. Physical foundations, calculation and application issues. — Moscow: Énergoatomizdat, 1990. — 256 p. [in Russian].

8. Donlagic D., Zavrsnik M. Fiber-optic microbend sensor structure / Optics Lett. 1997. Vol. 22. N 11. P. 837 – 839.

9. Lim J. H. Tunable fiber grating fabricated in photonic crystal fiber by use of mechanical pressure / Optics Lett. 2004. Vol. 29. N 4. P. 331 – 333.

10. Ivanov O. V. Wavelength shift and split of cladding mode resonances in microbend long-period fiber gratings under torsion / Optics Comm. 2004. Vol. 232. N 1 – 6. P. 159 – 166.

11. Borisov V. I., Silutina E. M., Shilova I. V. The multiple-unit fiber-optic sensor of the deformation / Vestn. Mogilev. Gos. Tekhn. Univ. 2006. Vol. 10. N 1. P. 28 – 31 [in Russian].

12. Silutina E. M. Development of a stand for calibrating fiber-optic torsional strain sensors / Vestn. Mogilev. Gos. Tekhn. Univ. 2006. Vol. 10. N 1. P. 257 – 261 [in Russian].

13. Pey An. Pair PC with external devices. — Moscow: DMK, 2004. — 320 p. [in Russian].


Review

For citations:


Galiaskarov V.A., Adilov F.F., Abirov R.A. Upgrading of the recording system of complex loading testing machine. Industrial laboratory. Diagnostics of materials. 2021;87(2):65-71. (In Russ.) https://doi.org/10.26896/1028-6861-2021-87-2-65-71

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ISSN 1028-6861 (Print)
ISSN 2588-0187 (Online)