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A test-bench for the propelling screws of small-size submersibles

Authors: Melnikov A.I., Drogaytsev I.A.
Published in issue: #6(23)/2018
DOI: 10.18698/2541-8009-2018-6-333


Category: Mechanical Engineering and Machine Science | Chapter: Machine Science, Drive Systems, and Machine Components

Keywords: test-bench, testing the propelling screws, torque measurement, screw thrust measurement, sensor, propeller screw, submersible, electric motor, microcontroller Arduino
Published: 18.06.2018

We have developed a test-bench for testing the propelling screws of small-size submersibles. This test-bench allows taking the characteristics of propelling screws and electric motors as well as monitoring over the cavitational phenomena occurring during the operation of propelling screws. The article proposes a lever circuit of measuring the axial force (thrust) of the screw, ensuring the high speed of the sensor response. We have designed a gear belt drive for the propelling screw gear from the electric motor placed above the water. The gear ensures a wide range of gear ratios (from 1 to 10) due to the removable idler pulley. On the basis of microprocessor Arduino UNO we have developed a system of sensors, allowing us to register such parameters as the screw thrust, the torque on the motor shaft, electric motor shaft speed, current and voltage in the electric motor winding. A computer program for the propelling screws testing process visualization has been written. We produced the essential portion of the stand parts by means of the 3D-print method using the SLS and FDM technologies. The primary benefits of the test-bench designed are the possibility to use it in any water area and the simplicity of design, which along with the compactness allows for using the test-bench in nearly all the laboratory conditions.


References

[1] Chekunov K.A. Sudovye elektroprivody i elektrodvizhenie sudov [Ship electrodrives and electric propulsion]. Sankt-Petersburg, Sudostroenie publ., 1969, 464 p.

[2] Kolesnikov K.S., ed. Mashinostroenie. T. IV-1. Detali mashin. Konstruktsionnaya prochnost’. Trenie, iznos, smazka [Mechanical engineering. Vol. IV-1. Structural strength. Friction, wear, lubrication]. Moscow, Mashinostroenie publ., 1995, 864 p.

[3] Severov S.P., Konstandi I.M. Engineering and testing of submersible active propulsion systems. Inzhenernyy vestnik, 2013, no. 1. Available at: http://engsi.ru/doc/536074.html.

[4] Mel’nikov A.I. Calculation and regulation of modern belt drive gears. Molodezhnyy nauchno-tekhnicheskiy vestnik, 2017, no. 7. Available at: http://sntbul.bmstu.ru/doc/860316.html.

[5] Lakiza R.I., Vavilkin V.N., Kondratov V.I., Shcherbakov K.I. Stend dlya ispytaniya grebnykh vintov i krylatok osevykh nasosov [Test bench for testing of screw shafts and axial pump wing nuts]. Patent 211838 USSR. Appl. 14.11.1967, publ. 24.04.1968.

[6] Tekhnologii 3D-pechati [3D printing technology]. URL: http://3dprogress.ru/tech/ (accessed 30 March 2018).

[7] Sal’nik (armirovannaya manzheta) TC 8kh 22kh 7 WLK [Gasket (armored collar) TC 8kh 22kh 7 WLK]. Available at: https://sf2v.ru/catalog/manzheta/tc_8kh_22kh_7_wlk.html (accessed 08 June 2017).

[8] Petin V.A. Proekty s ispol’zovaniem kontrollera Ardruino [Project using Ardruino controller]. Sankt-Petersburg, BVKh-Peterburg publ., 2014, 400 p.

[9] Blum J. Exploring Arduino: tools and techniques for engineering wizardry. Wiley, 2013, 384 p. (Russ. ed.: Izuchaem Ardruino: instrumenty i metody tekhnicheskogo volshebstva. Sankt-Petersburg, BKhV-Peterburg publ., 2015, 336 p.)

[10] Mikheev V.P. Datchiki i detektory [Sensors and detectors]. Moscow, MePhI publ., 2007, 172 p.

[11] Bezzubik O.N. Sposob izmereniya osevogo usiliya i krutyashchego momenta grebnogo vinta [Method for measuring axial force and twisting moment of screw shaft]. Patent 542921 USSR. Appl. 19.02.1974, publ. 15.01.1977.