Now accepting submissions for the upcoming volume
Electronic and Acoustic Engineering
ISSN 2524-2725 · e‑ISSN 2617-0965 Open Access · CC BY-NC 4.0
Vol. 1 · Issue 1 · 2018 Mar 4, 2018 Acoustical devices and systems

Designing of sound intensity measuring simulator for bearing tasks

AK
Andrii Vitaliiovych Kozak Corresponding National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute” andrekaka1996@gmail.com Ukraine
PL
Pylyp Mykolaiovych Larin National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute” Ukraine
RK
Roman Yuriiovych Kostiuk National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute” Ukraine
OK
Oleksii Volodymyrovych Korzhyk National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute” Ukraine
Pages27-33 PublishedMar 4, 2018 LicenseOpen Access
EAE 1 VOL 1 · 1
VOL 1 · NO 1 · 2018 View issue

Abstract

Work is devoted to problems of simulation devices and methods of acoustic measurements. The problem of measuring the sound intensity as one of the most important characteristics of the sound field by using only pressure recievers. According to the algorithm determining the intensity measurement device simulation performed based additive and multiplicative operations. With instrumental laboratory Lab View software model received intensy-metr simulator software and mobile device detection air or underwater noice-radiation objects. The main reason for using Lab View is that this tool-graphic package, oriented to object programming, essentially provides the construction of an algorithm for the desired procedure for the device to be implemented. At the same time, the user interface is simple and accessible, it is possible to use a wide range of input data and a variety of indicator and recording devices. In this case, the program body in the LabVIEW<sup®environment is created in the form of a graphical diagram reflecting the sequence of mathematical operations that determine the operating principle of the device. Thus, the chain: "mathematical expression - block diagram - program" is practically realized by objects of the program algorithm. A simulator has been developed that allows not only to measure the intensity of acoustic perturbation of the working medium in true and relative units, but also to ensure the operation of the device for detecting a useful signal against the background of isotropic sound noise represented by white noise. Simulation of the receiving acoustic device was carried out on the basis of a model combining the capabilities of pressure receivers and receivers of oscillation  speed. In this case, the number of pressure receptacles can vary - from two to three. In the topic  there is a variant of the receiving device, consisting of three pressure receptacles. The resulting software algorithm, formally, contains four groups of device-tools, namely: devices for simulating input signals; devices for the formation of signals of difference, sum and phase shift; filtering devices that provide the formation of a working frequency band and filtering devices that realize the principle of the parity-type spectrum analyzer; group of indicators. The obtained results are proposed to be considered as the initial ones for the creation of simulators of air and underwater sound-direction findinging on the basis of combined receivers. Ref. 9, fig. 4.

Keywords

References

  1. J. Romeo, "UAV Design Challenges: Game On," 01 June 2016. [Online]. Available: http://www.digitaleng.news/de/uav-design-challenges-game-on/.
  2. F. A. Azis, M. S. M. Aras, M. Z. A. Rashid, M. N. Othman and S. S. Abdullah, "Problem Identification for Underwater Remotely Operated Vehicle (ROV): A Case Study," Procedia Engineering, vol. 41, pp. 554-560, 2012. DOI: 10.1016/j.proeng.2012.07.211
  3. V. F. Samohin, S. P. Ostrouhov and P. A. Moshkov, «Eksperimentalnoe issledovanie istochnikov shuma bespilotnogo letatelnogo apparata s vintovyim dvigatelem v tolkayuschem ustroystve [Experimental study of noise sources of an unmanned aerial vehicle with a screw-ring propulsor in a pushing arrangement],» Electronic Journal "Proceedings of the MAI", no. 70, 2013.
  4. V. T. Grinchenko, I. V. Vovk and V. T. Matsyipura, Osnovy akustyky: Navchalnyi posibnyk [Basics of Acoustics: Textbook], Kyiv: National Academy of Sciences of Ukraine. Institute of Hydromechanics., 2009, p. 867.
  5. V. S. Dіdkovskyi, O. V. Korzhyk and O. H. Leiko, Shumy i vibratsii: Navchalnii posibnyk [Noise and vibration. Textbook], Kyiv: Imeks LTD, 2010, p. 334.
  6. G. K. Skrebnev, Kombinirovannyie gidroakusticheskie priemniki [Combined sonar receivers], St.-Peterburg: Elmor, 1997, p. 200.
  7. V. S. Dіdkovskyi, V. Y. Akimenko, O. I. Zaporozhets, V. G. Savin and V. I. Tokarev, Osnovy akustychnoi ekolohii: Navchalnii posibnyk [Fundamentals of Acoustic Ecology: Textbook], Kіrovograd: Imeks LTD, 2002, p. 515.
  8. A. V. Kozak, L. P. M. та R. Y. Kostiuk, «Modeliuvannia prystroiu vymIriuvannia IntensyvnostI zvuku ta formuvannia prostorovoi selektyvnostI v povItrI [Simulation of sound intensity measurement device and forming spatial selectivity in the air],» in X International Scientific Conference of Young Scientists, Kyiv, Ukraine, 2017.
  9. R. Y. Kostyuk, A. V. Kozak та P. M. Larin, «Rozrobka shliakhIv stvorennia mIkrofonu dlia system vytrymky z povItriam [Microphone path development for air proofing systems bearing],» in X International Scientific Conference of Young Scientists, Kyiv, Ukraine, 2017.

License

CCBY-NC 4.0
Creative Commons Attribution 4.0 International

This work is openly licensed — share and adapt freely with attribution to the authors and the journal. View license terms ↗

§ 06 — Related

Similar articles in this journal

Related peer-reviewed studies published in this journal.
View all issues

Most read articles by the same author(s)

Similar Articles

1-10 of 50

You may also start an advanced similarity search for this article.