•  
  •  
 

Abstract

The article examines the problems and prospects of creating discrete fiber-optic liquid level gauges. Functional diagrams of single-channel and multi-channel discrete fiber-optic liquid level meters are presented. Examining the challenges of keeping this system running continuously reveals that sustaining its required reliability necessitates replacing malfunctioning measurement systems with operational ones. Investigations into differential equation models demonstrate that system recovery and failure events occur independently and follow a Poisson distribution pattern.

First Page

14

Last Page

22

References

  1. Azimov, R.K., Shipulin, Yu.G. (1987). Optoelektronnye preobrazovateli bol’shikh peremeshcheniy na osnove polykh svetovodov [Optoelectronic Transducers of Large Displacements Based on Hollow Light Guides]. M.: Energoatomizdat, 105 p. (in Russian).
  2. Antonio-Lopez, J.E., Sanchez-Mondragon, J.J., LiKamWa, P., May-Arrioja, D.A. (2011). Fiber-optic sensor for liquid level measurement. Opt. Lett. 36, 3425-3427. doi:10.1364/OL.36.003425.
  3. Azimov, R.K., Khodzhaev, S.S., Shipulin, Yu.G. (1987). Opticheskiy pervichnyy preobrazovatel’ informatsii na osnove svetovoda [Optical Primary Information Transducer Based on a Light Guide]. DAN UzSSR, 2, 20-22. (in Russian).
  4. Busurin, V.I., Lyarskiy, V.F., Sadovnikov, V.I. (1984). Optoelektronnye preobrazovateli na osnove upravlyayushchikh svetovodnykh struktur [Optoelectronic Converters Based on Controlled Light-Guide Structures]. M.: Radio i svyaz’, 168 p. (in Russian).
  5. Azimov, R.K., Shipulin, Yu.G. (1999). Diskretnye optoelektronnye preobrazovateli na osnove polykh svetovodov dlya sistem kontrolya urovnya i raskhoda [Discrete Optoelectronic Converters Based on Hollow Light Guides for Level and Flow Control Systems]. Sbornik nauchnykh dokladov II mezhdunarodnoy nauchno-teoreticheskoy i prakticheskoy konferentsii «Problemy i perspektivy avtomatizatsii proizvodstva i upravleniya», 108-116. (in Russian).
  6. Azimov, R.K., Shipulin, Yu.G., Maksimova, N.F. (1991). Obshchie voprosy proektirovaniya optiko-elektronnykh ustroystv na polykh svetovodov [General Issues in Designing Optoelectronic Devices Based on Hollow Light Guides]. Izvestiya VUZov. Priborostroenie, 34(3). 87-92. (in Russian).
  7. Konyukhov, N.E., Plyuyot, A.A., Shapovalov, V.M. (1997). Optoelektronnye izmeritel’nye preobrazovateli [Optoelectronic Measuring Transducers]. L.: Energiya, 160 p. (in Russian).
  8. Radimov, O.N., Chistyakov, Z.T. (1973). Obespechenie normal’nogo funktsionirovaniya vychislitel’nogo kompleksa [Ensuring the Normal Functioning of a Computing Complex]. Izvestiya VUZov «Priborostroenie» TXVI. 9, 62-66. (in Russian).
  9. Venttsel’, E.S. (1962). Teoriya veroyatnostey [Probability Theory]. Moskva: Fizmat, 125 p. (in Russian).
  10. Franke, G. (1978). Expected utility with ambiguous probabilities and “Irrational Parameters”. Theor Decis, 9. 267-283.
  11. Shipulin, Yu.G. (1997). Optoelektronnaya izmeritel’naya sistema urovnya podzemnykh vod [Optoelectronic Measurement System for Groundwater Level]. Pervaya VNTPK – Problemy i perspektivy avtomatizatsii proizvodstva i upravleniya, «Avtomatizatsiya-97», 115-119. (in Russian).
  12. Razevig, V.D. Sistema skhemotekhnicheskogo modelirovaniya Micro-CAP 7. (in Russian).

Share

COinS
 
 

To view the content in your browser, please download Adobe Reader or, alternately,
you may Download the file to your hard drive.

NOTE: The latest versions of Adobe Reader do not support viewing PDF files within Firefox on Mac OS and if you are using a modern (Intel) Mac, there is no official plugin for viewing PDF files within the browser window.