Paper
6 June 2018 Fiber optic to radio-photonic equipment constructive principle for pipeline multiple defect monitor
Irina L. Vinogradova, Anna V. Voronkova, Grigory S. Voronkov, Albert Kh. Sultanov, Sergey L. Vinogradov, Guzel I. Abdrakhmanova, Almir T. Sarvarov, Liliya Z. Yantilina, Gulnaz R. Kutlieva, Aydar I. Salikhov
Author Affiliations +
Proceedings Volume 10774, Optical Technologies in Telecommunications 2017; 107741E (2018) https://doi.org/10.1117/12.2317571
Event: XV International Scientific and Technical Conference on Optical Technologies in Telecommunications, 2017, Kazan, Russian Federation
Abstract
This paper describes objectives on inner pipeline fault detection device modeling designated to monitor pipeline in real time. Due to high demands to high-speed and miniature measurements of such devices it is suggested to use implementations on the basis of fiber optic and radio-photonic mode of operation. A functional equipment design containing fiber optic generation and complex optic impulses transformation transmitted into radio trunk circuits are developed. Physical implementation of the suggested model is estimated as well as an analytical model for propagation of pilot signal on the basis of the Maxwell system of equations for partially conductive and simultaneously scattering medium.
© (2018) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Irina L. Vinogradova, Anna V. Voronkova, Grigory S. Voronkov, Albert Kh. Sultanov, Sergey L. Vinogradov, Guzel I. Abdrakhmanova, Almir T. Sarvarov, Liliya Z. Yantilina, Gulnaz R. Kutlieva, and Aydar I. Salikhov "Fiber optic to radio-photonic equipment constructive principle for pipeline multiple defect monitor", Proc. SPIE 10774, Optical Technologies in Telecommunications 2017, 107741E (6 June 2018); https://doi.org/10.1117/12.2317571
Advertisement
Advertisement
RIGHTS & PERMISSIONS
Get copyright permission  Get copyright permission on Copyright Marketplace
KEYWORDS
Radio propagation

Electromagnetism

Signal attenuation

Metals

Magnetism

Fiber optics

Wave propagation

RELATED CONTENT


Back to Top