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course | advanced fiber optic power systems & Design in Power System Applications

Learn advanced fiber optic power systems, including network design, installation, testing, and integration for efficient and reliable power system communications.

EEC-1902 | advanced fiber optic power systems & Design in Power System Applications

Course Sector : Electrical Engineering

Duration
Date from
Date to Course Venue Course fees Book a course
5 Days21/09/202625/09/2026Dubai$4,250 Book now
5 Days04/01/202708/01/2027Dubai$4,250 Book now
5 Days15/03/202719/03/2027Barcelona$4,950 Book now
5 Days14/06/202718/06/2027Abu Dhabi$4,250 Book now

Course Introduction

The Advanced Fiber Optic Power Systems course provides engineers and technical professionals with the knowledge and practical skills needed to design, install, and maintain high-performance fiber optic networks within modern power systems. As power grids rely increasingly on fast, reliable communication for monitoring, control, and automation, expertise in advanced fiber optic power systems has become essential.

Participants will learn about network planning, optical fiber installation techniques, testing and troubleshooting, and integration with power system applications. The course also covers best practices to ensure secure, efficient, and reliable data transmission for substations, smart grids, and energy infrastructure projects.

By completing this course, learners will be able to implement robust advanced fiber optic power systems, optimize network performance, reduce system downtime, and support advanced automation and control in power system environments


Course objective

  • Knowledge of Network Topologies
  • Understanding the International Standards TIA & ISO
  • Understanding the Fiber Optic Specifications
  • Choose the proper and cost-effective components
  • Preparing Fiber Optic Plant Documentation in Power Project
  • Preparing Plant Link Loss Budget Analysis and Calculation
  • Studying True Examples of Power Applications
  • Determine Effective Bandwidth & Bit Rate of Multimode Fiber
  • Preparing the Fiber Cable End and Terminating the Fiber Optic Cables
  • Also, Splice the Fiber Optic Cables

Course audience

  • Power Systems Engineer
  • Project Engineer
  • Test Engineer

Course Outline | DAY 01

Module (01) Optical Physics
 

  • Reflection
  • Refraction
  • Interference
  • Attenuation
  • Dispersion
  • Refractive Index
  • Numerical Aperture
  • Cone of Acceptance
  • Special Width
     

Module (02) Link Characteristics

 

  • Premises
  • Metro
  • Long Haul
     

Module (03) SM Fiber Optic Standards
 

  • TIA
  • ISO

Course Outline | Day 02

Module (04) Loss Types and Loss Budget Calculation
 

  • Fiber Insertion Loss
  • Fiber Reflection Loss
  • Splice Loss
  • Termination Loss
     

Module (05) Power Budget Calculation
 

  • Transmitter Power
  • Receiver Sensitivity
  • Power Budget
     

Module (06) MM Fiber Bite Rate Calculation
 

  • OM1
  • OM2
  • OM3
  • OM4

Course Outline | Day 03

Module (07) Fiber Optic Cable Types & Applications
 

  • Indoor Cables
  • Underground Cables
  • Aerial Cables
  • Sub-Marine Cables
     

Module (08) Fiber Optic Cable Types & Specifications
 

  • Environmental Specifications
  • Mechanical Specifications
  • Optical Specifications
     

Module (09) Optical Transceiver used in Power System
 

  • Media Converter
  • SFP
  • Built-in Optical Port
     

Module (10) Optics
 

  • Lasers & LED
  • Optical Detectors
  • Optical Amplifier
  • Optical Switches

Course Outline | Day 04

Module (11) Fiber Optic Project
 

  • Site Survey
  • Network Design
  • Installation
  • As Built
     

Module (12) Fiber Optic Design
 

  • Basic Layout for the Network
  • Documentations
  • Planning the Networks
  • Choose the Components
  • Preparing the Bill of Quantities (BOQ)
  • Design Review
  • Cost Calculation
  • Define Testing Requirements
  • Writing Specifications for the Cable Plant
  • The Right of Way
     

Module (13) Fiber Optic Installation
 

  • Cable Pulling
  • Direct Buried
  • Cable Air Blowing
     

Module (14) Fiber Optic Splicing & Termination
 

  • Fiber Optic Mechanical Termination
  • Fiber Fusion Splicing

Course Outline | Day 05

Module (15) Fiber Optic Testing
 

  • Loss Testing
  • VFL
  • OTDR
  • Identifier
  • Inspection Microscope
  • Guideline of Testing & Troubleshooting

 

Module (16) Fiber Optic in Advanced Power Applications
 

  • Power Control
  • SCADA System
  • Overhead Lines
  • Underground Power System
  • Submarine Power System
  • Protective Relaying Systems
  • ARC Protection Relay
  • Transformer Heat Monitoring
  • Power Cables Real-Time Thermal Monitoring
  • Distributed Temperature Sensing
     

Module (17) Fiber Optics in Other Applications
 

  • Oil & Gas
  • Telecommunication
  • IT
  • Industry
  • FTTX
Course Certificates
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BOOST’s Professional Attendance Certificate “BPAC”

BPAC is always given to the delegates after completing the training course,and depends on their attendance of the program at a rate of no less than 80%,besides their active participation and engagement during the program sessions.

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The working principle of Optical Fiber Communication (OFC) relies on transmitting light signals through optical fibers. Data is converted into light pulses using lasers or LEDs, which travel along the fiber core by total internal reflection. This allows high-speed, long-distance transmission with minimal signal loss, making it ideal for advanced fiber optic power systems and modern communication networks.
Advanced fiber optic power systems are high-speed communication networks integrated into electrical power systems, enabling reliable monitoring, control, and automation of substations, smart grids, and energy infrastructure.
They provide secure, efficient, and high-speed communication that supports system reliability, real-time monitoring, and seamless operation in modern electrical grids.
This course is ideal for electrical engineers, telecom engineers, power system professionals, and technical specialists working on advanced fiber optic power systems and smart grid projects.
Participants will learn fiber optic network design, installation techniques, testing and troubleshooting, and integration with power system applications, all critical for deploying advanced fiber optic power systems effectively.
Properly designed advanced fiber optic power systems ensure reliable communication, minimize downtime, enhance monitoring and control, and support the implementation of modern automation technologies in power grids.
ODP (Optical Distribution Point) fiber refers to fiber optic cables used in the distribution part of a network, typically connecting the main backbone to end-user connections. ODP fibers are essential in power system applications and smart grids for linking substations, control centers, and field devices while maintaining signal integrity and reliability.
Standard fiber optic cables do not carry electrical power; they transmit data as light signals. However, certain technologies like Power-over-Fiber (PoF) can transmit low electrical power along with data for remote sensors or devices, which is sometimes used in specialized power system applications.
Corning Inc. – pioneer in optical fiber manufacturing. Prysmian Group – global leader in fiber optic and cable systems. Furukawa Electric – major supplier for telecom and power industries. Sumitomo Electric – large-scale optical fiber and cable producer. These companies provide equipment and solutions widely used in advanced fiber optic power systems projects
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