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    Detailed Project Report on Optical Fiber Cable

    Detailed Project Report on Optical Fiber Cable
    Detailed Project Report on Optical Fiber Cable
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      OPTICAL FIBER CABLE

      [EIRI/EDPR/4260] J.C.: 2435INR, 2435US$ 


      INTRODUCTION

      Fiber is hair-thin material made of glass. Generally, optical fiber has a diameter of 125 micrometers (μm), which is actually the diameter of the cladding, or outer reflecting layer. The core, or inner transmitting cylinder, may have a much smaller diameter (sometimes 10 μm). Light rays beam into the fibre within the core through the process of total internal reflection. This can happen for great distances with little attenuation or reduction in density. The degree of attenuation varies according to the wavelength with little attenuation in intensity.

      A fiber-optic cable is composed of very thin strands of glass or plastic known as optical fibers; one cable can have as few as two strands or as many as several hundreds of them. These optical fiber cables carry information in the form of data between two places using optical or light-based technology. Once the light beams travel down the optical fiber cable (OFC), they would emerge at the other end. A photoelectric cell will be required to turn the pulses of light back into electrical information the computer could understand.

      While travelling down fiber optic cable, light repeatedly off the walls. The beam of light does not leak out of the edges because it hits the glass at really shallow angles. And then it reflects back again as if the glass was really a mirror. This is called total internal reflection. The other factor that keeps it in the pipe is the cable structure.

      Fiber offers many advantages, the prime ones being higher bandwidth and reach. Optical fibre cables (OFC) are now preferred over old copper telecom cables as they provide high-speed broadband services. Optical fibre loses 3% of the signal over 100 meters distance while copper wires lose 94%. 

      Additionally, optical fibres are more long-lasting as compared to copper wires, which are much fragile. Copper wire can be tapped very easily, while optical fibres do not radiate signals that can be tapped. Optical fibre offers much lower latency (the amount of time required to perform data transmission) compared to copper wires.

      The Indian optical fiber cable market is gaining traction. The growth is driven by continued investments being made by the Indian government in developing OFC network infrastructure, in various projects. The Indian market for optical fibre cable (OFC) is projected to grow at a CAGR of 17% through 2023. 

      There has been increased adoption of Fiber-to-the-Home (FTTH) connectivity owing to government initiatives such as Digital India, Smart Cities, or Bharatnet. Moreover, the growing number of data centers in India will fuel this growth further.

      The Telecom industry is the primary user of optical fiber technology. The increasing need for 24X7 high-speed connectivity and an increase in data traffic due to services such as voice, messaging emails, downloads, and video streaming.

      Indian OFC manufacturers have been making great efforts to meet domestic demand for optic fibre cable. For this, they also need support to ensure sustainable development to the overall economy. In several developed countries, initiatives like tax incentives, substantial project subsidies, financial support for R&D have assisted domestic players to proliferate. The Indian manufacturers have the capability and capacity and they also need a similar kind of support from the government.

      The optical fibre cable is classified based on 3 factors – the refractive index, materials used, and mode of propagation of light.

      The basis on refractive index OFC is of two types:

      Step Index Fibers: 

      It comprises a core enclosed by the cladding, which has a single uniform index of refraction.

      Graded Index Fibers: 

      The refractive index of the optical fiber decreases as the radial distance from the fiber axis increases.

      Based on materials, OFC is of 2 types:

      Plastic Optical Fibers: 

      The poly (methyl methacrylate) is used as a core material for the transmission of light.

      Glass Fibers: 

      It consists of extremely fine glass fibers.

      Based on the mode of propagation of light, OFC is divided into:

      Single-Mode Fibers: Used for long-distance transmission of signals.

      Multimode Fibers: Used for short-distance transmission of signals.

      Difference between multimode and single mode fibre optic cable

      Based on product type, the market can be divided into single mode fiber and multi-mode fiber. Single mode fiber allows one type of light mode to be propagated at a time. However, multi-mode fiber cable can propagate multiple modes. Multi-mode optical fiber can be used for short-distance runs, while single mode fiber cable can be used for long-distance applications. Hence, single mode fiber segment is expected to grow much faster during the forecast period owing to their long-distance applications and low installation cost as compared to multi-mode fiber.

      Single mode fiber’s core diameter (9 µm) is much smaller than multimode fiber (50 µm and 62.5 µm). It’s typical core diameter is 9 µm. This enables the multimode fiber to have a higher “light-gathering” ability and simplify connections. The cladding diameter of single mode and multimode fiber is 125 µm.

      Why use optic fiber cable?

      They have practically unlimited information

      They have high carrying capacity (very broad bandwidth, THz or Tbits/s)

      They have very low transmission losses (<0.2dB/km, cf1dB/km microwave, 10db/km twisted copper pair)

      They do not dissipate heat

      They are immune to cross-talk and electromagnetic interference

      The global optical fiber market was valued at $3,477 million in 2017, and is projected to reach $8,153 million by 2025, growing at a CAGR of 11.6% from 2018 to 2025.

      It is intended to prepare a Feasibility Report to install an Optical Fiber Cable production facility with an installed capacity of 300000 Fiber Km / Year as a Brown Field Project.


      COST ESTIMATION

      Plant Capacity                              426.67 Kg./Day

      Land & Building                          Rs. 8.93 Cr

      Plant & Machinery                      Rs. 8.26 Cr

      Working Capital for 1 Month    Rs. 3.98 Cr

      Total Capital Investment          Rs. 23.46 Cr

      Rate of Return                             6%

      Break Even Point                       88%


      CONTENTS

      INTRODUCTION

      THE BASIS ON REFRACTIVE INDEX OFC IS OF TWO TYPES:

      BASED ON MATERIALS, OFC IS OF 2 TYPES:

      BASED ON THE MODE OF PROPAGATION OF LIGHT, OFC IS DIVIDED INTO:

      DIFFERENCE BETWEEN MULTIMODE AND SINGLE MODE FIBRE OPTIC CABLE

      WHY USE OPTIC FIBER CABLE?

      USE/APPLICATION/ADVANTAGES

      MEDICAL

      TELECOMMUNICATIONS

      NETWORKING

      INDUSTRIAL/COMMERCIAL

      DEFENCE/GOVERNMENT

      DATA STORAGE

      MARKET OVERVIEW

      FIBER OPTIC CABLE MARKET, BY REGION, 2020

      FIBER OPTIC CABLE MARKET SEGMENT ANALYSIS - BY APPLICATION

      FIBER OPTIC CABLE MARKET SEGMENT ANALYSIS - BY FIBER TYPE

      FIBER OPTIC CABLE MARKET SEGMENT ANALYSIS - BY GEOGRAPHY

      FIBER OPTIC CABLE MARKET DRIVERS

      INCREASING APPLICATIONS WITHIN MEDICAL AND AEROSPACE

      ADOPTION OF FIBER FOR 5G INFRASTRUCTURE

      FIBER OPTIC CABLE MARKET CHALLENGES

      ALTERNATIVE WIRELESS CONNECTIVITY SOLUTIONS

      MARKET LANDSCAPE

      OPTICAL FIBER CABLE - CONCEPTUAL DESIGN

      AN OPTICAL FIBER’S SECTIONAL PERSPECTIVE

      FIBER SIZE

      FIBER TYPES

      DESIGN CONSIDERATIONS

      FIRST LEVEL OF FIBER PROTECTION

      FIBER COUNT

      PROTECTION OF  OPTICAL FIBERS

      INDOOR/OUTDOOR CABLES

      OPTICAL FIBER COATING

      FIBER OPTIC COATINGS

      ACRYLATE FIBER COATING

      HIGH-TEMPERATURE ACRYLATE

      FLUOROACRYLATE

      SILICONE COATING

      ACRYLATE COATING

      POLYIMIDE

      CARBON

      POLYETHERETHERKETONE PEEK

      POLYBUTYLENE TEREPHTHALATE PBT

      POLYPROPYLENE PP

      POLYETHYLENE PE

      LSZH (LOW-SMOKE, ZERO HALOGEN) PE-PP

      POLYVINYLCHLORIDE PVC

      POLYVINYLIDENE FLUORIDE PVDF

      POLYURETHANE TPU

      HALOGEN FREE FLAME RETARDANT POLYURETHANE HFFR

      HYTREL® TPE

      ETHYLENE TETRAFLUOROETHYLENE ETFE

      PERFLUOROALKOXY TEFLON™ PFA

      OPTICAL FIBER CABLE JACKET ZIPPERING

      RAW MATERIAL

      FINISHED PRODUCT DETAILS

      THE DETAILS ARE SUMMARIZED BELOW

      SPECIFICATIONS (TYPICAL)

      FTTH 2 CORE INDOOR FLAT DROP CABLE (FRP)

      FEATURES

      TECHNICAL SPECIFIATIONS (TYPICAL)

      APPLICATIONS

      FTTH 4 CORE INDOOR FLAT DROP CABLE (FRP)

      FEATURES

      TECHNICAL SPECIFICATIONS (TYPICAL)

      APPLICATIONS

      FIBRE OFC UNARMOURED FRP OPTICAL CABLE

      FIBRE UNARMOURED OPTICAL FIBER CABLE

      STANDARD AND BIS SPECIFICATIONS

      PACKING GUIDELINES

      PACKING AND DRUM

      PROCESS FLOW SCHEMATIC

      PLANT & MACHINERY USED FOR THE PROCESS

      MAJOR PRODUCTION LINES

      COLOURING

      BUFFERING

      STRANDING

      SHEATHING

      FRP

      UTILITIES CONSUMPTION (PER MONTH)

      QUALITY CONTROL

      PLANT EQUIPMENT & RAW MATERIAL SUPPLIER/CONTRACTING COMPANIES

      COMPRESSOR

      GENERATOR SET (DG SET)

      RO/BOILER

      SOLAR PLANT

      GENERATION AND MANAGEMENT OF WASTES

      SOLID WASTES

      LIQUID WASTES

      GASEOUS EMISSION

      OTHERS

      INDUSTRIAL WASTE MANAGEMENT

      SEWERAGE SYSTEM

      SAFETY RULES FOR FIBER OPTICS CABLES

      WEAR SAFETY GLASSES

      WEAR PROTECTIVE APRONS

      AVOID FIBER ENDS

      CONTACT LENS WEARERS

      KEEP HANDS AWAY FROM FACE

      WELL-VENTILATED AREA

      NO COMBUSTIBLE MATERIALS

      DISPOSE OF SCRAPS

      CLEAN UP AFTERWARD

      ANTICIPATED ENVIRONMENTAL IMPACTS

      CONSTRUCTION PHASE

      OPERATION PHASE

      MITIGATION MEASURES (PROPOSED)

      HEALTH SAFETY & ENVIRONMENT

      SAFETY & OCCUPATIONAL MEASURE

      (STORAGE/HANDLING OF RAW MATERIAL & PRODUCT)

      PROPOSED IMPLEMENTATION SCHEDULE

      PROJECT FINANCIALS

      BASIS & PRESUMPTIONS (FOR PROFITABILITY WORKINGS)


      APPENDIX – A:

      01. PLANT ECONOMICS

      02. LAND & BUILDING

      03. PLANT AND MACHINERY

      04. OTHER FIXED ASSESTS

      05. FIXED CAPITAL

      06. RAW MATERIAL

      07. SALARY AND WAGES

      08. UTILITIES AND OVERHEADS

      09. TOTAL WORKING CAPITAL

      10. TOTAL CAPITAL INVESTMENT

      11. COST OF PRODUCTION

      12. TURN OVER/ANNUM

      13. BREAK EVEN POINT

      14. RESOURCES FOR FINANCE

      15. INSTALMENT PAYABLE IN 5 YEARS

      16. DEPRECIATION CHART FOR 5 YEARS

      17. PROFIT ANALYSIS FOR 5 YEARS

      18. PROJECTED BALANCE SHEET FOR (5 YEARS)


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