Advances in Optical Networks-SONET.ppt
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1、Advances in Optical Networks: SONET,By Sean Goggin April 19, 2005,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,2,Overview,Fundamentals of Optical Networks SONET SDH Future of SONET,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,3,Fundamentals of Optical Networks,Fiber Opt
2、ic Medium Variants of Fiber and Optical Networks Multiplexing Methods Optical Network Equipment Topologies of Optical Networks,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,4,Fiber Optic Medium,Core Medium Where Light Travels Cladding Reflects Light Back into the Core Buffer Coating Pr
3、otective Coating,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,5,Variants of Fiber Optic,Single-Mode Small Core Approximately 9 Microns Uses IR Laser Light Transmitter Greater then 10 Miles* Most Expensive,Multi-Mode Large Core Approximately 62.5 Microns Uses Light Emitting Diode Trans
4、mitter Less then 10 Miles* Least Expensive *Without Regeneration,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,6,Types of Multiplexing,Time Division Multiplexing (TDM) Simplest Implementation Uses Single Wavelength Wavelength Division Multiplexing (WDM) Complex Implementation Multiple
5、Wavelengths on a Single Fiber to Increase Bandwidth,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,7,Types of Optical Networks,Opaque Weak Signals are Boosted with a Repeater Optical-Electronic-Optical (OEO) Repeater Incurs Pricey Conversion Delay,All-Optical (Pure) Weak Signals are Boo
6、sted with a Amplifier Erbium-Doped Fiber Amplifier (EDFA) Complete Photonic Boost,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,8,OEO Repeater,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,9,Erbium Doped Fiber Amplifier,Tuesday, April 19, 2005,Advances in Optical Networks
7、: SONET,10,Optical Network Equipment,Repeaters (OEO) & Amplifiers (EDFA) Optical Crossconnects (OXC) Photonic Switch with N Full-Duplex Ports Optical Add-Drop Multiplexer (OADM) Wavelengths Can Be Added and Removed from the Photonic Flow Ex: Remove Traffic for Inbound T1 and Traffic for Outbound T1
8、Needed for WDM,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,11,Optical Add-Drop Multiplexer,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,12,Topologies,Ring Topology Data Moves in One Direction around 1st Ring If Failure Occurs, Traffic is Rerouted in Opposite Direction
9、on 2nd Ring Each Ring is Total Capacity Self-Maintaining Mesh Topology Locations are Linked to 2 or More Other Locations If a Link Fails, Traffic is Rerouted around the Failure Requires Routes to be Established Before Failure,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,13,Ring Topolo
10、gy,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,14,Mesh Topology,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,15,Sample of Optical Network,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,16,Telecom Terminology,Synchronous Optical Network (SONET) Asynchronous
11、 Transfer Mode (ATM) Digital Signal (DS) Synchronous Transport Signal (STS) Optical Carrier (OC),Tuesday, April 19, 2005,Advances in Optical Networks: SONET,17,Telecom Circuits,Digital Signal Levels DS-0: 64 Kb Transmission Channel DS-1(T1): 1.5 Mb; Formed of 24 DS-0 DS-3(T3): 44.7 Mb; Formed of 672
12、 DS-0 Synchronous Transport Signals Channels STS-1: 52 Mb; Formed of 28 DS-0 or a Single DS-3 STS-3: 155 Mb; Formed of 84 DS-0 or 3 DS-1 Electric Signal is Converted to an Optical Signal it Becomes OC,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,18,SONET Connections,Tuesday, April 19,
13、 2005,Advances in Optical Networks: SONET,19,Background of SONET,Conceived by MCI During the Mid-1980s Designed from the Ground-Up to Hasten the Adoption of Optical Technology Capacity and Distance Increased Rapidly Due to Technological Developments Increased Purity of Fiber Optic Cable Longer Dista
14、nce without Regeneration Iron, Nickel, and Hydroxyl Ions Cause Impurities 1970s 20dB/km Loss, Today .2 dB/km Loss,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,20,Development of Laser Technology Lasers Yield Higher Energy then LEDs Allowing for Longer Distance Before Regeneration Devel
15、opment of Pure-Optical Technology Eliminating Optical-Electronic-Optical Conversion for Regeneration & Routing Increase Speed Possibility to Breach 10 Gb Barrier Wave Division Multiplexing & Dense Wave Division Multiplexing Using Multiple Wavelengths Capacity Can Be Increased Upwards of 92 Times the
16、 Capacity of a Single Wavelength,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,21,ANSI Transmission Standard United States Canada Korea Taiwan Hong Kong SDH used in Rest of the World Interoperable with SONET,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,22,Description,Phy
17、sical-Layer Standard Four-Layer Protocol Stack TDM Creates Synchronous Channels Multiplex Many Types of Traffic into Uniform Streams onto Fiber Optic Cabling Used Primarily as Backbone for ATM,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,23,Not Well Suited for Data Because of Native 6
18、4 kilobit “chunks” Utilizes Ring Topology for Reliability Low Maintenance do to Automatic Protection Switching (APS) Operations, Provisioning, Monitoring and Maintenance Functions are Done Uniformly and Efficiently,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,24,Typical SONET Ring is
19、Single Wavelength Opaque Network (Circa 2000) Entire Ring Must Operate at the Same Speed Adding Capacity to Rings Takes a Long Time and Typically Constitute a New Ring Due to Convenience Recent use of IP Over SONET,Tuesday, April 19, 2005,Advances in Optical Networks: SONET,25,Four-Layers of SONET,P
20、hotonic: STS Electrical Data is Converted into OC Light Pulses and Vice Versa Section: Operates between Optical repeaters, Helping to Transmit STS Frames Line: Synchronizes and Multiplexes Multiple Streams into One Stream, Invokes APS When Required Path: Used for End-to-end Communications and Contro
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