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Optical Networking Best Practices Handbook - Hardcover

Vacca, John R.

 
9780471460527: Optical Networking Best Practices Handbook

Inhaltsangabe

Optical Networking Best Practices Handbook presents optical networking in a very comprehensive way for nonengineers needing to understand the fundamentals of fiber, high-capacity, high-speed equipment and networks, and upcoming carrier services. The book provides a practical understanding of fiber optics as a physical medium, sorting out single-mode versus multi-mode and the crucial concept of Dense Wave-Division Multiplexing.

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Über die Autorin bzw. den Autor

JOHN R. VACCA, MS, MBA, is an information technology consultant and internationally known author. He has authored more than forty books and hundreds of articles in a wide range of technologies, including telecommunications, software, intelligence systems, and networks. His book The World's 20 Greatest Unsolved Problems was named one of Amazon.com's Best Books of 2004. Mr. Vacca was also a configuration management specialist, computer specialist, and the computer security official (CSO) for NASA's space station program (Freedom) and the International Space Station Program, from 1988 until his early retirement from NASA in 1995. Additionally, he is also an Independent online book reviewer and was one of the security consultants for the MGM movie Antitrust.

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A step-by-step approach to everything you need to know about optical networking

From the fundamentals to advanced science to the most promising R&D, this book describes and illustrates how optical networking technology works. The author explains the underlying concepts, demystifies buzzwords and jargon, and instills a practical understanding of technologies and solutions, all without resorting to excessive detail. Not only do readers come to understand the current state of the technology, but they also gain valuable insight into the future of optical networking.

Following a discussion of the fundamentals of communications, the author breaks the topic down into logical components, including:

  • Fiber optics, carrier networks, optical networking equipment, and broadband services
  • How glass fiber is used as a physical medium for communications and how light is used to represent information
  • Comparison of single- and multi-mode fiber and vendors
  • Concept of fiber rings, including the two principal strategies that carriers use to organize capacity: traditional SONET/SDH channels and newer IP/ATM bandwidth on demand services
  • Latest wave of promising new equipment, configurations, and services, including Gig-E services, dark fiber, managed IP services, and virtual private networks (VPNs)

Case studies, examples, and projects help readers understand how to install, configure, and troubleshoot optical networking technologies. A glossary at the end of the book defines terms and acronyms.

With this handbook, readers come to understand why optical technologies are viewed as the best solution to meet ever-growing capacity demands. By building knowledge from a solid foundation of the basics, it is not only appropriate for network engineers, managers, and consultants, but also for any professional who needs to understand how optical networking works.

Aus dem Klappentext

A step-by-step approach to everything you need to know about optical networking

From the fundamentals to advanced science to the most promising R&D, this book describes and illustrates how optical networking technology works. The author explains the underlying concepts, demystifies buzzwords and jargon, and instills a practical understanding of technologies and solutions, all without resorting to excessive detail. Not only do readers come to understand the current state of the technology, but they also gain valuable insight into the future of optical networking.

Following a discussion of the fundamentals of communications, the author breaks the topic down into logical components, including:

  • Fiber optics, carrier networks, optical networking equipment, and broadband services
  • How glass fiber is used as a physical medium for communications and how light is used to represent information
  • Comparison of single- and multi-mode fiber and vendors
  • Concept of fiber rings, including the two principal strategies that carriers use to organize capacity: traditional SONET/SDH channels and newer IP/ATM bandwidth on demand services
  • Latest wave of promising new equipment, configurations, and services, including Gig-E services, dark fiber, managed IP services, and virtual private networks (VPNs)

Case studies, examples, and projects help readers understand how to install, configure, and troubleshoot optical networking technologies. A glossary at the end of the book defines terms and acronyms.

With this handbook, readers come to understand why optical technologies are viewed as the best solution to meet ever-growing capacity demands. By building knowledge from a solid foundation of the basics, it is not only appropriate for network engineers, managers, and consultants, but also for any professional who needs to understand how optical networking works.

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Optical Networking Best Practices Handbook

By John R. Vacca

John Wiley & Sons

Copyright © 2006 John R. Vacca
All right reserved.

ISBN: 978-0-471-46052-7

Chapter One

Optical Networking Fundamentals

Throughout the past decade, global communications traffic in both voice and data has grown tremendously. Communications bandwidth capacity and geographic coverage have been substantially expanded to support this demand. These tremendous advances have been enabled by optical signals sent over fiber optics networks. However, the growth in tele- and data-communications traffic is just beginning. People are gaining exposure to a new world of choices and possibilities as an increasing number of them access the Internet via broadband. Streaming audio, teleconferencing, video-on-demand, and three-dimensional (3-D) virtual reality are just a few of the applications. Optical networking, with its inherent advantages, will be the key in making this new world of communications possible.

But how did optical networking come about in the first place? Let us take a brief look at the history of fiber optics.

1.1 FIBER OPTICS: A BRIEF HISTORY IN TIME

Very little is known about the first attempts to make glass. The Roman historian Pliny attributed it to Phoenician sailors. He recounted how they landed on a beach, propped a cooking pot on some blocks of natron that they were carrying as cargo, and made a fire over which to cook a meal. The sand beneath the fire melted and ran in a liquid stream that later cooled and hardened into glass, to their surprise.

Daniel Colladon, in 1841, made the first attempt at guiding light on the basis of total internal reflection in a medium. He attempted to couple light from an arc lamp into a stream of water. A large metal tube was filled with water and the cork removed from a small hole near the bottom, demonstrating the parabolic form of jets of water. A lamp placed opposite the jet opening illustrated total internal reflection. John Tyndall, in 1870, demonstrated that light used internal reflection to follow a specific path. Tyndall directed a beam of sunlight at a path of water that flowed from one container to another. It was seen that the light followed a zigzag path inside the curved path of the water. The first research into the guided transmission of light was marked by this simple experiment.

In 1880, William Wheeling patented this method of light transfer, called piping light. Wheeling believed that by using mirrored pipes branching off from a single source of illumination (a bright electric arc), he could send light to many different rooms in the same way that water, through plumbing, is carried within and throughout buildings. However, the concept of piping light never caught on due to the ineffectiveness of Wheeling's idea and to the concurrent highly successful introduction of Edison's incandescent lightbulb.

Also in 1880, Alexander Graham Bell transmitted his voice as a telephone signal through about 600 feet of free space (air) using a beam of light as the carrier (optical voice transmission)-demonstrating the basic principle of optical communications. He named his experimental device the photophone. In other words, the photophone used free-space light to carry the human voice 200 meters. Specifically placed mirrors reflected sunlight onto a diaphragm attached within the mouthpiece of the photophone. A light-sensitive selenium resistor mounted within a parabolic reflector was at the other end. This resistor was connected to a battery that was in turn wired to a telephone receiver. As one spoke into the photophone, the illuminated diaphragm vibrated, casting various intensities of light onto the selenium resistor. The changing intensity of light altered the current that passed through the telephone receiver, which then converted the light back into speech. Bell believed this invention was superior to the telephone because it did not need wires to connect the transmitter to the receiver. Today, free-space optical links find extensive use in metropolitan applications. Bell went on to invent the telephone, but he always thought the photophone was his greatest invention.

1.1.1 The Twentieth Century of Light

The first fiber optics cable was created by German medical student Heinrich Lamm in 1930. He was the first person to assemble a bundle of optical fibers to carry an image. Lamm's goal was to look inside inaccessible parts of the body. He reported transmitting the image of a lightbulb during his experiments.

In the second half of the twentieth century, fiber-optic technology experienced a phenomenal rate of progress. With the development of the fiberscope, early success came during the 1950s. This image-transmitting device, which used the first practical all-glass fiber, was concurrently devised by Brian O'Brien at the American Optical Company and Narinder S. Kapany (who first coined the term fiber optics in 1956) and colleagues at the American College of Science and Technology in London. Early on, transmission distances were limited because all-glass fibers experienced excessive optical loss-the loss of the light signal as it traveled the fiber.

So, in 1956, Kapany invented the glass-coated glass rod, which was used for non-telecommunications applications. By providing a means of protecting the beam of light from environmental obstacles, the glass-coated glass rod helped eliminate the biggest obstacle to Alexander Graham Bell's photophone.

In 1958, Arthur L. Schawlow and Charles H. Townes invented the laser and published "Infrared and Optical Masers" in the American Physical Society's Physical Review. The paper describes the basic principles of light amplification by stimulated emission of radiation (laser), initiating this new scientific field.

Thus, all the preceding inventions motivated scientists to develop glass fibers that included a separate glass coating. The innermost region of the fiber, or core, was used to transmit the light, while the glass coating, or cladding, prevented the light from leaking out of the core by reflecting the light within the boundaries of the core. This concept is explained by Snell's law, which states that the angle at which light is reflected is dependent on the refractive indices of the two materials-in this case, the core and the cladding. As illustrated in Figure 1.1, the lower refractive index of the cladding (with respect to the core) causes the light to be angled back into the core.

The fiberscope quickly found applications in the medical field as well as in inspections of welds inside reactor vessels and combustion chambers of jet aircraft engines. Fiberscope technology has evolved over the years to make laparoscopic surgery one of the great medical advances of the twentieth century.

The next important step in the establishment of the industry of fiber optics was the development of laser technology. Only the laser diode (LD) or its lower-power cousin, the light-emitting diode (LED), had the potential to generate large amounts of light in a spot tiny enough to be useful for fiber optics. As a graduate student at Columbia University in 1957, Gordon Gould popularized the idea of using lasers. He described the laser as an intense light source. Charles Townes and Arthur Schawlow at Bell Laboratories supported the laser in scientific circles shortly thereafter.

Lasers went through several generations of development, including that of the ruby laser and the helium-neon laser in 1960. Charles Kao proposed the...

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