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Modern Ethernet Chapter 4.

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Presentation on theme: "Modern Ethernet Chapter 4."— Presentation transcript:

1 Modern Ethernet Chapter 4

2 Objectives Describe the varieties of 100-megabit Ethernet
Discuss copper- and fiber-based Gigabit Ethernet Discover and describe Ethernet varieties beyond Gigabit

3 Test Specific 100-Megabit Ethernet

4 100-Megabit Ethernet The quest to break 10-Mbps network speeds in Ethernet started in the early 1990s Goal: create new speed standard with no change to Ethernet frames themselves Two defining characteristics of Ethernet remain the same as speed increases Frame size and elements Method of sharing access to the bus Cross Check: Interconnecting Ethernet Networks (p. 71) You learned about the devices used to connect different types of Ethernet networks—hubs and switches—in Chapter 3. Check your memory now. What’s the difference between the two devices? Which would you prefer for connections and why?

5 100BaseT 100BaseT4 100BaseTX CAT 3 or better cabling
Uses all four pair of wires Disappeared after 100BaseTX was accepted 100BaseTX CAT 5 cabling Dominant 100-megabit standard by the late 1990s The term “100BaseT” now applies to this standard Note (p. 71): 100BaseT was at one time called Fast Ethernet. The term still sticks to the 100-Mbps standards even though there are now much faster versions of Ethernet.

6 100BaseT Summary Speed: 100 Mbps Signal type: Baseband
Distance: 100 meters between switch and node Node limit: 1024 nodes per switch Topology: Star-bus topology: physical star, logical bus Cable type: CAT5 or better; UTP or STP cabling with RJ-45/8P8C connectors Exam Tip (p. 72): A baseband network means that only a single signal travels over the wires of the network at one time, occupying the lowest frequencies. Ethernet networks are baseband. Contrast this with broadband, where you can get multiple signals to flow over the same wire at the same time, modulating to higher frequencies. The latter is how cable television and cable Internet work.

7 Upgrading the Network Upgrading 10BaseT network to 100BaseT
CAT 5 cable or better Replace old 10BaseT NICs with 100BaseT NICs Replace 10BaseT hub or switch with 100BaseT hub or switch Multispeed, auto-sending NICs and hubs/switches ease the upgrade

8 Lingo (1 of 3) Multispeed, auto-sensing 100BaseT NIC: 10/100
When first connected, it negotiates automatically with the hub or switch to determine other device’s highest speed Operates at lowest speed both can handle Tech Tip: Lingo (p. 72) If you want to sound like a proper tech, you need to use the right words. Techs don’t actually say, “multispeed, auto-sensing,” but rather “10/100.” As in, “Hey, is that a 10/100 NIC you got there?” Now you’re talking the talk!

9 Figure 4.1 Typical 100BaseT NIC
Lingo (2 of 3) Figure Typical 100BaseT NIC

10 Figure 4.2 Auto-negotiation in action
Lingo (3 of 3) Figure Auto-negotiation in action

11 10BaseT versus 100BaseT (1 of 2)
Distinguishing 10BaseT NIC from 100BaseT NIC Look for something indicating the card’s speed Some NICs have extra link lights to indicate speed Install card, and see what the operating system recognizes All modern NICs are multispeed and auto-sensing

12 10BaseT versus 100BaseT (2 of 2)
Figure Typical 100BaseT NIC in Windows 8.1

13 100BaseFX Combined the high speed of 100-megabit Ethernet with fiber optic reliability UTP versus fiber-optic UTP cannot meet the needs of every organization 100-meter distance limit is inadequate for large buildings and campuses Lack of electrical shielding Easy to tap Offers improved data speeds over 10BaseFL Exam Tip (p. 73): There is no scenario today where you would install 100Base networking components, except perhaps to make use of donated equipment. You will definitely find 100Base gear installed and functioning in many organizations.

14 100BaseFX Summary Speed: 100 Mbps Signal type: Baseband
Distance: 2 kilometers between hub/switch and node Node limit: 1024 nodes per hub/switch Topology: Star-bus topology: physical star, logical bus Cable type: Multimode fiber-optic cabling with ST or SC connectors

15 Full-Duplex Ethernet (1 of 4)
Early 100BaseT NICs were half-duplex Could send and receive data but not at the same time IEEE added full-duplex to the standard Device sends and receives at the same time By late 1990s, most 100BaseT cards could auto-negotiate for full-duplex Almost all NICs today support full-duplex Note (p. 73): Full-duplex doesn’t increase network speed directly, but it doubles network bandwidth. Imagine a one-lane road expanded to two lanes while keeping the speed limit the same. It also prevents those cars from crashing (colliding) into each other! Check out the two excellent Chapter 4 Sims over at Both the Show and the Challenge titled “Manage Duplex Settings” help reinforce the concepts of full-duplex and half-duplex.

16 Full-Duplex Ethernet (2 of 4)
Figure Half-duplex: sending at the top, receiving at the bottom

17 Full-Duplex Ethernet (3 of 4)
Figure Full-duplex

18 Full-Duplex Ethernet (4 of 4)
Figure Forcing speed and duplex in Windows 10

19 Gigabit Ethernet

20 Gigabit Ethernet Most common Ethernet type found on new NICs 1000BaseT
Most widely implemented solution Four-pair UTP or STP cabling Maximum cable length 100 meters per segment Connectors and ports look exactly like 10BaseT and 100BaseT Exam Tip (p. 74): The vast majority of network rollouts in offices use a base of 1000BaseT connections (or drops, as you’ll hear them called). You can imagine any number of appropriate scenarios for using 1000BaseT. Many offices also add in wireless today. We’ll get there in Chapter 14. Note (p. 74): The term Gigabit Ethernet is more commonly used than 1000BaseT.

21 1000BaseSX More common Multimode fiber-optic cable
Maximum cable length 220 to 500 meters, depending on manufacturer Uses 850-nm wavelength LED Devices look similar to 100BaseFX products LC is the most common type of connection Exam Tip (p. 75): The wavelength of a particular signal (laser, in this case) refers to the distance the signal has to travel before it completes its particular shape and starts to repeat. The different colors of the laser signals feature different wavelengths. Cross Check: SC and ST (p. 75) You learned about the common fiber-optic cable SC and ST connectors in Chapter 2, so cross-check your knowledge here. What distinguishes the two connectors? Can 100BaseFX NICs use either one? Which do you need to twist like a bayonet?

22 1000BaseLX Long-distance carrier Single-mode (laser) cables
Maximum cable length 5 kilometers Special repeaters increase distance to 70 kilometers Positioned as Ethernet backbone of the future Connectors look like 100BaseSX connectors

23 SFF Fiber Connectors (1 of 3)
Mechanical Transfer Registered Jack (MT-RJ) Local Connector (LC) Very popular, especially in United States Considered the predominant fiber connector Other fiber connectors exist (ST/SC standards) Fiber equipment manufacturers may have different connections

24 Figure 4.7 LC-type connector
SFF Connectors (2 of 3) Figure LC-type connector

25 SFF Connectors (3 of 3) Table 4.1 Gigabit Ethernet Summary Standard
Cabling Cable Details Connectors Length 1000BaseSX Multimode fiber 850 nm Variable, commonly LC 220–500 m 1000BaseLX Single-mode fiber 1300 nm and SC 5 km 1000BaseT CAT 5e/6 UTP Four-pair/ full-duplex RJ-45 100 m

26 Mechanical Connection Variations
Fiber connectors vary at the connection point Physical Contact (PC) connector Standard connector type today Two pieces of fiber touch when inserted Reduces signal loss at connection point Replaces older flat-surface connector

27 UPC and APC Connectors Ultra Physical Contact (UPC) connectors
Extensively polished to significantly reduce signal loss Angled Physical Contact (APC) connectors Eight-degree angle on the curved end lowers signal loss further Connection does not degrade from multiple insertions Exam Tip (p.76): As of this writing, the CompTIA Network+ Acronyms list incorrectly identifies the “P” in UPC and APC as “Polished.” It’s “Physical” as indicated here, but don’t get thrown off on the exam.

28 Implementing Multiple Types of Gigabit Ethernet
Devices often capable of supporting more than one type of Ethernet Media converters can connect different types of Ethernet cabling together Single-mode fiber (SMF) to UTP/STP Multimode fiber (MMF) to UTP/STP Fiber to coaxial SMF to MMF Exam Tip (p.76): Look for a question on the CompTIA Network+ exam about proper placement for a media converter. Select the obvious answer. Place it between two cabling types that you want to connect.

29 GBICs and SFPs Gigabit interface converter (GBIC)
Modular port Use example: replace an RJ-45 port GBIC with an SC GBIC Small form-factor pluggable (SFP) Smaller modular connector Used on current-era switches and other network equipment Hot swappable Exam Tip (p. 77): A transceiver is a removable module that enables connectivity between a switch and a cable.

30 10 Gigabit Ethernet

31 10 Gigabit Ethernet (10 GbE)
Showing up in high-level LANs A number of fiber standards and two copper standards

32 Fiber-Based 10 GbE Challenges
Maintain integrity of the Ethernet frame How to transfer frames at high speeds Could use traditional Ethernet physical layer mechanisms Already a usable ~10 GbE fiber network (SONET) used for WANs Note (p. 77): Chapter 13 covers SONET in great detail. For now, think of it as a data transmission standard that’s different from the LAN Ethernet standard.

33 Fiber-Based 10 GbE Standards
Defined by: Type of fiber used Laser wavelength Physical layer signaling type IEEE standard names in format 10GBasexy x represents type of fiber and wavelength y represents physical layer signaling standard Either R for LAN-based signaling or W for SONET/WAN

34 Fiber-Based 10GBaseSy Summary
10GBaseSy uses a short-wavelength (850 nm) signal over multimode Standard Fiber Type Wavelength Physical Layer Signaling Maximum Signal Length 10GBaseSR Multimode 850 nm LAN 26–300 m 10GBaseSW SONET/WAN

35 Fiber-Based 10GBaseLy Summary
10GBaseLy uses a long-wavelength (1310 nm) signal over single-mode Standard Fiber Type Wavelength Physical Layer Signaling Maximum Signal Length 10GBaseLR Single-mode 1310 nm LAN 10 km 10GBaseLW SONET/WAN

36 Fiber-based 10GBaseEy Summary
10GBaseEy uses an extra-long-wave-length (1550 nm) signal over single-mode fiber Standard Fiber Type Wavelength Physical Layer Signaling Maximum Signal Length 10GBaseER Single-mode 1550 nm LAN 40 km 10GBaseEW SONET/WAN Tech Tip: The Other 10 GbE Fiber Standards (p. 78): Manufacturers have shown both creativity and innovation in taking advantage of both existing fiber and the most cost-effective equipment. This has led to a variety of standards that are not covered by the CompTIA Network+ exam objectives, but that you should know about nevertheless. The top three as of this writing are 10GBaseL4, 10GBaseRM, and 10GBaseZR. The 10GBaseL4 standard uses four lasers at a 1300-nanometer wavelength over legacy fiber. On multimode cable, 10GBaseL4 can support up to 300-meter transmissions. The range increases to 10 kilometers over single-mode fiber. The 10GBaseLRM standard uses the long-wavelength signal of 10GBaseLR but over legacy multimode fiber. The standard can achieve a range of up to 220 meters, depending on the grade of fiber cable. Finally, some manufacturers have adopted the 10GBaseZR “standard,” which isn’t part of the IEEE standards at all (unlike 10GBaseL4 and 10GBaseLRM). Instead, the manufacturers have created their own set of specifications. 10GBaseZR networks use a 1550-nanometer wavelength over single-mode fiber to achieve a range of a whopping 80 kilometers. The standard can work with both Ethernet LAN and SONET/WAN infrastructure.

37 Copper-Based 10 GbE (10GBaseT) (1 of 2)
2006: IEEE standard for 10 GbE running on UTP Looks and works like slower versions of UTP Ethernet Downside: 10GBaseT running on CAT 6 has maximum cable length of only 55 meters 10GBaseT running on CAT 6a can go to 100 meters

38 Copper-Based 10 GbE (10GBaseT) (2 of 2)
Table 4.2 10 GbE Summary Standard Cabling Wavelength/ Cable Details Connectors Length 10GBaseSR/SW Multimode fiber 850 nm Not defined 26–300 m 10GBaseLR/LW Single-mode fiber 1310 nm Variable, commonly LC 10 km 10GBaseER/EW 1550 nm Variable, commonly LC and SC 40 km 10GBaseT CAT 6/6a UTP Four-pair/full-duplex RJ-45 55/100 m

39 10 GbE Physical Connections (1 of 2)
Hodgepodge of 10 GbE types Problem: single router may need to support several types of physical media and connector Solution: multisource agreements (MSAs) MSA transceiver plugs into 10 GbE equipment Converts between media types 10 GbE equipment is the exclusive domain of high-bandwidth LANs and WANs Exam Tip (p. 79): At the time of this writing, the CompTIA Network+ Acronyms list incorrectly identifies MSA as Master Service Agreement. This chapter uses the correct identification as multisource agreements. You’re unlikely to see either term on the exam.

40 10 GbE Physical Connections (2 of 2)
Figure XENPAK module

41 Characteristics of Fiber Transceivers
Wave division multiplexing (WDM) Bidirectional (BiDi) transceivers Single optical port designed inside to send on one wavelength, such as 1310 nm, and receive on a different wavelength, such as 1550 nm. Costs less than dual-fiber predecessors Use existing fibers to double network capacity 40GBase BiDi transceivers use quad small form-factor pluggable (QSFP) optics.

42 Backbones (1 of 3) Multispeed Ethernet works best for many situations
Series of high-speed switches create a backbone No computers (except maybe servers) attach directly to the backbone Each floor has its own switch connecting to every node on floor, and a separate high-speed connection to a main switch

43 Backbones (2 of 3) Figure Typical network configuration showing backbone

44 Backbones (3 of 3) Try This! Shopping for Switches (p. 81) Cisco, one of the industry leaders for Ethernet switches, has a great Web site for its products. Imagine that you are setting up a network for your school or business (keep it simple and pick a single building if you’re in a large organization). Decide what type of switches you’d like to use, including both the backbone and local switches. If you’re really motivated, decide where to locate the switches physically. Don’t be afraid to try a fiber backbone—almost every Cisco switch comes with special ports to enable you to pick the type of Ethernet you want to use for your backbone. Figure Switches with dedicated, high-speed ports

45 Beyond Network+

46 IEEE 802.3ba Committee approved standards for 40-Gb and 100-Gb Ethernet in 2010 Use the same frame as earlier versions of Ethernet Primarily implemented in backbones and machine-to-machine connections


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