LAN Design Semester 3, Chapter 3. Home End Table of Contents Go There! Go There! Go There! Go There! Go There! Go There! Go There! Go There! Go There!

Slides:



Advertisements
Similar presentations
Chapter 3: Planning a Network Upgrade
Advertisements

Antonio González Torres
Chapter 7: Intranet LAN Design
Module 5 - Switches CCNA 3 version 3.0 Cabrillo College.
CIT 470: Advanced Network and System Administration
Campus LAN Overview. Objectives Identify the technical considerations in campus LAN design Identify the business considerations in campus LAN design Describe.
Cisco 3 - Switches Perrine - Brierley Page 15/10/2015 Module 5 Switches LAN Design LAN Switches.
LAN DESIGN. Functionality - the network must work with reasonable speed and reliability.
Threaded Case Study on RE Miller By Aidan Coleman Paul Guilfoyle.
Threaded Case Study - RE Miller (Nick Effler, Brian Ford, Cindy Coultas & Teresa Duchardt) April-May, 2000 b Project Goals Implement WAN Access to connect.
1 © 2003, Cisco Systems, Inc. All rights reserved. CCNA 3 v3.0 Module 5 Switches.
1 © 2003, Cisco Systems, Inc. All rights reserved. CCNA 3 v3.0 Module 5 Switches.
Ch.6 - Switches CCNA 3 version 3.0.
1 LANs are Subnet Standards Only Physical and Data Link Layer standards Implemented by the NICs:NICs Application Transport Internet LAN Subnet (NIC) Application.
Institute of Technology, Sligo Dept of Computing LAN Design Semester 3, Chapter 4.
1 CCNA 3 v3.1 Module 5. 2 CCNA 3 Module 5 Switches/LAN Design.
STEP-BY-STEP LAN DESIGN FOR A SMALL BUSINESS
Institute of Technology, Sligo Dept of Computing Semester 3, version Semester 3 Chapter 3 VLANs.
ACACIA Threaded Case Study Presented By: Louise Maguire, Caroline Kearney, Peter Honeyman, Michael Mctague.
Copyright 2002 Year 2 - Chapter 4/Cisco 3 - Module 4 LAN Design By Carl Marandola.
Many Roads To Home. LAN Roads UTP STP Coaxial Fiber Optics.
Connecting LANs, Backbone Networks, and Virtual LANs
Cable.ppt CCNA Exploration Semester 1 Chapter 10
Chapter 6 High-Speed LANs Chapter 6 High-Speed LANs.
Chapter 4 Local Area Networks. Layer 2: The Datalink Layer The datalink layer provides point-to- point connectivity between devices over the physical.
Semester 3, v Chapter 3: Virtual LANs
© 2007 Cisco Systems, Inc. All rights reserved.Cisco Public ITE PC v4.0 Chapter 1 1 Connecting to the Network Networking for Home and Small Businesses.
Chabot College Chapter 4 Review Questions Semester IIIELEC Semester III ELEC
Brierley 1 Module 4 Module 4 Introduction to LAN Switching.
Local Area Networks Andres, Wen-Yuan Liao Department of Computer Science and Engineering De Lin Institute of Technology
LAN Design of a Local High School Martin Kucek Chris C. Yu Sandy Ramirez Cisco TCS Project – Semester 3 © 2001 Martin Kucek / Chris C. Yu / Sandy Ramirez.
1 Ethernet & IEEE Cisco Section 7.3 Stephanie Hutter October 2000.
Network 101 By Tom Battaglia Dell Connectivity 2 RR2 DC Drawing 3 Heterogeneous Network 4 OSI Model.
Robert E. Meyers CCNA, CCAI Youngstown State University Cisco Regional Academy Instructor Cisco Networking Academy Program Semester 3, v Chapter.
CCNA 3 Week 4 Switching Concepts. Copyright © 2005 University of Bolton Introduction Lan design has moved away from using shared media, hubs and repeaters.
Copyright 2002Cisco Press: CCNA Instructor’s Manual Year 2 - Chapter 4/Cisco 3 - Module 4 LAN Design.
1 © 2003, Cisco Systems, Inc. All rights reserved. CCNA 3 v3.0 Module 4 Switching Concepts.
Semester 3—LAN Switching Chapter 2 Objectives  By the end of this chapter we will be able to perform tasks related to: – Various LAN Communication Problems.
Cisco 3 - Switching Perrine. J Page 16/4/2016 Chapter 4 Switches The performance of shared-medium Ethernet is affected by several factors: data frame broadcast.
Cisco 3 - Switch Perrine. J Page 111/6/2015 Chapter 5 At which layer of the 3-layer design component would users with common interests be grouped? 1.Access.
1 © 2003, Cisco Systems, Inc. All rights reserved. CCNA 3 v3.0 Module 5 Switches.
Copyright 2003 CCNA 3 Chapter 6 Switches By Your Name.
1 CCNA 3 v3.1 Module 5 Switches Claes Larsen, CCAI.
LAN DESIGN – first step 5 ISB – school year 2006/07.
Chapter2 Networking Fundamentals
Cisco 3 - Switches Perrine - Brierley Page 112/1/2015 Module 5 Switches.
1 Ram Dantu University of North Texas, Practical Networking.
LAN DESIGN Akhyari Nasir TATiUC.
LAN Design LAN Switches
McGraw-Hill©The McGraw-Hill Companies, Inc., 2004 Connecting Devices CORPORATE INSTITUTE OF SCIENCE & TECHNOLOGY, BHOPAL Department of Electronics and.
© 2007 Cisco Systems, Inc. All rights reserved.Cisco Public ITE PC v4.0 Chapter 1 1 Help Desk Working at a Small-to-Medium Business or ISP – Chapter 2.
Practical Networking.
CISCO NETWORKING ACADEMY Chabot College ELEC Ethernet Switches.
1 © 2004, Cisco Systems, Inc. All rights reserved. CCNA 3 v3.1 Module 5 Switches.
 Describe the basic and hybrid LAN physical topologies and their uses, advantages, and disadvantages  Describe the backbone structures that form the.
CCNA3 Module 4 Brierley Module 4. CCNA3 Module 4 Brierley Topics LAN congestion and its effect on network performance Advantages of LAN segmentation in.
© 2007 Cisco Systems, Inc. All rights reserved.Cisco Public ITE PC v4.0 Chapter 1 1 Planning a Network Upgrade Working at a Small-to-Medium Business or.
Chapter Seven Network Topology [tə'p ɒ ləd ʒɪ ]. In networking, the term “topology” refers to the layout of connected devices on a network. This article.
CCNA 3 v3 JEOPARDY Module 5 CCNA3 v3 Module 5 K. Martin.
Semester 4, Chapter 3 Allan Johnson
Connecting LANs, Backbone Networks
LAN Design Broadcast and Collision Domains
Instructor: Mr. Malik Zaib
CCNA 3 v3.1 Module 5 Switches.
Module 5 - Switches CCNA 3 version 3.0.
Switching Basics and Intermediate Routing CCNA 3 Chapter 5
COMMON LAYER 2 DEVICES AND FUNCTIONALITIES.
Ram Dantu University of North Texas,
Chapter 3 VLANs Chaffee County Academy
LAN Design Goals Frequent goals of network design:
Presentation transcript:

LAN Design Semester 3, Chapter 3

Home End Table of Contents Go There! Go There! Go There! Go There! Go There! Go There! Go There! Go There! Go There! Go There! Design Goals & Components Network Design Methodology Layer 1 Design Layer 2 Design Layer 3 Design

Design Goals & Components Table of Contents Table of Contents End Slide Show End Slide Show

Home End LAN Design Goals Critical to design is insuring a fast and stable network that will scale well as the organization grows Design steps are... 1.Gather & establish design goals based on user requirements 2.Determine data traffic patterns now & in the future 3.Define Layer 1, 2, & 3 devices & the LAN/WAN topologies 4.Document physical & logical network implementation

Home End Establish the Design Goals Although organizations are unique to the customer, the following requirements tend to be generic to all. The network must have...  Functionality --speed and reliability  Scalability --ability to grow without major changes  Adaptability --easily implements new technologies  Manageability --facilitates monitoring and ease of management

Home End Critical Components of LAN Design With the emergence of high-speed technologies and complex LAN technologies, the following critical components need addressing in design  Function & placement of Servers  Collision Detection  Microsegmentation  Bandwidth v. Broadcast domains

Home End Placement of Servers Servers now perform special functions and can be categorized as either...  Enterprise Servers --supports all users on the network DNS and mail servers should be placed in the MDF or...  Workgroup Servers --supports a specific set of users file serving such as specialized databases should be place in the IDF closest to users Graphic

Home End Intranets & Collisions  Intranets are internal to the organization and are not accessible by the public over the Internet.  Intranet Servers use browsers to provide access to authorized users.  This has caused an increase in needed bandwidth. Therefore, design must address... Type of data to be accessed Server privileges Outfitting desktops with faster connectivity  More processing power  10/100Mbps NICs to provide migration to switched technologies  Collision detection and minimization has become a major concern as users attempt to access the same server.  As we’ve seen, switches can provide dedicated bandwidth to minimize or eliminate collsions.

Home End Broadcasts & Segmentation Layer 2 devices segment collision domains Layer 3 devices segment broadcast domains

Home End Bandwidth v. Broadcast Domains  A bandwidth domain is shared by all devices on a single switched port. Synonymous with collision domain  A broadcast domain is shared by all devices on a single router interface.

Network Design Methodology Table of Contents Table of Contents End Slide Show End Slide Show

Home End Gathering & Analyzing Requirements  Gathering data about the organization includes the bullets in the graphic.

Home End Network Availability  Network design seeks to provide the greatest availability for the least cost.  Factors that affect availability include... Throughput Response time Access to resources  In the graphic, what type of server is each and where should each be placed?

Home End Physical Topologies  In the CCNA curriculum, we concentrate on the star/extended star physical topology which typically uses the Ethernet standard.  Why? Because it is the most popular topology used in LANs.  The next three sections, evaluate the extended star by layers.

Layer 1 Design Table of Contents Table of Contents End Slide Show End Slide Show

Home End Ethernet Cable Runs  The physical cabling (also called the cable plant) is the most important Layer 1 issue to consider when designing a network.  Design issues include... Type of cable to use (twisted-pair, coax, fiber) Where to use each type (e.g. fiber on the backbone) How far each run must travel before being terminated (twisted-pair is limited to what distance?)  In an existing LAN, a cable audit is performed to determine where upgrading and/or replacement of bad cables is needed.

Home End MDF & Other 568A Acronyms  Whether the LAN is a star or extended star, the MDF is the center of the star. From the workstation to the telecommunications outlet, the patch cable should be no more than 3m. From their to the patch panel, called the HCC, no more than 90m. From the patch panel (the HCC) to the switch, no more than 6m.

Home End MDF & Other 568A Acronyms  When distances to the MDF are more than 100m, an IDF is normally added.  The cable run from the IDF to the MDF is called the VCC and is usually fiber.  VCC is just another name for the backbone.  By adding more wiring closets (more IDFs), you create multiple catchment areas (Click of graphic button) Graphic

Home End 10BaseT and 100BaseT Ethernet 100 BaseT (also called Fast Ethernet) is now the standard for connecting IDFs to the MDF.  Although you can run Fast Ethernet over 10BaseT cabling (twisted pair), the distance limitation means fiber is most often used  The 100BaseT standard running on twisted paid is called 100BaseTX  On fiber, it is called what?  What is Gigabit Ethernet called?

Home End Layer 1 Logical Documentation  Layer 1 logical documentation is concerned with... exact location of MDF/IDF type & quantity of cabling room locations & # of drops port numbers cable labels  Notice Layer 1’s logical documentation shows nothing about logical addressing  The Logical Diagram and Cut Sheet are primary tools for design, but are crucial to the tech who is troubleshooting.

Layer 2 Design Table of Contents Table of Contents End Slide Show End Slide Show

Home End Common Layer 2 Devices  The two most common Layer 2 devices are... Bridges and LAN Switches  Both provide the added benefit of what?   Segmenting collision domains into microsegments.   Switches can also provide connections of unlike bandwidth (e.g., 100Mbps to the server & 10Mbps to workstations). This is called...?

Home End Sizing Collision Domains  In a switched LAN environment using hubs, the bandwidth of each switched port is shared by all the devices. Therefore, they also share the same collision domain.  To determine the bandwidth per host, simply divide the port’s bandwidth by the number of hosts (see graphic).  In a pure switched LAN environment where each host has its own port, the size of the collision domain is 2. If running full-duplex, then the collision domain is eliminated. Why?

Home End Migrating to 100BaseT  As long as your workstations all have 10/100 NICs, increasing the bandwidth is easy. Replace the hub with a 100Mbps capable hub and patch the HCC into a 100Mbps port on the switch. In addition, you can add another 100Mbps VCC from the IDF to the MDF, which provide 200 Mbps to the IDF’s switch. In the graphic, the red lines represent migrating to 100Mbps.

Layer 3 Design Table of Contents Table of Contents End Slide Show End Slide Show

Home End Routers and Design Routers provide both physical and logical segmentation.  Physically, routers segment what?  Logically, routers segment according to Layer 3 addressing dividing the LAN into logical segments called subnets.

Home End VLANs & Broadcast Domains  As we learned in Chapter 3, VLAN capable switches help routers contain broadcasts.  The graphic shows two broadcast domains.  Notice there is also two subnets. How do we know that?  The router provides communication between the two VLANs.

Home End Diagramming a LAN with Routers  Notice in the graphic that the two networks are kept separate by the router.  Each switch serves a different network regardless of the physical location of the devices.  To create another physical network in a structured Layer 1 wiring scheme, simply patch the HCC and VCC into the correct switch.

Home End Logical & Physical Network Maps  After determining your Layer 1, 2, and 3 design, you can create your addressing (logical) and physical maps. These are invaluable. They Give a snapshot of the network Show subnet mask info Help in troubleshooting

Home End Table of Contents Table of Contents End Slide Show End Slide Show

Home End

Home End What is the diameter of each of the three catchment areas? (Click on graphic to return to previous slide)