Cisco Systems XR 12000 Series Gbic Module Distance1 Connector Type Wavelength Fiber Type

Models: XR 12000 Series

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Cabling and Specifications

Table 10 Ethernet GBIC Laser Optic Parameters (continued)

GBIC Module/

 

 

 

Distance1

Connector

Type

Wavelength

Fiber Type

WS-G5487=

Extended distance (single-mode)

1550 nm

10/9 micron SMF

43.5 miles (70 km)

SC connector

 

 

 

 

 

 

2

62 miles (100 km)

 

 

 

8 micron SMF

CWDM-GBIC-x

Longwave (single-mode)

1470-1610

SMF 10/9 micron

62 miles (100 km)

xxx=3

 

nm4

 

 

1.These distances represent best case conditions, depending on fiber quality, dispersion, and losses due to connectors, nodes, or splices. In the case of the CWDM GBICs, CWDM OADM modules or mux/demux modules are needed for these GBICs to work in any topology other than a point-to-point topology within one building, so the maximum distance is determined by an optical power budget calculation that takes into consideration all sources of loss, including the insertion loss due to the CWDM OADM and mux/demux modules, and might be different from the distance shown in the table. For optical parameter information associated with the CWDM OADM and mux/demux modules, see the “Related CWDM Documentation” section on page 47.

2.Dispersion-shifted single-mode fiber-optic cable required for 100,000-meter distance.

3.Supported by 3-Port Gigabit Ethernet modules

4.The wavelengths of the CWDM GBICs are based on a 20-nanometer (nm) wavelength grid and are available in eight wavelengths: 1470, 1490, 1510, 1530, 1550, 1570, 1590, and 1610 nm.

Note

Note

Note

1000BASE-SX and 1000BASE-LX (LH) were originally part of the IEEE 802.3z standard, which has been incorporated into the IEEE 802.3 standard.

Use only GBIC modules supplied by Cisco with your Ethernet line card. They have been tested by Cisco Engineering and, in some cases, a Cisco-supplied GBIC might contain an internal erasable programmable read-only memory (EPROM) that identifies the GBIC to the Cisco IOS software.

The maximum distance for any fiber span in an optical network is determined by the fiber type and quality, as well as the span length, number of splices, and number of optical nodes in the path. If your network design requires the signal to travel close to the theoretical maximum distance (as listed in Table 11), you must calculate the optical power budget and receive (RX) sensitivity for the entire network topology to ensure it is within the specifications of the GBIC option in use.

Actual power budget calculations involve a number of variables specific to network topology and design, and are therefore outside the scope of this publication.

Table 11 Optical Parameter Values for Calculating Link Power Budget

 

Transmit

Receive

Receive

Link

Maximum Distance1

GBIC

Power

Power

Sensitivity

Budget

WS-G5484=

–9.5dBm to 0 dBm2

–17 to 0 dBm

–17 dBm

7.5 dB

1,804 feet (550 m)

WS-G5486=

–11 to –3 dBm

–19 to –3 dBm

–19 dBm

8 dB

6.2 miles (10 km)

 

 

 

 

 

 

WS-G5487=

0 to +5 dBm

–23 to 0 dBm

–23 dBm

23 dB

43.5 to 62 miles (70 to

 

 

 

 

 

100 km3)

CWDM-GBIC-xxxx=

+1 to +5 dBm

–31 to –7 dBm

–31 dBm

32 dB

62 miles (100 km)4

1.These distances represent best case conditions, depending on fiber quality, dispersion, and losses due to connectors, nodes, or splices.

Cisco XR 12000 Series Router Ethernet Line Card Installation

 

OL-7861-01

45

 

 

 

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Cisco Systems XR 12000 Series Gbic Module Distance1 Connector Type Wavelength Fiber Type, Transmit Receive Link

XR 12000 Series specifications

The Cisco Systems XR 12000 Series routers are designed to meet the demands of modern networking environments, ensuring high performance, scalability, and reliability for service providers and large enterprises. This series is engineered to deliver advanced features that facilitate a range of applications, including core routing, edge services, and data center interconnect.

One of the main features of the XR 12000 Series is its advanced routing capabilities. These routers utilize the Cisco IOS XR software architecture, which provides a modular and distributed operating system. This architecture enhances system reliability as individual processes can be restarted independently without affecting overall system operations. As a result, service providers can achieve higher uptime and enhanced service continuity.

The XR 12000 Series supports a robust set of technologies that enable efficient data handling and transport. Notably, the series includes support for Multiprotocol Label Switching (MPLS), which enhances traffic engineering, distributed bandwidth management, and Quality of Service (QoS) capabilities. This makes the XR 12000 a preferred choice for operators looking to optimize their network performance under increasing traffic loads.

Furthermore, the XR 12000 Series excels in scalability. With a flexible modular design, operators can customize their systems to fit specific needs by adding additional line cards or service modules. These enhancements enable operators to scale both up and down based on fluctuating demands, accommodating numerous high-bandwidth applications such as video streaming, cloud services, and IoT.

Security is another critical characteristic of the XR 12000 routers. Built-in cybersecurity features, including secure boot, strong encryption, and integrity checks, protect against unauthorized access and ensure data integrity. Coupled with advanced monitoring and logging capabilities, these routers can help operators maintain robust security postures.

Additionally, the XR 12000 Series is designed to facilitate seamless integration with existing network infrastructures. The routers support various protocols and interfaces, which ensure interoperability with legacy systems and enhance overall network efficiency. This flexibility allows service providers to future-proof their investments while adapting to evolving technological landscapes.

In summary, the Cisco XR 12000 Series routers stand out for their advanced routing capabilities, scalability, robust security features, and compatibility with modern and legacy network infrastructures. These attributes make them an ideal choice for organizations seeking to enhance their networking capabilities in a rapidly changing digital environment.