Intel IXD1110 manual Typical Test Setup

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IXD1110 Demo Board

3.0Typical Test Setup

Figure 2 shows a typical test setup for standard operation of the IXF1110 (see Section 2.0, “Quick Start” on page 11 for step-by-step details). The IXD1110 demo board can be connected to an IXIA* 1600T packet generator with LM1000SX cards for evaluation of the board. Each port can be connected to the IXIA* box with fiber cables. For IXF1110 software use, connect CAT5-UTP cables to the ports shown on the CPU daughter card. One of the cables connects to the COM port on the IXIA* box by using a DB-9–to–RJ-45 connector. The other cable connects to the network port on the IXIA* box. Refer to Figure 2 and Section 5.2, “Installing the IXF1110 Software” on page 16 for proper installation.

Note: The IXF1110 evaluation software can be run from the IXIA or an added PC connected to the CPU daughter card.

Figure 2. Typical Test Setup

 

Connect to

 

 

 

 

 

COM port

 

Demo Software

 

 

 

 

 

DB-9-to-RJ-45

 

IXIA* 1600T

 

 

 

Connector

 

Advanced Multi-port Performance Tester

 

 

 

 

 

 

 

 

Fiber Connectors

 

Power

 

 

 

 

 

 

 

 

 

 

Supplies

 

 

 

 

 

 

Monitor

Connect To

 

 

 

 

for IXIA

 

 

 

 

 

Network Port

 

 

 

 

 

 

 

LM1000SX

GBIC SFP

 

 

 

 

Cards

 

 

 

 

Modules

 

 

 

 

 

 

 

 

 

Fiber

 

 

 

 

 

Cables

Intel®

SPI4-2

 

 

 

 

SPI4-2

 

 

 

IXF1110

Connector

Loop-back

 

 

 

 

 

CPU Daughter

 

 

 

 

 

Card

 

 

 

Intel® IXD1110

 

 

 

 

Demo Board

 

 

 

 

TCP/IP connection

 

 

 

 

 

UTP to Serial Connection

 

 

 

 

 

 

CAT5 UTP

B1895

 

 

 

 

 

12

Development Kit Manual

Document Number: 250807

Revision Number: 003

Revision Date: June 27, 2003

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Contents Intel IXD1110 Demo Board Development Kit ManualDevelopment Kit Manual Contents Figures TablesRevision History Contents Introduction About This KitAdditional Equipment Required Features About The IXD1110 Demo BoardIntel IXD1110 Demo Board Principal Components Component DescriptionFpga Setup Quick StartTypical Test Setup Typical Test SetupCPU Daughter Card Intel IXF1110 CPU Daughter CardCPU Fpga IXF1110 Register Modifications on StartupIXF1110 Software PC RequirementsInstalling the IXF1110 Software Changing the IP Address of the CPU Daughter Card OptionalDram OK Optional Configurations Reset Jumper JP2Jtag Test Signals Jtag Test Signals JP1LEDs IXF1110 LED BehaviorReset Test Points Test PointsIXF1110 Input Clock Test Points Gbic Test PointsMictor Connectors Mictor Connector Test Points Sheet 1Gbic Test Points Sheet 2 Power and Ground Test Points Mictor Connector Test Points Sheet 2Power Test Points Sheet 1 Test Point Symbol DescriptionPower Test Points Sheet 2 Ground Test PointsUnused Test Points Unused Test PointsTest Points Description Schematics IXD1110 Demo Board Power Revision A1Digital Power1.8 Digital Power 2.5GND Intel IXD1110 Analog Power Analog PowerControl I2C Data I2CDATA3 MODDEF3 MODDEF0I2CDATA4IXF0 I2CDATA4AB9 AC9I2CDATA6 MODDEF6IXD1110 SerDes/GBIC PortMODDEF9 L1 I2CDATA9IXF0SPI-4 Phase 2 RX SPI-4 Phase 2 TXIXD1110 SPI4-2 SER SrclkSrclr RclkPower IXF1110 & CPU Interfaces+2.5V +3.3VConnectors CLK0 CLK1 CLK3 GND GND GND GND GNDGND CLK2 Bill of Materials Intel IXD1110 Demo Board Bill of Materials Rev. A1Reference Designator Description Manufacturer Part Number Misc Bottom Testpoint

IXD1110 specifications

The Intel IXD1110 is an advanced integrated circuit that serves as a highly efficient and versatile solution for various communication and data processing applications. Built on Intel's cutting-edge technology, the IXD1110 showcases enhanced performance characteristics tailored for modern industrial and embedded systems.

One of the most notable features of the IXD1110 is its robust processing capability. Designed to support high-speed data transfer, this device operates with a clock frequency of up to 500 MHz. Such a high processing speed ensures that the IXD1110 can handle data-heavy applications with ease, making it an ideal choice for real-time data processing tasks.

In terms of connectivity, the IXD1110 boasts multiple communication interfaces. It supports Ethernet, SPI, and I2C protocols, allowing seamless integration into various system architectures. The Ethernet interface ensures high-bandwidth connectivity, giving developers the flexibility to connect the IXD1110 to both wired and wireless networks. This opens up possibilities for IoT (Internet of Things) applications, where reliable and fast communication is critical.

Another standout feature of the IXD1110 is its low-power consumption, which is a significant consideration for embedded systems and battery-powered devices. Intel has implemented advanced power management technologies in the IXD1110, enabling it to operate efficiently while minimizing energy usage. This characteristic not only extends the lifespan of the devices it powers but also reduces overall operational costs.

The IXD1110 also includes advanced security features, catering to the growing demand for secure processing in connected devices. Integrated hardware security mechanisms help safeguard against vulnerabilities and attacks, ensuring data integrity and protecting sensitive information.

Additionally, the IXD1110 is designed for scalability, allowing developers to adapt the device to a wide range of applications, from automotive systems to industrial automation. Its flexible architecture accommodates future upgrades and enhancements, making it a long-term investment for companies looking to future-proof their systems.

In conclusion, the Intel IXD1110 stands out with its high processing speeds, versatile connectivity options, low power consumption, advanced security features, and scalability. These attributes make it a compelling choice for organizations looking to leverage cutting-edge technology in their communication and data processing systems. As industries continue to evolve towards greater connectivity and automation, the IXD1110 is positioned as a key enabler in this technological transformation.