Optimizing Performance

Creating and Applying User Flatness Correction

Figure 4-6

User Flatness with mm-Wave Source Module and Option 1EA Signal Generator

NOTE To ensure adequate RF amplitude at the mm- wave source module RF input when using Option 1EA signal generators, maximum amplitude loss through the adapters and cables connected between the signal generator’s RF output and the mm- wave source module’s RF input should be less than 1.5 dB.

Configure the Signal Generator

1.Turn on the signal generator’s line power. At power- up, the signal generator automatically does the following:

senses the mm- wave source module

switches the signal generator’s leveling mode to external/source module

sets the mm- wave source module frequency and amplitude to the source module’s preset values

displays the RF output frequency and amplitude available at the mm- wave source module output

The MMMOD indicator in the FREQUENCY area and the MM indicator in the AMPLITUDE area of the signal generator’s display indicate that the mm- wave source module is active

NOTE For specific frequency/amplitude ranges, see the mm- wave source module specifications.

Chapter 4

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Agilent Technologies E8257D PSG, E8267D PSG manual

E8267D PSG, E8257D PSG specifications

Agilent Technologies, a recognized leader in electronic measurement and communications solutions, offers a comprehensive range of signal generators, including the E8257D PSG (Pulsed Signal Generator) and E8267D PSG. These instruments are engineered to meet the demanding requirements of wireless communication, aerospace, defense, and various research applications.

The E8257D PSG is known for its versatility and reliability. It operates within a frequency range of 250 kHz to 40 GHz, making it suitable for a wide array of applications, from signal generation to vector modulation. With an output power capability of up to +30 dBm, it delivers high-quality signals with exceptional precision. Its low phase noise performance is especially critical for applications such as radar and communication system testing, where signal integrity is paramount.

One of the standout features of the E8257D is its advanced modulation capabilities, including analog and digital modulation schemes. This flexibility allows engineers to simulate real-world communications environments accurately. The PSG also features a built-in arbitrary waveform generator that enables users to create complex waveforms tailored to specific testing needs, providing a significant advantage in research and development.

On the other hand, the Agilent E8267D PSG is designed to cater to the needs of users requiring a combined signal generation and analysis solution. With the capability to generate signals from 250 kHz to 67 GHz, the E8267D is ideal for millimeter-wave applications, as well as testing next-generation wireless technologies.

This model includes features such as enhanced phase noise performance and faster switching speed, which are crucial for signal integrity in sophisticated networks. The instrument's intuitive user interface and powerful software integration facilitate effortless operation and automation, thereby improving workflow efficiency.

Both the E8257D and E8267D PSG instruments incorporate cutting-edge technologies such as low-noise microwave and RF components, as well as digital signal processing capabilities. They provide users with enhanced accuracy and reliability in their measurements.

In summary, Agilent Technologies' E8257D and E8267D PSG signal generators represent the pinnacle of precision in signal generation technology. With their extensive feature sets, advanced modulation capabilities, and robust performance specifications, these instruments are invaluable tools for engineers and researchers working across various high-tech industries.