Keysight (Agilent) 3585A CALIBRATION and Keysight (Agilent) 3585A REPAIR

 
A calibration by Custom-Cal is performed by engineers with extensive OEM experience. We have the expertise and the necessary standards to perform the Keysight (Agilent) 3585A Calibration, onsite calibration may be available. We specialize in quick turnaround times and we can handle expedited deliveries upon request.

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   Keysight (Agilent) 3585A   Description / Specification:    
Keysight (Agilent) 3585A RF Spectrum Analyzer

IF Section Spectrum Analyzer, Frequency range of 20 Hz to 40.1 MHz, Amplitude range is -137 dBm to +30 dBm or 31 nV to 22V , Sweep modes continuous, single or manual. Sweep Time 0.2 seconds full sweep to 200 s/Hz of frequency Span. Can provide instrutions to the operator to minimize errors and reduce trainig time for complex measurements. Accuracy: 1 X 10^(-7)/ month of frequency. Selectivity of 60 dB/ 3 dB < 11.1. Amplitude measurement range of -137 dBm to +30 dBm (50/75 ?) or equivalent level in dB V or volts, 31 nV to 22 V (1 M?)



 

Standard Calibration $415.00 *
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*This is a Web introductory price for one calibration of the Keysight (Agilent) 3585A. Price does not in most cases include measurement performance data. Pricing does include NIST traceable calibration and issue of a calibration certificate and calibration label. Pricing may vary slightly due to volume and location of laboratory supporting calibration. Volume pricing may apply. On-site fees may apply depending on logistics, location and volume of work to be completed during the visit.


Related RF Terms and Definitions. For a complete list go to our  Terms and Definitions Page.

Available Gain
Available Gain is the ratio, at a specific frequency, of power available from the output to the power in from the source.

Frequency Span
Frequency Span specifies the range between the start and stop frequencies, also referred to as bandwidth

Peak Envelope Power
Peak envelope power is the maximum value of the envelope power. Envelope power is measured by making the averaging time much less than 1/fm where fm is the maximum frequency component of the modulation waveform. The averaging time is therefore limited on both ends: (1) it must be small compared to the period of the highest modulation frequency, and (2) it must be large enough to be many RF cycles long.


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