Agilent Technologies 85054-90049 Connections, How to Make a Connection, Preliminary Connection

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Use, Maintenance, and Care of the Devices

Connections

Connections

Good connections require a skilled operator. The most common cause of measurement error is bad connections. The following procedures illustrate how to make good connections.

How to Make a Connection

Preliminary Connection

1.Ground yourself and all devices. Wear a grounded wrist strap and work on a grounded, conductive table mat. Refer to “Electrostatic Discharge” on page 3-2for ESD precautions.

2.Visually inspect the connectors. Refer to “Visual Inspection” on page 3-3.

3.If necessary, clean the connectors. Refer to “Cleaning Connectors” on page 3-4.

4.Use a connector gage to verify that all center conductors are within the observed pin depth values in Table 2-2 on page 2-4. Refer to “Gaging Connectors” on page 3-6.

5.Carefully align the connectors. The male connector center pin must slip concentrically into the contact finger of the female connector.

6.Push the connectors straight together.

CAUTION Do not turn the device body. Only turn the connector nut. Damage to the center conductor can occur if the device body is twisted.

Do not twist or screw the connectors together. As the center conductors mate, there is usually a slight resistance.

7.The preliminary connection is tight enough when the mating plane surfaces make uniform, light contact. Do not overtighten this connection.

A connection in which the outer conductors make gentle contact at all points on both mating surfaces is sufficient. Very light finger pressure is enough to accomplish this.

8.Make sure the connectors are properly supported. Relieve any side pressure on the connection from long or heavy devices or cables.

Final Connection Using a Torque Wrench

Use a torque wrench to make a final connection. Table 3-1provides information about the torque wrench recommended for use with this calibration kit. A torque wrench is not included in the calibration kit. Refer to Chapter 6 “Replaceable Parts” for part number and ordering information.

Table 3-1 Torque Wrench Information

Connector Type

Torque Setting

Torque Tolerance

 

 

 

Type-N

135 N-cm (12 in-lb)

±13.5 N-cm (±1.2 in-lb)

 

 

 

3-16

85054B

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Contents User’s and Service Guide Manufacturing Part Number Print Date JuneDocumentation Warranty Contents Replaceable Parts General Information Kit Contents Calibration Kit OverviewCalibration Definitions Equipment Required but Not SuppliedIncoming Inspection Recording the Device Serial Numbers Serial NumbersSerial Number Record for the 85054B Calibration Kit History Calibration Kits Documented in This Manual85054B Kits with Serial Prefix 2906A Precision Slotless Connectors Clarifying the Sex of a Connector Preventive MaintenanceSpecifications Environmental Requirements Temperature-What to Watch Out ForEnvironmental Requirements Mechanical Characteristics Pin DepthPin Depth Limits Electrical Specifications Electrical SpecificationsCertification Electrical Specifications 85054B Use, Maintenance, and Care of the Devices ESD Protection Setup Electrostatic DischargeLook for Obvious Defects and Damage First What Causes Connector Wear?Visual Inspection Inspect the Mating Plane SurfacesInspect the Precision Slotless Connectors female Cleaning ConnectorsUse Compressed Air or Nitrogen Clean the Mating Plane Surfaces InspectGaging Connectors Connector Gage AccuracyWhen to Gage Connectors Reading the Connector GageGaging Procedures Gaging Male Type-N ConnectorsGaging Male Type-N Connectors Gaging Female Type-N Connectors Gaging Female Type-N Connectors Gaging the Sliding Load Adjusting the Sliding Load Pin Depth Gaging the Sliding Load Pin DepthGaging Connectors Adjusting the Sliding Load Pin Depth Connections How to Make a ConnectionFinal Connection Using a Torque Wrench Preliminary ConnectionWrench Positions Connecting the Sliding Load How to Separate a Connection Connecting the Sliding LoadUsing the Sliding Load 10 Using the Sliding Load Handling and Storage Performance Verification Introduction How Agilent Verifies the Devices in This KitRecertification Where to Send a Kit for RecertificationHow Often to Recertify Recertification 85054B Troubleshooting Troubleshooting Process Troubleshooting FlowchartContacting Agilent Where to Look for More InformationReturning a Kit or Device to Agilent Contacting AgilentReturning a Kit or Device to Agilent 85054B Replaceable Parts Replaceable Parts for the 85054B Calibration Kit AdaptersItem No Description Replaceable Parts-Items Not Included in the Calibration Kit ESD Protective DevicesReplaceable Parts for the 85054B Calibration Kit More Replaceable Parts for the 85054B Calibration Kit Standard Definitions Version Changes Standard Class Assignments Class Standard Class LabelCalibration Kit Label N 50 Ω If you are performing a TRM calibration If you are performing a TRL calibrationIf you are performing an LRM calibration Standard Class Assignments Blank Forms Table A-4 Blank Form for the 8510 Network AnalyzerS11A S11B S11C S22A S22B S22C Table A-6 Blank Form for the PNA Series Network Analyzers Standard Class Assignments Setting the System Impedance Nominal Standard DefinitionsTable A-7 Standard Definitions for the 8510 Network Analyzer Calibration Kit Label N 50 Ω Frequency Standardb Offset GHzc Table A-10 Blank Form for the 8510 Network Analyzer Coax or Waveguide Standard LabelSystem Z 0 a = 50.0 Ω Frequency Standard b Offset GHz c Nominal Standard Definitions 85054B Index Index-2 85054B Index-3

85054-90049 specifications

Agilent Technologies 85054-90049 is a high-performance calibration kit designed for vector network analysis across a wide range of frequencies. This kit is an indispensable tool for engineers and technicians involved in the measurement and characterization of RF components, ensuring accuracy and reliability in their testing processes.

One of the main features of the 85054-90049 calibration kit is its ability to provide accurate calibration across multiple frequency bands, including microwave and millimeter-wave frequencies. This versatility is crucial for professionals who work with different types of RF devices, such as amplifiers, filters, and antennas. The kit supports a frequency range of up to 67 GHz, making it suitable for a variety of applications in the telecommunications and aerospace industries.

The calibration kit utilizes precision standards and adapters that ensure low insertion loss and minimal reflection. These components are engineered to provide high stability and repeatability in measurements, which is vital for maintaining quality control in manufacturing processes or during research and development stages. The accuracy of the calibration is further enhanced by the materials used in the construction of the connectors and adapters, which are designed to minimize signal degradation.

Another key technology employed in the Agilent 85054-90049 is its rugged design, intended to withstand the demands of laboratory environments as well as field applications. The kit is portable, allowing engineers to perform precision measurements wherever needed without compromising on performance. Its compact design and durable case make it an ideal choice for field applications.

The 85054-90049 calibration kit is also compatible with Agilent's range of vector network analyzers, creating a seamless user experience. The calibration process, supported by comprehensive software tools, is designed to be user-friendly, allowing technicians to perform calibrations quickly and accurately. In addition, the kit comes with detailed documentation that includes calibration procedures, ensuring that even those new to RF testing can follow along with ease.

In summary, the Agilent Technologies 85054-90049 is a state-of-the-art calibration kit that combines high performance, compatibility, and durability. Its advanced features cater to various RF testing needs, making it a vital resource for professionals in industries where precision measurements are of utmost importance. Whether in laboratories or field settings, this calibration kit stands out as a benchmark for quality in RF and microwave measurement applications.