100023618

100023618

$105.66
  • Description:BNC Att m-f 0-6GHz 3dB 2W
  • Series:-
  • Mfr:Telegartner Inc
  • Package:Bag

SKU:c79423c5cccb Category: Brand:

  
  • Quantity
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Product Detailed Parameters

  • Description:BNC Att m-f 0-6GHz 3dB 2W
  • Series:-
  • Mfr:Telegartner Inc
  • Package:Bag
  • Attenuation Value:3dB
  • Frequency Range:0 Hz ~ 6 GHz
  • Power (Watts):2W
  • Impedance:50 Ohms
  • Grade:-
  • Qualification:-
  • Package / Case:BNC In-Line Module

Download product information

100023618

Buying Guide
Summary

Telegartner Inc 100023618 is sourced in Attenuators category when teams want clear constraints and a repeatable validation path. Key specs include Description (BNC Att m-f 0-6GHz 3dB 2W), Packaging (Bag), Package/case (BNC In-Line Module), and Frequency range (0 Hz ~ 6 GHz).

Selection Notes
  • For 100023618, validate Attenuation Value (3dB) under the expected test conditions in your application.
  • Confirm the package/case (BNC In-Line Module) and any exposed-pad requirements for your assembly process.
  • Confirm the frequency range (0 Hz ~ 6 GHz) supports your target bandwidth with margin.
Alternates & Substitutions
  • In Attenuators designs, define acceptance criteria up front so alternates can be qualified and repeated in production.
  • Begin with the constraints that are hardest to change later: package/case BNC In-Line Module, packaging Bag.
  • Confirm the alternate stays inside the electrical and environmental envelope, not only the headline spec.
  • Confirm compliance/qualification needs (for example RoHS/REACH or grade) before approving a second source for production.
FAQ

Who is the manufacturer of 100023618?
Telegartner Inc

How do I confirm compatibility for 100023618?
Match mechanical footprint first, then verify electrical limits and operating conditions against your system constraints.

What Impedance is listed for 100023618?
50 Ohms

Which packaging format is listed for 100023618?
Bag

Application Scenarios

For many Attenuators designs, Telegartner Inc 100023618 is vetted against electrical margins, thermal headroom, and mechanical integration before the BOM is frozen. Engineers typically care about stability across temperature and assembly variance, because small RF shifts can translate into big system-level margin changes. RF integration is validated with real antennas, cables, and enclosures, not just lab fixtures, because coupling and detuning drive outcomes. At that point, system-level margins and test access tend to decide whether the choice is comfortable for production. Across industrial sensing, RF stability and filtering influence range accuracy and false-detect rate. In campus networks, access hardware must tolerate dense channel occupancy, so linearity and filtering margins matter. Across tracking beacons, antenna detuning from packaging and mounting dominates outcomes, so validation uses the real enclosure. By keeping assumptions testable, teams can iterate faster without accumulating hidden technical debt.

Compatibility Advice
  • In practice, follow reference layouts and keep return paths continuous, because small routing changes can shift spurs and sensitivity with the final enclosure and cabling.
  • Check placement and shielding constraints so isolation and keep-out requirements can be met with the real source, load, and wiring.
  • On the assembled PCB, validate the antenna, enclosure, and cable environment because impedance and coupling define the real margins. This keeps integration from depending on typical-only conditions.
Project Fit
  • Best fit when you can validate Telegartner Inc 100023618 for Attenuators integration in the final enclosure, if you can control layout, shielding, and the antenna environment.
  • Not ideal when integrating Telegartner Inc 100023618 for Attenuators, the enclosure and routing cannot be controlled enough to keep margins stable, because validation would rely on assumptions that cannot be re-tested later.
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$105.66
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