PS930L-12.4G High Frequency Low Loss Phase Stable Coaxial Cable

Structural breakdown of PS930L-12.4G low loss phase stable coaxial cable showing solid silver-plated copper conductor, LD-PTFE dielectric, silver-plated copper strip inner shield, high temperature aluminium foil interlayer, and silver-plated copper wire outer shield.
PS930L-12.4G Phase Stable Coaxial Cable Construction Details

PS930L-12.4G High Frequency Low Loss Phase Stable Coaxial Cable

Ultra-Low Insertion Loss & Exceptional Phase Stability Rated Up to 12.4 GHz

Max Frequency:DC12.4 GHz

Screening: >90 dB

Phase Stability ±0.2 °/GHz

Outer Diameter:12.0 mm

Structure & Construction Characteristics

LayerElementMaterialConstruction (mm)Nom. O.D. (mm)
Inner ConductorCenter ConductorSilver Plated Copper1 / 2.442.44
DielectricInsulationLD-PTFE7.30
Inner ShieldFlat Ribbon ShieldSilver Plated Copper Strip7.54
InterlayerBarrier TapeHigh Temperature Aluminium Foil7.67
Outer ShieldBraided ShieldSilver Plated Copper Wire8.19
JacketOuter SheathLight Blue FEP9.30

Mechanical & Environmental Parameters

Min. Static Bend Radius47.00 mmMin. Dynamic Bend Radius94.00 mm
Weight0.194 kg/mOperating Temperature-55°C to +200°C

Electrical & Mechanical Characteristics

Impedance50 ΩCapacitance88 pF/m
Velocity of Propagation76%Max Operating Frequency12.4 GHz
Screening Effectiveness> 90 dBDielectric Withstanding Voltage3500 V DC
Phase Change vs. Bending±0.2 °/GHzPhase Change vs. Temperature (-45~+85℃)≤ 1500 PPM

Attenuation & Power Handling @ 25℃ & Sea Level

Insertion Loss Calculation: IL = K1 * sqrt(F_MHz) + K2 * F_MHz [dB/100m]
Constants: K1 = 0.44608, K2 = 0.0006

Frequency (MHz)Nominal Attenuation (dB/100m @ 25°C & Sea Level)Max Power Handling (W @ 40°C & Sea Level)
1004.525,985
3007.913,422
50010.272,633
100014.711,840
200021.151,279
300026.231,031
600038.15709
800044.70605
1000050.61535
1200056.07483
1240057.11474

Cross Reference & Direct Equivalent Replacement
The PS930L-12.4G low loss phase stable coaxial cable is engineered as a direct drop-in replacement for Times Microwave SFT393, delivering matched 12.4 GHz high-frequency capability, identical mechanical dimensions (9.30 mm outer diameter), and equivalent phase stability under flexure.

Frequently Asked Questions

What advantage does the 2.44 mm solid inner conductor provide in high-power 12.4 GHz transmissions?

The single solid 2.44 mm silver-plated copper conductor offers lower DC resistance and superior current density distribution at X-band and Ku-band frequencies compared to stranded cores. This ensures maximum RF power transmission efficiency (handling up to 474W @ 12.4 GHz) while maintaining stable attenuation behavior over prolonged continuous wave (CW) power exposure.

How does the 47.00 mm minimum static bend radius influence system installation density?

With a compact 9.30 mm overall diameter and 47.00 mm tight static bending radius, PS930L-12G facilitates high-density cable routing in constrained airborne avionics and mobile radar chassis without risking dielectric compression, impedance discontinuities, or degradation of the 50 Ω nominal impedance.

How do the attenuation constants (K1=0.44608, K2=0.0006) help in system link budget calculations?

The dual-coefficient equation isolates skin-effect conductor losses (K1) from dielectric dissipation losses (K2). RF system engineers can precisely predict line loss at non-standard intermediate operating frequencies up to 12.4 GHz, allowing exact link budget verification for sensitive satellite telemetry and electronic countermeasure (ECM) assemblies.

Need a Custom Solution?

To design the right custom RF coaxial cable, please share key details such as frequency range, application, required flexibility, installation space limitations, temperature requirements, and any existing cable model you are replacing. The more information you provide, the faster we can recommend the optimal cable solution.

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