PSE760L-18G-F FEP Jacketed High Frequency Low Loss Phase Stable Coaxial Cable

Structural breakdown of PSE760L-18G-F 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, outer braid, and FEP jacket.
PSE760L-18G-F Phase Stable Coaxial Cable Construction Details

PSE760L-18G-F FEP Jacket High Frequency Low Loss Phase Stable Coaxial Cable

Ultra-Low Insertion Loss & Exceptional Thermal Stability Rated Up to 18 GHz

Max Frequency:DC-18 GHz

Screening: >90 dB

Phase Stability ±0.2 °/GHz

Outer Diameter:7.6 mm

Structure & Construction Characteristics

LayerElementMaterialConstruction (mm)Nom. O.D. (mm)
Inner ConductorCenter ConductorSilver Plated Copper1 / 2.102.10
DielectricInsulationLD-PTFE6.10
Inner ShieldFlat Ribbon ShieldSilver Plated Copper Strip6.42
InterlayerBarrier TapeHigh Temperature Aluminium Foil6.54
Outer ShieldBraided ShieldSilver Plated Copper Wire7.05
JacketOuter SheathLight Blue FEP7.60

Mechanical & Environmental Parameters

Min. Static Bend Radius38.00 mmMin. Dynamic Bend Radius76.00 mm
Weight0.127 kg/mOperating Temperature-55°C to +200°C

Electrical & Mechanical Characteristics

Impedance50 ΩCapacitance88 pF/m
Velocity of Propagation78%Max Operating Frequency18 GHz
Screening Effectiveness> 90 dBDielectric Withstanding Voltage3000 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 = 0.5382111, K2 = 0.000591

Frequency (MHz)Nominal Attenuation (dB/100m @ 25°C & Sea Level)Max Power Handling (W @ 40°C & Sea Level)
3009.502,908
50012.332,240
100017.611,569
200025.251,094
300031.25884
600045.24611
800052.87523
1000059.73462
1240067.26411
1600077.53356
1800082.85333

Cross Reference & Direct Equivalent Replacement
The PSE760L-18G-F low loss phase stable coaxial cable is engineered as a direct drop-in replacement for Times Microwave SFT205 / SFT-205, delivering matched 18 GHz high-frequency performance, identical mechanical dimensions (7.60 mm outer diameter), and superior thermal stability via its extruded FEP outer jacket.

Frequently Asked Questions

How does the fluorinated ethylene propylene (FEP) jacket improve environmental reliability in high-temperature RF applications?

The extruded FEP jacket offers an extremely wide operating temperature rating (-55°C to +200°C) with exceptional chemical inertness and UV resistance. Unlike standard PVC or polyurethane, FEP maintains mechanical stability without outgassing or softening during high-power Ku-band RF transmission or prolonged thermal cycling in aerospace cabins.

What makes the 3000 V DC dielectric withstanding voltage rating critical for high-altitude microwave systems?

The 3000 V DC rating reflects the high dielectric strength of the expanded LD-PTFE insulation structure. In unpressurized airborne electronics bays, this high breakdown voltage margin prevents corona discharge and voltage arcing across the 6.10 mm dielectric layer during peak RF pulse powers at high altitudes.

How does the 1500 PPM thermal phase change limit affect wideband phase tracking in radar receivers?

A maximum phase variance of ≤ 1500 PPM across the -45°C to +85°C temperature envelope guarantees that electrical path length changes remain within tight tolerances. This minimizes phase error drift between channels in multi-channel monopulse radar systems and phase-array receivers without requiring real-time software calibration.

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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