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Mechanc RF & Microwave Components

Mechanc · RF Connectors

2.4mm Female 2-Hole Flange Mount RF Connector – Field Replaceable, 10.2mm Hole Spacing, 0.23mm Pin Diameter

Part No.
2.4-KFD21
Also:
1.0mm Male
In Stock
Lead time: 3–5 days (standard) · Custom: on request
2.4mmFemaleStraight2 Hole Flange
Quantity
Product Description

2.4mm Female 2-Hole Flange Mount Field-Replaceable RF Connector – Model 2.4-KFD21

The 2.4mm female 2-hole flange mount RF connector with a 0.23 mm pin and 10.2 mm hole spacing is designed for ultra-compact, high-precision RF measurement assemblies. Rated for 50 Ω impedance and frequencies up to 50 GHz, this field-replaceable connector provides exceptional electrical accuracy and repeatability in fine-tuned metrology systems.

High-Precision Electrical Stability

Delivering VSWR ≤ 1.2 and insertion loss ≤ 0.06 √F(GHz) dB, the 2.4mm female 2-hole flange mount RF connector ensures low reflection and stable phase performance for delicate microwave measurement setups. The 0.23 mm pin offers superior alignment for low-power, high-frequency transmission.

Material Design, Compliance, and Reliability

Machined from stainless steel with gold-plated beryllium copper contacts, the 2.4mm female flange connector maintains mechanical durability and corrosion resistance. Fully REACH and RoHS compliant, it guarantees long-term reliability between −55 °C and +165 °C in laboratory and production environments.

Applications and Integration

The 10.2 mm flange spacing allows integration in 2-hole flange mount RF connectors where space and precision are critical, such as calibration modules, compact analyzers, and micro-signal RF test devices.

Tailored Engineering Capabilities

Mechanc develops customizable 2.4 mm RF connectors optimized for tight-space designs and ultra-fine alignment. Visit our RF Connector Catalog for related high-frequency components and matching flange assemblies. Pair with the 2.4mm male 2-hole flange mount RF connector – Model 2.4-JFD21 for seamless mechanical compatibility and full impedance precision.