
TT Electronics/IRC
GS7B013921JDT
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GS7B013921JDT Description
GS7B013921JDT Description
The GS7B013921JDT from TT Electronics/IRC is a high-performance 14-pin narrow SOIC ceramic resistor network, designed for precision applications requiring stable resistance values in compact form factors. This bussed (BUS) configuration integrates 13 thin-film resistors, each rated at 3.92KΩ with ±5% absolute tolerance and an exceptional ±0.5% ratio tolerance, ensuring consistent performance in differential signal processing. The device operates over a wide temperature range of -70°C to +125°C, with a derated power capability up to 125°C, making it suitable for demanding environments. Encased in a rectangular ceramic SOIC package, it offers robust mechanical stability and thermal dissipation, critical for surface-mount applications.
GS7B013921JDT Features
- Advanced Thin-Film Technology: Delivers low noise and high stability (±100ppm/°C TCR) for precision circuits.
- High Power Handling: 0.7W total power rating (0.05W per resistor) and 100V maximum voltage rating ensure reliability in power-sensitive designs.
- Compact & Robust: 8.66mm × 5.99mm × 1.45mm dimensions with tight tolerances (±0.1mm height/length, ±0.2mm depth) for space-constrained PCBs.
- Automated Assembly Friendly: Gull-wing termination and 1.27mm terminal pitch simplify pick-and-place processes.
- Non-Automotive Grade: Ideal for industrial and commercial applications where PPAP compliance is not required.
GS7B013921JDT Applications
- Signal Conditioning: Precision voltage dividers in ADC/DAC circuits due to low ratio tolerance.
- Industrial Controls: PLCs and sensor interfaces benefiting from high-temperature operation.
- Medical Electronics: Patient monitoring systems requiring stable resistance networks.
- Test & Measurement Equipment: Calibration circuits leveraging tight tolerance and low TCR.
Conclusion of GS7B013921JDT
The GS7B013921JDT excels in applications demanding miniaturization, thermal resilience, and electrical precision. Its ceramic SOIC construction, bussed architecture, and thin-film technology provide a competitive edge over polymer-based networks, particularly in harsh environments. While not RoHS-compliant, its performance-to-size ratio makes it a standout choice for industrial and instrumentation designs where reliability outweighs regulatory constraints. Engineers should evaluate this model for projects requiring high-density, low-drift resistor arrays with proven manufacturability.



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