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GS4B036192DBT
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GS4B036192DBT Description
GS4B036192DBT Description
The GS4B036192DBT from TT Electronics/IRC is a high-precision 7-resistor thin film network designed for demanding electronic applications. Encased in a ceramic SOIC-8 package, it offers a 61.9KΩ resistance per resistor with an ultra-tight ±0.5% tolerance and a low ±25ppm/°C temperature coefficient, ensuring stability across a wide operating range of -70°C to +125°C. The 0.4W total power rating (0.05W per resistor) and 100V maximum voltage rating make it suitable for precision circuits requiring reliable performance under thermal stress. Its gull-wing termination and surface-mount design facilitate easy PCB integration, while the ceramic substrate enhances thermal dissipation and durability.
GS4B036192DBT Features
- Precision Network: 7 resistors with 61.9KΩ ±0.5% tolerance for matched performance.
- Stable Thin Film Technology: Delivers ±25ppm/°C TCR for minimal drift in harsh environments.
- Robust Construction: Ceramic SOIC-8 case ensures high thermal conductivity and mechanical strength.
- Space-Efficient: Compact 4.9mm × 5.99mm × 1.45mm dimensions with 1.27mm pitch for high-density layouts.
- Wide Voltage & Power Handling: 100V max rating and 0.4W total dissipation (derated up to 125°C).
- Automation-Friendly: Gull-wing SMD terminals and tube packaging streamline assembly processes.
GS4B036192DBT Applications
Ideal for precision analog and digital systems requiring matched resistor networks, such as:
- Voltage dividers in sensor interfaces or ADC/DAC circuits.
- Feedback networks for op-amps and instrumentation amplifiers.
- Impedance matching in high-frequency communication modules.
- Industrial controls where temperature stability (±25ppm/°C) is critical.
- Medical electronics benefiting from ceramic encapsulation’s reliability.
Conclusion of GS4B036192DBT
The GS4B036192DBT stands out for its combination of precision, thermal resilience, and compact design, making it a superior choice over generic resistor arrays. Its ceramic substrate and thin film technology ensure long-term stability in industrial, automotive (non-PPAP), and medical applications. Engineers seeking low-drift, high-accuracy networks for space-constrained designs will find this model exceptionally reliable.



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