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GS7B036192DDT
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GS7B036192DDT Description
GS7B036192DDT Description
The GS7B036192DDT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. Packaged in a 14-pin narrow SOIC (SOIC-C series), this bussed network integrates 13 thin-film resistors, each with a 61.9 kΩ resistance and an absolute tolerance of ±0.5%. The device operates over a wide temperature range of -70°C to +125°C, with a temperature coefficient of ±25 ppm/°C, ensuring stability in harsh environments. Its 0.05W (1/20) power rating per resistor and 100V maximum voltage rating make it suitable for precision analog and digital circuits. The gull-wing termination and surface-mount design facilitate easy PCB integration.
GS7B036192DDT Features
- High Precision: ±0.5% absolute and ratio tolerance for consistent performance.
- Stable TCR: ±25 ppm/°C ensures minimal resistance drift.
- Robust Construction: Ceramic case with SOIC package (8.66mm x 5.99mm x 1.45mm) and ±0.1mm dimensional tolerances.
- Wide Operating Range: Derated power up to 125°C, ideal for industrial and automotive-adjacent applications (though not PPAP/automotive-certified).
- Thin-Film Technology: Delivers low noise and high reliability compared to thick-film alternatives.
- Bussed Configuration: Simplifies circuit design by connecting multiple resistors to a common node.
GS7B036192DDT Applications
This resistor network excels in:
- Precision voltage dividers and sensor signal conditioning (e.g., medical devices, test equipment).
- Analog-to-digital converters (ADCs) and digital-to-analog converters (DACs) requiring tight tolerance matching.
- Industrial control systems where temperature stability is critical.
- Communication infrastructure (e.g., RF modules, base stations) due to its low parasitic effects.
Conclusion of GS7B036192DDT
The GS7B036192DDT stands out for its exceptional accuracy, thermal stability, and compact SOIC footprint. While not automotive-grade, its ceramic thin-film construction and bussed architecture make it a superior choice for precision applications in harsh environments. Engineers will appreciate its ease of integration and consistent performance, particularly in designs demanding tight tolerance networks. For projects requiring high reliability without PPAP compliance, this model offers an optimal balance of cost and performance.



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