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GS7B035362DT
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GS7B035362DT Description
GS7B035362DT Description
The GS7B035362DT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. This 14-pin narrow SOIC device features 13 bussed (BUS) thin-film resistors, each with a 53.6KΩ resistance and an exceptional ±0.5% absolute tolerance. Built with a rectangular ceramic SOIC package, it offers superior thermal stability and reliability, operating within a temperature range of 70°C to 125°C at derated power. The ±25ppm/°C temperature coefficient ensures minimal resistance drift, while the 0.05W (1/20) power rating per resistor and 100V maximum voltage rating make it suitable for precision circuits.
GS7B035362DT Features
- Ceramic SOIC-C Series: Robust construction for high thermal and mechanical endurance.
- Bussed Network (BUS): Simplifies circuit design with shared connections.
- Thin-Film Technology: Delivers high accuracy (±0.5%) and low TCR (±25ppm/°C).
- Surface-Mount Gull Wing Termination: Ensures secure PCB attachment with a 1.27mm terminal pitch.
- Compact Dimensions: 8.66mm (L) × 5.99mm (D) × 1.45mm (H) with tight tolerances (±0.1mm).
- Wide Operating Range: 125°C max temperature and 70°C to 125°C derated power range.
- Non-Automotive, Non-PPAP: Ideal for industrial and commercial applications.
GS7B035362DT Applications
This resistor network excels in precision analog circuits, voltage dividers, and signal conditioning where stability and accuracy are critical. Its low TCR and tight tolerance make it perfect for:
- Medical instrumentation (e.g., patient monitoring systems).
- Test & measurement equipment (e.g., calibration devices).
- Industrial control systems (e.g., PLCs, sensor interfaces).
- Telecommunications infrastructure (e.g., signal processing modules).
Conclusion of GS7B035362DT
The GS7B035362DT stands out for its ceramic-based durability, thin-film precision, and bussed network efficiency, offering superior performance in high-reliability applications. While not RoHS-compliant, its thermal stability and low drift make it a preferred choice for engineers prioritizing long-term accuracy in harsh environments. For designs requiring tight-tolerance, space-efficient resistor arrays, this model delivers unmatched consistency and robustness.



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