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GS4B032370BT
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GS4B032370BT Description
GS4B032370BT Description
The GS4B032370BT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. This 8-pin Narrow SOIC (SOIC-C Series) device features 7 bussed resistors with a 237Ω resistance value and an exceptional ±0.1% absolute tolerance, ensuring superior accuracy in signal conditioning and voltage division circuits. Its thin-film technology and ±25ppm/°C temperature coefficient provide stable performance across a wide operating range of -70°C to +125°C, making it suitable for environments with thermal fluctuations. The 0.4W total power rating (0.05W per resistor) and 100V maximum voltage rating enhance reliability in compact designs.
GS4B032370BT Features
- Precision Tolerance: ±0.1% absolute tolerance for critical accuracy.
- Stable Performance: ±25ppm/°C TCR ensures minimal resistance drift.
- Robust Construction: Ceramic case with gull-wing termination for durability.
- High-Density Design: 4.9mm × 5.99mm × 1.45mm compact SOIC package.
- Wide Temperature Range: Operates from -70°C to +125°C with derated power.
- Bussed Network: Simplified PCB layout with shared connections.
- Surface-Mount Ready: 1.27mm terminal pitch for easy assembly.
GS4B032370BT Applications
This resistor network excels in:
- Precision Analog Circuits: Voltage dividers, feedback networks.
- Industrial Controls: Sensor interfaces, PLCs.
- Test & Measurement Equipment: Calibration circuits, signal conditioning.
- Aerospace & Defense: Avionics, ruggedized systems (non-automotive).
- Medical Electronics: High-reliability diagnostic devices.
Conclusion of GS4B032370BT
The GS4B032370BT stands out for its combination of precision, stability, and compactness, ideal for applications requiring tight tolerance and thermal resilience. While not RoHS-compliant or PPAP-certified, its ceramic construction and thin-film technology make it a robust choice for industrial and high-performance electronics. Engineers will appreciate its ease of integration and consistent performance in critical circuits.



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