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GS8B024701BAT
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GS8B024701BAT Description
GS8B024701BAT Description
The GS8B024701BAT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding applications requiring tight tolerance and stability. Housed in a 16-pin narrow SOIC package, it features 15 bussed resistors with a 4.7KΩ resistance value and an absolute tolerance of ±0.1%, ensuring exceptional accuracy. The thin-film technology and ±50ppm/°C temperature coefficient provide reliable performance across a wide temperature range (70°C to 125°C). With a power rating of 0.8W (0.05W per resistor) and a maximum voltage rating of 100V, this component is engineered for precision analog and digital circuits.
GS8B024701BAT Features
- High Precision: ±0.1% absolute tolerance and ±0.05% ratio tolerance for critical applications.
- Robust Construction: Ceramic case ensures durability and thermal stability.
- Wide Operating Range: Rated for -55°C to +125°C, derated up to 125°C.
- Surface-Mount Design: Gull-wing termination and 1.27mm pitch for easy PCB integration.
- Low TCR: ±50ppm/°C minimizes resistance drift under temperature fluctuations.
- Compact Dimensions: 9.91mm (L) × 5.99mm (D) × 1.45mm (H) with tight tolerances (±0.1mm).
GS8B024701BAT Applications
- Precision Voltage Dividers: Ideal for ADC/DAC reference circuits due to low tolerance.
- Industrial Control Systems: Stable performance in harsh environments.
- Medical Electronics: Reliable signal conditioning in diagnostic equipment.
- Automotive Sensors: Suitable for non-automotive-grade but high-reliability sensor interfaces.
- Test & Measurement Equipment: Ensures accuracy in calibration and instrumentation.
Conclusion of GS8B024701BAT
The GS8B024701BAT stands out for its exceptional precision, thermal stability, and compact form factor, making it a superior choice for high-accuracy circuits. While not PPAP or automotive-qualified, its ceramic construction and thin-film technology deliver unmatched reliability in industrial, medical, and instrumentation applications. Engineers seeking a low-drift, high-tolerance resistor network will find this model optimally balanced for performance and integration.



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