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GS8A014872JT
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GS8A014872JT Description
GS8A014872JT Description
The GS8A014872JT from TT Electronics/IRC is a high-performance 8-resistor thin film network in a 16-pin SOIC package, designed for precision isolation circuits. With a 48.7KΩ resistance per resistor (5% tolerance) and a ±100ppm/°C temperature coefficient, it ensures stable performance across a 70°C to 125°C derated power range. The ceramic case style and gull-wing termination provide robust mechanical and thermal stability, making it ideal for surface-mount applications requiring high voltage isolation (100V max).
GS8A014872JT Features
- Thin Film Technology: Delivers superior accuracy and low noise compared to thick-film alternatives.
- High Power Handling: 0.1W per resistor (0.8W total) with derating up to 125°C.
- Precision Tolerance: 5% resistance tolerance ensures consistent performance in critical circuits.
- Compact & Robust: 9.91mm × 5.99mm × 1.45mm SOIC package with ±0.1mm length/height tolerances for tight PCB layouts.
- Isolation-Centric Design: "ISOL" circuit designator highlights suitability for galvanic isolation in signal paths.
- Non-Automotive: Optimized for industrial/commercial use (PPAP not required).
GS8A014872JT Applications
- Signal Conditioning: Isolated feedback networks in op-amp circuits or ADC/DAC interfaces.
- Power Supply Control: Voltage divider networks in DC-DC converters or PMICs.
- Medical/Test Equipment: High-reliability resistance networks for patient monitoring or calibration systems.
- Industrial Automation: PLC I/O modules where space-efficient, high-voltage isolation is critical.
Conclusion of GS8A014872JT
The GS8A014872JT excels in precision, power efficiency, and isolation performance, distinguishing itself from generic resistor arrays with its ceramic construction, tight tolerances, and thin-film stability. While not RoHS-compliant, its 100V rating and 125°C operating range make it a robust choice for industrial, medical, and instrumentation designs demanding reliability in constrained spaces. Ideal for engineers prioritizing thermal resilience and signal integrity in SMT environments.



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