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GS4B032402CT
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GS4B032402CT Description
GS4B032402CT Description
The GS4B032402CT from TT Electronics/IRC is a high-precision 7-resistor bussed network in an 8-pin narrow SOIC package. Designed for demanding applications, it features a 24KΩ resistance value with an ultra-tight ±0.25% tolerance and a low ±25ppm/°C temperature coefficient, ensuring stability across a wide operating range of -70°C to +125°C. The ceramic thin-film construction enhances thermal performance and reliability, while the gull-wing termination facilitates robust surface-mount assembly. With a 0.4W total power rating (0.05W per resistor) and 100V maximum voltage rating, this network is engineered for precision analog and digital circuits.
GS4B032402CT Features
- High Precision: ±0.25% absolute tolerance and ±25ppm/°C TCR for critical signal conditioning.
- Robust Construction: Ceramic substrate with thin-film technology for superior thermal management.
- Space-Efficient: Compact SOIC package (4.9mm × 5.99mm × 1.45mm) ideal for high-density PCB layouts.
- Bussed Design: Simplified routing with shared common terminals (BUS configuration).
- Wide Temperature Range: Operates reliably from -70°C to +125°C, even at derated power.
- Automotive-Grade Alternatives: While this model is not PPAP or automotive-qualified, its performance aligns with industrial benchmarks.
GS4B032402CT Applications
- Precision Voltage Dividers: Used in sensor interfaces and ADC/DAC reference circuits.
- Signal Conditioning: Ideal for op-amp feedback networks and filter designs.
- Industrial Controls: Suitable for PLCs, instrumentation, and test equipment requiring stable resistance.
- Telecom Infrastructure: High-frequency PCBs where low TCR minimizes drift.
- Medical Devices: Reliable performance in diagnostic equipment where accuracy is critical.
Conclusion of GS4B032402CT
The GS4B032402CT excels in applications demanding tight tolerance, low drift, and compact form factors. Its ceramic thin-film technology and bussed architecture offer a competitive edge over polymer-based networks, particularly in harsh environments. While not RoHS-compliant, its industrial-grade robustness makes it a preferred choice for precision electronics. Engineers should consider this model for high-reliability systems where resistance stability and power dissipation are paramount.



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