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GS4B022371GGT
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GS4B022371GGT Description
GS4B022371GGT Description
The GS4B022371GGT from TT Electronics/IRC is a high-performance 7-resistor bussed network in an 8-pin narrow SOIC package, designed for precision applications requiring stable thin-film resistance. With a 2.37KΩ resistance per element and a tight ±2% absolute tolerance, this ceramic-based network ensures reliable signal conditioning and voltage division. Its ±50ppm/°C temperature coefficient and 125°C maximum operating temperature make it suitable for environments with thermal fluctuations. The 0.05W (1/20) power rating per resistor and 100V maximum voltage rating balance compactness with robustness, while the gull-wing termination facilitates easy surface-mount assembly.
GS4B022371GGT Features
- Advanced Thin Film Technology: Delivers low noise and high stability for precision circuits.
- Bussed Network Design: Simplifies PCB layout by connecting resistors in a common bus configuration.
- Ceramic Case (SOIC): Enhances thermal performance and mechanical durability.
- Wide Temperature Range: Operates from 70°C to 125°C with derated power, ideal for industrial applications.
- Strict Tolerances: ±2% absolute and ratio tolerance ensures consistent performance across all resistors.
- Compact Dimensions: 4.9mm (L) × 5.99mm (D) × 1.45mm (H) with tight tolerances (±0.1mm height/length, ±0.2mm depth).
GS4B022371GGT Applications
This resistor network excels in:
- Analog Signal Processing: Voltage dividers, DAC/ADC interfaces, and sensor conditioning.
- Power Management: Current limiting and load sharing in compact power supplies.
- Industrial Controls: PLCs, motor drives, and instrumentation requiring stable resistance under thermal stress.
- Automotive (Non-Automotive Rated): Prototyping or non-safety-critical circuits where precision is key.
Conclusion of GS4B022371GGT
The GS4B022371GGT combines precision, compactness, and thermal resilience, making it a standout choice for engineers designing high-reliability analog systems. Its ceramic SOIC package, bussed architecture, and thin-film technology offer superior performance over generic arrays, particularly in space-constrained or thermally challenging environments. While not PPAP or automotive-qualified, its 2% tolerance and ±50ppm/°C stability ensure accuracy in industrial, medical, and test equipment applications.



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