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GS8A011330DDT
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GS8A011330DDT Description
GS8A011330DDT Description
The GS8A011330DDT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. This 16-pin narrow SOIC device features 8 isolated thin-film resistors, each with a 133Ω resistance value and an absolute tolerance of ±0.5%. The network operates over a wide temperature range of 70°C to 125°C, with a ±100ppm/°C temperature coefficient, ensuring stable performance under thermal stress. Encased in a rectangular ceramic SOIC package, it offers excellent durability and thermal dissipation. With a 0.1W power rating per resistor (0.8W total) and a 100V maximum voltage rating, this component is ideal for precision analog and digital circuits requiring tight resistance matching.
GS8A011330DDT Features
- High Precision: ±0.5% absolute and ratio tolerance for accurate signal conditioning.
- Robust Construction: Ceramic case with gull-wing termination for reliable surface-mount assembly.
- Thermal Stability: ±100ppm/°C TCR ensures minimal drift across operating temperatures.
- Compact Design: 9.91mm × 5.99mm × 1.45mm footprint, suitable for space-constrained PCBs.
- Isolated Resistors: Eight independent 133Ω thin-film resistors for flexible circuit design.
- Wide Voltage Range: Supports up to 100V, making it versatile for industrial and instrumentation use.
GS8A011330DDT Applications
- Analog Signal Processing: Precision voltage dividers, DAC/ADC interfaces.
- Medical Electronics: Patient monitoring systems requiring stable resistance values.
- Industrial Controls: Feedback networks in motor drives and power supplies.
- Test & Measurement Equipment: Calibration circuits and sensor signal conditioning.
- Automotive (Non-Automotive Rated): Prototyping or benign-environment applications where high precision is critical.
Conclusion of GS8A011330DDT
The GS8A011330DDT excels in applications demanding tight tolerance, thermal resilience, and compact form factors. Its ceramic construction and thin-film technology provide superior performance over polymer-based networks, particularly in high-temperature or precision-critical environments. While not PPAP or automotive-qualified, it remains a cost-effective solution for industrial, medical, and instrumentation designs where reliability and accuracy are paramount. Engineers will appreciate its balance of precision, power handling, and durability in advanced electronic systems.



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