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GQ0A0364R9GT
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GQ0A0364R9GT Description
GQ0A0364R9GT Description
The GQ0A0364R9GT from TT Electronics/IRC is a high-precision thin-film resistor network designed for demanding electronic applications. This 64.9 Ohm, 2% tolerance device offers 1W power dissipation and a low ±25ppm/°C temperature coefficient, ensuring stable performance across varying thermal conditions. Housed in a 20-pin QSOP gull-wing SMD package, it features isolated ceramic substrate construction, enhancing thermal management and electrical isolation. Compliant with HTS 8533.21.00.20 and ECCN EAR99, it is suitable for non-automotive applications but is not RoHS compliant.
GQ0A0364R9GT Features
- Precision Thin-Film Technology: Delivers high accuracy (2%) and low TCR (±25ppm/°C) for stable resistance values.
- Robust Construction: Ceramic substrate ensures superior thermal dissipation and mechanical durability.
- Isolated Design: Reduces crosstalk in multi-channel circuits, ideal for signal integrity-critical applications.
- Compact QSOP Package: Space-efficient 20-pin SMD format with gull-wing leads for reliable PCB mounting.
- 1W Power Handling: Supports higher current loads compared to standard resistor networks.
GQ0A0364R9GT Applications
- Industrial Electronics: Precision voltage dividers, feedback networks, and sensor calibration circuits.
- Test & Measurement Equipment: High-accuracy signal conditioning and reference circuits.
- Medical Devices: Reliable performance in diagnostic and monitoring systems.
- Telecommunications: Impedance matching and filtering in RF modules.
- Aerospace & Defense: Stable operation in harsh environments due to robust ceramic construction.
Conclusion of GQ0A0364R9GT
The GQ0A0364R9GT stands out for its precision, thermal stability, and isolation properties, making it a superior choice for applications requiring tight tolerance and low drift. While not suited for automotive or RoHS-regulated environments, its ceramic substrate, 1W rating, and compact SMD package make it ideal for industrial, medical, and high-reliability systems. Engineers seeking a high-performance resistor network with proven durability should consider this model for critical designs.



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