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Y0114V0071TT9L
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Y0114V0071TT9L Description
Y0114V0071TT9L Description
The Y0114V0071TT9L from VPG Foil Resistors is a high-precision 2-resistor network designed for voltage divider applications with TCR-matched performance. Part of the VFD244 series, this through-hole component features ultra-tight tolerances (±0.01% resistance and ratio matching) and an exceptional ±2ppm/°C temperature coefficient, ensuring stability in demanding environments. With resistances of 1kΩ and 10kΩ, it delivers 600mW power per element and exhibits minimal resistor-ratio drift (±0.5ppm/°C). Its radial bulk package (8.90mm x 3.51mm x 10.50mm) is optimized for robust through-hole mounting.
Y0114V0071TT9L Features
- Precision Performance: ±0.01% tolerance and ratio matching for critical analog circuits.
- Ultra-Low TCR: ±2ppm/°C ensures minimal resistance shift across temperatures.
- Stable Ratio Drift: ±0.5ppm/°C guarantees long-term divider accuracy.
- High Power Handling: 600mW per resistor for power-sensitive designs.
- Through-Hole Reliability: Radial 3-pin design (MSL: Not Applicable) for secure assembly.
- RoHS3 Compliance: Meets environmental standards without compromising performance.
Y0114V0071TT9L Applications
Ideal for precision voltage division in:
- Test & Measurement Equipment: High-accuracy signal conditioning.
- Medical Instrumentation: Stable reference circuits for diagnostics.
- Aerospace & Defense: Mission-critical systems requiring drift immunity.
- Industrial Automation: Feedback networks in high-stability controllers.
Outperforms standard resistor networks in TCR-matched divider applications, where ratio consistency and thermal stability are paramount.
Conclusion of Y0114V0071TT9L
The Y0114V0071TT9L sets a benchmark for precision resistor networks, combining sub-ppm drift, military-grade stability, and high power tolerance. Its VPG Foil technology ensures unmatched performance in voltage dividers, making it the preferred choice for engineers designing high-reliability analog systems. For applications demanding absolute accuracy over temperature and time, this model delivers superior value over conventional arrays.



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