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Y1691V0035VV9L
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Y1691V0035VV9L Description
Y1691V0035VV9L Description
The Y1691V0035VV9L from VPG Foil Resistors is a high-precision 2-resistor network designed for voltage divider applications with TCR-matched performance. This through-hole component features ultra-tight tolerances (±0.005%) and an exceptional temperature coefficient of ±0.2ppm/°C, ensuring stability in demanding environments. With resistance values of 13.6kΩ and 6.8kΩ, it delivers precise voltage division ratios (±0.005% matching) and minimal drift (±0.1ppm/°C). The 300144Z series device is housed in a compact 7.49mm x 2.54mm (LxW) radial package, offering 100mW power dissipation per element and ROHS3 compliance for eco-conscious designs.
Y1691V0035VV9L Features
- Ultra-High Precision: ±0.005% tolerance and ±0.2ppm/°C TCR for unmatched accuracy.
- Matched Resistor Pair: Optimized for voltage dividers with ±0.005% ratio matching.
- Low Drift: Resistor-ratio drift of ±0.1ppm/°C ensures long-term stability.
- Robust Construction: Through-hole mounting with a 0.330" (8.38mm) max height for secure PCB integration.
- Wide Compatibility: EAR99/ECCN and HTSUS 8533.21.0050 classified for global use.
- Reliable Performance: MSL Not Applicable and bulk packaging simplify handling and storage.
Y1691V0035VV9L Applications
Ideal for precision analog circuits, this resistor network excels in:
- Reference voltage dividers in test & measurement equipment.
- High-accuracy sensor signal conditioning (e.g., strain gauges, RTDs).
- Medical instrumentation requiring minimal thermal drift.
- Aerospace and defense systems where stability under thermal stress is critical.
- Calibration tools and metrology applications demanding sub-ppm-level performance.
Conclusion of Y1691V0035VV9L
The Y1691V0035VV9L sets a benchmark for precision resistor networks, combining VPG Foil’s foil resistor technology with industry-leading tolerances and thermal performance. Its TCR-matched design and low drift make it indispensable for applications where signal integrity and long-term reliability are paramount. For engineers seeking uncompromising accuracy in voltage division or ratio-based circuits, this model offers a superior alternative to conventional arrays.



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