
VPG Foil
Y1735V0008VV9L
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Y1735V0008VV9L Description
Y1735V0008VV9L Description
The Y1735V0008VV9L is a high-precision 4-resistor network from VPG Foil Resistors, designed for voltage divider applications requiring ultra-tight TCR matching. Part of the 300145Z series, it features a 10kΩ resistance per element with an exceptional ±0.005% tolerance and ±0.2ppm/°C temperature coefficient, ensuring minimal drift and unmatched stability. The device is housed in a through-hole package with dimensions of 9.53mm x 5.08mm (0.375" x 0.200") and a seated height of 9.78mm (0.385"), making it suitable for space-constrained yet performance-critical designs.
Y1735V0008VV9L Features
- Precision Performance: ±0.005% resistor matching ratio and ±0.1ppm/°C resistor-ratio drift for ultra-stable voltage division.
- Low TCR: ±0.2ppm/°C temperature coefficient ensures minimal resistance variation across operating temperatures.
- Robust Construction: Through-hole mounting with 6 pins, rated for 50mW power per element.
- Reliability: MSL Not Applicable, making it immune to moisture sensitivity issues during storage and assembly.
- Industry Compliance: EAR99 ECCN and HTSUS 8533.21.0060 classification for global compatibility.
Y1735V0008VV9L Applications
This resistor network is ideal for:
- Precision voltage dividers in metrology equipment, calibration instruments, and high-end test systems.
- TCR-matched circuits in medical devices, aerospace avionics, and defense systems where long-term stability is critical.
- Reference voltage networks in data acquisition systems (DAQ) and analog-to-digital converters (ADCs) requiring ultra-low drift.
Conclusion of Y1735V0008VV9L
The Y1735V0008VV9L stands out in the Resistor Networks & Arrays category for its unparalleled precision, stability, and reliability. Its TCR-matched design and sub-ppm drift performance make it a top choice for engineers designing mission-critical analog systems. Whether in laboratory-grade instrumentation or high-reliability industrial applications, this component delivers consistent accuracy under demanding conditions.



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