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ACASA1002E2002P1AT
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ACASA1002E2002P1AT Description
ACASA1002E2002P1AT Description
The ACASA1002E2002P1AT from Vishay BC Components is a high-precision 4-resistor network designed for demanding surface-mount applications. Housed in a compact 1206 (3216 Metric) convex package with long-side terminals, it offers 10kΩ and 20kΩ resistance values with an ultra-tight tolerance of ±0.25% and a ±0.05% resistor matching ratio. This isolated resistor array operates at 125mW per element and features a low ±25ppm/°C temperature coefficient, ensuring stability across varying environmental conditions. Compliant with ROHS3 and rated MSL 1 (Unlimited), it is suitable for automated assembly processes.
ACASA1002E2002P1AT Features
- Precision Performance: Exceptionally low tolerance (±0.25%) and ratio drift (±7.5ppm/°C) for critical analog circuits.
- Robust Construction: Convex 1206 package (3.20mm x 1.50mm) with long-side terminals enhances solder joint reliability.
- Thermal Stability: ±25ppm/°C temperature coefficient minimizes resistance variation under thermal stress.
- High Power Handling: 125mW per element supports energy-efficient designs.
- Industry Compliance: EAR99 and HTSUS 8533.21.0020 certified, ideal for global supply chains.
ACASA1002E2002P1AT Applications
This resistor network excels in precision applications such as:
- Medical Electronics: Patient monitoring systems requiring stable signal conditioning.
- Industrial Automation: High-accuracy sensor interfaces and bridge circuits.
- Test & Measurement Equipment: Calibration references and differential amplifiers.
- Automotive Systems: Engine control units (ECUs) where thermal drift must be minimized.
Conclusion of ACASA1002E2002P1AT
The ACASA1002E2002P1AT stands out for its combination of precision, compactness, and reliability, making it a superior choice for engineers designing high-performance electronic systems. Its low drift, tight matching, and robust packaging address challenges in medical, industrial, and automotive applications, ensuring consistent performance in critical circuits.



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