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LMK327BJ107MM-T

Part No LMK327BJ107MM-T
Manufacturer Taiyo Yuden
Catalog Hard To Find
Sample
Rohs State rohs
ECAD Module
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Reference Date Code 1109+
Reference case SMD
Manufacturer Taiyo Yuden
Manufacturer Homepage www.t-yuden.com
Win Source Part Number 714892-LMK327BJ107MM-T
Popularity Low
Supply and Demand Status Limited
Ultra Librarian 3D Model Ultra Librarian LMK327BJ107MM-T CAD Model

Description

The LMK327BJ107MM-T is a multilayer ceramic capacitor (MLCC) manufactured by Taiyo Yuden. It's a high-capacitance, small-size component designed for various electronic applications, particularly in power supplies and decoupling circuits. This capacitor is known for its reliability, high performance, and suitability for automated assembly processes.

Applications

  • Power supply decoupling
  • Smoothing circuits
  • Bypass capacitors in digital circuits
  • Noise filtering in analog circuits
  • Mobile devices (smartphones, tablets)
  • Consumer electronics

Features

  • High capacitance value (100µF)
  • Small size (1210 package)
  • Multilayer ceramic construction
  • Excellent temperature characteristics
  • RoHS compliant
  • Lead-free termination

Benefits

  • Effective decoupling and noise reduction
  • Space-saving design for compact devices
  • Stable performance over a wide temperature range
  • Reliable operation in demanding environments
  • Environmentally friendly construction
  • Easy integration into automated assembly lines

Additional Details

The LMK327BJ107MM-T has a rated voltage of 6.3V. Its operating temperature ranges from -55°C to +125°C. The dielectric material is B, indicating stable temperature characteristics. This capacitor is typically used in applications where a large capacitance is needed in a small space, such as power supply decoupling in portable devices and noise filtering in sensitive circuits. The 1210 package size makes it compatible with standard surface-mount technology (SMT) assembly techniques. The capacitor's low ESR (Equivalent Series Resistance) contributes to its high efficiency and low power dissipation.

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