PCB SHUNT DIODE

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Manufactured by: Varian

Category: OR Equipment

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PCB Shunt Diode
  • Reliable Electrical Protection for Medical Equipment

Introducing our high-quality PCB Shunt Diode, specifically designed to provide optimal protection for medical devices. This essential component is engineered to ensure the reliable performance of your electrical systems, minimizing the risk of damage due to voltage spikes and surges.
Key Features:
  • Durable Design: Crafted from premium materials, the PCB Shunt Diode offers exceptional durability and longevity, making it an ideal choice for critical medical applications.
  • High Efficiency: With excellent current handling capabilities, this diode guarantees efficient energy management, which is vital for the precision needed in medical equipment.
  • Compact Size: Its compact form factor allows easy integration into a variety of medical devices, ensuring seamless performance without compromising space.
  • Versatile Application: Suitable for a range of applications, the PCB Shunt Diode is perfect for use in diagnostic equipment, monitoring systems, and other vital medical technologies.

Invest in the reliability of your medical devices with our PCB Shunt Diode, designed to maintain the safety and efficiency of your healthcare solutions. Perfect for engineers and medical professionals seeking dependable components in their equipment.
PCB Shunt Diode Specifications

  • Type: Shunt Diode
  • Mounting Type: Surface Mount (SMD)
  • Package Size: 0805 (2.0mm x 1.25mm) or similar
  • Forward Current (I_F): 40 mA (0.04 A)
  • Reverse Voltage (V_R): 30 V (30V)
  • Forward Voltage Drop (V_F): 0.7 V at I_F = 10 mA (0.7V)
  • Reverse Leakage Current (I_R): 1 µA at V_R = 30V (1µA)
  • Temperature Coefficient: Approximately -2.2 mV/°C
  • Operating Temperature Range: -55°C to +150°C (-67°F to +302°F)
  • Power Dissipation (P_D): 200 mW (0.2 W)
  • Capacitance (C): 10 pF (20 V)
  • Junction Temperature (T_J): 150°C (302°F)

Note: Confirm specifications with the manufacturer's datasheet, as variations may occur based on specific models.

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