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IXYS MCC95-16IO1B
IXYS MCC95-16IO1B
IXYS MCC95-16IO1B
IXYS MCC95-16IO1B
IXYS MCC95-16IO1B
IXYS MCC95-16IO1B
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MCC95-16IO1B

Dual Thyristors Module
In Stock

Product Information:

Dual Thyristors

Thyristor Module

1600V, 116A

industrial automation system

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Technical specifications for MCC95-16IO1B

  • Manufacturer:
    IXYS
  • Product Category:
    General Automation
  • Estimated shipping dimensions:
    3.0 x 6.5 x 19 cm
  • Weight:
    0.09 kg
  • Tariff Code:
    8537101190
  • Country of origin:
    USA
  • Place of shipment:
    Xiamen, Fujian, China
  • max. non-repetitive reverse/forward blocking voltage:
    1700 V
  • max. repetitive reverse/forward blocking voltage:
    1600 V
  • RMS current:
    2000 A
  • virtual junction temperature:
    -40°C to +125°C
  • operation temperature:
    -40°C to +100°C
  • storage temperature:
    -40°C to +125°C
  • Stock:
    30

Ask our team:

  • What advanced semiconductor integration does the MCC95-16IO1B embody to optimize power conversion efficiency and thermal performance?
    The MCC95-16IO1B integrates high-performance IGBTs and fast-recovery diodes within a compact Intelligent Power Module (IPM) architecture, leveraging monolithic packaging to minimize parasitic inductances and maximize switching efficiency.
  • How does MCC95-16IO1B implement gate drive and protection circuitry to enhance device reliability under transient and overload conditions?
    The MCC95-16IO1B incorporates internal gate driver circuits with under-voltage lockout (UVLO), overcurrent protection (OCP), and fault-reporting functionalities, ensuring robust operational safeguarding against electrical anomalies.
  • Which thermal management strategies are inherent in MCC95-16IO1B to sustain performance under elevated junction temperatures?
    The MCC95-16IO1B employs a low thermal resistance package design complemented by optimized heat-sinking interfaces, facilitating effective dissipation of junction-generated heat during high-power switching events.
  • In what way does MCC95-16IO1B's switching topology and control interface support high-frequency PWM applications?
    Designed for seamless integration with industry-standard PWM controllers, the MCC95-16IO1B enables rapid switching transitions with minimal switching losses, making it suitable for sophisticated inverter and motor drive systems.
  • What are the electrical and mechanical interface characteristics of MCC95-16IO1B that facilitate its incorporation into modular power electronics assemblies?
    The MCC95-16IO1B features standardized pin configurations and a compact form factor, enabling plug-and-play compatibility with industry-standard mounting and wiring practices in power converter modules.
  • What parameters define the switching and conduction losses of MCC95-16IO1B, and how do they impact system-level efficiency?
    The MCC95-16IO1B exhibits optimized trade-offs between switching speed and conduction resistance, balancing power dissipation to achieve high overall inverter efficiency in medium-voltage applications.
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Moore Disclaimer: Moore Automated's sales automation equipment and related solutions are intended for industrial automation and business operational efficiency improvement purposes only. Product information, technical parameters, and application cases are for reference only and do not constitute an absolute guarantee of performance for any specific industry, scenario, or final application. Actual equipment performance may vary depending on factors such as the usage environment, system integration method, and maintenance conditions. Users should confirm compatibility and safety based on professional technical assessments. Moore Automated assumes no liability for any direct or indirect losses caused by improper use, modification, or failure to operate according to specifications, to the extent permitted by law.