STTH3006W Overview
The STTH3006W is a high-performance ultrafast diode designed for efficient rectification in power electronics applications. Featuring a voltage rating of 600V and a maximum average forward current of 30A, it delivers reliable switching with low forward voltage drop and rapid recovery times. This component is engineered to optimize power conversion efficiency, reduce thermal losses, and enhance system reliability. Its robust design suits demanding industrial environments including power supplies, motor drives, and inverters. The STTH3006W is a preferred choice for engineers seeking a balance of speed, current capacity, and ruggedness. For more detailed technical information, visit IC Manufacturer.
STTH3006W Technical Specifications
| Parameter | Value | Unit |
|---|---|---|
| Repetitive Peak Reverse Voltage (VRRM) | 600 | V |
| Average Forward Current (IF(AV)) | 30 | A |
| Surge Forward Current (IFSM) | 250 | A |
| Forward Voltage Drop (VF) at 30A | 1.8 | V |
| Reverse Recovery Time (trr) | 50 | ns |
| Junction Temperature (Tj) | -65 to +175 | ??C |
| Power Dissipation (Ptot) | 75 | W |
| Package Type | TO-220AC | ?C |
STTH3006W Key Features
- Ultrafast Recovery: Enables efficient switching in high-frequency power circuits, reducing switching losses and improving overall system efficiency.
- High Current Capability: Supports continuous forward currents up to 30A, suitable for demanding industrial power applications.
- Robust Voltage Rating: 600V repetitive peak reverse voltage ensures safe operation in medium-voltage power converters and rectifiers.
- Low Forward Voltage Drop: Minimizes conduction losses, enhancing thermal performance and reducing cooling requirements.
Typical Applications
- High-frequency rectification in switch-mode power supplies (SMPS), where fast switching and low losses are critical for efficiency and compact design.
- Inverters for renewable energy systems such as solar or wind power, requiring reliable ultrafast diodes to handle rapid switching cycles.
- Motor control drives in industrial automation, benefiting from high current capability and fast recovery characteristics to improve performance.
- Uninterruptible Power Supplies (UPS) that demand robust components to ensure continuous operation during power fluctuations.
STTH3006W Advantages vs Typical Alternatives
This ultrafast diode offers significant advantages over standard rectifiers by combining high current handling with rapid recovery time, resulting in lower switching losses and improved efficiency. Its robust 600V rating and low forward voltage drop contribute to enhanced reliability and thermal management. Compared to slower diodes, it reduces electromagnetic interference and heat generation, making it an ideal choice for modern power electronics requiring high-speed and high-power operation.
🔥 Best-Selling Products
STTH3006W Brand Info
The STTH3006W is manufactured by STMicroelectronics, a global leader in semiconductor solutions for industrial, automotive, and consumer electronics. Known for their innovation and quality, STMicroelectronics products are widely trusted in power management and discrete semiconductor categories. This diode is part of their ultrafast diode portfolio, designed to meet stringent performance and reliability standards demanded by industrial power systems and energy-efficient devices.
FAQ
What is the maximum forward current rating of this diode?
The diode supports a maximum average forward current of 30 amperes, making it suitable for high-power applications requiring sustained current flow without compromising reliability.
🌟 Featured Products
-

“Buy MAX9312ECJ+ Precision Voltage Comparator in DIP Package for Reliable Performance”
-

QCC-711-1-MQFN48C-TR-03-1 Bluetooth Audio SoC with MQFN48C Package
-

0339-671-TLM-E Model – High-Performance TLM-E Package for Enhanced Functionality
-

1-1415898-4 Connector Housing, Electrical Wire-to-Board, Receptacle, Packaged
How does the ultrafast recovery time benefit power electronics designs?
The ultrafast recovery time of approximately 50 nanoseconds reduces switching losses and electromagnetic interference, which improves overall circuit efficiency and allows






