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FGH30S130P
+NomenclatureIGBT 1300V 60A 500W TO-247AB
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FabricantSemi - conducteurs
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Pièce fabricant #FGH30S130P
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Package TO-3PN
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En stock2946
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Spécifications
| Attribut | Valeur |
| Package | Tube |
| ProductStatus | Active |
| IGBTType | Trench Field Stop |
| Voltage-CollectorEmitterBreakdown(Max) | 1300 V |
| Current-Collector(Ic)(Max) | 60 A |
| Current-CollectorPulsed(Icm) | 90 A |
| Vce(on)(Max)@VgeIc | 2.3V @ 15V, 30A |
| Power-Max | 500 W |
| InputType | Standard |
| GateCharge | 78 nC |
| OperatingTemperature | -55°C ~ 175°C (TJ) |
| MountingType | Through Hole |
| Package/Case | TO-247-3 |
Présentation
Description
The IGBT features low on-state voltage drop and provides a good balance between conduction and switching losses, which enhances system performance. It is often incorporated into circuits for industrial motor drives, power inverters, and uninterruptible power supplies (UPS).
FGH30S130P includes a robust design for better thermal performance and reliability, contributing to its longevity and stable operation under high-stress conditions. It is typically encased in a TO-247 package, which aids in efficient heat dissipation. This component is favored in scenarios requiring efficient energy management and solid-state power conversion.
Overall, the FGH30S130P is an effective choice for applications that demand high voltage handling, fast switching speeds, and improved thermal management.
Equivalent
1. IXGH30N120A3 - from IXYS, suitable for similar applications.
2. STGW30NC120HD - from STMicroelectronics, offering comparable specifications.
3. GT30J122 - from Toshiba, another potential equivalent.
Check the datasheets for each to ensure compatibility in terms of voltage, current ratings, and switching speeds. Always verify with the manufacturer for the most accurate equivalency.
Features
1. Voltage and Current Ratings: It typically comes with a high voltage rating around 1300V and a maximum continuous collector current of 60A, making it suitable for high-power applications.
2. Switching Speed: The transistor is designed for fast switching capabilities, which enhances its efficiency in circuits where rapid on-off cycles are required.
3. Low Saturation Voltage: This feature reduces the power losses during conduction, improving the overall efficiency of the device.
4. Robust Design: The device is built to handle high power levels and withstand significant stress, contributing to its reliability.
5. Thermal Management: It includes features for effective heat dissipation, which is crucial for maintaining performance and longevity under high-power conditions.
6. Applications: Commonly used in motor drives, inverters, power supplies, and other industrial applications that require efficient power management.
These features make the FGH30S130P a versatile and robust choice for a wide range of power electronics applications.
Pinout
1. Collector (C): This pin is where the high-voltage input is connected.
2. Gate (G): This pin is used to control the operation of the transistor. Applying voltage to the gate allows current to flow from the collector to the emitter.
3. Emitter (E): This is the output pin, through which the current exits the transistor.
The FGH30S130P is known for its high voltage capability, typically around 1300 volts, and is used in applications such as induction heating, motor drives, and power inverters. Always refer to the specific datasheet from the manufacturer for detailed pin configuration and function, as these can slightly vary.
Manufacturer
Application
1. Motor Drives: Used in industrial motor control systems for enhanced efficiency and performance.
2. Power Supplies: Suitable for use in switch-mode power supplies (SMPS) due to its fast switching properties.
3. Inverters: Integral in solar inverters and uninterruptible power supplies (UPS) for energy conversion processes.
4. Welding Equipment: Utilized for high-power control in welding machines.
5. HVAC Systems: Applied in heating, ventilation, and air conditioning systems for efficient energy management.
These applications leverage the FGH30S130P's low conduction losses and fast switching speed.