STMicroelectronics Demonstration Board Power Management for STDRIVE601 for STDRIVE601 Triple Gate Driver
- RS Stock No.:
- 196-1719
- Mfr. Part No.:
- EVALSTDRIVE601
- Manufacturer:
- STMicroelectronics
Subtotal (1 unit)*
MYR362.11
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- 1 left, ready to ship from another location
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Units | Per Unit |
|---|---|
| 1 + | MYR362.11 |
*price indicative
- RS Stock No.:
- 196-1719
- Mfr. Part No.:
- EVALSTDRIVE601
- Manufacturer:
- STMicroelectronics
Specifications
Technical data sheets
Legislation and Compliance
Product Details
Find similar products by selecting one or more attributes.
Select all | Attribute | Value |
|---|---|---|
| Brand | STMicroelectronics | |
| Power Management Function | Power Management | |
| Product Type | Power Management Development Kit | |
| For Use With | STDRIVE601 Triple Gate Driver | |
| Kit Classification | Evaluation Board | |
| Featured Device | STDRIVE601 | |
| Kit Name | Demonstration Board | |
| Standards/Approvals | RoHS | |
| Select all | ||
|---|---|---|
Brand STMicroelectronics | ||
Power Management Function Power Management | ||
Product Type Power Management Development Kit | ||
For Use With STDRIVE601 Triple Gate Driver | ||
Kit Classification Evaluation Board | ||
Featured Device STDRIVE601 | ||
Kit Name Demonstration Board | ||
Standards/Approvals RoHS | ||
- COO (Country of Origin):
- IT
The EVALSTDRIVE601 demonstration board is a complete 3-phase inverter which allows evaluating all of the STDRIVE601 features. The power stage features STGD6M65DF2 IGBTs, but can be populated with any IGBT or power MOSFET in DPAK or powerFLAT 8x8 HV package. The board is designed to support a three shunt or a single shunt current sensing topology. A strip connector allows an easy interfacing with MCU control.
The STDRIVE601 is a 600V gate driver device manufactured with BCD6s offline technology. It is a single-chip with three half-bridge gate drivers for N-channel power MOSFETs or IGBTs suitable for 3-phase applications.The device integrates three bootstrap diodes and a smart shutdown feature able to detect very fast overcurrent condition, minimizing the propagation delay between the overcurrent event and the output switch-off.
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