STEVAL-VP22201B

STMicroelectronics
511-STEVAL-VP22201B
STEVAL-VP22201B

Mfr.:

Description:
Power Management IC Development Tools 5 V - 360 mA buck converter based on VIPer222XSTR

In Stock: 13

Stock:
13 Can Ship Immediately
Factory Lead-Time:
3 Weeks Estimated factory production time for quantities greater than shown.
Quantities greater than 13 will be subject to minimum order requirements.
Minimum: 1   Multiples: 1
Unit Price:
$-.--
Ext. Price:
$-.--
Est. Tariff:

Pricing (CAD)

Qty. Unit Price
Ext. Price
$44.41 $44.41

Product Attribute Attribute Value Select Attribute
STMicroelectronics
Product Category: Power Management IC Development Tools
RoHS:  
Evaluation Boards
AC/DC Offline Primary/Secondary Side Controller
85 VAC to 265 VAC
5 V
VIPer222XSTR
Brand: STMicroelectronics
For Use With: VIPER222XS Non-Isolated Buck Converter
Maximum Operating Temperature: + 150 C
Minimum Operating Temperature: - 40 C
Output Current: 360 mA
Packaging: Bulk
Product Type: Power Management IC Development Tools
Subcategory: Development Tools
Unit Weight: 14.400 g
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Attributes selected: 0

Datasheet

Application Notes

Technical Resources

CAHTS:
9023000000
USHTS:
9023000000
JPHTS:
902300000
TARIC:
8473302000
MXHTS:
9023000100
BRHTS:
90230000
ECCN:
EAR99

STEVAL-VP22201B Evaluation Board

STMicroelectronics STEVAL-VP22201B Evaluation Board implements a 5V-1.8W, isolated flyback converter designed for general-purpose applications operating from 85VAC to 265VAC. The reference design is constructed around the VIPer222XSTR offline high-voltage converter. The VIPer222XSTR from the VIPerPlus family offers 730V power MOSFET and pulse width modulation (PWM) current-mode control. The VIPer222XSTR operates at a 30kHz fixed frequency with frequency jittering for compliance with standards regarding electromagnetic disturbances. STMicroelectronics STEVAL-VP22201B Evaluation Board features a small size, minimal BOM, low standby consumption, and tight line and load regulation over the entire input and output range. The burst mode operation reduces the average switching frequency and minimizes frequency-related losses, resulting in extremely low consumption under a no-load condition.