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TPS54020RUWR
Integrated Circuits (ICs)

TPS54020RUWR

Active
Texas Instruments

4.5-V TO 17-V, 10-A SYNCHRONOUS SWIFT™ BUCK CONVERTER WITH OUT-OF-PHASE SYNCHRONIZATION

TPS54020RUWR
Integrated Circuits (ICs)

TPS54020RUWR

Active
Texas Instruments

4.5-V TO 17-V, 10-A SYNCHRONOUS SWIFT™ BUCK CONVERTER WITH OUT-OF-PHASE SYNCHRONIZATION

Technical Specifications

Parameters and characteristics for this part

SpecificationTPS54020RUWR
Current - Output10 A
Frequency - Switching [Max]1.2 MHz
Frequency - Switching [Min]200 kHz
FunctionStep-Down
Mounting TypeSurface Mount
Number of Outputs1
Operating Temperature [Max]150 °C
Operating Temperature [Min]-40 °C
Output ConfigurationPositive
Output TypeAdjustable
Package / Case15-PowerVFQFN
Supplier Device Package15-VQFN-HR (3.5x3.5)
Synchronous RectifierTrue
TopologyBuck
Voltage - Input (Max) [Max]17 V
Voltage - Input (Min) [Min]4.5 V
Voltage - Output (Max)5 V
Voltage - Output (Min/Fixed)0.6 V

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
DigikeyCut Tape (CT) 1$ 7.34
10$ 6.63
25$ 6.32
100$ 5.49
250$ 5.24
500$ 4.78
1000$ 4.16
Digi-Reel® 1$ 7.34
10$ 6.63
25$ 6.32
100$ 5.49
250$ 5.24
500$ 4.78
1000$ 4.16
Tape & Reel (TR) 3000$ 4.01
LCSCPiece 1$ 5.48
10$ 4.69
30$ 4.23
100$ 3.75
500$ 3.53
1000$ 3.43
Texas InstrumentsLARGE T&R 1$ 5.62
100$ 4.58
250$ 3.60
1000$ 3.05

Description

General part information

TPS54020 Series

The TPS54020 is a 10-A, 4.5-V to 17-V input SWIFT converter. The innovative 3.5-mm × 3.5-mm HotRod package optimizes high-density step-down designs. The TPS54020 is a full-featured converter.

High efficiency is achieved through the innovative integration and packaging of the high-side and low-side MOSFETs. The TPS54020 operates at continuous current mode (CCM) at higher load conditions, and transitions to Eco-mode while skipping pulses to boost the efficiency at light loads.

Current limiting on both MOSFETs provides device and system protection. Cycle-by-cycle current limiting in the high-side MOSFET protects for overload situations. Low-side MOSFET zero current detection turns off the low-side MOSFET while operating under light loads. Three selectable current-limit thresholds allow a good fit for various applications. A hiccup or cycle-by-cycle overcurrent protection scheme is also selectable.