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BD433M5WFPJ-CZE2

BD433M5WFPJ-CZE2

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Rohm Semiconductor

500MA 3.3V, FIXED OUTPUT, LOW IQ, HIGH-ACCURACY LDO REGULATOR FOR AUTOMOTIVE

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BD433M5WFPJ-CZE2

BD433M5WFPJ-CZE2

Active
Rohm Semiconductor

500MA 3.3V, FIXED OUTPUT, LOW IQ, HIGH-ACCURACY LDO REGULATOR FOR AUTOMOTIVE

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Description

General part information

BD433 Series

The BD433U2EFJ-C is low quiescent regulator featuring 45V absolute maximum voltage,and output voltage accuracy of ±2%(3.3V: Typ.), 200 mA output current and 40μA(Typ.) current consumption. This regulator is therefore ideal for applications requiring a direct connection to the battery and a low current consumption. A logical "HIGH" at the CTL pin enables the device and "LOW" at the CTL pin not enables the device.(Only W: Includes switch) Ceramic capacitors can be used for compensation of the output capacitor phase. Furthermore, This IC also features overcurrent protection to protect the device from damage caused by short-circuiting and an integrated thermal shutdown to protect the device from overheating at overload conditions.This IC uses different production line against series model BD433M2EFJ-C for the purpose of improving production efficiency. We recommend using this IC for your new development. Electric characteristics noted in Datasheet does not differ between Production Line.

Technical Specifications

Parameters and characteristics for this part

SpecificationBD433M5WFPJ-CZE2
Control FeaturesEnable
Current - Output500 mA
Current - Quiescent (Iq)95 µA
Current - Supply (Max)175 µA
GradeAutomotive
Mounting TypeSurface Mount
Number of Regulators1
Operating Temperature (Max)150 °C
Operating Temperature (Min)-40 °C
Output ConfigurationPositive
Output TypeFixed
Package / CaseDPAK (4 Leads + Tab), TO-252-5, TO-252AD
Package Leads4 Leads
Package NameTO-252-J5, DPak, TO-252-J5F
Protection FeaturesOver Current, Over Temperature
PSRR60 dB
QualificationAEC-Q100
Voltage - Input (Max)42 V
Voltage - Output (Min/Fixed)3.3 V
Voltage Dropout (Max)0.75 V

Pricing

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CAD

3D models and CAD resources for this part

Documents

Technical documentation and resources

Datasheet
AEC-Q101 Automotive Requirements
Impedance Characteristics of Bypass Capacitor
Heat Dissipation Effect of Thermal Via in Exposed Pad Type Package
Connecting LDOs in Parallel
Problem Situations: Power Supply Does Not Start
Overview of ROHM's Simulation Models(for ICs and Discrete Semiconductors)
Basics of Thermal Resistance and Heat Dissipation
Factory Information
Solder Joint Rate and Thermal Resistance of Exposed Pad
UL94 Flame Classifications of Mold Compound
Reverse Voltage Protection
Measurement Method for Phase Margin with Frequency Response Analyzer (FRA)
TO252-J5 Package Information
EMC Measures for LDOs
Anti-Whisker formation
Precautions When Measuring the Rear of the Package with a Thermocouple
Thermal Resistance
What Is Thermal Design
Calculating Junction Temperature from Inrush Current
Judgment Criteria of Thermal Evaluation
How to Use the Thermal Resistance and Thermal Characteristics Parameters
Power Supply Sequence Circuit with General Purpose Power Supply IC
θ<sub>JA</sub> and Ψ<sub>JT</sub>
Usage of SPICE Macromodel (for LDO)
Compliance with the ELV directive
How to Use the Two-Resistor Model
Thermal Calculation for Linear Regulator
How to Select Reverse Current Protection Diodes for LDO Regulators
Simple Test Method for Estimating the Stability of Linear Regulators
Five Steps for Successful Thermal Design of IC
Design Guide and Example of Stencil for Exposed Pad
Six Steps for Successful Thermal Design of LDO Regulator ICs
Table of resistance for output voltage setting on linear regulator Ics
Method for Calculating Junction Temperature from Transient Thermal Resistance Data
Basics of Linear Regulators
Power Source ON/OFF Characteristics for Linear Regulator
Suppression Method of Switching Noise Using Linear Regulator and Low Pass Filter
θ<sub>JC</sub> and Ψ<sub>JT</sub>
PCB Layout Thermal Design Guide