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BD95861MUV-E2

BD95861MUV-E2

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Rohm Semiconductor

7.5V TO 18V, 1CH SYNCHRONOUS BUCK DC/DC CONVERTER WITH AN R6A INTEGRATED MOSFET

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BD95861MUV-E2

BD95861MUV-E2

Active
Rohm Semiconductor

7.5V TO 18V, 1CH SYNCHRONOUS BUCK DC/DC CONVERTER WITH AN R6A INTEGRATED MOSFET

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Description

General part information

BD95861 Series

BD95861MUV is a 1ch synchronous buck converter that can generate output voltage (0.8V to 5.5V) at the input voltage range (7.5V to 18V). Space-saving and high efficient switching regulator can be achieved due to built-in N-MOSFET power transistors. The IC also incorporates H3Reg™ technology, a ROHM proprietary constant ON TIME control mode which facilitates ultra-high transient response against changes in load without external compensation components. Fixed soft start function, power good function, and short circuit / over voltage protection with timer latch functions are incorporated. The BD95861MUV is designed for power supplies for Digital AV Equipment.

Technical Specifications

Parameters and characteristics for this part

SpecificationBD95861MUV-E2
Current - Output6 A
Frequency - Switching (Max)800 kHz
Frequency - Switching (Min)500 kHz
FunctionStep-Down
Mounting TypeSurface Mount
Number of Outputs1
Operating Temperature (Max)100 °C
Operating Temperature (Min)-20 °C
Output ConfigurationPositive
Output TypeAdjustable
Package / Case24-VFQFN Exposed Pad
Package NameVQFN020V4040
Synchronous RectifierYes
TopologyBuck
Voltage - Input (Max)18 V
Voltage - Input (Min)7.5 V
Voltage - Output (Max)5.5 V
Voltage - Output (Min/Fixed)0.8 V

Pricing

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CAD

3D models and CAD resources for this part

Documents

Technical documentation and resources

Datasheet
BD95861MUV-E2 Flammability
Technical Data Sheet EN
Factory Information
Overview of ROHM's Simulation Models(for ICs and Discrete Semiconductors)
Thermal Resistance
BD95861MUV Reference Circuits and Bomlist
Basics of Thermal Resistance and Heat Dissipation
Calculation of Power Loss (Synchronous)
Solder Joint Rate and Thermal Resistance of Exposed Pad
Snubber Circuit for Buck Converter IC
PCB Layout Essential Check sheet for Switching Regulator
Impedance Characteristics of Bypass Capacitor
Compliance with the ELV directive
θ<sub>JC</sub> and Ψ<sub>JT</sub>
Diode Selection Method for Asynchronous Converter
How to Use the Two-Resistor Model
Judgment Criteria of Thermal Evaluation
Capacitor Calculation for Buck converter IC
Considerations for Power Inductors Used for Buck Converters
Efficiency of Buck Converter
Heat Dissipation Effect of Thermal Via in Exposed Pad Type Package
Considering Polarity of Power Inductor to Reduce Radiated Emission of DC-DC converter
Power Supply Sequence Circuit with General Purpose Power Supply IC
Method for Calculating Junction Temperature from Transient Thermal Resistance Data
How to Use the Thermal Resistance and Thermal Characteristics Parameters
Bootstrap Circuit in the Buck Converter
θ<sub>JA</sub> and Ψ<sub>JT</sub>
What Is Thermal Design
VQFN024V4040 Package Information
Anti-Whisker formation
Cutting-Edge Web Simulation Tool "ROHM Solution Simulator" Capable of Complete Circuit Verification of Power Devices and Driver ICs
Two-Resistor Model for Thermal Simulation
The Important Points of Multi-layer Ceramic Capacitor Used in Buck Converter circuit
PCB Layout Techniques of Buck Converter
Precautions for PCB Layout Regarding Common Mode Filters
Buck DC/DC Converter Recommended Inductor List
Resistor Value Table to set Output Voltage of Buck Converter IC
Design Guide and Example of Stencil for Exposed Pad
Inductor Calculation for Buck converter IC
Measurement Method for Phase Margin with Frequency Response Analyzer (FRA)
Suppression Method of Switching Noise Using Linear Regulator and Low Pass Filter
Five Steps for Successful Thermal Design of IC
Types of Capacitors Used for Output Smoothing of Switching Regulators and their Precautions
Precautions When Measuring the Rear of the Package with a Thermocouple
Calculation of Power Dissipation in Switching Circuit
Evaluation Board User's Guide
Method for Determining Constants of Peripheral Parts of Buck DC/DC Converter
PCB Layout Thermal Design Guide
Three Steps for Successful Design of DC-DC Converters
Phase Compensation Design for Current Mode Buck Converter
Step-down DC-DC converter PCB layout EMC Design guide
Considering Input Filter to Reduce Conducted Emissions by DCDC Converter