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PDF BD9132MUV Data sheet ( Hoja de datos )

Número de pieza BD9132MUV
Descripción 3.0A 1ch Synchronous Buck Converter
Fabricantes ROHM Semiconductor 
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No Preview Available ! BD9132MUV Hoja de datos, Descripción, Manual

Datasheet
2.7V to 5.5V, 3.0A 1ch
Synchronous Buck Converter with
Integrated FET
BD9132MUV
General Description
BD9132MUV is ROHM’s high efficiency step-down
switching regulator designed to produce a voltage as
low as 0.8V from a supply voltage of 5.5V/3.3V. It
offers high efficiency by using pulse skip control
technology and synchronous switches, and provides
fast transient response to sudden load changes by
implementing current mode control.
Features
Fast Transient Response because of Current Mode
PWM Control System
High Efficiency for All Load Ranges because of
Synchronous Switches (Nch/Nch FET) and SLLMTM
(Simple Light Load Mode)
Soft-Start Function
Thermal Shutdown and UVLO Functions
Short-Circuit Protection with Time Delay Function
Shutdown Function
Key Specifications
Input Voltage Range:
Output Voltage Range:
Output Current:
Switching Frequency:
High Side FET ON-Resistance:
Low Side FET ON-Resistance:
Standby Current:
Operating Temperature Range:
2.7V to 5.5V
0.8V to 3.3V
3.0A (Max)
1MHz(Typ)
82mΩ(Typ)
70mΩ(Typ)
0μA (Typ)
-40°C to +105°C
Package
W(Typ) x D(Typ) x H(Max)
Applications
Power Supply for LSI including DSP, Microcomputer
and ASIC
VQFN020V4040
4.00mm x 4.00mm x 1.00mm
Typical Application Circuit
Rf C1
VCC
CIN
EN
PVCC
VCC
ADJ
CBST
L
ITH GND, PGND SW
RITH
CO
VOUT
CITH
R2
R1
Figure 1. Typical Application Circuit
Product structureSilicon monolithic integrated circuit
.www.rohm.com
© 2012 ROHM Co., Ltd. All rights reserved.
TSZ2211114001
This product has no designed protection against radioactive rays
1/22
TSZ02201-0J3J0AJ00140-1-2
03.Oct.2014 Rev.002

1 page




BD9132MUV pdf
BD9132MUV
Typical Performance Curves - continued
VOUT=1.8
VOUT=1.5
VOUT=1.2
VOUT=1.0
VCC=5V
Ta=25°C
Output Current: IOUT[mA]
Figure 8. Efficiency vs Output Current
VCC=5V
Temperature: Ta[°C]
Figure 9. Frequency vs Temperature
VCC=3.3V
Temperature: Ta[°C]
Figure 10. On-Resistance vs Temperature
VCC=5V
Temperature: Ta[°C]
Figure 11. En Voltage vs Temperature
www.rohm.com
© 2012 ROHM Co., Ltd. All rights reserved.
TSZ2211115001
5/22
TSZ02201-0J3J0AJ00140-1-2
03.Oct.2014 Rev.002

5 Page





BD9132MUV arduino
BD9132MUV
4. Switching Regulator Efficiency
Efficiency ŋ may be expressed by the equation shown below:
VOUT IOUT 100 POUT 100 POUT 100
VIN lIN
PIN POUT Pd
%
Efficiency may be improved by reducing the switching regulator power dissipation factors Pdα as follows:
Dissipation factors:
(1) ON-Resistance Dissipation of Inductor and FETPd(I2R)
 Pd I 2R IOUT 2 RCOIL RON
where:
RCOIL is the DC resistance of inductor.
RON is the ON-Resistance of FET.
IOUT is the output current.
(2) Gate Charge/Discharge DissipationPd(Gate)
PdGateCgs f V 2
where:
Cgs is the gate capacitance of FET.
f is the switching frequency.
V is the gate driving voltage of FET.
(3) Switching DissipationPd(SW)
PdSW VIN 2 CRSS IOUT f
I DRIVE
where:
CRSS is the reverse transfer capacitance of FET.
IDRIVE is the peak current of gate.
(4) ESR Dissipation of CapacitorPd(ESR)
PdESRI RMS 2 ESR
where:
IRMS is the ripple current of capacitor.
ESR is the equivalent series resistance.
(5) Operating Current Dissipation of ICPd(IC)
PdICVIN ICC
where:
ICC is the circuit current.
www.rohm.com
© 2012 ROHM Co., Ltd. All rights reserved.
TSZ2211115001
11/22
TSZ02201-0J3J0AJ00140-1-2
03.Oct.2014 Rev.002

11 Page







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