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PDF BL8076 Data sheet ( Hoja de datos )

Número de pieza BL8076
Descripción 2A 3MHz 6V Synchronous Buck Converter
Fabricantes SHANGHAI BELLING 
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BL8076
2A 3MHz 6V Synchronous Buck Converter
DESCRIPTION
The BL8076 is a high efficiency synchronous, buck
DC/DC converter. Its input voltage range is from
2.6V to 6V and provides an adjustable regulated
output voltage from 0.6V to Vin while delivering
up to 2A of output current.
The internal synchronous switches increase
efficiency and eliminate the need for an external
Schottky diode. It runs at a fixed 3MHz frequency,
which allows the use of small inductor with
L<1uH while maintaining a high efficiency and
small output voltage ripple.
When Mode pin is connected to Gnd, the BL8076
is operating in PFM/PWM auto-switch mode
which enhance the efficiency at light-load.
The BL8076 is available in DFN2x2-8L and SOT23-5
packages.
FEATURES
Adjustable Output Voltage, Vfb=0.6V
Maximum output current is 2A
Range of operation input voltage: Max 6V
Standby current: 30uA (typ.)
Line regulation: 0.1%/V (typ.)
Load regulation: 10mV (typ.)
High efficiency, up to 96%
Environment Temperature: -40C~85
APPLICATIONS
Power Management for 3G modem
Smart Phone
Tablet PC
Set Top Box
Other Battery Powered Device
TYPICAL APPLICATION
PIN OUT & MARKING
VIN
2.6V ~ 5.5V
78
AVIN PVIN
5 EN
2
10μF SW
BLL8C0271626
6 MODE
FB 4
AGND PGND
13
1μH
120k
60k
VOUT
1.8V/2A
22pF
10uF
ORDERING INFORMATION
PART No.
BL8076CKBTR
BL8076CB5TR
PACKAGE
DFN2x2-8L
SOT23-5
NoteGK: Product Code
YW: Date code
Tape&Reel
3000pcs/Reel
3000pcs/Reel
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BL8076 pdf
Load Transient
Vin=3.6V, Vout=1.2V, Iout=0.2A/1A
SW
VOUT
I_inductor
BL8076
Load Transient
Vin=3.6V, Vout=1.8V, Iout=0.2A/1.5A
SW
VOUT
I_inductor
FUNCTIONAL DECRIPTIONS
The BL8076 high efficiency switching regulator is a small, simple, DC-to-DC step-down converter capable of delivering up
to 2A of output current. The device operates in pulse-width modulation (PWM) at 3MHz from a 2.6V to 5.5V input
voltage and provides an output voltage from 0.6V to VIN, making the BL8076 ideal for on-board post-regulation
applications. An internal synchronous rectifier improves efficiency and eliminates the typical Schottky free-wheeling
diode. Using the on resistance of the internal high-side MOSFET to sense switching currents eliminates current-sense
resistors, further improving efficiency and cost.
Loop Operation
BL8076 uses a PWM current-mode control scheme. An open-loop comparator compares the integrated voltage-feedback
signal against the sum of the amplified current-sense signal and the slope compensation ramp. At each rising edge of the
internal clock, the internal high-side MOSFET turns on until the PWM comparator terminates the on cycle. During this
on-time, current ramps up through the inductor, sourcing current to the output and storing energy in the inductor. The
current mode feedback system regulates the peak inductor current as a function of the output voltage error signal.
During the off cycle, the internal high-side P-channel MOSFET turns off, and the internal low-side N-channel MOSFET
turns on. The inductor releases the stored energy as its current ramps down while still providing current to the output.
Current Sense
An internal current-sense amplifier senses the current through the high-side MOSFET during on time and produces a
proportional current signal, which is used to sum with the slope compensation signal. The summed signal then is
compared with the error amplifier output by the PWM comparator to terminate the on cycle.
Current Limit
There is a cycle-by-cycle current limit on the high-side MOSFET. When the current flowing out of SW exceeds this limit,
the high-side MOSFET turns off and the synchronous rectifier turns on. BL8076 utilizes a frequency fold-back mode to
prevent overheating during short-circuit output conditions. The device enters frequency fold-back mode when the FB
voltage drops below 200mV, limiting the current to IPEAK and reducing power dissipation. Normal operation resumes
upon removal of the short-circuit condition.
Soft Start
BL8076 has a internal soft-start circuitry to reduce supply inrush current during startup conditions. When the device
exits under-voltage lockout (UVLO), shutdown mode, or restarts following a thermal-overload event, the l soft-start
circuitry slowly ramps up current available at SW.
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