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MCP19035-AAAAE/MF bảng dữ liệu(PDF) 14 Page - Microchip Technology

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MCP19035
DS22326B-page 14
 2012-2013 Microchip Technology Inc.
4.2
PWM Circuitry
The MCP19035 controller implements a fixed
frequency, voltage-mode control scheme. The internal
PWM generator is comprised of an oscillator, error
amplifier, high-speed comparator and a latch. The error
amplifier generates the control voltage by amplifying
the difference between voltage reference (600 mV,
internally generated) and the voltage of the FB pin
(feedback voltage). This control voltage is compared by
the high-speed comparator to an artificially generated
ramp signal; the result is a PWM signal. An SR latch
(Set-Reset flip-flop) is used to prevent the PWM
circuitry from turning on the external switch until the
beginning of the next clock cycle.
An external Compensation Network (Type-II or
Type-III) must be used to stabilize the control system.
4.3
Internal Reference Voltage VREF
An integrated, precision voltage reference is provided
by the MCP19035. An external resistor divider is used
to program the converter’s output voltage. The nominal
value of this internal reference voltage is 600 mV.
4.4
Internal Oscillator
The MCP19035 device provides two switching
frequency options: 300 kHz and 600 kHz.
4.5
Under Voltage Lockout Circuit
(UVLO)
An integrated Under Voltage Lockout Circuit (UVLO)
prevents the converter from starting until the input volt-
age is high enough for normal operation. The converter
will typically start at 4.2V and operate down to 3.6V.
Hysteresis is added to prevent starting and stopping
during startup, as a result of loading the input voltage
source.
4.6
Shutdown Input
The Shutdown input pin (SHDN) is used to enable and
disable the controller. When the SHDN pin is pulled
low, the MCP19035 is placed in Shutdown mode.
During Shutdown, most of the internal circuits
(including the LDO) are disabled, to minimize current
consumption.
A 100 kΩ pull-up resistor is recommended between the
SHDN pin and VIN pin. Note that the SHDN input is a
high-impedance pin. Noise generated by the circuits
located near this pin may inadvertently shut down the
controller. To improve the noise immunity of this input
pin, we recommend placing a small capacitor between
GND and SHDN, or decrease the value of the pull-up
resistor. The Shutdown input pin should not be left
floating.
4.7
Power Good Output (PWRGD)
This open drain output provides an indication that the
output voltage is 92% (typical) of its regulated value.
This output is also low for other existing conditions that
signal the possibility that the output of the power supply
is out of regulation. The conditions are:
• Feedback pin (FB) voltage differs more than ±8%
from its nominal value (600 mV)
• Soft-start period is active
• Undervoltage condition detected
• Overcurrent condition detected, on either the High
Side or Low Side
• Die temperature is above the thermal shutdown
threshold (+150°C)
The active high power good signal has a fixed time
delay of approximately 120 ms (tPG-TIMEOUT). There is
typically a 150 μs delay (tPG-DELAY) on the power good
signal high-to-low transition.
FIGURE 4-2:
Power Good Signal.
PGTH-LOW
tPG-TIMEOUT
PG
VFB
tPG-DELAY
PGTH-HI
PGV-LOW



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