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MP2918GL Datasheet(PDF) 18 Page - Monolithic Power Systems

Part # MP2918GL
Description  4V to 40V Input, Current Mode, Synchronous, Step-Down Controller
PDF  30 Pages
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Manufacturer  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP2918GL Datasheet(HTML) 18 Page - Monolithic Power Systems

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MP2918
—4V TO 40V SYNCHRONOUS STEP-DOWN CONTROLLER
MP2918 Rev. 1.02
www.MonolithicPower.com
18
5/31/2017
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2017 MPS. All Rights Reserved.
OPERATION
The MP2918 is a high-performance, step-down,
synchronous, DC/DC controller IC with a wide
input voltage range. It implements current-mode
control and programmable switching frequency
control architecture to regulate the output
voltage with external N-channel MOSFETs.
The MP2918 senses the voltage at FB. The
difference between the FB voltage (VFB) and an
internal 0.8V reference (VREF) is amplified to
generate an error voltage on COMP. This is
used as the threshold for the current-sense
comparator with a slope compensation ramp.
Under normal-load conditions, the controller
operates in full pulse-width modulation (PWM)
mode (see Figure 3). At the beginning of each
oscillator cycle, the top gate driver is enabled.
The top gate turns on for a period determined
by the duty cycle. When the top gate turns off,
the bottom gate turns on after a dead time and
remains on until the next clock cycle begins.
There is an optional power-save mode for light-
load or no-load condition.
Advanced Asynchronous Mode (AAM)
The MP2918 employs advanced asynchronous
mode (AAM) functionality to optimize efficiency
during light-load or no-load condition (see
Figure 3). AAM is enabled when CCM/AAM is
at a low level by connecting an appropriate
resistor to SGND to ensure that the AAM
voltage (VAAM) is no less than 480mV. See
Equation (1):
VAAM (mV) = IAAM (μA) x RAAM (kΩ)
(1)
Where IAAM is the CCM/AAM output current.
AAM is disabled when CCM/AAM is floating or
connected to VCC1. Calculate the CCM/AAM
output current (IAAM) with Equation (2):
IAAM (μA) = 600 (mV) / RFREQ (kΩ)
(2)
If AAM is enabled, the MP2918 first enters non-
synchronous operation for as long as the
inductor current approaches zero at light load. If
the load decreases further to make the COMP
voltage (VCOMP) drop below the CCM/AAM
voltage (VAAM), the MP2918 enters AAM. In
AAM, the internal clock resets whenever VCOMP
crosses over VAAM. The crossover time is taken
as the benchmark for the next clock cycle.
When the load increases and the DC value of
VCOMP is higher than VAAM, the operation mode
is discontinuous conduction mode (DCM) or
continuous conduction mode (CCM), which
have a constant switching frequency.
Forced CCM
Inductor
Current
t
t
t
Load
Decreased
AAM
Inductor
Current
t
t
t
Load
Decreased
Figure 3: Forced CCM and AAM
Floating Driver and Bootstrap Charging
The floating top gate driver is powered by an
external bootstrap capacitor (CBST), which is
refreshed when the high-side MOSFET (HS-
FET) turns off, typically. This floating driver has
its
own
under-voltage
lockout
(UVLO)
protection. This UVLO’s rising threshold is
3.05V with a hysteresis of 170mV.
If the BST voltage is lower than the bootstrap
UVLO, the MP2918 enters constant-off-time
mode to ensure that the BST capacitor is high
enough to drive the HS-FET.
VCC1 Regulator and VCC2 Power Supply
Both the top and bottom MOSFET drivers and
most of the internal circuitries are powered by
the VCC1 regulator. An internal, low dropout,
linear regulator supplies VCC1 power from VIN.
Connect a
≥1μF ceramic capacitor from VCC1
to PGND.
If VCC2 is left open or connected to a voltage
less than 4.7V, an internal 5V regulator supplies
power to VCC1 from VIN. If VCC2 is greater
than 4.7V, the internal regulator that supplies
power to VCC1 from VCC2 is triggered. If
VCC2 is between 4.7V and 5V, the 5V regulator
is in dropout, and VCC1 approximately equals
VCC2. Using the VCC2 power supply allows the
VCC1 power to be derived from a high-
efficiency external source, such as one of the
MP2918
’s switching regulator outputs.



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