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MP2617BGL Datasheet(PDF) 28 Page - Monolithic Power Systems

Part # MP2617BGL
Description  3A Switching Charger with NVDC Power Path Management For Single Cell Li Battery
PDF  32 Pages
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Manufacturer  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP2617BGL Datasheet(HTML) 28 Page - Monolithic Power Systems

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MP2617A, MP2617B
– SINGLE CELL SWITCHING CHARGER WITH POWER PATH
MP2617A, MP2617B Rev. 1.23
www.MonolithicPower.com
28
1/15/2018
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2018 MPS. All Rights Reserved.
When SYSFB is programmed using external
resistors, the control loop function is changed.
A zero point is added around the cross over
frequency of the DC gain, and this may result in
the phase margin varied a lot, which may cause
the unstable operation. To avoid this condition,
a minimum capacitance requirement should be
satisfied to make the pole point to compensate
the zero point. This minimum capacitance is
20uF for a general application.
So, for the SYSFB programmed condition, the
CSYS should be selected as max (CSYS_MIN,
20uF), CSYS_MIN is calculated from the formula of
equation (13), as shown in Table 5. For better
stability
margin,
select
a
47uF
ceramic
capacitor with 6.3V and above voltage rating as
the output capacitor in this case.
Resistor Choose for NTC Sensor
Figure 8 shows an internal resistor divider
reference circuit to limit the low temperature
threshold and high temperature threshold at
65%·VCC and 33.5%·VCC, respectively. For a
given NTC thermistor, select appropriate RT1
and RT2 to set the NTC window:
T2
NTC_Cold
THL
T1
T2
NTC_Cold
R //R
V
65%
R
R //R
VCC

(14)
T2
NTC_Hot
THH
T1
T2
NTC_Hot
R //R
V
33.5%
R
R //R
VCC

(15)
RNTC_Hot is the value of the NTC resistor at high
temperature
of
the
required
temperature
operation range, and RNTC_Cold is the value of
the NTC resistor at low temperature.
The two resistors, RT1 and RT2, allow the high
temperature limit and low temperature limit to
be
programmed
independently.
With
this
feature, the MP2625B can fit most type of NTC
resistor and different temperature operation
range requirements.
RT1 and RT2 values depend on the type of the
NTC resistor:
NTC_Hot
NTC_Cold
NTC_Hot
NTC_Cold
T2
R
.4225
0
-
R
1225
.
0
R
R
.3
0
R
(16)
)
R
R
(
2275
.
0
R
R
0.3
R
NTC_Hot
NTC_Cold
NTC_Cold
NTC_Hot
T1
(17)
For example, for the thermistor NCP18XH103,
it has the following electrical characteristic:
At 0°C, RNTC_Cold = 27.445kΩ;
At 50°C, RNTC_Hot = 4.1601kΩ.
The following equations are derived assuming
that the NTC window is between 0°C and 50°C.
According to the above equations to calculate
RT1=7.15kΩ and RT2=25.5kΩ.
Figure 4
—NTC Function Block
PCB Layout Guideline
It is important to pay special attention to the
PCB layout to meet specified noise, efficiency
and stability requirements. The following design
considerations can improve circuit performance:
1) Route the power stage adjacent to their
grounds.
Aim
to
minimize
the
high-side
switching node (SW, inductor), trace lengths in
the high-current paths and the current sense
resistor trace.
Keep the switching node short and away from
all small control signals, especially the feedback
network.
Place the input capacitor as close as possible
to the IN and PGND pins.
Place the output inductor close to the IC and
connect the output capacitor between the
inductor and PGND of the IC.
2) For high-current applications, the balls for the
power pads (IN, SW, SYS, BATT and PGND)
should be connected to as much copper in the
board as possible. This improves thermal
performance because the board conducts heat
away from the IC.



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