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MP2696B Datasheet(PDF) 29 Page - MPS Industries, Inc.

Part # MP2696B
Description  I2C-Controlled, Single-Cell Switching Charger with Power-Path Management,Boost Output, and 3.5A Input Current Limit
PDF  34 Pages
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Manufacturer  MPSIND [MPS Industries, Inc.]
Direct Link  http://www.mpsind.com/index.html
Logo MPSIND - MPS Industries, Inc.

MP2696B Datasheet(HTML) 29 Page - MPS Industries, Inc.

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MP2696B
– SW CHARGER WITH I2C CONTROL, BOOST OUTPUT
MP2696B Rev. 1.0
MonolithicPower.com
29
4/16/2021
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2021 MPS. All Rights Reserved.
APPLICATION INFORMATION
Setting the NTC Resistor
Figure 14 shows the different temperature
thresholds (cold, cool, warm, and hot) that are
preset by the internal voltage divider reference
circuit.
NTC
VRNTC
Hot
Cold
Cool
Warm
NTC
Protection
RT2
RT1
RNTC
Figure 14: JEITA-Controlled NTC Protection
Circuit
To set the NTC window for a given NTC
thermistor, calculate RT1 and RT2 with Equation
(6) and Equation (7), respectively:
NTC _ HOT
NTC _ COLD
COLD
HOT
T1
COLD
HOT
NTC _ COLD
NTC _ HOT
R
R
(V
V
)
R
V
V
(R
R
)
(6)
NTC _ HOT
NTC _ COLD
COLD
HOT
T2
HOT
COLD
NTC _ COLD
COLD
HOT
NTC _ HOT
R
R
(V
V
)
R
V
(1 V
) R
V
(1 V
) R
 
 
(7)
Where RNTC_HOT is the value of the NTC resistor
at the upper bound of its operating temperature
range, and RNTC_COLD is the value at the lower
bound. VHOT is the hot temperature threshold
percentage, which can be set to 34% or 36% of
VVRNTC. VCOLD is the cold temperature threshold
percentage, which can be set to 72% or 68% of
VVRNTC.
The warm and cool temperature thresholds can
be calculated with Equation (8) and Equation
(9), respectively:
T2
NTC _ WARM
WARM
T1
T2
NTC _ WARM
R
// R
V
R
R
// R
(8)
T2
NTC _ COOL
COOL
T1
T2
NTC _ COOL
R
// R
V
R
R
// R
(9)
Using the results from these calculations,
choose the closest warm and cool thresholds in
REG 08h.
If no external NTC is available, connect RT1 to
RT2 to keep the voltage on NTC within the valid
NTC window (e.g. RT1 = RT2 = 10kΩ).
Selecting the Inductor
Inductor selection requires a tradeoff between
cost, size, and efficiency. A smaller-value
inductance results a physically smaller inductor,
but also results in greater current ripple,
magnetic
hysteretic
losses,
and
output
capacitance. A higher-value inductor benefits
from lower ripple current and smaller output
filter capacitors, but results in a greater inductor
DC resistance (DCR) loss.
Table 2 shows recommended values when
selecting an inductor
Table 2: Inductor Selection Guide
RS1 (m
Ω)
Max ICC (A)
L (µH)
10
3.6
1
20
1.8
2.2
30
1.2
3.3
50
0.72
4.7
Choose an inductor that does not saturate
under the worst-case load condition.
Selecting the PMID Capacitor (CPMID)
Select CPMID based on the demand of the PMID
current ripple for the mode being used.
In charge mode, CPMID acts as the input
capacitor of the buck converter in charge mode.
The input current ripple can be calculated using
Equation (10):
BATT
IN
BATT
RMS _ MAX
CC _ MAX
IN
V
(V
V
)
II
V


(10)
In boost mode, CPMID is the output capacitor of
the boost converter. CPMID keeps the system
voltage ripple small and ensures feedback loop
stability. The system current ripple can be
estimated with Equation (11):
BATT
SYS
BATT
RMS _ MAX
BATT
SYS
V
(V
V
)
II
V


(11)
Select the PMID capacitors based on the ripple
current temperature rise, and ensure that the
temperature rise does not exceed 10°C. For the
best results, use ceramic capacitors with X5R
dielectrics because of their low ESR and small
temperature coefficients.



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