LTM8062IV#PBF Linear Technology, LTM8062IV#PBF Datasheet - Page 11

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LTM8062IV#PBF

Manufacturer Part Number
LTM8062IV#PBF
Description
IC, BATT CHRG, Li-Ion, Li-Polymer, 2A, LGA77
Manufacturer
Linear Technology
Datasheet

Specifications of LTM8062IV#PBF

Battery Type
Li-Ion, Li-Polymer
Input Voltage
32V
Battery Charge Voltage
14.4V
Charge Current Max
2A
Battery Ic Case Style
LGA
No. Of Pins
77
No. Of Series Cells
1

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BIAS Pin Considerations
The BIAS pin is used to provide drive power for the in-
ternal power switching stage and operate other internal
circuitry. For proper operation, it must be powered by at
least 2.8V and no more than the absolute maximum rat-
ing of 10V. In most applications, connect BIAS to BAT. If
there is no BIAS supply available or the battery voltage is
below 2.8V, the internal switch requires more headroom
from V
Performance Characteristics curves for minimum start and
running requirements under various battery conditions.
When charging a 2-cell battery using a relatively high input
voltage, the LTM8062 power dissipation can be reduced by
connecting BIAS to a voltage between 2.8V and 3.3V.
Output Capacitance
In many applications, the internal BAT capacitance of the
LTM8062 is sufficient for proper operation. There are cases,
however, where it may be necessary to add capacitance or
otherwise modify the output impedance of the LTM8062.
Case 1: the µModule is physically located far from the
battery and the added line impedance may interfere with
the control loop. Case 2: the battery ESR is very small or
very large; the LTM8062 controller is designed for a wide
range, but some battery packs have an ESR outside of this
APPLICATIONS INFORMATION
Programming of the desired minimum voltage is accom-
plished by connecting a resistor as shown in Figure 3.
If the voltage regulation feature is not used, connect the
V
INREG
R
IN
IN
=
pin to V
INPUT SUPPLY
Figure 3. Resistive Divider Sets Minimum V
100V
for proper operation. Please refer to the Typical
2.7
IN
IN
– 270
.
R
IN
k
V
V
IN
INREG
LTM8062
8062 F03
IN
range. Case 3: there is no battery at all. As the charger is
designed to work with the ESR of the battery, the output
may oscillate if no battery is present.
The optimum ESR is about 100mΩ, but ESR values both
higher and lower will work. Table 2 shows a sample of
parts successfully tested by Linear Technology:
Table 2
PART NUMBER
16TQC22M
35SVPD18M
TPSD226M025R0100
T495D226K025AS
TPSC686M006R0150
TPSB476M006R0250
APXE100ARA680ME61G
APS-150ELL680MHB5S
If system constraints preclude the use of electrolytic ca-
pacitors, a series R-C network may be used. Use a ceramic
capacitor of at least 22µF and an equivalent resistance of
100mΩ. An example of this is shown in the Typical Ap-
plications section.
MPPT Temperature Compensation
A typical solar panel is comprised of a number of series-
connected cells, each cell being a forward-biased p-n junc-
tion. As such, the open-circuit voltage (V
has a temperature coefficient that is similar to a common
p-n diode, or about –2mV/°C. The peak power point voltage
(V
a fixed voltage below V
for the peak power point is similar to that of V
Panel manufacturers typically specify the 25°C values for
V
determination of the temperature coefficient for V
a typical panel straight forward. The LTM8062 employs
a feedback network to program the V
voltage. Manipulation of the network makes for efficient
implementation of various temperature compensation
schemes for a maximum peak power tracking (MPPT)
OC
MP
, V
) for a crystalline solar panel can be approximated as
MP
, and the temperature coefficient for V
DESCRIPTION
22µF , 16V, POSCAP
18µF , 35V, OS-CON
22µF , 25V Tantalum
22µF , 25V, Tantalum
68µF , 6V, Tantalum
47µF , 6V, Tantalum
68µF , 10V Aluminum
68µF , 25V Aluminum
OC
, so the temperature coefficient
IN
LTM8062
OC
input regulation
MANUFACTURER
Sanyo
Sanyo
AVX
Kemet
AVX
AVX
Nippon Chemicon
Nippon Chemicon
) of a solar cell
OC
OC
, making
.
11
MP
8062fa
of

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