參數(shù)資料
型號(hào): TC3405A
廠商: Linear Technology Corporation
元件分類(lèi): 熱敏電阻
英文描述: Standalone Linear Li-lon Battery Charger with Thermistor Input
中文描述: 獨(dú)立線性鋰離子電池充電器熱敏電阻輸入
文件頁(yè)數(shù): 15/20頁(yè)
文件大小: 665K
代理商: TC3405A
LTC4061
15
4061fa
APPLICATIOU
Programming C/10 Current Detection/Termination
In most cases, an external resistor, R
DET
, is needed to set
the charge current detection threshold, I
DETECT
. However,
when setting I
DETECT
to be 1/10th of I
CHG
, the I
DET
pin
can be connected directly to the PROG pin. This reduces
the component count, as shown in Figure 6.
W
U
U
When PROG and I
DET
are connected in this way, the full-
scale charge current, I
CHG
, is programmed with a different
equation:
R
V
I
I
V
R
PROG
CHG
CHG
PROG
=
=
500
500
,
Stability Considerations
The battery charger constant voltage mode feedback loop
is stable without any compensation provided a battery is
connected. However, a 1μF capacitor with a 1
Ω
series
resistor to GND is recommended at the BAT pin to reduce
noise when no battery is present.
When the charger is in constant current mode, the PROG
pin is in the feedback loop, not the battery. The constant
current stability is affected by the impedance at the PROG
pin. With no additional capacitance on the PROG pin, the
charger is stable with program resistor values as high as
10k
Ω
; however, additional capacitance on this node reduces
the maximum allowed program resistor value.
Power Dissipation
When designing the battery charger circuit, it is not neces-
sary to design for worst-case power dissipation scenarios
because the LTC4061 automatically reduces the charge
current during high power conditions. The conditions
that cause the LTC4061 to reduce charge current through
thermal feedback can be approximated by considering the
power dissipated in the IC. Most of the power dissipation
is generated from the internal charger MOSFET. Thus, the
power dissipation is calculated to be approximately:
P
D
= (V
CC
– V
BAT
) I
BAT
P
D
is the power dissipated, V
CC
is the input supply voltage,
V
BAT
is the battery voltage and I
BAT
is the charge current.
The approximate ambient temperature at which the thermal
feedback begins to protect the IC is:
T
A
= 105°C – P
D
θ
JA
T
A
= 105°C – (V
CC
– V
BAT
) I
BAT
θ
JA
Example: An LTC4061 operating from a 5V wall adapter
is programmed to supply 800mA full-scale current to a
discharged Li-Ion battery with a voltage of 3.3V. Assuming
θ
JA
is 40°C/W (see Thermal Considerations), the ambient
temperature at which the LTC4061 will begin to reduce
the charge current is approximately:
T
A
= 105°C – (5V – 3.3V) (800mA) 40°C/W
T
A
= 105°C – 1.36W 40°C/W = 105°C – 54.4°C
T
A
= 50.6°C
The LTC4061 can be used above 50.6°C ambient, but
the charge current will be reduced from 800mA. The ap-
proximate current at a given ambient temperature can be
approximated by:
C
T
V
V
CC
BAT
JA
(
)
θ
I
BAT
A
=
°
105
Using the previous example with an ambient tem-
perature of 60°C, the charge current will be reduced to
approximately:
I
C
C
C W
°
/
V
V
C
/
C A
°
I
mA
BAT
BAT
=
°
°
=
°
=
105
–3 3
60
40
5
(
45
68
662
)
+
V
CC
C/5
PROG
I
DET
V
IN
BAT
500mA
TIMER
R
DET
2k
R
PROG
2k
LTC4061
GND
+
V
CC
C/5
PROG
I
DET
V
IN
4061 F06
BAT
500mA
TIMER
R
PROG
1k
LTC4061
GND
Figure 6. Two Circuits That Charge at 500mA
Full-Scale Current and Terminate at 50mA
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