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LTC4100 데이터시트(PDF) 16 Page - Linear Technology

부품명 LTC4100
상세설명  Smart Battery Charger Controller
PDF  24 Pages
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제조업체  LINER [Linear Technology]
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LTC4100 데이터시트(HTML) 16 Page - Linear Technology

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LTC4100
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Table 6. ILIM Trip Points and Ranges
EXTERNAL
CONTROLLED
RESISTOR
CHARGING
(RILIM)ILIM VOLTAGE
CURRENT RANGE GRANULARITY
Short to GND
VILIM < 0.09VDD
0 < I < 1023mA
1mA
10k
±1%
0.17VVDD < VILIM
0 < I < 2046mA
2mA
< 0.34VVDD
33k
±1%
0.42VVDD < VILIM
0 < I < 3068mA
4mA
< 0.59V
Open (>250k,
0.66VVDD < VILIM
0 < I < 4092mA
4mA
or Short to VDD)
The VLIM Decoder Block
The value of an external resistor connected from this pin
to GND determines one of five voltage limits that are
applied to the charger output value. These limits provide
a measure of safety with a hardware restriction on charg-
ing voltage which cannot be overridden by software.
Table 7. VLIM Trip Points and Ranges (See Figure 5)
EXTERNAL
CONTROLLED
RESISTOR
CHARGING VOLTAGE
(RVLIM)VLIM VOLTAGE
(VOUT) RANGE
GRANULARITY
Short to
VVLIM < 0.09VVCCP
2900mV < VOUT
16mV
GND
< 8800mV
10k
±1%
0.17VVDD < VVLIM
2900mV < VOUT
16mV
< 0.34VVDD
< 13.104mV
33k
±1%
0.42VVCCP < VVLIM
2900mV < VOUT
16mV
< 0.59VVDD
< 17.408mV
100k
±1%
0.66VVDD < VVLIM
2900mV < VOUT
16mV
< 0.84VVDD
< 21.712mV
Open or
0.91VVDD < VVLIM
2900mV < VOUT
16mV
Tied to VDD
< 28000mV
The Voltage DAC Block
Note that the charger output voltage is offset by VREF.
Therefore, the value of VREF is subtracted from the SMBus
ChargingVoltage() value in order for the output voltage to
be programmed properly (without offset). If the
ChargingVoltage() value is below the nominal reference
voltage of the charger, nominally 1.184V, the charger
output voltage is programmed to zero. In addition, if the
ChargingVoltage() value is above the limit set by the VLIM
pin, then the charger output voltage is set to the value
determined by the VLIM resistor and the VOLTAGE_OR bit
is set. These limits are demonstrated in Figure 6.
OPERATIO
Table 4. SafetySignal State Ranges
SafetySignal
CHARGE
RESISTANCE
STATUS BITS
DESCRIPTION
0
Ω to 500Ω
RES_UR,
Underrange
RES_HOT
BATTERY_PRESENT
500
Ω to 3kΩ
RES_HOT
Hot
BATTERY_PRESENT
3k
Ω to 30kΩ
BATTERY_PRESENT
Ideal
30k
Ω to 100kΩ
RES_COLD
Cold
BATTERY_PRESENT
Above 100k
Ω
RES_OR
Overrange
RES_COLD
Note: The underrange detection scheme is a very important feature of the
LTC4100. The RTHA/RSafetySignal divider trip point of 0.333 • VDD (1V) is
well above the 0.047 • VDD (140mV) threshold of a system using a 10k
pull-up. A system using a 10k pull-up would not be able to resolve the
important underrange to hot transition point with a modest 100mV of
ground offset between battery and SafetySignal detection circuitry. Such
offsets are anticipated when charging at normal current levels.
The required values for RTHA and RTHB are shown in
Table 5.
Table 5. SafetySignal External Resistor Values
EXTERNAL RESISTOR
VALUE (
Ω)
RTHA
1130
±1%
RTHB
54.9k
±1%
CSS represents the capacitance between the SafetySignal
and GND. CSS may be added to provide additional noise
immunity from transients in the application. CSS can not
exceed 1nF if the LTC4100 is to properly sense the value
of RSafetySignal.
The ILIM Decoder Block
The value of an external resistor connected from this pin
to GND determines one of four current limits that are used
for maximum charging current value. These limits provide
a measure of safety with a hardware restriction on charg-
ing current which cannot be overridden by software.



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