参数资料
型号: PC13892JVK
厂商: FREESCALE SEMICONDUCTOR INC
元件分类: 电源管理
英文描述: 1-CHANNEL POWER SUPPLY MANAGEMENT CKT, PBGA139
封装: 7 X 7 MM, 0.50 MM PITCH, ROHS COMPLIANT, PLASTIC, MO-195AD, BGA-139
文件页数: 58/75页
文件大小: 3848K
代理商: PC13892JVK
Analog Integrated Circuit Device Data
Freescale Semiconductor
61
13892
FUNCTIONAL DEVICE OPERATION
Because of an order from the United States International Trade Commission, BGA-packaged product lines and part numbers indicated here currently are not
available from Freescale for import or sale in the United States prior to September 2010: MC13892VK and MC13892VL in 139, 186 MAPBGA packages.
precaution, the power dissipation is monitored and the
desired duty cycle is estimated. When this estimated duty
cycle falls below the power limiter minimum duty cycle, the
charger circuit will be disabled.
ADC SUBSYSTEM
The ADC core is a 10 bit converter. The ADC core and
logic run on 2/3 of the switcher PLL generated frequency, so
approximately 2.0 MHz. If an ADC conversion is requested
while the PLL is not active, it will be automatically enabled by
the ADC. A 32.768 kHz equivalent time base is derived from
the 2.0 MHz clock to time ADC events. The ADC is supplied
from VCORE. The ADC core has an integrated auto
calibration circuit which reduces the offset and gain errors.
The switcher PLL is programmable, so when the switcher
frequency is changed, the frequency applied to the ADC
converter will change accordingly. Although the conversion
time is inversely proportional to the PLLX[2:0] setting, this will
not influence the ADC performance. The locally derived
32.768 kHz will remain constant in order to not influence the
different timings depending on this time base.
The ADC Subsystem has 8 channels:
Channel 0 Battery Voltage:
The battery voltage is read at the BATT pin at channel 0.
Channel 1 Battery Current:
The current flowing out of and into the battery can be read
via the ADC by monitoring the voltage drop over the sense
resistor between BATT and BATTISNSCC.
Channel 2 Application Supply:
The application supply voltage is read at the BP pin at
channel 2.
Channel 3 Charger Voltage:
The charger voltage is measured at the CHRGRAW pin at
channel 3.
Channel 4 Charger Current:
The charge current is read by monitoring the voltage drop
over the charge current sense resistor. This resistor is
connected between CHRGISNS and BPSNS.
Channel 5 ADIN5, Battery Thermistor and Battery Detect:
On channel 5, ADIN5 may be used as a general purpose
input, but in a typical application, ADIN5 is used to read out
the battery pack thermistor. The thermistor will have to be
biased with an external pull-up to a voltage rail greater than
the ADC input range. In order to save current when the
thermistor reading is not required, it can be biased from one
of the general purpose IOs such as GPO1. A resistor divider
network should assure the resulting voltage falls within the
ADC input range, especially when the thermistor check
function is used.
When the application is on and supplied by the charger, a
battery removal can be detected by a battery thermistor
presence check. When the thermistor terminal becomes
high-impedance, the battery is considered being removed.
This detection function is available at the ADIN5 input.
Channel 6 ADIN6 and Coin Cell Voltage:
On channel 6, ADIN6 may be used as a general purpose
unscaled input but in a typical application, the PA thermistor
is connected here. In addition, on channel 6, the voltage of
the coin cell connected to the LICELL pin can be read.
Channel 7 ADIN7 and ADIN7B, UID and Die Temperature:
On channel 7, ADIN7 may be used as a general purpose
input. In a typical application, an ambient light sensor is
connected here. A second general purpose input ADIN7B is
available. In the application, a second ambient light sensor is
supposed to be connected here.
In addition, on channel 7, the voltage of the USB ID line
connected to the UID pin and the die temperature can be
read.
COULOMB COUNTER
As discussed previously, the current into and from the
battery can be read out through the general purpose ADC as
a voltage drop over the R1 sense resistor. Together with the
battery voltage reading the battery capacity can be
estimated. A more accurate battery capacity estimation can
be obtained by using the integrated Coulomb Counter.
The Coulomb Counter (or CC) monitors the current flowing
in/out of the battery by integrating the voltage drop across the
battery current sense resistor R1, followed by an A to D
conversion. The result of the A to D conversion is used to
increase/decrease the contents of a counter that can be read
out by software.
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