Select:
PFC = 30720 counts or 48mVh
PROG
1
= float
PROG
2
= low
PROG
3
= high
PROG
4
= float
PROG
5
= float
PROG
6
= float
The initial full battery capacity is 48mVh (960mAh)
until the bq2050 “learns” a new capacity with a
qualified discharge from full to EDV1.
3. Nominal Available Capacity (NAC):
NAC counts up during charge to a maximum value
of LMD and down during discharge and self-dis
charge to 0. NAC is reset to 0 on initialization and on
the first valid charge following discharge to EDV1. To
prevent overstatement of charge during periods of
overcharge, NAC stops incrementing when NAC =
LMD.
4. Discharge Count Register (DCR):
The DCR counts up during discharge independent of
NAC and could continue increasing after NAC has
decremented to 0. Prior to NAC = 0 (empty battery),
both discharge and self-discharge increment the
DCR. After NAC = 0, only discharge increments the
DCR. The DCR resets to 0 when NAC = LMD. The
DCR does not roll over but stops counting when it
reaches FFFFh.
The DCR value becomes the new LMD value on the
first charge after a valid discharge to V
EDV1
if:
No valid charge initiations (charges greater than
256 NAC counts, where V
SRO>VSRQ
) occurred dur
ing the period between NAC = LMD and EDV1 de
tected.
The self-discharge count is not more than 4096
counts (8% to 18% of PFC, specific percentage
threshold determined by PFC).
The temperature is≥0°C when the EDV1 level is
reached during discharge.
The valid discharge flag (VDQ) indicates whether
the present discharge is valid for LMD update.
5. Scaled Available Energy (SAE):
SAE is useful in determining the available energy
within the battery, and may provide a more useful
capacity reference in battery chemistries with
sloped voltage profiles during discharge. SAE may
be converted to a mWh value using the following
formula:
E(mWh) =
(* *SAEH SAEL)256 +
24.)∗∗+
∗
SCALE (R R
RR
B1 B2
SB2
where RB1,RB2and RSare resistor values in ohms.
SCALE is the selected scale from Table 2. SAEH
and SAEL are digital values read via DQ.
6. Compensated Available Capacity (CAC)
CAC counts similar to NAC, but contains the avail
able capacity compensated for discharge rate and
temperature.
Charge Counting
Charge activity is detected based on a positive voltage
on the V
SR
input. If charge activity is detected, the
bq2050 increments NAC at a rate proportional to V
SR
and,
if enabled, activates an LED display. Charge actions in
-
crement the NAC after compensation for temperature.
The bq2050 determines charge activity sustained at a
continuous rate equivalent to V
SRO>VSRQ
. A valid
charge equates to sustained charge activity greater
than 256 NAC counts. Once a valid charge is detected,
charge counting continues until V
SRO(VSR+VOS
) falls
below V
SRQ
.V
SRQ
is 210µV, and is described in the
Digital Magnitude Filter section.
Discharge Counting
Discharge activity is detected based on a negative voltage
on the V
SR
input. All discharge counts where V
SRO<VSRD
cause the NAC register to decrement and the DCR to
increment. V
SRD
is -200µV, and is described in the
Digital Magnitude Filter section.
Self-Discharge Estimation
The bq2050 continuously decrements NAC and increments
DCR for self-discharge based on time and temperature. The
self-discharge count rate is programmed to be a nominal
1
512
*
NAC per day or disabled. This is the rate for a bat
tery whose temperature is between 20°–30°C. The NAC
register cannot be decremented below 0.
Count Compensations
Discharge Compensation
Corrections for the rate of discharge, temperature, and anode
type are made by adjusting an internal compensation factor.
This factor is based on the measured rate of discharge of the
battery. Tables 3A and 3B outline the correction factor typi
cally used for graphite anode Li-Ion batteries, and Tables 4A
and 4B outline the factors typically used for coke anode
Li-Ion batteries. The compensation factor is applied to
CAC and is based on discharge rate and temperature.
7
bq2050