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SC1100 Folha de dados(PDF) 81 Page - National Semiconductor (TI)

[Old version datasheet] Texas Instruments acquired National semiconductor.
Nome de Peças SC1100
Descrição Electrónicos  Geode??Information Appliance On a Chip
PDF  348 Pages
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Fabricante Electrônico  NSC [National Semiconductor (TI)]
Página de início  http://www.national.com
Logo NSC - National Semiconductor (TI)

SC1100 Folha de dados(HTML) 81 Page - National Semiconductor (TI)

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SuperI/O Module (Continued)
External Elements
Choose C1 and C2 capacitors (see Figure 4-5 on page 80)
to match the crystal’s load capacitance. The load capaci-
tance CL “seen” by crystal Y is comprised of C1 in series
with C2 and in parallel with the parasitic capacitance of the
circuit. The parasitic capacitance is caused by the chip
package, board layout and socket (if any), and can vary
from 0 to 10 pF. The rule of thumb in choosing these
capacitors is:
CL = (C1 * C2) / (C1 + C2) + CPARASITIC
Example:
Crystal CL = 10 pF, CPARASITIC = 8.2 pF
C1 = 3.6 pF, C2 = 3.6 pF
Oscillator Tuning
The oscillator starts to generate 32.768 KHz pulses to the
RTC after about 100 msec from when VBAT is higher than
VBATMIN (2.4V) or VSB is higher than VSBMIN (3.0V). The
oscillation amplitude on the X32O pin stabilizes to its final
value (approximately 0.4V peak-to-peak around 0.7V DC)
in about 1 s.
C1 can be trimmed to achieve precisely 32.768 KHz. To
achieve a high time accuracy, use crystal and capacitors
with low tolerance and temperature coefficients.
4.5.2.2
External Oscillator
32.768 KHz can be applied from an external clock source,
as shown in Figure 4-6.
Connections
Connect the clock to the X32I ball, leaving the oscillator
output, X32O, unconnected.
Signal Parameters
The signal levels should conform to the voltage level
requirements for X32I, of square or sine wave of 0.0V to
VCORE amplitude. The signal should have a duty cycle of
approximately 50%. It should be sourced from a battery-
backed source in order to oscillate during power-down.
This assures that the RTC delivers updated time/calendar
information.
4.5.3
Timing Generation
The timing generation function divides the 32.768 KHz
clock by 215 to derive a 1 Hz signal, which serves as the
input for the seconds counter. This is performed by a
divider chain composed of 15 divide-by-two latches, as
shown in Figure 4-7.
Bits [6:4] (DV[2:0]) of the CRA register control the following
functions:
• Normal operation of the divider chain (counting).
• Divider chain reset to 0.
• Oscillator activity when only VBAT power is present
(backup state).
The divider chain can be activated by setting normal opera-
tional mode (bits [6:4] of CRA = 01x or 100). The first
update occurs 500 msec after divider chain activation.
Bits [3:0] of the CRA register select one of the fifteen taps
from the divider chain to be used as a periodic interrupt.
The periodic flag becomes active after half of the pro-
grammed period has elapsed, following divider chain acti-
vation.
See Table 4-18 on page 87 for more details.
Figure 4-6. External Oscillator Connections
Figure 4-7. Divider Chain Control
32.768 KHz
Clock Generator
Internal
External
CLKIN
X32O
NC
To other
modules
Battery
VBAT
B1
CF
CF
OUT
POWER
CF = 0.1 µF
(X32I)
R1
R2
R2 = 30 KΩ
R1 = 30 KΩ
3.3V square wave
32.768 KHz
2
1
2
2
2
3
2
13
2
14
2
15
1Hz
Divider Chain
DV2 DV1 DV0
CRA Register
Oscillator
Enable
X32I
X32O
To other
Reset
6
5
4
modules



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