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CYWUSB6953 Datasheet(PDF) 33 Page - Cypress Semiconductor

Part # CYWUSB6953
Description  Programmable Radio on Chip Low Power
PDF  68 Pages
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Manufacturer  CYPRESS [Cypress Semiconductor]
Direct Link  http://www.cypress.com
Logo CYPRESS - Cypress Semiconductor

CYWUSB6953 Datasheet(HTML) 33 Page - Cypress Semiconductor

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CYRF69103
Document #: 001-07611 Rev *F
Page 33 of 68
3. The system-wide PD (power down) signal controls several
major circuit blocks: The Flash memory module, the internal
24 MHz oscillator, the EFTB filter and the bandgap voltage
reference. These circuits transition into a zero power state.
The only operational circuits on chip are the Low Power oscil-
lator, the bandgap refresh circuit, and the supply voltage
monitor (POR/LVD) circuit.
17.2 Low Power in Sleep Mode
To achieve the lowest possible power consumption during
suspend or sleep, the following conditions are observed in
addition to considerations for the sleep timer:
All GPIOs are set to outputs and driven low
Clear P11CR[0], P10CR[0]
Set P10CR[1]
To avoid current consumption make sure ITMRCLK and
TCPCLK are not sourced by either low power 32 kHz oscillator
or 24 MHz crystal-less oscillator.
All the other blocks go to the power down mode automatically on
suspend.
The following steps are user configurable and help in reducing
the average suspend mode power consumption:
1. Configure the power supply monitor at a large regular inter-
vals, control register bits are 1,EB[7:6] (Power system sleep
duty cycle PSSDC[1:0]).
2. Configure the Low power oscillator into low power mode,
control register bit is LOPSCTR[7].
Figure 17-1. Sleep Timing
17.3 Wakeup Sequence
When asleep, the only event that can wake the system up is an
interrupt. The global interrupt enable of the CPU flag register
does not need to be set. Any unmasked interrupt wakes the
system up. It is optional for the CPU to actually take the interrupt
after the wakeup sequence. The wakeup sequence is synchro-
nized to the 32 kHz clock. This is done to sequence a startup
delay and enable the Flash memory module enough time to
power up before the CPU asserts the first read access. Another
reason for the delay is to enable the oscillator, Bandgap, and
LVD/POR circuits time to settle before actually being used in the
system. As shown in Figure 17-2. on page 34, the wakeup
sequence is as follows:
1. The wakeup interrupt occurs and is synchronized by the
negative edge of the 32 kHz clock.
2. At the following positive edge of the 32 kHz clock, the
system-wide PD signal is negated. The Flash memory
module, internal oscillator, EFTB, and bandgap circuit are all
powered up to a normal operating state.
3. At the following positive edge of the 32 kHz clock, the current
values for the precision POR and LVD have settled and are
sampled.
4. At the following negative edge of the 32 kHz clock (after about
15 µs nominal), the BRQ signal is negated by the sleep logic
circuit. On the following CPUCLK, BRA is negated by the CPU
and instruction execution resumes. Note that in Figure 17-2.
on page 34 fixed function blocks, such as Flash, internal oscil-
lator, EFTB, and bandgap, have about 15 µs start up. The
wakeup times (interrupt to CPU operational) ranges from
75 µs to 105 µs.
Firmware write to SCR
SLEEP bit causes an
immediate BRQ
IOW
SLEEP
BRQ
PD
BRA
CPUCLK
CPU captures
BRQ on next
CPUCLK edge
CPU
responds
with a BRA
On the falling edge of
CPUCLK, PD is asserted.
The 24/48 MHz system clock
is halted; the Flash and
bandgap are powered down
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