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ADUCM4050BCBZ-R7 датащи(PDF) 33 Page - Analog Devices

номер детали ADUCM4050BCBZ-R7
подробное описание детали  Ultra Low Power ARM Cortex-M4F MCU with Integrated Power Management
PDF  46 Pages
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производитель  AD [Analog Devices]
домашняя страница  http://www.analog.com
Logo AD - Analog Devices

ADUCM4050BCBZ-R7 датащи(HTML) 33 Page - Analog Devices

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Data Sheet
ADuCM4050
Rev. A | Page 33 of 46
Clocking
The ADuCM4050 MCU has the following clocking options:
High frequency clocks
Internal high frequency oscillator (HFOSC) at
26 MHz
High frequency external crystal oscillator (HFXTAL)
at 26 MHz or 16 MHz
GPIO clock in (SYS_CLKIN)
Phase-locked loop (PLL)
Low frequency clocks at 32 kHz
Internal low frequency oscillator (LFOSC)
Low frequency external crystal oscillator (LFXTAL)
The clock options have software configurability with the
following exceptions: the HFOSC cannot be disabled when
using an internal buck regulator, and the LFOSC cannot be
disabled even if using LFXTAL.
Clock sources with a frequency greater than 26 MHz can be
achieved by using a PLL. The maximum frequency sourced
from the PLL is 52 MHz.
When core frequency is greater than 26 MHz, program the flash
wait states to 1.
As PLL is disabled and relock is transparent to user software,
hibernate mode can enter and exit seamlessly when the system
frequency is sourced from PLL.
Clock Fail Detection
The LFOSC clock continuously monitors the LFXTAL in
hibernate, active, and flexi power modes. If the LFXTAL stops
running, there is an option to detect and generate an interrupt
and/or automatically switch to the LFOSC without software
intervention. The HFOSC clock monitors the HFXTAL clock,
GPIO clock, and the PLL clock. If using any of these clocks as
the system clock and it fails to toggle, the clock can be detected
through an interrupt. There is an option to automatically switch
to the HFOSC.
Real-Time Clock (RTC)
The ADuCM4050 MCU has two RTC blocks: RTC0 and RTC1,
also called flexible real-time clock (FLEX_RTC™). The RTC
blocks share a low power crystal oscillation circuit that operates
in conjunction with a 32,768 Hz external crystal.
The RTC has an alarm that interrupts the core when the
programmed alarm value matches the RTC count. The software
enables and configures the RTC.
The RTC also has a digital trim capability to allow a positive or
negative adjustment to the RTC count at fixed intervals.
The FLEX_RTC supports three SensorStrobe outputs:
RTC1_SS1, RTC1_SS2, and RTC1_SS3 (see the ADuCM4050
Ultra Low Power ARM Cortex-M4F MCU with Integrated
Power Management Hardware Reference). Using this
mechanism, the ADuCM4050 MCU can be used as a
programmable clock generator in all power modes except
shutdown mode. In this way, the external sensors can have their
timing domains mastered by the ADuCM4050 MCU, as the
SensorStrobe output is a programmable divider from the
FLEX_RTC, which can operate at 0.5 Hz to 16.384 kHz. The
sensors and MCU are in sync, which removes the need for
additional resampling of data to time align it.
In the absence of the SensorStrobe mechanism, the external
sensor uses an RC oscillator (approximately ±30% typical
variation). The MCU must sample the data and resample it on
the time domain of the MCU before using it.
Alternatively, the MCU remains in a higher power state and
drives each data conversion on the sensor side.
The SensorStrobe mechanism allows the ADuCM4050 MCU to
be in a lower power state for a long duration and avoids
unnecessary data processing, extending the battery life of the
end product. The key differences between RTC0 and RTC1 are
shown in Table 26.



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