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ADUCM3029BCPZ-R7 数据表(PDF) 25 Page - Analog Devices

部件名 ADUCM3029BCPZ-R7
功能描述  Ultra Low Power Arm Cortex-M3 MCU with Integrated Power Management
PDF  39 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADUCM3029BCPZ-R7 数据表(HTML) 25 Page - Analog Devices

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Data Sheet
ADuCM3027/ADuCM3029
Rev. B | Page 25 of 39
Several power modes are available. Each mode provides an
additional low power benefit with a corresponding reduction in
functionality.
Active Mode
In active mode, all peripherals can be enabled. Active power is
managed by optimized clock management. See Table 4 for
details on active mode power.
Flexi Mode
In Flexi mode, the ARM Cortex-M3 core is clock gated, but the
remainder of the system is active. No instructions can be
executed in this mode, but DMA transfers can continue
between peripherals and memory as well as memory to
memory. See Table 5 for details on Flexi mode power.
Hibernate Mode
This mode provides state retention, configurable SRAM and
port pin retention, a limited number of wake-up interrupts
(XINT0_WAKEn and UART0_RX), and, optionally, two
RTCs—RTC0 and RTC1 (FLEX_RTC).
Shutdown Mode
This mode is the deepest sleep mode, in which all the digital
and analog circuits are powered down with an option to wake
from four possible wake-up sources: three external interrupts
and RTC0. The RTC0 can be optionally enabled in this mode
and the device can be periodically woken up by the RTC0
interrupt. See Table 6 for deep sleep (hibernate and shutdown)
mode specifications.
The following features are available for power management and
control:
A voltage range of 1.74 V to 3.6 V using a single supply
(such as the CR2032 coin cell battery).
GPIOs are driven directly from the battery. The pin state is
retained in hibernate and shutdown modes. The GPIO
configuration is only retained in hibernate mode.
Wake-up from external interrupt (via GPIOs), UART0_RX
interrupt, and RTCs for hibernate mode.
Wake-up from external interrupt (via GPIOs) and RTC0
for shutdown mode.
Optional high power buck converter for 1.2 V full on
support (for MCU use only). See Figure 23 for the
suggested external circuitry.
BUCK
ENABLED
LDO
VDCDC_CAP1P
VBAT
NOTES
1. FOR DESIGNS IN WHICH THE OPTIONAL BUCK IS NOT USED,
THE FOLLOWING PINS MUST BE LEFT UNCONNECTED:
VDCDC_CAP1P, VDCDC_CAP1N, VDCDC_OUT, VDCDC_CAP2P, AND VDCDC_CAP2N
0.1µF
0.47µF
0.1µF
VDCDC_CAP1N
VDCDC_OUT
VDCDC_CAP2P
0.47µF
VLDO_OUT
VDCDC_CAP2N
Figure 23. Buck Enabled Design
For designs in which the optional buck is not used, the
following pins must be left unconnected: VDCDC_CAP1P,
VDCDC_CAP1N, VDCDC_OUT, VDCDC_CAP2P, and
VDCDC_CAP2N.
Security Features
The ADuCM3027/ADuCM3029 MCUs provide a combination
of hardware and software protection mechanisms that lock out
access to the devices in secure mode but grant access in open
mode. These mechanisms include password protected slave
boot mode (UART), as well as password protected serial wire
debug (SWD) interfaces.
Mechanisms are provided to protect the device contents (flash,
SRAM, CPU registers, and peripheral registers) from being read
through an external interface by an unauthorized user, which is
referred to as read protection.
It is possible to protect the device from being reprogrammed in
circuit with unauthorized code. This is referred to as in circuit
write protection.
The devices can be configured with no protection, read
protection, or read and in circuit write protection. It is not
necessary to provide in circuit write protection without read
protection.
Cryptographic Accelerator
The cryptographic accelerator is a 32-bit APB DMA capable
peripheral. There are two 32-bit buffers provided for data
input/output operations. These buffers read in or read out
128 bits in four data accesses. Big endian and little endian data
formats are supported, as are the following modes:
Electronic code book (ECB) mode—AES mode
Counter (CTR) mode
Cipher block chaining (CBC) mode
Message authentication code (MAC) mode
Cipher block chaining-message authentication code
(CCM/CCM*) mode
SHA-256 modes



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