AT91SAM7X128B-AU Atmel, AT91SAM7X128B-AU Datasheet - Page 427

IC MCU 128KB FLASH 100LQFP

AT91SAM7X128B-AU

Manufacturer Part Number
AT91SAM7X128B-AU
Description
IC MCU 128KB FLASH 100LQFP
Manufacturer
Atmel
Series
AT91SAMr
Datasheets

Specifications of AT91SAM7X128B-AU

Core Processor
ARM7
Core Size
16/32-Bit
Speed
55MHz
Connectivity
CAN, Ethernet, I²C, SPI, SSC, UART/USART, USB
Peripherals
Brown-out Detect/Reset, DMA, POR, PWM, WDT
Number Of I /o
62
Program Memory Size
128KB (128K x 8)
Program Memory Type
FLASH
Ram Size
32K x 8
Voltage - Supply (vcc/vdd)
1.65 V ~ 1.95 V
Data Converters
A/D 8x10b
Oscillator Type
Internal
Operating Temperature
-40°C ~ 85°C
Package / Case
100-LQFP
Processor Series
AT91SAMx
Core
ARM7TDMI
Data Bus Width
32 bit
Data Ram Size
32 KB
Interface Type
JTAG, SPI, UART
Maximum Clock Frequency
55 MHz
Number Of Timers
1
Maximum Operating Temperature
+ 85 C
Mounting Style
SMD/SMT
3rd Party Development Tools
JTRACE-ARM-2M, KSK-AT91SAM7X-PL, MDK-ARM, RL-ARM, ULINK2
Development Tools By Supplier
AT91SAM-ICE, AT91-ISP, AT91SAM7X-EK
Minimum Operating Temperature
- 40 C
On-chip Adc
10 bit, 8 Channel
Controller Family/series
AT91SAM7xxxxx
No. Of I/o's
62
Ram Memory Size
32KB
Cpu Speed
55MHz
No. Of Timers
1
Rohs Compliant
Yes
Cpu Family
91S
Device Core
ARM7TDMI
Device Core Size
32b
Frequency (max)
55MHz
Total Internal Ram Size
32KB
# I/os (max)
62
Number Of Timers - General Purpose
3
Operating Supply Voltage (typ)
1.8/3.3V
Operating Supply Voltage (max)
1.95/3.6V
Operating Supply Voltage (min)
1.65/3V
Instruction Set Architecture
RISC
Operating Temp Range
-40C to 85C
Operating Temperature Classification
Industrial
Mounting
Surface Mount
Pin Count
100
Package Type
LQFP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Eeprom Size
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

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6120I–ATARM–06-Apr-11
Figure 33-4. Non Overlapped Center Aligned Waveforms
Note:
• the waveform duty cycle. This channel parameter is defined in the CDTY field of the
• the waveform polarity. At the beginning of the period, the signal can be at high or low level.
• the waveform alignment. The output waveform can be left or center aligned. Center aligned
By using a Master Clock divided by one of both DIVA or DIVB divider, the formula becomes,
respectively:
(
-------------------------------------------- -
If the waveform is center aligned then the output waveform period depends on the counter
source clock and can be calculated:
By using the Master Clock (MCK) divided by an X given prescaler value
(with X being 1, 2, 4, 8, 16, 32, 64, 128, 256, 512, or 1024). The resulting period formula will
be:
(
--------------------------------------------
By using a Master Clock divided by one of both DIVA or DIVB divider, the formula becomes,
respectively:
(
-------------------------------------------------------
PWM_CDTYx register.
If the waveform is left aligned then:
If the waveform is center aligned, then:
This property is defined in the CPOL field of the PWM_CMRx register. By default the signal
starts by a low level.
waveforms can be used to generate non overlapped waveforms. This property is defined in
the CALG field of the PWM_CMRx register. The default mode is left aligned.
CRPD
2
2
PWM0
PWM1
duty cycle
duty cycle
×
×
X
CPRD
See
MCK
MCK
×
MCK
×
CPRD
Figure 33-5 on page 429
DIVA
×
=
=
DIVA
No overlap
)
)
(
------------------------------------------------------------------------------------------------------------- -
(
-------------------------------------------------------------------------------------------------------------------------------- -
period 1
(
or
period
)
(
------------------------------------------------ -
CRPD
or
Period
(
-------------------------------------------------------
2
MCK
×
×
2
CPRD
) 1
DIVAB
fchannel_x_clock
MCK
SAM7X512/256/128 Preliminary
for a detailed description of center aligned waveforms.
period
(
×
period
)
fchannel_x_clock
DIVB
)
2
)
×
CDTY
×
CDTY
)
) )
427

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