MC56F8345VFGE Freescale Semiconductor, MC56F8345VFGE Datasheet - Page 12

IC DSP 16BIT 60MHZ 128-LQFP

MC56F8345VFGE

Manufacturer Part Number
MC56F8345VFGE
Description
IC DSP 16BIT 60MHZ 128-LQFP
Manufacturer
Freescale Semiconductor
Series
56F8xxxr
Datasheet

Specifications of MC56F8345VFGE

Core Processor
56800
Core Size
16-Bit
Speed
60MHz
Connectivity
CAN, EBI/EMI, SCI, SPI
Peripherals
POR, PWM, Temp Sensor, WDT
Number Of I /o
49
Program Memory Size
136KB (68K x 16)
Program Memory Type
FLASH
Ram Size
6K x 16
Voltage - Supply (vcc/vdd)
2.25 V ~ 3.6 V
Data Converters
A/D 16x12b
Oscillator Type
External
Operating Temperature
-40°C ~ 105°C
Package / Case
128-LQFP
Data Bus Width
16 bit
Processor Series
MC56F83xx
Core
56800E
Numeric And Arithmetic Format
Fixed-Point
Device Million Instructions Per Second
60 MIPs
Maximum Clock Frequency
60 MHz
Number Of Programmable I/os
49
Data Ram Size
8 KB
Maximum Operating Temperature
+ 105 C
Mounting Style
SMD/SMT
Interface Type
SCI, SPI, CAN
Minimum Operating Temperature
- 40 C
For Use With
MC56F8367EVME - EVAL BOARD FOR MC56F83X
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Eeprom Size
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

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1.4 Architecture Block Diagram
Note: Features in italics are NOT available in the 56F8145 device and are shaded in the following figures.
The 56F8345/56F8145 architecture is shown in
Figure 1-1
and
Figure
1-2.
Figure 1-1
illustrates how the
56800E system buses communicate with internal memories and the IPBus Bridge.
Table 1-2
lists the
internal buses in the 56800E architecture and provides a brief description of their function.
Figure 1-2
shows the peripherals and control blocks connected to the IPBus Bridge. The figures do not show the
on-board regulator and power and ground signals. They also do not show the multiplexing between
peripherals or the dedicated GPIOs. Please see
Part 2, Signal/Connection Descriptions,
to see which
signals are multiplexed with those of other peripherals.
Also shown in
Figure 1-2
are connections between the PWM, Timer C and ADC blocks. These
connections allow the PWM and/or Timer C to control the timing of the start of ADC conversions. The
Timer C channel indicated can generate periodic start (SYNC) signals to the ADC to start its conversions.
In another operating mode, the PWM load interrupt (SYNC output) signal is routed internally to the Timer
C input channel as indicated. The timer can then be used to introduce a controllable delay before
generating its output signal. The timer output then triggers the ADC. To fully understand this interaction,
please see the 56F8300 Peripheral User’s Manual for clarification on the operation of all three of these
peripherals.
56F8345 Technical Data, Rev. 17
12
Freescale Semiconductor
Preliminary

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