MC56F8002VWL Freescale Semiconductor, MC56F8002VWL Datasheet - Page 36

DSC 12K FLASH 32MHZ 28-SOIC

MC56F8002VWL

Manufacturer Part Number
MC56F8002VWL
Description
DSC 12K FLASH 32MHZ 28-SOIC
Manufacturer
Freescale Semiconductor
Series
56F8xxxr
Datasheet

Specifications of MC56F8002VWL

Core Processor
56800
Core Size
16-Bit
Speed
32MHz
Connectivity
I²C, LIN, SCI, SPI
Peripherals
LVD, POR, PWM, WDT
Number Of I /o
23
Program Memory Size
12KB (6K x 16)
Program Memory Type
FLASH
Ram Size
1K x 16
Voltage - Supply (vcc/vdd)
1.8 V ~ 3.6 V
Data Converters
A/D 15x12b
Oscillator Type
Internal
Operating Temperature
-40°C ~ 105°C
Package / Case
28-SOIC
Product
DSCs
Data Bus Width
16 bit
Processor Series
MC56F80xx
Core
56800E
Instruction Set Architecture
Dual Harvard
Device Million Instructions Per Second
32 MIPs
Maximum Clock Frequency
32 MHz
Number Of Programmable I/os
40
Data Ram Size
2 KB
Operating Supply Voltage
1.8 V to 3.6 V
Maximum Operating Temperature
+ 105 C
Mounting Style
SMD/SMT
Development Tools By Supplier
MC56F8006DEMO, APMOTOR56F8000E
Interface Type
LIN, I2C, SCI, SPI
Minimum Operating Temperature
- 40 C
For Use With
APMOTOR56F8000E - KIT DEMO MOTOR CTRL SYSTEM
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Eeprom Size
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

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General System Control Information
6.4.4
The recommended method of connecting an external clock is illustrated in
to GPIOB6/RXD/SDA/ANA13 and CMP0_P2/CLKIN while EXT_SEL bit in OSCTL register is set and corresponding bits in
GPIOB_PER register GPIO module and GPSB1 register in the system integration module (SIM) are set to the correct values.
The external clock input must be generated using a relatively low impedance driver with maximum frequency not greater than
64 MHz.
6.5
The 56F8006/56F8002 interrupt controller (INTC) module arbitrates the various interrupt requests (IRQs). The INTC signals
to the 56800E core when an interrupt of sufficient priority exists and what address to jump to to service this interrupt.
The interrupt controller contains registers that allow up to three interrupt sources to be set to priority level 1 and other up to
three interrupt sources to be set to priority level 2. By default, all peripheral interrupt sources are set to priority level 0. Next,
all of the interrupt requests of a given level are priority encoded to determine the lowest numeric value of the active interrupt
requests for that level. Within a given priority level, the lowest vector number is the highest priority and the highest vector
number is the lowest.
The highest vector number, a user assignable vector USER6 (vector 50), can be defined as a fast interrupt if the instruction
located in this vector location is not a JSR or BSR instruction. Please see section 9.3.3.3 of DSP56800E 16-Bit Core Reference
Manual for detail.
6.6
The SIM module is a system catchall for the glue logic that ties together the system-on-chip. It controls distribution of resets
and clocks and provides a number of control features including the pin muxing control; inter-module connection control (for
example connecting comparator output to PWM fault input); individual peripheral enable/disable; PWM, timer, and SCI clock
rate control; enabling peripheral operation in stop mode; port configuration overwrite protection. For further information, see
the MC56F8006 Peripheral Reference Manual.
The SIM is responsible for the following functions:
36
Chip reset sequencing
Core and peripheral clock control and distribution
Stop/wait mode control
System status control
Interrupt Controller
System Integration Module (SIM)
Alternate External Clock Input
EXT_SEL = 1;
GPIO_B_PER[6] = 0;
GPS_B6 = 11
Figure 12. Connecting an External Clock Signal Using XTAL
Figure 13. Connecting an External Clock Signal Using GPIO
CLK_MOD = 1
MC56F8006/MC56F8002 Digital Signal Controller, Rev. 3
External Clock
(<50 MHz)
GPIOB6/RXD/SDA/ANA13 and CMP0_P2/CLKIN
XTAL
56F8006/56F8002
External Clock ( 64 MHz)
56F8002/56F8006
Figure
GND or GPIO
EXTAL
13. The external clock source is connected
Freescale Semiconductor

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