MPC8360EVVALFHA Freescale Semiconductor, MPC8360EVVALFHA Datasheet - Page 100

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MPC8360EVVALFHA

Manufacturer Part Number
MPC8360EVVALFHA
Description
IC MPU POWERQUICC II PRO 740TBGA
Manufacturer
Freescale Semiconductor
Series
PowerQUICC II PROr
Datasheet

Specifications of MPC8360EVVALFHA

Processor Type
MPC83xx PowerQUICC II Pro 32-Bit
Speed
667MHz
Voltage
1.3V
Mounting Type
Surface Mount
Package / Case
740-TBGA
Core Size
32 Bit
Program Memory Size
64KB
Cpu Speed
667MHz
Embedded Interface Type
I2C, SPI, USB, UART
Digital Ic Case Style
TBGA
No. Of Pins
740
Rohs Compliant
Yes
Family Name
MPC83xx
Device Core
PowerQUICC II Pro
Device Core Size
32b
Frequency (max)
667MHz
Instruction Set Architecture
RISC
Supply Voltage 1 (typ)
1.3V
Operating Supply Voltage (max)
1.35V
Operating Supply Voltage (min)
1.25V
Operating Temp Range
0C to 70C
Operating Temperature Classification
Commercial
Mounting
Surface Mount
Pin Count
740
Package Type
TBGA
For Use With
MPC8360EA-MDS-PB - KIT APPLICATION DEV 8360 SYSTEMMPC8360E-RDK - BOARD REFERENCE DESIGN FOR MPC
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Features
-
Lead Free Status / Rohs Status
Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
MPC8360EVVALFHA
Manufacturer:
Freescale Semiconductor
Quantity:
10 000
Part Number:
MPC8360EVVALFHA
Manufacturer:
FREESCALE
Quantity:
20 000
Thermal
R
change the case-to-ambient thermal resistance, R
sink, the airflow around the device, the interface material, the mounting arrangement on printed-circuit
board, or change the thermal dissipation on the printed-circuit board surrounding the device.
To illustrate the thermal performance of the devices with heat sinks, the thermal performance has been
simulated with a few commercially available heat sinks. The heat sink choice is determined by the
application environment (temperature, airflow, adjacent component power dissipation) and the physical
space available. Because there is not a standard application environment, a standard heat sink is not
required.
Table 78
AAVID 30 × 30 × 9.4 mm pin fin
AAVID 30 × 30 × 9.4 mm pin fin
AAVID 30 × 30 × 9.4 mm pin fin
AAVID 31 × 35 × 23 mm pin fin
AAVID 31 × 35 × 23 mm pin fin
AAVID 31 × 35 × 23 mm pin fin
Wakefield, 53 × 53 × 25 mm pin fin
Wakefield, 53 × 53 × 25 mm pin fin
Wakefield, 53 × 53 × 25 mm pin fin
MEI, 75 × 85 × 12 no adjacent board, extrusion
MEI, 75 × 85 × 12 no adjacent board, extrusion
MEI, 75 × 85 × 12 no adjacent board, extrusion
MEI, 75 × 85 × 12 mm, adjacent board, 40 mm side bypass
Accurate thermal design requires thermal modeling of the application environment using computational
fluid dynamics software which can model both the conduction cooling and the convection cooling of the
air moving through the application. Simplified thermal models of the packages can be assembled using the
junction-to-case and junction-to-board thermal resistances listed in the thermal resistance table. More
detailed thermal models can be made available on request.
100
θ
JC
MPC8360E/MPC8358E PowerQUICC II Pro Processor Revision 2.x TBGA Silicon Hardware Specifications, Rev. 4
is device related and cannot be influenced by the user. The user controls the thermal environment to
R
R
θ
θ
shows heat sinks and junction-to-ambient thermal resistance for TBGA package.
JC
CA
Table 78. Heat Sinks and Junction-to-Ambient Thermal Resistance of TBGA Package
Heat Sink Assuming Thermal Grease
= junction-to-case thermal resistance (°C/W)
= case-to-ambient thermal resistance (°C/W)
θ
CA
. For instance, the user can change the size of the heat
Natural convention
Natural convention
Natural convention
Natural convention
Airflow
1 m/s
2 m/s
1 m/s
2 m/s
1 m/s
2 m/s
1 m/s
2 m/s
1 m/s
Freescale Semiconductor
Junction-to-Ambient
Thermal Resistance
35 × 35 mm TBGA
10.7
6.2
5.3
8.1
4.4
3.7
5.4
3.2
2.4
6.4
3.8
2.5
2.8

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