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MSC7119 Datenblatt(PDF) 49 Page - Freescale Semiconductor, Inc

Teilenummer MSC7119
Bauteilbeschribung  Low-Cost 16-bit DSP with DDR Controller and 10/100 Mbps Ethernet MAC
PDF  60 Pages
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Hersteller  FREESCALE [Freescale Semiconductor, Inc]
Direct Link  http://www.freescale.com
Logo FREESCALE - Freescale Semiconductor, Inc

MSC7119 Datenblatt(HTML) 49 Page - Freescale Semiconductor, Inc

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Hardware Design Considerations
MSC7119 Data Sheet, Rev. 8
Freescale Semiconductor
49
3.2.7
Power Supply Design
One of the most common ways to derive power is to use either a simple fixed or adjustable linear regulator. For the system I/O
voltage supply, a simple fixed 3.3 V supply can be used. However, a separate adjustable linear regulator supply for the core
voltage VDDC should be implemented. For the memory power supply, regulators are available that take care of all DDR power
requirements.
3.3
Estimated Power Usage Calculations
The following equations permit estimated power usage to be calculated for individual design conditions. Overall power is
derived by totaling the power used by each of the major subsystems:
PTOTAL = PCORE + PPERIPHERALS + PDDRIO + PIO + PLEAKAGE
Eqn. 3
This equation combines dynamic and static power. Dynamic power is determined using the generic equation:
C
× V2 × F × 10–3 mW
Eqn. 4
where,
C = load capacitance in pF
V = peak-to-peak voltage swing in V
F = frequency in MHz
3.3.1
Core Power
Estimation of core power is straightforward. It uses the generic dynamic power equation and assumes that the core load
capacitance is 750 pF, core voltage swing is 1.2 V, and the core frequency is 300 MHz. This yields:
PCORE = 750 pF × (1.2 V)
2
× 300 MHz × 10–3 = 324.0 mW
Eqn. 5
This equation allows for adjustments to voltage and frequency if necessary.
Table 33. Recommended Power Supply Ratings
Supply
Symbol
Nominal Voltage
Current Rating
Core
VDDC
1.2 V
1.5 A per device
Memory
VDDM
2.5 V
0.5 A per device
Reference
VREF
1.25 V
10 µA per device
I/O
VDDIO
3.3 V
1.0 A per device



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