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MPC950 bảng dữ liệu(PDF) 7 Page - Motorola, Inc

tên linh kiện MPC950
Giải thích chi tiết về linh kiện  LOW VOLTAGE PLL CLOCK DRIVER
PDF  13 Pages
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nhà sản xuất  MOTOROLA [Motorola, Inc]
Trang chủ  http://www.freescale.com
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MPC950 bảng dữ liệu(HTML) 7 Page - Motorola, Inc

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MPC950 MPC951
TIMING SOLUTIONS
BR1333 — Rev 6
7
MOTOROLA
MPC950
Figure 1. Dual Frequency Configuration
fsela
‘1’
fselb
‘1’
fselc
‘1’
fseld
‘0’
Input Ref
16.66MHz
66.66MHz
Qa
33.33MHz
Qb
33.33MHz
Qc
1
1
2
MPC950
Figure 2. Dual Frequency Configuration
‘1’
‘0’
‘0’
‘1’
Input Ref
33.33MHz
66.66MHz
Qa
66.66MHz
Qb
66.66MHz
Qc
1
1
2
FBsel
‘0’
FBsel
‘1’
fsela
fselb
fselc
fseld
66.66MHz
Qd
5
33.33MHz
Qd
5
MPC950
Figure 3. Dual Frequency Configuration
fsela
‘1’
fselb
‘1’
fselc
‘1’
fseld
‘1’
Input Ref
16.66MHz
66.66MHz
Qa
33.33MHz
Qb
33.33MHz
Qc
1
1
2
MPC950
Figure 4. Triple Frequency Configuration
‘0’
‘0’
‘1’
‘1’
Input Ref
20MHz
160MHz
Qa
80MHz
Qb
40MHz
Qc
1
1
2
FBsel
‘0’
FBsel
‘0’
fsela
fselb
fselc
fseld
33.33MHz
Qd
5
40MHz
Qd
5
MPC951
‘1’
‘0’
‘0’
‘0’
Input Ref
75MHz
Ext_FB
1
MPC951
‘0’
‘0’
‘0’
‘1’
Input Ref
25MHz
Ext_FB
1
fsela
fselb
fselc
fseld
fsela
fselb
fselc
fseld
75MHz
Qa
75MHz
Qb
75MHz
Qc
1
1
2
75MHz
Qd
5
Figure 5. “Zero” Delay Buffer
Figure 6. “Zero” Delay Frequency Multiplier
1
100MHz
Qa
50MHz
Qb
50MHz
Qc
1
1
2
25MHz
Qd
5
Jitter Performance of the MPC950/951
With the clock rates of today’s digital systems continuing
to increase more emphasis is being placed on clock
distribution design and management. Among the issues
being addressed is system clock jitter and how that affects
the overall system timing budget. The MPC950/951 was
designed to minimize clock jitter by employing a differential
bipolar PLL as well as incorporating numerous power and
ground pins in the design. The following few paragraphs will
outline the jitter performance of the MPC950/951, illustrate
the measurement limitations and provide guidelines to
minimize the jitter of the device.
The most commonly specified jitter parameter is
cycle–to–cycle jitter. Unfortunately with today’s high
performance measurement equipment there is no way to
measure this parameter for jitter performance in the class
demonstrated by the MPC950/951. As a result different
methods are used which approximate cycle–to–cycle jitter.
The typical method of measuring the jitter is to accumulate a
large number of cycles, create a histogram of the edge
placements and record peak–to–peak as well as standard
deviations of the jitter. Care must be taken that the measured
edge is the edge immediately following the trigger edge. If
this is not the case the measurement inaccuracy will add
significantly to the measured jitter. The oscilloscope cannot
collect adjacent pulses, rather it collects data from a very
large sample of pulses. It is safe to assume that collecting
pulse information in this mode will produce jitter values
somewhat larger than if consecutive cycles were measured,
therefore, this measurement will represent an upper bound of
cycle–to–cycle jitter. Most likely, this is a conservative
estimate of the cycle–to–cycle jitter.
There are two sources of jitter in a PLL based clock driver,
the commonly known random jitter of the PLL and the less
intuitive jitter caused by synchronous, different frequency
outputs switching. For the case where all of the outputs are



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