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MF-10KWXB Schematic ( PDF Datasheet ) - Mitsubishi Electric

Teilenummer MF-10KWXB
Beschreibung XFP Transceiver
Hersteller Mitsubishi Electric
Logo Mitsubishi Electric Logo 




Gesamt 1 Seiten
MF-10KWXB Datasheet, Funktion
MITSUBISHI ELECTRIC
Product Brief
MITSUBISHI OPTICAL DEVICES
MF-10KSXA Series
MF-10KWXB Series
10Gb/s, XFP Transceiver with DDM function for Telecommunication
DESCRIPTION
MF-10KSXA Series are compliant with XFP MSA, and
designed to provide high optical performance for SDH
I-64.1 / SONET SR-1 (2km) and IEEE 802.3ae LR
(10km), S-64.2b (40km), and G.951.1 P1L1-2D2 (80km).
Transmitter side uses 1310nm DFB for 10km, and
1550nm EM Laser for 40km and 80km with specified
driving circuit and signal conditioning circuit. Receiver
side uses PD or APD preamp-module and integrated
circuits for re-shaping, re-timing and re-generating input
optical signal.
MF-10KWXB Series is the first extended XFP (Double
width) which designed to provide high optical
performance for DWDM applications. Transmitter side
uses C-Band DFB Laser with Electrical-Absorption
modulatorwww.DataSheet4U.com with specified driving circuit and signal
conditioning circuit. The receiver detects the optical data
input via APD+TIA. The 40km and 80km are also
available in XFP-E model.
The both transmitter and receiver perform 3R
regeneration via a CDR through the 30-position
pluggable edge connector. Input and output signals
handle NRZ format.
FEATURES
Protocol Independent 10Gbps transceiver
Hot pluggable
Management interface compliant with I2C™ rev. 2
and XFP MSA
Multi rate from 9.95Gbps to 10.7 Gbps (FEC), and
target 11.09 Gbps
XFI compatible electrical interface thru 30pin
connector
APPLICATIONS
Metro access
Metro core
Wide Area Networks
New!
ORDERING INFORMATION
Standard XFP model (XFP)
Type number
Function
MF-10KSXA-004ZA
I-64 / LR
MF-10KSXA-005ZA
S-64.2b/ER
MF-10KSXA-006ZA
P1L1-2D2
Distance
2/10km
40km
80km
Extended XFP model (XFP-E)
Type number
Function
MF-10KWXB-002ZA***
DWDM
Distance
80km
Freq Center
Freq Center
Freq Center
code f(T Hz) λ(nm) code f(T Hz) λ(nm) code f(T Hz) λ(nm)
5 196.2 1528 37 194.6 1541 69 193 1553
7 196.1 1529 39 194.5 1541 71 192.9 1554
9 196 1530 41 194.4 1542 73 192.8 1555
11 195.9 1530 43 194.3 1543 75 192.7 1556
13 195.8 1531 45 194.2 1544 77 192.6 1557
15 195.7 1532 47 194.1 1545 79 192.5 1557
17 195.6 1533 49 194 1545 81 192.4 1558
19 195.5 1533 51 193.9 1546 83 192.3 1559
21 195.4 1534 53 193.8 1547 85 192.2 1560
23 195.3 1535 55 193.7 1548 87 192.1 1561
25 195.2 1536 57 193.6 1549 89 192 1561
27 195.1 1537 59 193.5 1549 91 191.9 1562
29 195 1537 61 193.4 1550 93 191.8 1563
31 194.9 1538 63 193.3 1551 95 191.7 1564
33 194.8 1539 65 193.2 1552 97 191.6 1565
35 194.7 1540 67 193.1 1553 99 191.5 1565
Example : If you choose Wavelength code 005, MIT SUBISHI Part
Caluculat io n :
[Frequency:T Hz]=-0.05*[Wavelength code]+196.45
[W avelengt h:nm]=c/f=299792.458/(196.45-0.05*[W avelengt h





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