background image

19

expressed as a percentage. With the

transmitter driven by a 25 MBd
(12.5 MHz square-wave) input
signal, the average optical power is
measured. The data “1” peak power
is then calculated by adding 3dB to
the measured average optical power.
The data “0” output optical power is
found by measuring the optical
power when the transmitter is
driven by a logic “0” input. The
extinction ratio is the ratio of the
optical power at the “0” level
compared to the optical power at the
“1” level expressed as a percentage
or in decibels.

11. The transmitter will provide this low

level of Output Optical Power when
driven by a logic “0” input. This can
be useful in link troubleshooting.

12. The relationship between Full Width

Half Maximum and RMS values for
Spectral Width is derived from the
assumption of a Gaussian shaped
spectrum which results in a 2.35 X
RMS = FWHM relationship.

13. The optical rise and fall times are

measured from 10% to 90% when
the transmitter is driven by a 25
MBd (12.5 MHz square-wave) input
signal. The ANSI T1E1.2 committee
has designated the possibility of
defining an eye pattern mask for the
transmitter optical output as an
item for further study. Agilent will
incorporate this requirement into
the specifications for these products
if it is defined. The HFBR-5204 and
HFBR-5205 products typically
comply with the template require-
ments of CCITT (now ITU-T) G.957
Section 3.2.5, Figure 2 for the STM-
1 rate, excluding the optical receiver
filter normally associated with
single mode fiber measurements
which is the likely source for the
ANSI T1E1.2 committee to follow in
this matter.

14. Systematic Jitter contributed by the

transmitter is defined as the com-
bination of Duty Cycle Distortion
and Data Dependent Jitter.
Systematic Jitter is measured at
50% threshold using a 155.52 MBd
(77.5 MHz square-wave), 2

7

 - 1

psuedorandom data pattern input
signal.

15. Random Jitter contributed by the

transmitter is specified with a
155.52 MBd (77.5 MHz square-
wave) input signal.

16. This specification is intended to

indicate the performance of the
receiver section of the transceiver
when Input Optical Power signal
characteristics are present per the
following definitions. The Input
Optical Power dynamic range from
the minimum level (with a window
time-width) to the maximum level is
the range over which the receiver is
guaranteed to provide output data
with a Bit Error Ratio (BER) better
than or equal to 1 x 10

-10

.

• At the Beginning of Life (BOL)
• Over the specified operating

temperature and voltage ranges

• Input is a 155.52 MBd, 2

23

 - 1

PRBS data pattern with 72 “1”s
and 72 “0”s inserted per the
CCITT (now ITU-T) recommenda-
tion G.958 Appendix I.

• Receiver data window time-width

is 1.23 ns or greater for the clock
recovery circuit to operate in. The
actual test data window time-
width is set to simulate the effect
of worst case optical input jitter
based on the transmitter jitter
values from the specification
tables. The test window time-
widths are as follows: HFBR-5203
is 4.4ns, HFBR-5205 and HFBR-
5204 are 3.32 ns.

• Transmitter operating with a

155.52 MBd, 77.5 MHz square-
wave, input signal to simulate
any cross-talk present between
the transmitter and receiver
sections of the transceiver.

17. All conditions of Note 16 apply except

that the measurement is made at
the center of the symbol with no
window time-width.

18. Systematic Jitter contributed by the

receiver is defined as the combina-
tion of Duty Cycle Distortion and
Data Dependent Jitter. Systematic
Jitter is measured at 50% threshold
using a 155.52 MBd (77.5 MHz
square-wave), 2

7

 - 1 psuedorandom

data pattern input signal.

19. Random Jitter contributed by the

receiver is specified with a 155.52
MBd (77.5 MHz square-wave) input
signal.

20. This value is measured during the

transition from low to high levels of
input optical power.

21. This value is measured during the

transition from high to low levels of
input optical power.

22. The Signal Detect output shall be

asserted within 100 

µ

s after a step

increase of the Input Optical Power.

23. Signal detect output shall be de-

asserted within 350 

µ

s after a step

decrease in the Input Optical Power.

24. The HFBR-5205 transceiver

complies with the requirements for
the tradeoffs between center wave-
length, spectral width, and rise/fall
times shown in Figure 9. This figure
is derived from the FDDI PMD
standard (ISO/IEC 9314-3 : 1990
and ANSI X3.166 - 1990) per the
description in ANSI T1E1.2 Revision
3. The interpretation of this figure is
that values of Center Wavelength
and Spectral Width must lie along
the appropriate Optical Rise/Fall
Time curve.

Содержание HFBR 5203

Страница 1: ...ecification This physical layer is defined in the ATM Forum User Network Inter face UNI Specification Version 3 0 This document references the ANSI T1E1 2 specification for the details of the interface for 2000 meter multimode fiber backbone links Selected versions of these transceivers may be used to implement the ATM Forum UNI Physical Layer Interface at the 155 Mbps 194 MBd rate The ATM 100 Mbp...

Страница 2: ...l understanding and design trade offs associated with these transceivers You can con tact them through your Agilent sales representative Figure 1 Block Diagram DATA OUT SIGNAL DETECT OUT DATA IN ELECTRICAL SUBASSEMBLY QUANTIZER IC DRIVER IC TOP VIEW PIN PHOTODIODE DUPLEX SC RECEPTACLE OPTICAL SUBASSEMBLIES LED PREAMP IC DIFFERENTIAL SINGLE ENDED DIFFERENTIAL uses a low cost 800 nm AlGaAs LED These...

Страница 3: ...S PLUG 12 70 0 500 25 40 1 000 MAX 12 70 0 500 10 35 0 407 MAX 0 25 0 05 0 010 0 002 3 30 0 38 0 130 0 015 HFBR 5XXX DATE CODE YYWW SINGAPORE 2 92 0 115 18 52 0 729 4 14 0 163 20 32 0 800 8x 2 54 100 23 55 0 927 16 70 0 657 17 32 0 682 20 32 0 800 23 32 0 918 0 46 0 018 NOTE 1 9x ø NOTE 1 0 87 0 034 23 24 0 915 15 88 0 625 NOTE 1 THE SOLDER POSTS AND ELECTRICAL PINS ARE PHOSPHOR BRONZE WITH TIN LE...

Страница 4: ... CODE YYWW SINGAPORE 3 2 0 126 2 6 0 102 φ 22 86 0 900 20 32 0 800 8x 2 54 0 100 17 4 0 685 21 4 0 843 20 32 0 800 3 6 0 142 1 3 0 051 23 38 0 921 18 62 0 733 NOTE 1 PHOSPHOR BRONZE IS THE BASE MATERIAL FOR THE POSTS PINS WITH TIN LEAD OVER NICKEL PLATING DIMENSIONS IN MILLIMETERS INCHES 0 46 0 022 NOTE 1 φ 1 VEE 2 RD 3 RD 4 SD 5 VCC 6 VCC 7 TD 8 TD 9 VEE TOP VIEW N C N C Figure 2a ST Package Outl...

Страница 5: ...e reciprocal of the symbol time Data rate bits sec is the symbol rate divided by the encoding factor used to encode the data symbols bit When used in 155 Mbps SONET OC 3 applications the perform ance of the 1300 nm transceivers HFBR 5204 5205 is guaranteed to the full conditions listed in individual product specification tables The transceivers may be used for other applications at signaling rates...

Страница 6: ...th either industry standard wave or hand solder processes Shipping Container The transceiver is packaged in a shipping container designed to The jitter specifications stated in the following 1300 nm transceiver specification tables are derived from the values in Table B1 of Annex B They represent the worst case jitter contribution that the transceivers are allowed to make to the overall system jit...

Страница 7: ...nd Planes It is important to take care in the layout of your circuit board to achieve optimum performance from these transceivers Figure 7 provides a good example of a schematic for a power supply decoupling circuit that works well with these parts It is further recommended that a contiguous ground plane be provided in the circuit board directly under the transceiver to provide a low inductance gr...

Страница 8: ...e various international regulations governing certification of Infor mation Technology Equipment See the Regulatory Compliance Table for details Additional information is available from your Agilent sales representative Electrostatic Discharge ESD There are two design cases in which immunity to ESD damage is important The first case is during handling of the transceiver prior to mounting it on the...

Страница 9: ...assis the duplex ST 1x9 transceiver emissions will be identical to the duplex SC 1x9 transceiver emissions Immunity Equipment utilizing these trans ceivers will be subject to radio frequency electromagnetic fields in some environments These transceivers have a high immunity to such fields For additional information regard ing EMI susceptibility ESD and conducted noise testing proce dures and resul...

Страница 10: ...he noted VCCI Class 2 standard limits when tested at a certified test range with the transceiver mounted to a circuit card without a chassis enclosure Immunity Variation of IEC 801 3 Typically show no measurable effect from a 10 V m field swept from 10 to 450 MHz applied to the transceiver when mounted to a circuit card without a chassis enclosure RELATIVE INPUT OPTICAL POWER dB 0 EYE SAMPLING TIM...

Страница 11: ...n kits for the 1x9 transceivers The purpose of these kits is to provide the necessary materials to evaluate the perform ance of the HFBR 520X family in a pre existing 1x13 or 2x11 pinout system design configura tion or when connectored to various test equipment 1 HFBR 0305 ATM Evaluation Kit This kit consists of one HFBR 5205 one 1 x 13 to 1 x 9 pin out adapter card and one three meter duplex SC t...

Страница 12: ... Data Input Voltage High VIH VCC 1 165 0 880 V Data and Signal Detect Output Load RL 50 Ω Note 2 HFBR 5203 5204 and 5205 Series Absolute Maximum Ratings Parameter Symbol Min Typ Max Unit Reference Storage Temperature TS 40 100 C Lead Soldering Temperature TSOLD 260 C Lead Soldering Time tSOLD 10 sec Supply Voltage VCC 0 5 7 0 V Data Input Voltage VI 0 5 VCC V Differential Input Voltage VD 1 4 V No...

Страница 13: ...ll Time tf 0 35 2 2 ns Note 7 Signal Detect Output Voltage Low VOL VCC 1 840 1 620 V Note 6 Signal Detect Output Voltage High VOH VCC 1 045 0 880 V Note 6 Signal Detect Output Rise Time tr 0 35 2 2 ns Note 7 Signal Detect Output Fall Time tf 0 35 2 2 ns Note 7 Agilent offers two such compatible Duplex SC connec tored jumper cable assemblies to assist you in the evaluation of these transceiver prod...

Страница 14: ...oducts These cables may be purchased from Agilent with the following part numbers 1 HFBR XXX001 A duplex cable 1 meter long assembled with 62 5 125 µm fiber and Duplex Push Pull ST connector plugs on both ends 2 HFBR XXX010 A duplex cable 10 meters long assembled with 62 5 125 µm fiber and Duplex Push Pull ST connector plugs on both ends ...

Страница 15: ...t Hysteresis PA PD 1 5 dB Signal Detect Assert Time 0 100 µs Note 22 off to on Signal Detect Deassert Time 0 350 µs Note 23 on to off HFBR 5203 5203T Transmitter Optical Characteristics TA 0 C to 70 C VCC 4 75 V to 5 25 V Parameter Symbol Min Typ Max Unit Reference Output Optical Power BOL PO 17 12 dBm avg Note 9 62 5 125 µm NA 0 275 Fiber EOL 20 Output Optical Power BOL PO 20 8 12 dBm avg Note 9 ...

Страница 16: ...ct Hysteresis PA PD 1 5 dB Signal Detect Assert Time 0 55 100 µs Note 22 off to on Signal Detect Deassert Time 0 110 350 µs Note 23 on to off HFBR 5204 5204T Transmitter Optical Characteristics TA 0 C to 70 C VCC 4 75 V to 5 25 V Parameter Symbol Min Typ Max Unit Reference Output Optical Power BOL PO 21 14 dBm avg Note 8 62 5 125 µm NA 0 275 Fiber EOL 22 Output Optical Power BOL PO 24 5 14 dBm avg...

Страница 17: ... 23 5 Optical Extinction Ratio 0 001 0 03 Note 10 50 35 dB Output Optical Power at PO 0 45 dBm avg Note 11 Logic 0 State Center Wavelength λC 1270 1310 1380 nm Note 24 Figure 9 Spectral Width FWHM λ 137 nm Note 24 nm RMS 58 nm RMS Figure 9 Optical Rise Time tr 0 6 1 0 3 0 ns Note 12 24 Figure 9 Optical Fall Time tf 0 6 2 1 3 0 ns Note 12 24 Figure 9 Systematic Jitter Contributed SJ 0 04 1 2 ns p p...

Страница 18: ... dissipation is calcu lated as the sum of the products of supply voltage and currents minus the sum of the products of the output voltagesandcurrents 6 This value is measured with respect to VCC with the output terminated into 50 Ω connected to VCC 2 V 7 The output rise and fall times are measured between 20 and 80 levels with the output connected to VCC 2 V through 50 Ω 8 These optical power valu...

Страница 19: ...put Optical Power dynamic range from the minimum level with a window time width to the maximum level is the range over which the receiver is guaranteed to provide output data with a Bit Error Ratio BER better than or equal to 1 x 10 10 At the Beginning of Life BOL Over the specified operating temperature and voltage ranges Input is a 155 52 MBd 223 1 PRBS data pattern with 72 1 s and 72 0 s insert...

Страница 20: ...www semiconductor agilent com Data subject to change Copyright 1999 Agilent Technologies Inc Obsoletes 5963 5774E 2 95 5965 9729E 11 99 ...

Отзывы: