HC55171BIM INTERSIL [Intersil Corporation], HC55171BIM Datasheet - Page 6

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HC55171BIM

Manufacturer Part Number
HC55171BIM
Description
Low Cost 5 REN Ringing SLIC for ISDN Modem/TA and WL
Manufacturer
INTERSIL [Intersil Corporation]
Datasheet
Through SLIC Ringing
The HC55171B uses linear amplification to produce the
ringing signal. As a result the ringing SLIC can produce sinu-
soid, trapezoid or square wave ringing signals. Regardless of
the wave shape, the ringing signal is balanced. The balanced
waveform is another way of saying that the tip and ring DC
potentials are the same during ringing.
Trapezoidal Ringing
The trapezoidal ringing waveform provides a larger RMS
voltage to the handset. Larger RMS voltages to the handset
provide more power for ringing and also increase the loop
length supported by the ringing SLIC.
One set of component values will satisfy the entire ringing
loop range of the SLIC. A single resistor sets the open circuit
RMS ringing voltage, which will set the crest factor of the
ringing waveform. The crest factor of the HC55171B ringing
waveform is independent of the ringing load (REN) and the
loop length. Another robust feature of the HC55171B ringing
SLIC is the ring trip detector circuit. The suggested values for
the ring trip detector circuit cover quite a large range of
applications.
The assumptions used to design the trapezoidal ringing
application circuit are listed below:
• Loop current limit set to 25mA.
• Impedance matching is set to 600 resistive.
• 2-wire surge protection is not required.
• System able to monitor RTD and SHD.
Logic ringing signal is used to drive RC trapezoid network.
2-Wire to 4-Wire Gain
4-Wire To 2-wire Gain
4-Wire To 4-wire Gain
Loop Current Limit Programming
Impedance Matching
FUNCTION
Circuit Operation and Design Information
68
V
------------------ -
V
OUT1
RX
I
SLIC DESIGN EQUATIONS
V
----------- -
V
LIMIT
=
V
------------------ -
2W
RX
R
V
OUT1
ZO
2W
2
R
=
RF
=
=
EQUATION
---------------------------------- -
Z
HC55171B
2
------------------------------------------------- -
2W
=
K
0.6 R
=
Z
K 200 2
---------------------------------- -
Z
+
200xR
2W
Z
---------- -
Z
200
2W
Z
2W
2w
SLIC
IL1
Z
+
2W
Z
+
IL2
100
R
----------- -
R
SLIC
Crest Factor Programming
As previously mentioned, a single resistor is required to set
the crest factor of the trapezoidal waveform. The only design
variable in determining the crest factor is the battery voltage.
The battery voltage limits the peak signal swing and
therefore directly determines the crest factor.
A set of tables will be provided to allow selection of the crest
factor setting resistor. The tables will include crest factors
below the Bellcore minimum of 1.2 since many ringing SLIC
applications are not constrained by Bellcore requirements.
TABLE 1. CREST FACTOR PROGRAMMING RESISTOR FOR
The RMS voltage listed in the table is the open circuit RMS
voltage generated by the SLIC.
TABLE 2. CREST FACTOR PROGRAMMING RESISTOR FOR
R
ZO
RF
IL2
----------- -
Z
R
R
200
389
640
500
791
2W
TRAP
TRAP
0
0
R
----------- -
R
ZO
RF
V
V
BAT
BAT
1.10
1.15
1.20
1.10
1.15
1.20
CF
CF
V
V
Z
V
V
Z
Z
V
V
Z
Z
I
R
R
Z
K = 100
LIMIT
= -80V
= -75V
OUT1
2W
2W
SLIC
OUT1
2W
SLIC
2W
2w
2W
RX
RX
IL1
IL2
= Voltage across 2-wire load
= SLIC 4-Wire Input
= SLIC 4-Wire Input
= 2-Wire Impedance
= 2-Wire Impedance
= 2-Wire Impedance
= Programming Resistor
= Programming Resistor
= 2-Wire Impedance
= Voltage Across 2-Wire Load
= Programmed Loop Current Limit
= SLIC Synthesized Impedance
= SLIC Synthesized Impedance
= SLIC 4-wire Output
= SLIC 4-Wire Output
DEFINITION OF TERMS
RMS
RMS
65.0
62.6
60.0
60.9
58.3
55.9
R
R
1095
1010
1190
1334
825
964
TRAP
TRAP
1.25
1.30
1.35
1.25
1.30
1.35
CF
CF
RMS
RMS
57.6
55.4
53.3
53.7
51.6
49.7

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