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LTC488CS 데이터 시트보기 (PDF) - Linear Technology

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LTC488CS
Linear
Linear Technology Linear
LTC488CS Datasheet PDF : 12 Pages
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LTC488/LTC489
SWITCHI G TI E WAVEFOR S
VOD2
INPUT
A, B
–VOD2
VOH
RO
VOL
INPUT
f = 1MHz; tr 10ns; tf 10ns
0V
tPHL
1.5V
0V
tPLH
1.5V
488/9 F03
Figure 3. Receiver Propagation Delays
3V
EN OR
EN12
0V
5V
RO
VOL
VOH
RO
0V
f = 1MHz; tr 10ns; tf 10ns
1.5V
1.5V
tZL
tLZ
1.5V OUTPUT NORMALLY LOW
tZH
tHZ
OUTPUT NORMALLY HIGH
1.5V
0.5V
0.5V
488/9 F04
Figure 4. Receiver Enable and Disable Times
APPLICATI S I FOR ATIO
Typical Application
A typical connection of the LTC488/LTC489 is shown in
Figure 5. Two twisted-pair wires connect up to 32 driver/
receiver pairs for half-duplex data transmission. There are
no restrictions on where the chips are connected to the
wires, and it isn’t necessary to have the chips connected
at the ends. However, the wires must be terminated only
at the ends with a resistor equal to their characteristic
impedance, typically 120. The input impedance of a
receiver is typically 20k to GND, or 0.5 unit RS485 load, so
in practice 50 to 60 transceivers can be connected to the
same wires. The optional shields around the twisted-pair
help reduce unwanted noise, and are connected to GND at
one end.
Cables and Data Rate
The transmission line of choice for RS485 applications is
a twisted-pair. There are coaxial cables (twinaxial) made
for this purpose that contain straight-pairs, but these are
less flexible, more bulky, and more costly than twisted-
pairs. Many cable manufacturers offer a broad range of
120cables designed for RS485 applications.
Losses in a transmission line are a complex combination
of DC conductor loss, AC losses (skin effect), leakage, and
AC losses in the dielectric. In good polyethylene cable
such as the Belden 9841, the conductor losses and dielec-
tric losses are of the same order of magnitude, leading to
relatively low overall loss (Figure 6).
6

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