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How Does an OTDR Work |
How Does an OTDR work?
Unlike sources and power meters,
which measure the loss of the fibre optic cable plant directly,
the OTDR works indirectly. The source and meter duplicate the
transmitter and receiver of the fibre optic transmission link,
so the measurement correlates well with actual system loss. The
OTDR, however, uses unique phenomena of fibre to imply loss. ![]() Figure 1 Scattering in an Optical Fibre In the fibre, light is scattered in all directions, including back toward the source as shown in Figure 1. The OTDR uses this "backscattered light" to make its measurements. It sends out a very high power pulse and measures the light coming back. At any point in time, the light the OTDR sees is the light scattered from the pulse passing through a region of the fibre. Think of the OTDR pulse as being a "virtual source" that is testing all the fibre between itself and the OTDR as it moves down the fibre. Since it is possible to calibrate the speed of the pulse as it passes down the fibre, the OTDR can correlate what it sees in backscattered light with an actual location in the fibre. Thus it can create a display of the amount of backscattered light at any point in the fibre, Figure 2. ![]() Figure 2 OTDR Display There are some calculations involved.
Remember the light has to go out and come back, so you have to
factor that into the time calculations, cutting the time in half
and the loss calculations, since the light sees loss both ways.
The power loss is a logarithmic function, so the power is measured
in dB. ![]() Figure 3 Increasing the pulse width increases the backscatter level Note on the display shown in Figure 2, some events like connectors show a big pulse above the backscatter trace. That is a reflection from a connector, splice or the end of the fibre. They can be used to mark distances or even calculate the "back reflection" of connectors or splices, another parameter we want to test in singlemode systems. |
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