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Automating Manufacturing Systems - Process Control and ...

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plc electrical - 31.13<br />

31.2.4 Suppressors<br />

Most of us have seen a V<strong>and</strong>egraaf generator, or some other inductive device that<br />

can generate large sparks using inductive coils. On the factory floor there are some massive<br />

inductive loads that make this a significant design problem. This includes devices<br />

such as large motors <strong>and</strong> inductive furnaces. The root of the problem is that coils of wire<br />

act as inductors <strong>and</strong> when current is applied they build up magnetic fields, requiring<br />

energy. When the applied voltage is removed <strong>and</strong> the fields collapse the energy is dumped<br />

back out into the electrical system. As a result, when an inductive load is turned on it<br />

draws an excess amount of current (<strong>and</strong> lights dim), <strong>and</strong> when it is turn it off there is a<br />

power surge. In practical terms this means that large inductive loads will create voltage<br />

spikes that will damage our equipment.<br />

Surge suppressors can be used to protect equipment from voltage spikes caused by<br />

inductive loads. Figure 31.11 shows the schematic equivalent of an uncompensated inductive<br />

load. For this to work reliably we would need to over design the system above the<br />

rated loads. The second schematic shows a technique for compensating for an AC inductive<br />

load using a resistor capacitor pair. It effectively acts as a high pass filter that allows a<br />

high frequency voltage spike to be short circuited. The final surge suppressor is common<br />

for DC loads. The diode allows current to flow from the negative to the positive. If a negative<br />

voltage spike is encountered it will short circuit through the diode.

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