Boost converter inductor discharging question

AI Thread Summary
Boost converters utilize inductors to increase voltage by storing energy and releasing it when the switch opens. During discharging, if the load does not draw enough current, the regulator prevents further switching cycles, causing inductor current to potentially drop to zero. Without a reservoir capacitor, the load voltage can pulse and may drop to zero when the inductor discharges fully, reaching a steady state where the inductor voltage becomes zero. The total input current during discharging consists of both inductor and source current, which are in series after the switch opens. Understanding these dynamics is crucial for effective boost converter design and operation.
TheRedDevil18
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I'm reading up on boost converters and so far I understand that it basically uses the inductor as a source together with the actual supply voltage to boost the voltage. During the discharging period, why would the current (if allowed to) drop to zero ?, wouldn't the supply or battery still be supplying current to the load ?

Source
https://en.wikipedia.org/wiki/Boost_converter
 
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The output reservoir capacitor receives a flow of charge through the inductor each time the switch opens. If the load does not draw sufficient current to pull the output voltage back down below the regulated voltage, then the regulator will prevent another switching cycle until it does. The current through the inductor may then fall to zero while waiting.
The situation can also occur when charging a battery from a low voltage supply.
 
Were you to keep the switch OPEN for a long time, then inductor current would reach a fixed value. With steady current the voltage across the inductor will be zero, meaning the voltage across the load would be equal to the voltage output by the supply: hence, no voltage boost!

By switching the coil to ground at judiciously-chosen intervals, the coil generates a boosted voltage across the load. In the arrangement shown, with no capacitor, the load voltage will be delivered as a pulsed voltage, the pulses separated by drops to zero volts.

In operation, with a fixed load, the inductor current will be found to be approximately constant, only.
 
NascentOxygen said:
Were you to keep the switch OPEN for a long time, then inductor current would reach a fixed value. With steady current the voltage across the inductor will be zero, meaning the voltage across the load would be equal to the voltage output by the supply: hence, no voltage boost!

So when the inductor is discharging the total input current is inductor current + source current ?

NascentOxygen said:
In the arrangement shown, the load voltage will be delivered as a pulsed voltage, the pulses separated by drops to zero volts

Why would the load voltage drop to zero ?, when the switch is closed the capacitor will try to maintain a constant voltage to the load as long as it is large enough and charges when the switch is open which creates the ripple ?
 
TheRedDevil18 said:
So when the inductor is discharging the total input current is inductor current + source current ?
Inductor current is 'equal to' source current. They are in series after the switch is opened.
Output voltage=inductor voltage+source voltage, which is more than the source voltage. Hence the name 'boost' converter.
TheRedDevil18 said:
Why would the load voltage drop to zero
NO is referring to the circuit diagram in the wiki article which doesn't have a capacitor.
 
TheRedDevil18 said:
So when the inductor is discharging the total input current is inductor current + source current

In the circuit you linked to, the load current is the inductor current while ever the diode is conducting.

TheRedDevil18 said:
Why would the load voltage drop to zero ?, when the switch is closed the capacitor

There is no reservoir capacitor shown in the schematic you referenced.
 
Thanks for the replies. From what I understand now is that when the load is connected (switch open), the current in the circuit drops (more resistance) but because of the inductor it prevents the instantaneous drop in current but if it where allowed to fully discharge then it would reach steady state current and because there is no di/dt then the inductor voltage is zero, correct ?
 
TheRedDevil18 said:
Thanks for the replies. From what I understand now is that when the load is connected (switch open), the current in the circuit drops (more resistance) but because of the inductor it prevents the instantaneous drop in current but if it where allowed to fully discharge then it would reach steady state current and because there is no di/dt then the inductor voltage is zero, correct ?
That would happen, yes.
 
Ok thanks
 

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