circuitmangler
Computer
- Jul 5, 2003
- 28
Hi,
I have a device which operates off of a 9V battery, and I'm investigating removing the need for a power switch as follows: the device has an earphone jack, and so I was thinking of using the shunt lead of the jack (which is grounded when no plug is inserted and is an open circuit otherwise) to switch power on and off.
The device typically draws about 15mA. One idea that seems to be working is to use a 2n7000 with the gate pulled up by a 10 M resistor so that the stand-by current is about 1 uA. The shunt lead is also connected to the gate so that FET conducts when an earphone is plugged in. The FET's drain then becomes the GND for the rest of the circuit.
Questions: is this a reasonable way to do this? Is there a better device or method I should use? And is there a way to even further reduce the stand-by current (just use a bigger pull-up and what are the limits?)
Thanks!
I have a device which operates off of a 9V battery, and I'm investigating removing the need for a power switch as follows: the device has an earphone jack, and so I was thinking of using the shunt lead of the jack (which is grounded when no plug is inserted and is an open circuit otherwise) to switch power on and off.
The device typically draws about 15mA. One idea that seems to be working is to use a 2n7000 with the gate pulled up by a 10 M resistor so that the stand-by current is about 1 uA. The shunt lead is also connected to the gate so that FET conducts when an earphone is plugged in. The FET's drain then becomes the GND for the rest of the circuit.
Questions: is this a reasonable way to do this? Is there a better device or method I should use? And is there a way to even further reduce the stand-by current (just use a bigger pull-up and what are the limits?)
Thanks!
