--_003_CAGSooMP5rL0X863O1zgMANqjjgyNnjPMDsGsGqhzm5RqXQ5iNgmail_ Content-Type: text/plain; charset="iso-8859-1" Content-Transfer-Encoding: quoted-printable On Sun, Sep 4, 2011 at 10:30 PM, V G wrote: > On Sun, Sep 4, 2011 at 7:18 PM, RussellMc wrote: > >> >> Sources can float as shown in your diagram. >> When FETs are on then both drains and both sources are at essentially >> the same potential. >> As long as gate drive is high enough above this common potential when >> on to ensure that FETs are fully turned on then the circuit will work. >> >> Turn off gate drive voltage needs to be low enough for Vgs to be sure >> to be below Vth for both FETs. >> >> In some cases notionally the circuit may not "start" as the center >> sources are floating but in practice this always seems to work well. >> No doubt this is fully explicable when all parameters are considered >> :-). >> >> Usually this back to back arrangement is most economical but you may >> wish to check if a separate P Channel and N Channel FET with each >> turned on as required would be better in your case. This applies only >> of Vin and Vout always have same relative potential. If Vin and Vout >> can reverse relative polarity you either need back to back FETs as >> above or a reverse diode in series with two separate P & N Channel >> FETs. > > > Thanks for the reply. To counteract the "starting" issue, can I put a 10k > (or whatever) resistor from the common source to ground in order to > initially reference the floating source to ground? > > Time to simulate in LTSPICE, although it does tend to simulate /too/ > perfectly. > Okay, so I ran a simulation and my circuit seems to work exactly as I want it. Picture attached (png). * The 18V (probably can be anywhere between 15-20V) source at the top comes from a capacitor charge pump or a boost converter. I'm also gauging the possibility of using a small inverter, transformer and rectifier to get tha= t high voltage. Don't need much current at all (maybe 2-3 mA at most). The 18= V rail will be used to drive the gates of several SSRs. * The first transistor on the left (M3) controls the application of the 18V supply to the gate of the SSR. The voltage supply V3 represents the logic level control signal (from a microcontroller, or whatever) * The right half of the circuit is the SSR itself, composed of M1 and M2. R= 1 and R2 are just dummy loads. * I'm not too sure about this move, but I stuck a 100k resistor from the common source to ground to initially reference the source to ground, so the gate-to-source voltage will be the full 18V. I don't know if it's necessary to do this, nor do I know the theory of what happens if I do/don't do this. Need advice on this please. The source will be floating, I assume, without the resistor, unless there's some leakage current through M1 and M2, and then my brain gets lost at this point... The simulation work fine whether o= r not I have that resistor there, but obviously, it does not factor in real world factors such as noise, etc, that could affect a floating source. * All in all, the circuit works very well for driving several SSRs (which are capable of switching AC) with small MOSFETs using a single 18V gate driving supply. * V1 being 10V is the worst case scenario for the swing of voltage relative to the dynamic loads, and my circuit seems to work fine. The voltage of V1 shouldn't be of concern here, I assume, if I were using a photocell to driv= e the gate with its own circuit (like a real SSL, since the source will be connected to its own GND, and the gate voltage will be relative purely to that GND). However, the best I can do here is connect a 100k resistor to GN= D from the source and hope that it will suffice. Need education on this part please. --_003_CAGSooMP5rL0X863O1zgMANqjjgyNnjPMDsGsGqhzm5RqXQ5iNgmail_ Content-Type: image/png; name="SSR.png" Content-Description: SSR.png Content-Disposition: attachment; filename="SSR.png"; size=26572; creation-date="Mon, 05 Sep 2011 09:53:09 GMT"; modification-date="Mon, 05 Sep 2011 09:53:09 GMT" Content-Transfer-Encoding: base64 iVBORw0KGgoAAAANSUhEUgAABfIAAANYCAIAAAAAMoukAAAABmJLR0QAAAAAAAD5Q7t/AAAACXBI WXMAAA7EAAAOxAGVKw4bAAAgAElEQVR4nOz9P25ry94u5lYfHH8f4E7MxDgndg8UOJ2BM8PAnfF2 5OgAM9uAs+NsGTCwurA64A4Y+0tuBy5OC+ZdoqYoiv/E4uBg1fi9zwMBiypRnHoHh4Sqdw0W218A QJL/9v/7//769av9j/+t/Q//b/vv/6/23/2X/+l//n/+P//bv378l//48V/+9X//8X/8r//L9wYA wMTeZnQ//vd/tdFzSwDgqdQ6AABbp9YBgFBqHWb1a/dxaeT0q+v9u0BNo/7K9JrnJ2Fmah0ACKXW YVZXFlxL1ji3fK81FERY6a/MGmb7eZiQWgcAQql1mNil/3Gu1gEeY42/MmuY7edhQmodAAil1mFi Ny64fn3+ODt++8jp4wNl3fFX5vTbr/wFufsPkL9K9FLrAEAotQ4Tu2XBtfZtoLLn/2W5fjd/lbib WgcAQql1mNuvkxutZ+Fz6f+On37VAgpCdf2VaTfcp+sKoLOP6a8Sd1DrAEAotQ5zu+MlDqd36/3/ 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