--00504502cd7265feeb04641806ce Content-Type: text/plain; charset=ISO-8859-1 Content-Transfer-Encoding: 7bit On Sun, Mar 1, 2009 at 00:16, Bob Blick wrote: > If you can > generate a high duty cycle pulsetrain from your pic, all you need to add > is a transistor, coil, diode and capacitor to step up your voltage. > Under load your voltage multiplication will be proportional to the duty > cycle, plus the input voltage. So if your duty cycle is 75%, that is 3:1 > plus 1 so your output voltage will be 4 times the input. Generally. > Certainly close enough for a relay. Hi Bob, thanks for the input. Googling a basic schematic for a step-up, and using your tips above, I came up with the circuit attached to this post. For the pulsetrain, I made this simple code for a PIC12F683 using 4MHz INTOSC: void delay(unsigned char ctr) { while (ctr-- > 0) {} } void main(void) { ANSEL = 0; CMCON0 = 0x7; TRISIO = 0; while(1) { GPIO2 = 1; delay(3); GPIO2 = 0; delay(1); } } 75 and 25 for the delay are just the values which you suggested (75% duty). I haven't got a scope so I cannot verify that it really shoots a pulsetrain, but I expect it does so. However, I'm not getting a higher voltage over the load (which I'm measuring with a Fluke 179). Peeking the disassembler code and counting the number of instructions executed, it looks like the PIC is outputting at a frequency near 110kHz which could be too high. Changing the delays to 75 and 25 respectively, the freq should be around 10kHz which - according to wikipedia's text on step-up converters - should be better. Still, my DMM doesn't show me a higher voltage. I get about 4.3V when disconnecting the transistor completely, and about 4.2V when using the oscillating PIC. I don't know the value of the inductor, so this could be a source of the error. I tried two different ones from my junkbox, but the voltage doesn't change much on any of them. The diode could possibly be another error source. Other peoples' schematics tells me to use a fast recovery schottky-diode, but I have only got standard silicon ones (0.7V drop, hence the 4.3V over the load). The transistor is a BJT, a general purpose NPN (BC547, or if it was 557). Perhaps this one can't handle the high frequency, so this might be another error source as well. Could you make a guess of which of the above parts (code and components) could be the bottleneck? 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