walid Posted January 28, 2007 Report Posted January 28, 2007 Hican you explain What R8 (1K) exactly do?is it a voltage divider??thanks Quote
audioguru Posted January 29, 2007 Report Posted January 29, 2007 Hi Walid,You have a very good point. ;DThe circuit can't work if R8 is there!The supply voltage is 6.8V if the battery is fully charged.Then the output high of the 555 is about only +5.6V.R5 and R8 form a divide by 11 voltage divider so the base voltage of T2 is only 0.51V and so T2 never turns on since it needs at least 0.65V. Quote
monoman Posted January 29, 2007 Report Posted January 29, 2007 hi, just wondering, what does this circuit do?is it just to change the output voltage of the 555?if so what does the transistor for?thanks for the help. Quote
walid Posted January 29, 2007 Author Report Posted January 29, 2007 To guruthank u very very much you are good and expert man.hi, just wondering, what does this circuit do?is it just to change the output voltage of the 555?if so what does the transistor for?this is a part of a circuit shown in the following link:http://www.electronics-lab.com/forum/index.php?topic=10229.0it is an IC controlled emergency lamp with charger Quote
walid Posted January 31, 2007 Author Report Posted January 31, 2007 hi guruThe supply voltage is 6.8V if the battery is fully charged.Then the output high of the 555 is about only +5.6V.5.6/6.8 = 82%is the output high of the 555 is always about 82% of Vcc?thanks Quote
audioguru Posted February 1, 2007 Report Posted February 1, 2007 hi guru5.6/6.8 = 82%is the output high of the 555 is always about 82% of Vcc?No. It is about 1.3V, not a percentage of the supply voltage.The output of a 555 has a darlington emitter follower to pull its output high. It is two base-emitter junctions in series. 0.6V + 0.7V= 1.3V. Quote
walid Posted February 1, 2007 Author Report Posted February 1, 2007 Hi guruIt is two base-emitter junctions in series. 0.6V + 0.7V= 1.3V.part of the 555 schematic is shown below.yes, It is ok, there is a darlington emitter follower, but why not two 0.6 or two 0.7 volt. why different VBE?thanks Quote
audioguru Posted February 1, 2007 Report Posted February 1, 2007 The output transistor passes the load's high current.Its driver transistor operates at a much lower current, just the base current of the output transistor.An emitter-follower transistor with a high current has a higher Vbe than a transistor with a low current. Quote
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