From: Subject: 4QD-TEC: PUT Complimentary Feedback Pair Date: Wed, 10 Aug 2011 10:24:38 -0700 MIME-Version: 1.0 Content-Type: multipart/related; type="text/html"; boundary="----=_NextPart_000_0009_01CC5747.B560B450" X-MimeOLE: Produced By Microsoft MimeOLE V6.00.2900.6109 This is a multi-part message in MIME format. ------=_NextPart_000_0009_01CC5747.B560B450 Content-Type: text/html; charset="Windows-1252" Content-Transfer-Encoding: quoted-printable Content-Location: http://www.4qdtec.com/putpr.html 4QD-TEC: PUT Complimentary Feedback Pair
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4QD-TEC: Electronics Circuits Reference Archive
PUT = Complimentary=20 Feedback Pair

Arguably, one of the most useful, simple, circuit configurations is = this=20 connection of two transistors into a four layer device equivalent to a=20 Unijunction transistor. It is also possibly one of the least valued and = least=20 understood of simple circuits. In fact when I started looking out = circuits for=20 this page I surprised myself by just how much I had to say about such a = simple,=20 two transistor circuit! Yet perhaps I should not be surprised for GE = wrote an=20 entire book on the applications of Unijunction transistors and, in = performance,=20 this configuration has a lot in common with the UJT. The basic = connection of the=20 4 layer device is shown in the diagram below and the configuration is = the basis=20 of Thyristors (or SCRs - Silicon Controlled Rectifiers), Triacs, diacs, = SBSs=20 (Silicon Bilateral Switches) as well as the Programmable Unijunction or = PUT.=20

3D"diagram:

When neither transistor conducts, then no current flows. However as = soon as=20 any current flows in either transistor, this current = becomes base=20 current for the other and both transistors turn each other hard on. This = means=20 that you must use good, low leakage transistors to make this circuit or = the=20 leakage current will cause it not to work. However virtually any modern = silicon=20 transistor will suffice as manufacturers nowadays generally don't make = leaky=20 transistors!=20

If you cannot see how this is 4 layers consider the two transistors: = the top=20 is a P-N-P and the bottom is N-P-N. The base of the top one (N) connects = to the=20 collector of the bottom one (also N). Similarly the P of the top = collector=20 connects to the P of the bottom's base so the whole becomes an N-P-N-P 4 = layer=20 device. It has 4 terminals as shown, but in most practical devices only = three=20 are terminated - though which three depends on the device!=20

As an SCR the terminals are A, K with B1 as the gate. It is quite = easy to see=20 how a small base current into B1 causes the device to turn hard on.=20

PUT (Programmable Unijunction Transistor)

The next picture shows the 4 layer device connected as a PUT: in this = two=20 resistors define the interbase resistance and the standoff ratio of the = normal=20 unijunction. Now I suppose a lot of visitors won't know anything about=20 unijunctions - but I don't intend to cover them here (I could change my = mind if=20 I get enough emails!) as they really aren't much use except for = oscillators,=20 which I am covering. Anyway, I have always used the transistor pair!=20

3D"diagram:

SBS (Silicon Bilateral Switch)

One device which seems to be rather out of favour nowadays is the = SBS. It is=20 a trigger device used to fire a Triac. Triacs tend to need a fairly high = current=20 pulse to turn them on and this is usually arranged by charging a = capacitor and=20 then, when it gets to a set voltage, dumping its charge into the triac = gate. The=20 SBS is the device used to do the dump.=20

3DSbs

Two identical circuits are arranged in anti-parallel as shown, so = that one=20 works for positive voltages, the other for negative. Consider a rising = positive=20 voltage, as on a charging capacitor, on A2. The left hand part of the = circuit=20 will operate, but at low voltages, since the circuit started at zero, = there is=20 no base current so neither transistor conducts. Z1 is forward biased, = but with=20 no current flowing, so the full voltage is across Z2. This circuit = remains non=20 conducting until Z2 starts to conduct at its breakdown voltage. Now = current=20 flows into the base of the left hand PNP and the transistor pair = conducts.=20

You can see that the other half does the same thing for opposite = voltage=20 cycle.=20

PUT Oscillator

In this circuit the base of the transistor is held at 5v (with a 10v = supply)=20 by the two 1K resistors. Equal values give a 'stand-off ratio' of 0.5. = Obviously=20 this UJT is programmable so this ratio can be changed at will, say = between=20 1K:10K and 10K:1K. If you want to experiment, use a 1K of 2K preset.=20

3D"diagram:

At power up the capacitor will, initially, be discharged, so there is = no=20 voltage on the emitter of the PNP transistor - its base-emitter is = therefore=20 reverse biased and no current flows. The capacitor starts to charge up = towards=20 10v via the 470K resistor. When it reaches about 5.5 volts the = emitter-base=20 junction is no longer reverse biased and a small current starts to flow. = Both=20 transistors then turn hard on. The capacitor is quickly discharged = through the=20 two transistors. However when the capacitor discharges too far there is = no=20 longer enough current available to keep the two transistors conducting - = so they=20 turn off. The cycle repeats. The circuit is an oscillator. The current = out of=20 the NPN's emitter is pulsed and some circuits put a resistor here to use = the=20 pulses. The voltage on the PNP's emitter (which, in a Unijunction, is = the=20 emitter) is a good sawtooth, but at a high impedance, so don't load it = much. The=20 junction of the two 1K resistors can be used as an output at lower = resistance,=20 but (with the values shown) this is a negative-going pulse of about 40 = =B5S at=20 intervals of about 40mS, so about 1:1000 duty cycle!=20

The two 1K resistors can be changed considerably to vary the sawtooth = height=20 (and the frequency). The capacitor can be varied widely to change = frequency. You=20 need to keep with a fairly high value where the 470K resistor is or the = circuit=20 will not oscillate. The minimum value depends on the gains of the = transistors=20 and is lower with low gain transistors, which are not so common = nowadays.=20

This is a good, reliable sawtooth generator and is probably the main = use for=20 unijunctions. However there is a variant on this oscillator which I = prefer...=20

Better PUT oscillator

To a purist, the '4 layer connection' is not present in this circuit = but if=20 you compare it with the circuit above you will see how similar it is. = The main=20 advantage is that the pulse output is available from the NPN's = collector. I have=20 used a variant on this circuit to flash our Christmas Tree lights - = perhaps I'll=20 write that one up for next year!=20

3D"diagram:

Trafficator flasher

The last variant on the oscillator is a = circuit=20 I built up to replace the standard auto trafficator flasher.=20

3D"diagram:

Very similar to the last circuit, the NPN transistor has become a = Darlington=20 pair so that it has enough current drive to work the lights. Naturally = the=20 second transistor must be a power type large enough to handle the bulb = current.=20 Note Rx in the emitter. When the lights are working properly this should = drop=20 about 0.75 volts so that it turns on the extra transistor. This = transistor=20 discharges the timing capacitor. Because of this slower discharging, the = light=20 stays on longer. The cunning thing here is that, if a bulb gets shorted = out the=20 capacitor gets discharged very quickly (the diode and 100R see to that) = so the=20 effect is clearly visible on the dashboard indicator. Also if a bulb = fails=20 open-circuit, the flash rate slows down. Again, clearly visible.=20

Bistable

So the pair we are considering here is a Programmable Unijunction - = and UJTs=20 are no good for anything except oscillators? Wrong! Here's a bistable = using two=20 of the pairs.=20

3D"diagram:

The operation of this circuit is quite obvious - if you understand = the basic=20 pair. But this particular circuit also has an interesting application as = a=20 'snap-action' complimentary follower. Remove the two capacitors and = drive the=20 circuit via the joined bases. It could have a use as a very fast MOSFET = drive=20 circuit.

Schmidt Trigger

This is a Schmidt unlike any you have seen before. It has some = unusual=20 properties - some of which are distinct advantages, some are = disadvantages.=20 There is no 'best circuit' - different ways of doing a particular = function have=20 different uses.=20

3D"diagram:

Input is via the 2K2 to the base of Tr1. Initially consider the input = at 0v:=20 Tr1 and Tr2 will be off and Tr3 will pull the output high. Now consider = the=20 input rising, slowly. As it gets to about 550mV Tr1 will start to = conduct. But=20 as soon as any current flows in Tr1 it will turn on Tr2 as well and the = pair=20 will snap into conduction. Tr3 will be turned off. In this state the = only=20 current flowing into Tr2's emitter is the 100=B5A (assuming 10v supply) = flowing in=20 the 100K connected to the emitter of Tr2. Now current into Tr2's emitter = must=20 flow out of its collector and it is this current that keeps Tr1/Tr2 = conducting.=20

Now consider the situation as the input voltage starts to fall. There = is=20 100=B5A holding the pair on, so to turn them off we must rob this = 100=B5A from Tr1's=20 base. We can only do this by reducing the input by 220mV (100=B5A = through 2K2). So=20 the on point is set by the Vbe and the off point is set by the 2K2.=20

The main disadvantages are two - firstly the Vbe temperature = sensitivity, but=20 a lot of Schmidt trigger circuits do this. Secondly, when I said the = current=20 through Tr2 was 100=B5A I was not considering and load current. This = will confuse=20 the situation! The circuit is however very good at switching low with a=20 capacitative load since current supplied by the capacitor tends to aid = the=20 collapse of the PUT pair.

Thermostat

OK - so I admit is. This circuit is the same as the last one! Here is = a=20 practical use for the Schmidt trigger.=20

3D"diagram:

Well I hope you can see the similarity! Yet there is no input.... The = 2K2 has=20 become 1K and the 33K biases the base of Tr1 to 440mV (with a 15v = supply). The=20 33K sets the operating point and the circuit does require a stable = voltage, if=20 only to drive this bias chain.=20

Now consider the situation as Tr1 heats up. As a semiconductor warms = the=20 voltage across it reduces: around room temperature the reduction is = about 2mV=20 per degree Celsius. If the Vbe drops by about 110mV, the 440mV will just = start=20 it conducting. 110mV should correspond to 55=B0C - so we would expect = this to=20 operate at around 80=B0C. Simply adjust the 33K to get the correct = operating=20 temperature.=20

As explained above, the 220K in conjunction with the supply voltage = defines a=20 current which must be removed by the 1K to turn off the thermostat: we = are=20 considering 15v supply, so the voltage across the 1K will be = 15/(220+1)*1 or=20 70millivolts corresponding to a temperature drop of about 35=B0C.=20

Note the emitter follower at the output to remove the aforementioned = affect=20 of the load current.=20

I have several times used this thermostat and it is a very successful = circuit.

Electric Field and Leakage Detector

And now for something totally different. It detects very small = currents such=20 as those caused by leakage and changing electric fields.=20

3D"diagram:

Tr1 and Tr2 are the PUT connected pair. There is nothing to turn them = on:=20 Tr1's base has no connection and Tr2's base is only connected to Tr4's = collector=20 which cannot supply any current. If Tr4 turned on it would tend to turn = off the=20 PUT pair.=20

If the pair turn on, they pass current into Tr3. Tr3 charges up C1 = before it=20 turns on Tr4. Tr4 turns off the PUT pair. So if the pair turn on, they = remain on=20 for a short time, then turn of again.=20

Now here's the fun bit. The PUT pair (connected with no base-emitter = resistor=20 to desensitise it) is incredibly sensitive. So sensitive that even a few = electrons may be enough to trigger it. So if any charged item moves near = one of=20 the bases the very small induced charge is enough to turn it on. Each = time it=20 turns on, the output gives a small pulse. Connect a small earpiece to = the output=20 and you get something which simulates a Geiger-counter but reacts to = charge=20 movement or changing electric field or leakage. All you do is attach a = few=20 inches of wire to A1 and A2 to act as aerials.=20

I've used this as a mains wiring detector: the 'Geiger' screams when = near=20 mains wiring. Or it is good as a leakage detector: touch the two aerials = onto a=20 piece of glass and breathe on the glass.=20

The construction of the circuit is very critical: since it detects = leakage,=20 any leakage of a circuit board around the bases will cause problems. = Either have=20 these terminals in free air or connect them to ptfe stand-offs so they = don't=20 touch the circuit board. If the circuit will detect your breath on a = glass plate=20 a circuit board would be lethal.=20

The circuit's other guise is as a person detector. For this the on = time needs=20 to be about a second and it triggers an audio oscillator. I've made this = up as a=20 box which sits on a table, Can you get near the box without it reacting? = Almost=20 everyone carries some sort of charge but it varies a lot with humidity = and the=20 clothing the person is wearing so the box likes some people and hardly = react to=20 others. I have now added this=20 circuit to this site.

Game referee circuit

Here's another fun circuit. This one is a referee for 'snap' or = 'musical=20 chairs' types of game. In 'snap' mode the first player to press their = button=20 locks out everyone else whilst in 'musical chairs' mode the last player = to press=20 their button stays lit.=20

3D"diagram:
The circuit is = in two=20 parts: the master which will house the power supply, the mode switch and = the=20 reset switch. The second part is a 'player'. You can daisy-chain as many = player=20 circuits as you want, using 3 core cable to connect, so each player = could have=20 an input (from the next player) and an output (to the master).=20

In the master, the 1=B5 capacitor changes up through the 10K = resistor. When a=20 player pushes a button a small charge flows through the player's 10n = capacitor=20 and turns on their PUT pair, so the player's bulb lights.=20

In 'musical chair' mode, the master's mode switch is open (as shown). = If a=20 second player presses their switch the current flowing in their bulb = causes a=20 positive spike on the negative supply line. This spike is caused because = a=20 standard bulb's filament resistance increases as it gets hot: a cold = filament=20 will (instantaneously) draw about 10 times the rated operating current. = This=20 causes enough drop across the master's 15R resistor to turn off the = first=20 player. Thus the bulb of the last player to hit their button stays on.=20

In 'snap' mode, the master's mode switch must be closed. The current = from an=20 illuminated bulb is now sensed by the 15R resistor and causes the = transistor to=20 turn on, now discharging the 1=B5 capacitor diode, so there is no = voltage on the=20 centre line and no other player's light can operate.=20

Afterword

The PUT complementary pair is actually a very versatile = circuit. It is=20 used in the Impulse = Changeover=20 Switch elsewhere and I have lots more circuits that use variations = on it so=20 you can expect this page to grow!=20


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=A9 1996-2010 4QD-TEC
Page's Author: = Richard Torrens=20
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method define: 1. Private pointer to the original function 2. Privileged method to override the original function The scan is done on the input variable ################################### */ /* -------------- Eval ------------- */ //Storing the original method in private variable var AVG_eval =3D eval; =09 =09 //Defining privileged method to override the original function var Chck_eval =3D function (inpStr) { if (isEmpty(inpStr)) return AVG_eval(inpStr);=20 if (checkData(inpStr, AVG_eval)) { try { res =3D AVG_eval(inpStr); return res; } catch(err){} } } //Overriding the original function //window.eval =3D Chck_eval; /* = -------------------------------------------------------------------------= ---------- */ /* -------------- document.write & document.writeln ------------- */ //Storing the original method in private variable var AVG_docWrite =3D document.write; var docWrite_Stuck=3Dnew Stuck(5); =09 var AVG_docWriteln =3D document.writeln; var docWriteln_Stuck=3Dnew Stuck(5); =09 //Defining privileged method to override the original function var Chck_docWrite =3D function (inpStr) { =09 if (arguments.length >1) { for(var i=3D1; i1) { for(var i=3D1; i1) { for(var i=3D1; ithis.size) { this.StuckArray.pop(); } this.StuckArray.unshift(String(item)); }; =20 //finds if item exists this.find =3D function(item){ var s_item=3DString(item); for (var i=3D0;i