458 lines
25 KiB
Plaintext
458 lines
25 KiB
Plaintext
.oO Phrack 50 Oo.
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Volume Seven, Issue Fifty
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9 of 16
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SS7 based diverter
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The MasterMiiND <miind@geocities.com>
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Brief Description:
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------------------
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Hey everyone, well I've spent some time now designing a Diverter, and finally
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came up with a foolproof design. After building every diverter plan I could
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find, and finding that they didn't work under the switching systems of our
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day (not surprising, seeing how all the plans are like ten years old) I
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decided something needed to be done. Well, I thought I'd share this new
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diverter with everyone, so we can all have phun again, until they change the
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system again.
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Also called a "Gold Box", a diverter allows somebody to call one predetermined
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telephone number, and then get a dial tone from another predetermined phone
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line. It is like calling a direct in-dial (DID) line on a PBX and getting a
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dial tone. The main difference is, that YOU actually built the device, and
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you don't have to enter authorization codes to get the dial tone.
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Uses:
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-----
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You can setup a diverter so that you can call pseudo-anonymously. That is,
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you call the diverter, and then call out of the second line. That way, if
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anybody checks their caller ID unit, the number of the second line, and not
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your own line will show up. Also, if they decide to activate a trace, then
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the telco and the police will get the wrong number.
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Another reason for setting up a diverter of course, is to avoid paying for
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telephone calls. Any, and all calls you make on a diverter, are billed to
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the owner of the second line. This means, that if you call your Aunt Jemima
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in the Outer Hebrides for 10 minutes, then the owner of the line you used will
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get her number, and be able to call her up and ask who called her at the time
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and date stated on their bill. Now, if she is your average Aunt Jemima, then
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she will most likely say, 'Oh, that was my nephew, Michael. His number is
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555-2357'. But if she is cool, like MY Aunt Jemima, she would say something
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like 'Hmm, let me see...oh yes, that was a telemarketer from the USA, trying
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to sell me a used vacuum cleaner.' Anyway, my point is, that every billable
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call you make, will show up on their bill. For that reason, it is best suited
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to call stuff that you don't care too much about. Setting up teleconferences,
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calling long distance BBS's, phone sex, and maybe even long distance scanning
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are all good uses for the diverter.
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Technical Description:
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----------------------
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Ok, so you want to make a diverter? Well, before you set out designing a
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diverter, there are some basic properties of the Signaling System 7 (SS7)
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telephone system that you should be aware of. Previous plans for diverters
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have been release in the past, but as those of you who tried to make one have
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realized, they do not work under SS7. Generally, these plans are around ten
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years old, and were designed for older switching systems such as Step by Step
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(SxS) and CrossBar (xbar). The diverter that I have come up with, has been
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tested under GTD-5 EAX, and DMS-100 switches. Because the signaling used by
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these switches, and the #5ESS are the same, it is safe to assume the diverter
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would work under #5ESS, although I can't say for sure, as I haven't been able
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to test it out. If someone gets one working under an AT&T switch, please
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drop me a line, because I would be really interested in how it worked, and
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what, if any, changes had to be made. Ok, enough nonsense from me!
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When your telephone is in it's normal on-hook state, there is approximately
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48VDC across the ring and tip. When you pick up your phone, the voltage
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drops down to about 6-10VDC. This is because taking your phone off-hook
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causes a closed circuit across the ring and tip, through your telephone.
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Doing so, causes the CO's equipment to sense you have taken your telephone
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off-hook, and send you a dial tone to tell you it is ready to receive dialing
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instructions. Ok, now, suppose your phone is on-hook. Your Aunt Jemima calls
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you up. How does the CO alert you to this? Well, they send a ring signal to
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your line. This is a 90-130VAC signal, that is approximately 20Hz in
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frequency. This is pulsed on for 2 seconds, then off for 4 seconds. This is
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then repeated for a predetermined amount of time, or until you pick up your
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phone. The amount of time a phone will ring, if you don't pick up your phone
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depends on how your phriends at the CO programmed the switch. The reason why
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it has a time limit for a ring out, is for two main reasons. First of all,
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it takes a lot of equipment resources and power in the CO to ring a phone.
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And secondly, to put an end to phreaker's "Black Boxes" that would depend on
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the switches ability to ring a phone for ever, if it wasn't picked up...
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Ok, now you pick up your ringing phone. This causes voltage to flow from the
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tip through your phone to the ring. This causes the CO's switching equipment
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to stop sending the ringing signal, and then drops the voltage down to around
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6-10VDC. An audio path is then opened between your Aunt Jemima and you. Now,
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after about 10 minutes of speaking with her, your Aunt Jemima shouts:
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'Oh no...my pancakes are burning...gota go...' and hangs up on you. But you,
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being the phreak that you are, stay on the line. You listen carefully, but
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hear nothing but the silence of linenoise. Then, after about 10 seconds,
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the CO sends a disconnect signal to your line. This disconnect signal is
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simply a reversal of polarity between the ring and tip for about 1 second.
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When the polarity is first reversed, you hear a click in the earpiece of the
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phone. Then, when the polarity is reversed again, you hear another click.
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The voltage is back at 6-10VDC, and the polarity is just as if you had just
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picked up your phone. Now, if you stay on the line for about 30 seconds
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longer, the CO will send an off-hook signal, which is a very special signal.
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It is a MF signal that consists of 1400Hz & 2060Hz & 2450Hz & 2600Hz tone
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pulsed on 0.1 second on, and 0.1 second off. That is the very loud and
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annoying sound you hear if you leave your phone off-hook.
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Ok, those are the basic properties of the SS7 telephone system you need to
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know, to understand how the diverter works. I've spent a little of my time
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drawing a schematic in GIF format, and you will find it uuencoded at the end
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of this file, so please decode it first, and load it up in your favorite
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image viewer, while you read the next part. It really helps to follow the
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schematic, while reading the white paper. After all, anybody can follow
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simple instructions on how to make a diverter, but I would prefer you all
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understand how it works. I wouldn't want to think I wasted my time on this
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little project ;-)
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Parts List:
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-----------
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(1) DPDT relay (5VDC Coil Rating)
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(1) 600 Ohm:600 Ohm transformer (Telecom Isolation Type)
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(1) 2N3904 transistor (NPN, Small Signal type)
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(1) Opto-Isolator pair (IR LED/Phototransistor Type)
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(1) 22K Ohm resistor (1/4W, 5%)
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(1) 470 Ohm resistor (1/4W, 5%)
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(4) 1N4003 diodes (200 PIV)
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(1) 7805 IC (5VDC, Positive Voltage Regulator)
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(1) 0.33uF capacitor (Mylar Type, microfarad)
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Parts Notes:
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------------
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The transformer is the type you would find in an answering machine, but can be
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picked up for around $7.00. The opto-isolator is a slotted pair. That is,
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they are housed in a plastic assembly, that has an IR LED facing onto a photo-
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transistor, with a slot in between them. The slot is designed for a rotating
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wheel or something similar, but doesn't affect the design at all. A true
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opto-isolator could be used instead, I guess, but the only ones I could find
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where photodarlington types, and I couldn't really be bothered with them.
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Besides, I happen to think the slotted pair look cooler! ;-)
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Anyhow, in my diverter, I replaced the 4 diodes with a full wave bridge
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rectifier in a 4 pin DIP. It was smaller, and again, it looked cooler.
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The 7805 is a voltage regulator IC. It has 3 pins, and can be found almost
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anywhere. Lastly, the capacitor is just a regular mylar device. If the value
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is higher than 0.4uF, then the diverter will activate with line noise on line
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#1, or if someone picks up line #1, or if the pulse dial! If it is less than
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0.2uF, then line #1 will ring a couple of times before the diverter picks up.
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Best advice is to simply use a 0.33uF capacitor. Other stuff you will need is
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hook up wire, plugs and connectors, some sort of protoboard, and a box. This
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part is up to you, and is where you get to show your phriends at the next 2600
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meeting your creativity. Using a Rubbermaid (tm) tub is pretty creative. I
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just went with a plain project box from Hammond (tm). Ah well...
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Schematic:
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----------
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NO ASCII SCHEMATICS FOR YOU! DECODE THE GIF AT THE END OF THIS FILE INSTEAD!
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Theory of Operation:
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--------------------
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Ok, looking at the schematic, we see RED #1, GREEN #1, RED #2 and GREEN #2.
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Obviously, these are the two lines. Now, line #1 is going to be the line
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that we initially call into to get the dial tone, and line #2 is going to be
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the line of the dial tone that we actually get.
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We see that in the normal state, the DPDT relay is not activated. This
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presents an open circuit to line #2. Current cannot flow from GREEN #2 to
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RED #2, because of the open relay. Thus, line #2 is in the on-hook state.
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The same is the case for line #1. Current cannot flow from GREEN #1 to RED #1
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because of the open relay contacts. Also, because the voltage across the two
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wires is 48VDC, the direct current is blocked by the capacitor, C1. Thus,
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current from line #1 cannot enter the rectifier either. In the normal state,
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both lines #1 and #2 are on-hook.
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Now, you dial up the number for line #1. The 48VDC, becomes a ringing signal
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of 90-130VAC @ 20Hz. This causes an alternating current to pass the capacitor
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C1, and into the full wave bridge rectifier. This causes a DC voltage to
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appear on the output of the rectifier, which flows through the IR LED in the
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opto-isolator, lighting it up. As the IR light hits the phototransistor,
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the phototransistor's collector current starts to flow. This causes the
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second transistor's base current to flow. This causes the transistor's
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collector current to flow, which turns on the DPDT relay. Now, as the relay
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turns on, current can now flow from GREEN #1 through D1 in the full wave
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bridge rectifier, through the IR LED in the opto-isolator and it's current
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limiting resistor, through one half of the DPDT relay's contacts, through one
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winding of the transformer, and to the RED #1. Also, at the same time, we now
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have current flowing from GREEN #2 through the second half of the DPDT relay's
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contacts, through the other winding of the transformer, and to RED #2.
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In effect, the diverter is picking up both lines. Now, you would think that
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if the diverter picked up both lines, then the ringing signal would stop on
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line #1, and the IR LED would turn off, thus turning off the whole circuit.
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Well, this is partially correct. However, notice that line #1 is now flowing
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THROUGH the IR LED, which keeps it on! So, the ring signal initially turns on
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the IR LED, and the off-hook current of about 6-10VDC keeps it on!
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So, now, you are connected to line #1. Line #2 is off-hook as well, and both
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line #1 and line #2 are being bridged via the transformer. Thus, any and all
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audio is passed between both lines. What this means is that you get the dial
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tone from line #2, and you can send your DTMF's from line #1.
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Ok, now you make your call. Now, you hang up on line #1. Now, for about 10
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seconds, the diverter stays active. But then, the CO sends a disconnect
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signal to line #1. If you remember back, this is just a reversal of polarity
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between the ring and tip, that is the GREEN #1 and RED #1. Doing so, the
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IR LED, being a polarity sensitive device, turns off. This causes the
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phototransistor's collector current to goto zero. This causes the transistor's
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base current to goto zero as well, and as a result, the transistor's collector
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current goes to zero as well, thus turning off the relay, and putting both
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line #1 and line #2 on-hook again. The diverter is now ready for another
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call. There...simple huh?
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Special Notes:
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--------------
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The diverter can be installed anywhere you have access to 2 lines. Obviously,
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green base's, can's, telephone pole's, network interface's etc... are all prime
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locations for the diverter. Now, you need a lineman's handset or a "Beige Box"
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and access to an ANI read back circuit, in order to determine the numbers of
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the line's you are using.
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Once the device is installed, anyone and everyone calling line #1 will receive
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a dial tone. This means that you cannot simply leave the device installed for
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a whole month. That is, unless you manage to find a line that is unpublished
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and used for outgoing calls or something. An example is a corporate data line
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used by a local (unnamed) fast food restaurant that sends payroll data at
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night, once a week. You get your diverter on this line, and you could leave
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it there for a while.
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Also, it is a good idea, once you get the dial tone, to use calling cards, or
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third party calling to complete your call. That way, your calls don't show up
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on line #2's bill right away. Usually, it will show up on the next bill of
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the person you third party'd, and it will take another month or two to reach
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the bill of line #2. However, line #2 will also get service charges for the
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third party, so their bill will be even higher than if you just used their
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line directly.
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Ok, as for the circuit...I've gotten into a habit of designing all my circuits
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to operate at 5VDC. Although this isn't too necessary in this circuit, it
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makes it totally TTL and CMOS compatible, should you want add digital gating
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and other fancy stuff to the basic diverter. Well, that's enough rambling from
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me for now...go and get yourself some parts!
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Shout Out's:
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------------
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Shout's to the Vancouver, BC hack community...you know who you are...
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Shout's to all the guys at Phrack...keep the legend going....
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Shout's to the Niagara Falls, ON hack community...(IS there one?)
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Hell, shout's to the whole damn community...we're still alive and kicking
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right!
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Oh yeah, I can't miss out our beloved BC Tel! Keep those rates increasing,
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and keep installing those ultra fancy NorTel Millenium's in the high vandalism
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and high crime areas!
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That's all folks...
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=[MasterMiiND]=
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==============================BEGIN UUENCODED GIF=============================
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8%?[TJ5]]ZU\?^]G7_O:YWWWOOZ$````[
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`
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end
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==============================END UUENCODED GIF===============================
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EOF
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