Clearly it is "a" solution but, in my opinion, not necessarily "the" solution.Clearly, in my opinion, the suggestion by BobTPH, and that I've shown in post #55, is the solution.
Clearly it is "a" solution but, in my opinion, not necessarily "the" solution.Clearly, in my opinion, the suggestion by BobTPH, and that I've shown in post #55, is the solution.
Good point.Clearly it is "a" solution but, in my opinion, not necessarily "the" solution.![]()
Yes but only in part. If the 6 DPDT relay contacts are only dealing with switching signals and not power in/out, then what does the connection going to each of the devices from the relays do, e.g. ‘Device_1’? How is that signal now used to get the device to ‘operate’ or be ‘charged’? Does that ‘Device-1’ signal now have to go to another set of relays to allow the device to either provide power (operate) or receive power (charge)?No.
"Charging_on" and "Operating_on" are the respective control signals to the relay coils.
The transistor collectors go to your plus supply voltage.
"Charging" and "Operating" go to the respective Devices' charging and operating circuits.
There are no "Off" control signals as you show, which makes your schematic confusing.
You can call them 'In" or "Out" if that helps your understanding.
Make sense?
Where are you getting 6 DPDT relays? The device has 4 SPDT relays per the picture: with normally closed contacts on the right and normally open to the left.Yes but only in part. If the 6 DPDT relay contacts are only dealing with switching signals and not power in/out, then what does the connection going to each of the devices from the relays do, e.g. ‘Device_1’? How is that signal now used to get the device to ‘operate’ or be ‘charged’? Does that ‘Device-1’ signal now have to go to another set of relays to allow the device to either provide power (operate) or receive power (charge)?

Actually, no. And - fun fact - crutschow is incorrect about his own post. See #46 and #49.Not better, just simpler.
It would appear that the SPDT approach requires logic gates/diodes from the counter to energize the relays in proper sequence (have you looked at that).
The cross-coupled relays don't, as you can see in post #62.
So it's a trade-off between SPST relays with added logic, or DPDT relays requiring none.
The problem is you do not have access to the coils (they are on the board) and are SPDT. . . and here is the full set of relays. Please advise if there are some clangers while I unscramble my visual cortex.
View attachment 303599
My idea to cover all the conditions of the board are as follows (off, on, and charging), for the three devices. This is a rough out diagram. I have not yet added any Transistors, Diodes etc. to get the job done. That was my next step.Actually, no. And - fun fact - you are incorrect about your own post. See #46 and #49.
As you pointed out, my 6 x SPST solution does *****not***** require steering diodes to decode the states correctly. One disadvantage to 6 x SPST, that is corrected with 3 x DPDT, is the possibility of cross-conduction between the two power sources. This would be on the order of milliseconds, and the TS has stated that this "probably" is not a problem. The other disadvantage is cost. 6 x SPST probably costs more than 3 x DPDT.
ak

The CD4017 outputs are named "0" through "9", so the three active outputs you use are 0, 1, and 2.. . . and here is the full set of relays. Please advise if there are some clangers while I unscramble my visual cortex.
Your drawing shows the Charging states for all three devices connected together, so all devices are charging at the same time. Same for the Operating state. This is incorrect. Only one device is charging at any point in time.My idea to cover all the conditions of the board are as follows (off, on, and charging), for the three devices. This is a rough out diagram. I have not yet added any Transistors, Diodes etc. to get the job done. That was my next step.
View attachment 303604
Sorry about the drawing (that was not my latest one). Here is the latest one:Your drawing shows the Charging states for all three devices connected together, so all devices are charging at the same time. Same for the Operating state. This is incorrect. Only one device is charging at any point in time.
ak

It'sQuite a few comments about the actual drawing, in addition to the point that the relay interlocking is not required.
Placing the three transistors at the very bottom makes it more complex than locating the transistors above the two integrated circuits. And none of the required components to make the CD4060 operate are shown. While relay terminal numbers are provided, the IC pin numbers are missing. That makes assembly, or even simulation, difficult.
The 12 volt source positive is shown, a fair guess is that "ground" is the return, while mostly it is not, and never on my designs.
Device in and device out should rather be "device operate supply" and "Device charge supply", to be accurate.
It's not supposed to be a complete schematic but just to show the basic relay connections. You will have to be patient while I draw it.Quite a few comments about the actual drawing, in addition to the point that the relay interlocking is not required.
Placing the three transistors at the very bottom makes it more complex than locating the transistors above the two integrated circuits. And none of the required components to make the CD4060 operate are shown. While relay terminal numbers are provided, the IC pin numbers are missing. That makes assembly, or even simulation, difficult.
The 12 volt source positive is shown, a fair guess is that "ground" is the return, while mostly it is not, and never on my designs.
Device in and device out should rather be "device operate supply" and "Device charge supply", to be accurate.
Referring to the circuit in post #55 - Still two relays per device, so while the logic structure is different, I don't see any clear advantage over the other solutions.I think this is the relay circuit idea BobTPH offered.
They do carry the power signals as shown in both my and your diagrams.If the 6 DPDT relay contacts are only dealing with switching signals and not power in/out,
My approach is to prevent simultaneous connection between the charging and operating circuits while not requiring any added decode logic.that the relay interlocking is not required.
I did *****not**** point that out.As you pointed out, my 6 x SPST solution does *****not***** require steering diodes to decode the states correctly
How does that eliminate transistors?I would tie the relay coils to Vdd and switch them to GND, eliminating two transistors per device.
For my circuit it is simply the output of the CD4017 counter with a reset at count 4.starting with a single clock source, it would be interesting to see the logic that drives the relays.
That was a reply to Bob and eetech for the circuit in #55.How does that eliminate transistors?
My circuit only requires three.
That also inverts the logic.
For my circuit it is simply the output of the CD4017 counter with a reset at count 4.
Could be my mistake (!), but my read of this:I did *****not**** point that out.
If 6 SPST relays do not require steering diodes (or other added logic), please show how that is possible for the three states.
is that no diodes are needed. And, I agree.After a little further though, I realize you don't need steering diodes if using 6 relays.
Each state has two relays energized just once per cycle, so just connect the relay driver (3 needed, could be NPN emitter followers) from each of the three counter outputs to the two relays energized for each state.
Sorry, missed that.That was a reply to Bob and eetech for the circuit in #55.

