dcbingaman
- Joined Jun 30, 2021
- 1,065
Let's not give up on the TS. I think we all can work out a solution with a little more time. :}
One I see is U1, pin 13 (CLOCK/INHIBIT).Which CMOS inputs have I left floating?
Sorry, my sentence was meant to say ‘now found a solution’ instead of ‘not found a solution’.That's because of arbitrary-rules,
not because there aren't a ton of very experienced engineers here who only
took-up the challenge to relieve their boredom.
Try asking something like,
"how would You demonstrate, and create interest in, an easy to build project
that has a valuable purpose, and is easy to visually understand" ?
You may be amazed at what You might learn.
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I will have to look up the POR circuit in order to add that in but it seems to be a useful addition. There seem to be quite a few designs options.Hmmm, I missed this . . .
Having two clock periods ("timer intervals") probably is the more simple solution, but the circuit in #104 has a possible issue. During the operation of SW2, there is point when neither pot is connected. As long as the oscillator does not jump up to a megahertz frequency, this is not a huge problem because whatever this does to the clock timing is divided by at least 4096. But a better way to go is to have the normal-mode pot connected permanently to R15, and the set-mode pot switched in parallel with it. Now, the switch requirement is SPST, not SPDT, and it can be any simple, bouncy pushbutton switch.
ak


Yikes! Well, I will have to go with the one I'm in the middle of, after doing all the follow-through, but if it doesn't work or is problematic, then I will give this a try.Here's a solution that requires only three DPDT relays and a 3 - channel, 555 monoshot - based Sequence Timer.
View attachment 303755
Nandu.
Good show.Here's a solution that requires only three DPDT relays
For the added 1N4148 diodes -I have adapted the 'layout' graphic to show the inclusion of the indicator LEDs for 'operating' and 'charging'. This was a bit more involved than hoped for as blocking diodes are required at various places so that when one device is operating, its voltage does not turn on LEDs in the other operating branches. Similarly with the 'charging' LEDs. I can't see a way around this so a little 'wasted' voltage across the diodes.
That can be the same 4060 / 4017 circuit you have now. He is describing it as three monostables, but deriving the coil signals from a counter is a better way to minimize overlap.Can you elaborate on the 3-shot monoshot (monostable?) timer?
The circuit shows one common battery charger, but three separate loads. Up till now, the requirement has been to switch three batteries to one common load, the "Operate" output.Here's a solution that requires only three DPDT relays and a 3 - channel, 555 monoshot - based Sequence Timer.
View attachment 303755
Nandu.
I pulled the diode out of a library so they must have it wrong in there.For the added 1N4148 diodes -
1. The symbol you are using is for a zener diode, not a simple rectifier.
2. It looks like you have the full I/O current running through the added diodes. A 1N4148 cannot handle 10 A. How badly do you want those LEDs? 20 A Schottky diodes will need heatsinks, an increase in size, heat, and cost.
ak
Yes it’s a common load and a common chargerThe circuit shows one common battery charger, but three separate loads. Up till now, the requirement has been to switch three batteries to one common load, the "Operate" output.
ak
Many thanks!Good show.
That looks to be the simplest solution.
So does your monoshot sequence timer have a delay between states to avoid overlap?
That could be done with a RC-diode actuate (but not release) delay to each relay driver (not shown in your schematic).
The circuit shows one common battery charger, but three separate loads. Up till now, the requirement has been to switch three batteries to one common load, the "Operate" output.
ak
Are you saying that 'Device 1', 'Device 2' & 'Device 3' refer to a single load?Yes it’s a common load and a common charger
You can just use one load and connect the three relays to that load.The circuit shows one common battery charger, but three separate loads. Up till now, the requirement has been to switch three batteries to one common load, the "Operate" output.
No, device 1,2&3 are separate devices (batteries in this case) and they each in turn drive the same load. Equally they are charged in turn by the same charger. The load and charger are not shown on the schematic except as ‘Device Power Out’ and ‘In’Are you saying that 'Device 1', 'Device 2' & 'Device 3' refer to a single load?
Nandu.
So you are not considering changing to Nandu's circuit which halves the number of relays and reduces the amount of wiring?I will have to go with the one I'm in the middle of, after doing all the follow-through,
