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Member's Forum Triac not shutting off (24v AC sprinkler valve control)
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  • valve
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Related

Triac not shutting off (24v AC sprinkler valve control)

ntewinkel
ntewinkel over 10 years ago

Hi All,

 

I'm working on replacing my aging and broken sprinkler controller, and found some open source software (OpenSprinkler) to run on a Raspberry Pi that handles the scheduling very nicely (plus it has an app for my phone).

With that software I'm able to control a couple of shift registers to turn LEDs on and off, simulating the sprinkling zones.

 

I'm not very familiar with TRIACs (read: not at all familiar, never used them before image), but recently I learned that the sprinkler valves use 24v AC and that TRIACs would be a good way to switch them, with relays generally being rather big once you get 16 of them lined up, and regular power transistors only being good for DC.

 

I bought some BRT12H "non-zero crossing" opto-isolating TRIACs (datasheet: http://www.vishay.com/docs/83689/83689.pdf), because they seemed to meet the desirements of opto-isolating and AC for 250mA.

 

I hooked them up (with 220ohm resistors from shift registers to TRIACs), and it all looked promising when I turned the first zone on (sprinklers worked, yay!), but then it wouldn't shut off (sprinklers still working, not yay!). It only shuts off if I remove the 24v power momentarily.

 

I've done some Googling around but have not yet found any solution, and to be honest it's not making a whole lot of sense to me (yet... hopefully yet).

 

I did find out that TRIACs (in general?) need to cross zero (volts?) to turn off. I'm not sure what this "non-zero crossing" bit means but I have a nagging suspicion that it's a key part of the issue.

Should I have bought "zero crossing" TRIACs instead?

 

Can anyone help shed some light?  ...and hopefully also shed a solution image

 

ps, I did see that I can buy a pre-built board for not too expensive (about $80 after shipping and taxes), but it's a cool DIY project and it would be far more satisfying (and educational) to build it myself.

 

edit: While doing more searching for answers I noticed that SSRs (solid state relays) do exist that are tiny chips, like this one, DIP-8: http://www.sharpsma.com/webfm_send/335  - very cool.

 

Thanks!

-Nico

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  • ntewinkel
    0 ntewinkel over 10 years ago in reply to D_Hersey

    Aww man! There's no getting away from this lesson on snubbers, is there?

     

    I was having no luck with the R(620ish)-C(10nF) attempt - the valve stayed on, so I'll have to revisit that math. I've also set it up on a separate little breadboard for easy testing.

     

    So to make sure I'm heading towards the right path, is the snubber designed based on the inductive load then (in my case the sprinkler valve) ? (as opposed to the triac ratings?)

     

    And what is the best way to figure out the values? My multimeter can check for inductance of the sprinkler valve coil. And I can get the Amps used. Or can it all be based on the general values that most 24v sprinkler valves have?

     

    Thanks,

    -Nico

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  • D_Hersey
    0 D_Hersey over 10 years ago

    The only relays that work on an arbitrarily inductive load are the mercury-wetted types.  Thyratrons can handle fairly large inductances.

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  • D_Hersey
    0 D_Hersey over 10 years ago

    Sometimes, snubbers are needed with relays as well.  The inductive spike can pit or weld the contacts.

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  • ntewinkel
    0 ntewinkel over 10 years ago in reply to mcb1

    Maybe I'm doing it more wrong than I previously thought...

     

    I'm using the BRT12H like the MOC3010 in your picture, but without the second triac. ie, 6 goes to phase, 4 goes to load.

     

    From the datasheet it looks like the 300 mA rating is enough to switch the sprinkler valve (supposedly 250 mA or less). But maybe I missed a detail to do with the inductive load.

     

    Should I try with a secondary triac?  Or Maybe the BRT12H is just completely wrong for my application and I should use two separate chips (moc3010 coupled with a higher power non-opto triac) like you have in your schematic?

     

    ps, I've also ordered a back-up plan in the form of a relay board image

     

    pps, given that there's 16 valves (potentially), and only 6 connections from RPi to the shift registers, would it be a better idea to opto-isolate between RPi and shift registers instead? Is there such a thing as a DC opto-isolator... and to make life easier do they make an 8-in-1 version? (I'll be Googling that too...)

    edit: Oops, I guess that won't work because it would be hard to isolate the 5v power to the shift registers.

     

    Thanks,

    -Nico

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  • mcb1
    0 mcb1 over 10 years ago in reply to ntewinkel

    In time gone by we used to make a board that controlled Stage lighting.

    The pinspots were a large 24v transformer and a 6v lattern lamp, so were heavily inductive.

     

    Most designs take the phase and feed it through a resistor and opto, then into the gate.

    We found this caused lots of problems with inductive loads.

     

    We copied some piece of commercial gear that connected the opto/resistor between the gate and the load.

    Fixed all our issues .....

     

    image

     

    Hopefully this will fix your issues.

     

    Mark

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  • D_Hersey
    0 D_Hersey over 10 years ago in reply to jw0752

    You are using LV, so it probably won't matter as much, but for line potentials, only certain types of Cs are a good choice in this rough service, metallized polyester being one.

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  • jw0752
    0 jw0752 over 10 years ago in reply to ntewinkel

    Hi Nico,

    I tend towards the practical and the numbers you have suggested sound very close to what I have seen used in similar circumstances. It can't hurt anything to pop the R - C snubber in the circuit and see if it solves the problem.

    John

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  • D_Hersey
    0 D_Hersey over 10 years ago

    I am, as usual, in consonance with MK, I think you would be well served to slow down and do some more reading, the information is of fairly general relevance.  The snubber works equally well placed across the switch or placed across the load.  But it is dissipative.  If your duty cycle is <50%, as in your case, you want to shunt the load, for sake of efficiency.  Sometimes, shunting your snubber with a MOV can let you use a higher-Z snubber, it is useful to experiment.

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  • michaelkellett
    0 michaelkellett over 10 years ago in reply to ntewinkel

    That's a good app note from Motorola/On-semi - by the time you've read and digested it you'll know lots of good stuff and you'll feel better for it !!

     

    I had an issue recently with a current source that was fine with resistive loads but didn't like inductors - fortunately the inductive load was always the same so I put a series R and C in //, not just to snub but to cancel out the inductance completely. (Google "Zobel network").

     

    MK

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  • ntewinkel
    0 ntewinkel over 10 years ago in reply to D_Hersey

    Oh my... this is getting complicated image

     

    If I'd know that I might have skipped this lesson and just bought a board full of relays image 

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