Farmhand,
After running hundreds of cycle test seeing a battery not deplete after being loaded seems non-typical, or in fact quite rare. I don't fully understand why this SWP circuit in certain circumstance causes the battery to increase under load and over time. More than not, I think that you would agree batteries actually decrease voltage by virtue of natural sulphation.
I have actually had several of these lighting systems in my home over the last several months. Day in and day out they are more efficient than anything else that I have tested. Until I was testing the pulsed DC circuit powered by grid AC.
My quest there is as I have said. Logic says no current on the AC side, should not allow for pulsed DC signal on the rectified side. But as you can see, the light works at full brightness.
But why and how still remains a mystery. If you can clear that up, I would be grateful.
Note: Grid power safety is always a concern, but I am assuming the same configuration with an AC inverter may produce similar results.
After running hundreds of cycle test seeing a battery not deplete after being loaded seems non-typical, or in fact quite rare. I don't fully understand why this SWP circuit in certain circumstance causes the battery to increase under load and over time. More than not, I think that you would agree batteries actually decrease voltage by virtue of natural sulphation.
I have actually had several of these lighting systems in my home over the last several months. Day in and day out they are more efficient than anything else that I have tested. Until I was testing the pulsed DC circuit powered by grid AC.
My quest there is as I have said. Logic says no current on the AC side, should not allow for pulsed DC signal on the rectified side. But as you can see, the light works at full brightness.
But why and how still remains a mystery. If you can clear that up, I would be grateful.
Note: Grid power safety is always a concern, but I am assuming the same configuration with an AC inverter may produce similar results.
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