I remember sitting in a van outside Bellingham, Washington, watching my Victron app show 640 watts of panel capacity producing a grand total of 41 watts. It was one of those flat, gray Pacific Northwest days where the sky looks lit from behind by a dim bulb. My first thought was that something had failed. It hadn’t. That is simply what solar looks like under heavy cloud, and if you run lithium on solar you need to know these numbers cold before they surprise you.
The quick version

- Light, hazy overcast typically delivers 40 to 60 percent of a panel’s rated output.
- Medium cloud cover with visible sun disc drops that to roughly 20 to 40 percent.
- Heavy dark storm clouds or fog can fall as low as 3 to 15 percent of rated wattage.
- Voltage often stays surprisingly close to normal even when current collapses, which is why watching amps matters more than watching volts.
- MPPT controllers handle cloudy conditions noticeably better than PWM because they can still extract usable power from lower voltage, lower light input.
What actually happens to sunlight under clouds
Solar panels convert photons into electrons, and clouds do not block light entirely, they scatter and absorb it. Thin cirrus clouds barely dent output. Thick cumulus or nimbostratus clouds absorb a huge percentage of direct beam radiation and replace it with diffuse light, which is weaker and less directional.
This is why the exact same 100 watt panel can put out 90 watts under a clear noon sky and 12 watts under a rain-heavy overcast an hour later. The panel has not changed. The available energy hitting its surface has.
There is also a difference between diffuse cloudy light and direct sun poking through gaps. On partly cloudy days, you will actually see brief spikes above the panel’s rating as light reflects off nearby cloud edges and adds to direct sun, an effect installers sometimes call cloud enhancement. It is real, but it is short-lived and unpredictable, so never size a system around it.
Real output numbers by cloud type
These figures come from field observations across multiple lithium conversions I have worked on, not laboratory conditions, so treat them as practical planning ranges rather than guaranteed constants.
| Sky condition | Percent of rated output | 400W array example |
|---|---|---|
| Clear sky, direct sun | 80 to 100 percent | 320 to 400W |
| Light haze or thin high clouds | 50 to 70 percent | 200 to 280W |
| Moderate cloud, sun visible | 25 to 45 percent | 100 to 180W |
| Heavy overcast, no visible sun | 10 to 20 percent | 40 to 80W |
| Dark storm clouds or heavy fog | 3 to 12 percent | 12 to 48W |
A mistake I see constantly is someone sizing their array for a sunny afternoon test drive at the dealer lot, then expecting that same number every day of the year. Design around your worst realistic week, not your best single hour.
Why your controller display can be misleading
On a gray day, glance at your MPPT screen and you might see panel voltage sitting at 19 or 20 volts, which looks perfectly healthy. But the amperage reading might be 1.8 amps instead of the 9 or 10 amps you would expect from a properly sized 300 watt panel in full sun.
Voltage is not the number that charges your battery, current is. Watts equal volts times amps, and under clouds it is almost always the amp side of that equation that collapses first.
This trips up a lot of new lithium owners who assume a decent voltage reading means the system is working fine. Check total watts or amps into the battery, not just the panel voltage, especially when troubleshooting a system that seems to be underperforming.
How lithium charge acceptance changes the picture
Here is the part that actually works in your favor. Unlike an AGM battery that tapers its charge acceptance hard once it climbs past 80 percent state of charge, a LiFePO4 bank from Battle Born, Li Time, or Ampere Time will happily accept whatever amperage the controller can deliver almost all the way to full, then cut off sharply near the top.
That means on a cloudy day, every single watt your panels manage to scrape together gets used efficiently instead of being wasted the way it might be on lead-acid. If your controller only harvests 60 watts all day because of solid overcast, that 60 watts still goes almost entirely into usable stored capacity rather than being throttled by absorption-stage tapering.
Tip: If you regularly camp in cloudy climates like the Pacific Northwest, coastal Alaska, or the UK, an MPPT controller from Victron or Renogy will meaningfully outperform an older PWM controller, since MPPT can still convert low-light, lower-voltage input efficiently while PWM effectively wastes the difference.
A real scenario: three gray days in a row
Say you are boondocking with a 400Ah lithium bank and a 600 watt rooftop array. Under a genuinely bad stretch of coastal fog and low stratus, your daily solar harvest might fall to something like 300 to 500 watt-hours total for the day instead of the 2000 to 2500Wh you would expect on a clear day.
If your daily consumption is running a fridge, some lighting, and phone charging at roughly 60 to 80Ah per day, three days like that will visibly dent your state of charge, dropping you from 100 percent to somewhere in the 40 to 55 percent range depending on your starting point.
This is exactly the kind of stretch where a backup charging path matters. A DC-DC charger pulling from your alternator during driving, or an occasional shore power top-off with a Progressive Dynamics or WFCO converter, keeps you from ever actually running the bank dry during an unlucky weather week.
Planning your array so cloudy days do not wreck your week
- Size your solar array using your worst typical week for your travel region, not a clear-sky maximum.
- Add 20 to 40 percent extra rated wattage as a buffer against inevitable overcast stretches.
- Use an MPPT controller rather than PWM if you regularly travel through cloudy or forested regions.
- Keep a secondary charge source, alternator DC-DC or shore power, so solar is never your only lifeline.
- Watch amps and total watt-hours harvested, not just panel voltage, when judging real performance.
- Tilt panels toward the brightest patch of sky if your mounting allows it, since even diffuse light has a directional bias under partial cloud.
When low output actually signals a problem
Not every bad day is just weather. If you are seeing near-zero output on what is only lightly overcast, or output that never recovers even once the sun breaks through, that points toward a wiring issue, a failed MC4 connector, shading from an antenna or AC unit, or a controller fault rather than clouds.
Genuine cloud-related output should track roughly with what you’d expect from the sky condition and should bounce back quickly once clouds thin, even briefly. A system that stays flat regardless of sky brightness deserves a multimeter check on the panel’s open-circuit voltage and a look at your fuses and connections.
Where this fits into your overall solar plan
Cloudy day output is really just one variable inside the bigger question of how to size and wire a full solar charging setup for a lithium bank. Once you know your realistic worst-case harvest, you can work backward to decide panel count, wire gauge, and controller size with actual confidence instead of guessing.
If you are still deciding between controller types, it is worth reading through the differences covered in our MPPT versus PWM comparison for lithium banks, since the gap between the two technologies widens considerably under exactly the low-light conditions discussed here. And if winter travel is part of your plan, short days compound the cloudy day problem in ways worth reading about in our guide to getting solar power through winter.
For a broader look at matching panel wattage to your actual battery bank and usage habits, our piece on figuring out how much solar you actually need walks through the math step by step. According to NREL research on diffuse irradiance, cloud cover consistently ranks among the largest single variables in daily solar yield, more so than panel angle or minor shading in most climates.
Living with the gray days
Cloudy weather is not a design failure, it is a normal input you plan around the same way you plan around battery capacity or daily power draw. Once you have watched your own system through a real gray stretch and seen the actual watt-hour numbers, the anxiety mostly disappears and you start trusting your setup instead of second-guessing every dim afternoon.