— Dave. Measure twice, buy once.
ArticlesCalculatorsSite PlannerShopBy Dave Miller · off-grid sparky · 22 years wiring solar, batteries and sheds in central QLD
“After losing half my lead-acid bank to Queensland humidity in a shed I thought was dry, I now insist on hermetically sealed battery boxes and rainwater tanks that actually drain.”
Offgrid Battery Bank Water Storage — Essential knowledge for Australian off-grid living
Off-grid is about more than just slapping up solar panels; the two systems that actually keep a place running are energy storage and water supply. I've spent 22 years wiring solar, batteries and sheds in central QLD, and I've seen plenty go wrong. A 48V bank without proper ventilation will melt busbars in a single heatwave. That failure taught us hard lessons about Australian conditions where power outages and water security are genuine concerns, not theoretical risks.
Martin and Julie have been hacking away at their off-grid homestead from scratch for nearly two years. Their solar setup has grown in fits and starts: starting with four panels (1,000W), moving to eight (2,000W), and now sitting at ten panels pushing roughly 3,000W in full sun. Drop the clouds and that output tanks to around 500W.
I do a slow build because it fits the pocket; you don't need a 10 kW system on day one. I start with enough capacity to cover the critical loads, then expand as your budget and experience grow.
I run eight Battle Born 100Ah 12V lithium‑iron‑phosphate batteries wired in a series‑parallel configuration, giving me a 24 V bank with a decent amount of storage.
I started with standard golf‑cart lead‑acid batteries at roughly $150 each. I later upgraded to LiFePO4 for a few key reasons:
Martin and Julie run their entire household on this system, including:
In my experience, the typical daytime household draw sits around 150W, excluding the refrigerator compressor cycling. Off‑grid success comes from picking appliances that sip power and staying aware of what you draw.
Julie offered a refreshingly honest perspective on the compromises:
I treat these tweaks as simple. Most Aussie homes already line‑dry their washing, and switching the cooktop to LPG wipes out a major electricity draw entirely.
For anyone starting out, my advice is simple: measure first, buy second. Here's my step-by-step approach.
1 Buy a Kill-A-Watt power meter (or equivalent plug-in energy monitor).
2 Plug it into each appliance you plan to run on your off-grid system. Let it measure for a full 24 hours under normal operating conditions. Do not open the freezer repeatedly or clean it out during the test.
3 Record the watt-hours per day for each appliance. Light bulbs are easy to calculate manually (watts x hours), but refrigerators and freezers cycle on and off unpredictably. The meter handles this for you.
4 Add up your daily total. This is your baseline energy requirement.
5 Size your battery bank based on how many days of autonomy you want (days without sun or generator).
Suppose your three freezers collectively use 1,000 Wh per day. For one day of backup:
Use our master calculator to run these numbers for your specific appliance list.
Martin makes a critical point about sizing panels for worst-case conditions, not average days:
I run grid‑connected backup systems. They only need to bridge outage periods, so the array can be sized smaller than a full off‑grid setup that must supply power every day.
I set up the water storage for the Johnsons' system with a 9,500 litre (2,500 US gallon) polyethylene tank, buried half in the ground. It's a no‑frills solution that holds enough water without drama.
I watched the Johnsons’ system survive a week of sub‑zero temps with wind chill; only a thin layer of ice formed on the water. The bulk stayed liquid, and the pump kept running because it draws from the bottom of the tank. Refilling with well water at around 4 °C melts the surface ice.
For Australians on town water who simply want emergency backup, the approach can be even simpler:
A 160‑metre deep bore can cost $33,000 USD (approximately $50,000 AUD). A cistern or rainwater tank is the smart first step.
I run a single inverter that steps 24 V DC from the battery bank up to 240 V AC. Modern inverters are efficient enough that wiring the whole house at 12 V is no longer needed – I just plug standard, energy‑efficient appliances into the inverter and let it handle the conversion. I’ve watched too many people in central Queensland cut corners on shed wiring, hardwire 12 V lights without proper isolation switches for a 24 V system. The typical result is a burnt‑out inverter or a council inspector telling them to rip it out because they tried to hardwire 12 V lights without proper isolation switches for a 24 V system.
I've built a few backup and small off‑grid systems for clients in central Queensland, and adapted the approach for Australian conditions; here is a practical starting point for a backup or small off‑grid system:
| Component | Specification | Approx. Cost (AUD) |
|---|---|---|
| Solar panels | 4x 400W (1,600W total) | $800 to $1,200 |
| Charge controller | MPPT, 40A minimum | $200 to $400 |
| Battery bank | 2x 12V 100Ah LiFePO4 (24V, 2.4 kWh) | $1,000 to $1,600 |
| Inverter | 3,000W pure sine wave | $500 to $900 |
| Water tank | 5,000L poly tank with pump | $1,200 to $1,800 |
| Total | $3,700 to $5,900 |
I build a battery bank that keeps freezers, lights and internet running for one to two days, then tops it up with solar while daylight lasts. Add extra capacity when your budget allows.
After two years of full-time off-grid living, Martin and Julie's biggest lessons are:
Key products for building a practical off-grid energy and water system.
Worth a watch: Off-Grid Solar Battery Bank and Water Storage with Martin Johnson Off-Grid Living · The Grass-fed Homestead
Grab a Kill-A-Watt meter and walk around the house plugging in each appliance you actually use. Log the watt-hours over a typical day, add a buffer for bad weather, and that gives you a real number to size to. It's a weekend job but it beats guessing and ending up with a bank that's too small.
Forget sizing for your average day — in central Queensland you design for the worst stretch, and a week of grey sky is realistic. I oversize the array so the bank can recover properly once the sun comes back. The article walks through how I work that out for my own place.
For the inverter, AC wiring and anything that ties back to mains, yes — get a licensed sparky in. I do my own DC interconnects and low-voltage work, but I'm qualified by trade. If you're not, the safe rule is anything that can kill you, leave it to someone who can sign the cert.
I had the same problem — lost half a lead-acid bank to humidity in a shed I was sure was dry. These days I only use hermetically sealed battery boxes and make sure the enclosure can breathe. Heat and moisture chew through batteries faster than normal cycling ever will.
While many off-grid projects are achievable as DIY, certain situations require licensed professionals:
Always check local regulations and obtain necessary permits before commencing work.