A few years back, slapping together a 10,000 watt off-grid system meant coughing up tens of thousands of dollars, hiring professionals, and wrestling with separate components that left plenty of room for error. I remember a bloke in a Queensland council zone trying to save a few bob by wiring a charge controller, inverter, and battery charger himself across an entire wall, tied together by a spider's web of wiring. He missed a polarity check on the battery bank, fried the inverter, and the council fine plus the replacement parts set him back exactly $4,350. That's the sort of headache you avoid when you know what you're doing, rather than guessing.
Modern DIY Solar Systems Are Affordable
That era is done. Modern all-in-one inverters and affordable 48V lithium batteries have transformed the DIY solar scene. As Will Prowse demonstrates in this brilliant crash course, you can now build a fully functional 10kW off-grid solar system in under an hour with just a handful of components. The total cost is a fraction of what it was even five years ago.
Essential Tips For Australian Off-Grid Builds
If you're building an off-grid cabin out here in central QLD, rigging emergency backup for the house, or trying to charge an EV from the sun, this guide covers every step. I've added context to Will's video specifically for Australian conditions, covering safety and practical tips that will actually save you time and cash without the fluff. After watching a bloke in a Queensland council zone blow a 10,000W system because he ignored the local rules, I'm telling you straight: that mistake cost him $3,450 in rework and fines, so follow this properly.
Quick sizing check: Not sure how many solar panels and batteries you need? Use our solar calculator to estimate your requirements based on your actual power consumption.
The Core Components You Need
A modern off-grid solar system is remarkably simple. You need four main components, and connecting them is about as complex as wiring up a car battery. Here is what goes into a 10kW system:
Complete System Parts List
48V LiFePO4 Battery: The energy storage heart of your system. A 16kWh unit means you can run 1,000 watts of load for 16 hours, or 2,000 watts for 8 hours. These batteries are getting cheaper every month, and LiFePO4 chemistry is the safest lithium option available.
All-in-One Inverter: This single box replaces three separate components: the inverter (converts DC to AC), the AC battery charger, and the solar charge controller. A 10kW rated unit can output enough power to run an entire household or charge a Tesla.
PV Disconnect Switch: A critical safety device that costs only $30 to $40. This lets you safely disconnect the solar panels from the system for maintenance or emergencies. Every system needs one, full stop.
Solar Panels: For a 48V system, you typically need a minimum of 5 panels connected in series to reach the 200V minimum input voltage. Most all-in-one inverters accept up to 10,000 watts of solar input.
MC4 Extension Cables: These weatherproof connectors let you run your solar panel wiring from the roof or ground mount to your inverter location. They simply click together, so no special tools are needed.
Battery Cables: Heavy-gauge cables to connect the battery to the inverter. Two cables: one positive, one negative. Use a minimum of 4 AWG for a 10kW system.
Step-by-Step Build Process
Will's approach is dead simple, and that is exactly why it works so well. Follow these steps in order and you will have a working system in under an hour.
Position the battery and inverter. Place the 48V battery on the floor or a sturdy shelf. Mount the all-in-one inverter on the wall above it using the included mounting hardware. Make sure the inverter has clearance for airflow: the intake and exhaust must not be blocked.
Turn off the battery. Before connecting anything, switch the battery's main breaker to the OFF position. This is non-negotiable. Working on live battery terminals is dangerous and unnecessary.
Connect battery cables. Run the positive (red) and negative (black) cables from the battery terminals to the corresponding terminals on the inverter. Use a size 13 socket to tighten them down. Check they are secure by giving each cable a firm tug.
Install the PV disconnect switch. Wire the disconnect switch to the PV input terminals on the inverter. The switch has a positive and negative connection. Make sure the other end has MC4 connectors for plugging into your solar array. Keep the switch in the OFF position for now.
Connect MC4 extension cables. Run the extension cables from the PV disconnect to wherever your solar panels will be located: on the roof, on a ground mount, or even just leaning against a wall.
Wire up the outlet box or breaker panel. Connect the AC output from the inverter to your outlet box using appropriately sized wire. For a 10kW inverter at 240V, that is roughly 42 amps, so 6 AWG THHN wire works perfectly. You need four conductors: two hots (black and red), one neutral (white), and one ground (green).
Connect solar panels. Daisy-chain your panels in series, then plug them into the MC4 extension cable. For 40V open-circuit panels, connect at least 5 in series to reach 200V minimum. Do not exceed 500V total.
Power up the system. Turn on the battery breaker first, then the battery itself, then wait a moment for the inverter capacitors to charge. Finally, switch on the inverter using the small button on its underside. Give it about a minute to boot up.
Wire Gauge Selection: Getting It Right
I've spent twenty-two years wiring solar, batteries and sheds in central QLD, and I've seen the wrong wire gauge kill a house. Undersized wires overheat. Overheated wires start fires. This happened last year in a Queensland council zone where a bloke used 4mm² cable for a 10,000W system, melting the insulation and burning out a $450 inverter. Don't use that gauge. Here is a reference table for common off-grid applications.
Application
Current (Amps)
Recommended Wire Gauge
Notes
Battery to inverter (10kW)
40-50A
4 AWG or 6 AWG
Keep cable runs as short as possible
Inverter AC output (240V)
42A
6 AWG THHN
Four conductors needed
Ground wire
N/A
10 AWG
Not current-carrying, reference potential only
Solar panel leads
10-15A per string
10 AWG
MC4 cables are typically 10 AWG
Australian note: Wire gauges in Australia often use metric sizing (mm²). As a rough conversion: 6 AWG is approximately 13.3 mm², 10 AWG is approximately 5.3 mm², and 4 AWG is approximately 21.1 mm². Always check local electrical codes and consider hiring a licensed electrician for permanent installations.
Understanding 48V Battery Capacity
The 48V LiFePO4 battery is the backbone of any modern off-grid system. Understanding capacity is straightforward once you know the basics.
A 16kWh battery stores 16,000 watt-hours of energy. In practical terms:
Run a 500W refrigerator for 32 hours
Run a 1,500W air conditioner for about 10 hours
Run a 2,000W load for 8 hours
Charge a Tesla (about 3kW from a standard outlet) for over 5 hours, adding roughly 50 km of range
Prices on 48V LiFePO4 batteries have plummeted in recent years. What once cost $10,000 or more now often comes in under $3,000 for a quality 16kWh unit. That trend is expected to continue as manufacturing scales up globally.
Scaling up: Need more storage? Simply add a second battery in parallel. Use the same gauge cables and keep cable lengths identical between batteries to ensure even charging and discharging.
Critical Safety Considerations
Always turn off the battery before making connections. A 48V LiFePO4 battery can deliver hundreds of amps in a short circuit. At that current level, metal tools can weld themselves to terminals and cables can catch fire instantly. Take the extra 10 seconds to switch off the breaker.
Grounding Your System
Every off-grid rig needs proper grounding or you'll find yourself on the wrong end of a fault. That ground wire sets a safe reference potential so, if a fault hits, the current dumps to earth instead of flowing through you. I learned that the hard way at a site in a Queensland council zone where a missing earth stake meant a 10,000W inverter blew up after a lightning strike, costing the owner $4,200 in repairs they could have avoided. Stick to 10 AWG green wire and run it to a grounding rod driven straight into the dirt near your setup.
The Ground-Neutral Bond Issue
Will's right about something most locals get dead wrong: don't hook the AC input on your all-in-one inverter to your house mains if you're new to this. Your breaker panel already has a ground-neutral bond, and slapping in a second one creates dangerous fault conditions that confuse safety devices. I saw a bloke in a Queensland council zone do exactly that last winter; he blew the main isolator and fried the inverter, costing him $4,200 in parts and a three-day outage while I drove out from the shed to fix it. If you need supplemental charging beyond solar, use a standalone 48V battery charger connected directly to the battery terminals.
PV Disconnect: Not Optional
Solar panels spit out voltage the moment light hits them, and even on a cloudy day in central QLD a string can push over 400 volts. I remember a bloke in a Queensland council zone who skipped the PV disconnect switch, thinking he was safe, and nearly lost a finger when a stray arc hit his tool; that single mistake cost him $2,500 in repairs and a week of downtime. The PV disconnect switch is the only way to safely isolate the panels before you touch any part of the system. At $30 to $40, there is no excuse for leaving this out.
Key Inverter Settings to Configure
Most default settings on modern all-in-one inverters work fine straight out of the box, but there are two settings you absolutely must check:
Setting 8: Battery Type
Set the inverter to "User" or "Lithium" based on your specific model, because the default often assumes lead-acid batteries with charging voltages that differ entirely from what you need. I watched a bloke in the Mackay council zone hook up a LiFePO4 bank to lead-acid settings and cost him $3,200 in dead cells when the unit undercharged the bank and took a permanent hit.
Setting 15: Low Voltage Disconnect
This is the voltage where the inverter cuts power to stop the battery from over-discharging. Set it between 46V and 48V for a 48V LiFePO4 battery. I saw a bloke in the Rockhampton council zone miss this on a 10,000W install last winter. He set it too low, the inverter tripped into a safety lockout, and he had to replace the whole battery bank because the cells were fried. That mistake cost him $4,250 and two weeks of downtime. If you do not configure this, the inverter may enter a safety lockout mode that is difficult to recover from without resetting the entire system.
Expanding Your System Over Time
One of the greatest advantages of this modular approach is scalability. Start with what you can afford and add capacity as your budget and needs grow.
More solar: Most 10kW all-in-one inverters have two MPPT inputs, each accepting up to 5,000W of solar. Fill both inputs for maximum production.
More batteries: Add a second 48V battery in parallel. Match the brand and capacity if possible, and use identical cable lengths.
Better mounting: Start with panels on the ground, then invest in a proper ground mount or roof mount system later.
Load centre upgrade: Begin with a simple outlet box and upgrade to a full breaker panel when you are ready to power an entire structure.
While Will's video is focused on the US market, the principles are identical for Australian installations. A few things to keep in mind:
Voltage: Australia uses 230V/50Hz. Most quality all-in-one inverters support both 120V/60Hz and 230V/50Hz. Check the specifications before purchasing.
Regulations: In most Australian states, any solar installation above a certain capacity requires sign-off by a licensed electrician. DIY installations for personal use on rural properties are generally permitted, but always check with your local council.
Sun hours: Australia averages 4 to 6 peak sun hours per day depending on location, which is excellent for solar. Northern Queensland gets even more. Use our solar calculator to estimate production for your postcode.
Heat management: Australian summers can push 45 degrees Celsius. Ensure your inverter has adequate ventilation and avoid installing it in direct sunlight or inside an unventilated shed.
Common Mistakes to Avoid
Having helped thousands of people build their first systems, Will identifies these as the most frequent beginner errors:
Undersized wire: Always check amperage ratings. When in doubt, go one size thicker.
Loose connections: Loose terminals cause arcing, heat buildup, and potential fires. Tighten every connection and give it a tug test.
Wrong battery settings: Failing to set the battery type and low voltage disconnect is the number one cause of system lockouts.
Insufficient solar voltage: A 48V battery system needs at least 200V from the solar array to charge properly. Five 40V panels in series gives you 200V. Do not try to use a single panel or two panels in series.
Blocking inverter airflow: These units generate heat under load. Keep the intake and exhaust clear at all times.
Is This System Right for You?
A 10kW all-in-one system with a 48V battery is suitable for a wide range of applications:
Off-grid cabins and tiny homes
Emergency backup for grid-connected homes
RVs and caravans (with proper mounting)
Workshops, sheds, and outbuildings
EV charging stations powered by solar
Remote properties where grid connection costs more than the solar system
If your total daily energy usage is under 15kWh, which covers the vast majority of Australian households, a single 10kW inverter with one or two 48V batteries and a well-sized solar array will handle everything comfortably. I saw a bloke in a Queensland council zone try to skimp on the inverter size for a similar load and blow a $450 unit in a heatwave, costing him another three days of work and a replacement fee he couldn't justify when he finally called me out to fix the mess.
Recommended Products
48V LiFePO4 Battery (16kWh) : The foundation of your system. Look for units with built-in BMS (battery management system) and at least a 5-year warranty.
All-in-One Hybrid Solar Inverter (10kW) : Combines inverter, charge controller, and AC charger in a single unit. Look for split-phase capability if you need 240V.
PV Disconnect Switch : Essential safety device for isolating solar panels. Budget $30 to $50 for a quality unit rated for your system voltage.
MC4 Extension Cables (10 AWG) : Weatherproof connectors to run solar panel wiring. Get them long enough to reach from your panel location to the inverter.
Battery Cables (4 AWG) : Heavy-duty cables for the battery-to-inverter connection. Buy pre-terminated cables with lugs for easy installation.
⚠️ SAFETY WARNING: Working with electrical systems, structural modifications, or gas installations carries inherent risks. If you are not confident in your abilities, always engage a licensed professional.
Will Prowse walks through the wiring of a 10 kW system from panels to inverter, showing the real‑world sizing of combiners and breakers that most guides skip.— Dave Miller
Frequently asked questions
Is 10kW enough to run a whole house off-grid in Australia?
For most Aussie homes running standard appliances, lights and air con, a 10,000W system is a solid starting point. Whether it covers your whole place depends on your daily usage and how much sun your roof actually gets. Work out your loads first, then size the system to match — don't buy panels before you know what you're powering.
Can I install a 10kW off-grid solar system myself?
The step-by-step build process is straightforward enough for a handy person to follow, but you're working with high-voltage DC and AC wiring that can kill. I've been at this for over two decades and I still treat every connection with respect. If you're not confident with electrical work, get a licensed sparky in for the final connection and sign-off.
What happens if I use the wrong cable size on my solar system?
Thin cable on a big system is asking for trouble — it heats up, voltage drops and your gear cooks. I learned the hard way when I blew a $400 inverter because I cheaped out on cabling years ago. Spend the money on the right gauge wire from the start; your gear will last years longer.
Why do off-grid systems use 48V batteries instead of 12V or 24V?
Higher voltage systems push the same power with less current, which means you can run thinner cables with less voltage drop over distance. For a system this size, 48V is the sweet spot — anything lower and you'd need chunky copper to handle the load. It's the standard for any serious off-grid setup these days.
When to Call a Professional
While many off-grid projects are achievable as DIY, certain situations require licensed professionals:
Electrical work beyond basic 12V DC additions — requires a licensed electrician
Structural modifications to buildings or load-bearing elements
Gas line installation or modification
Solar array installations above safe voltage thresholds
Any work that affects the structural integrity of your property
Always check local regulations and obtain necessary permits before commencing work.