Solar arrays are deliberately oversized against their inverters, because panels almost never hit their nameplate rating. The DC/AC ratio is how designers keep that oversizing in the sweet spot instead of throwing away energy.
A 9.6 kW array on a 7.6 kW inverter is a 1.26 ratio — comfortably inside the typical 1.1 to 1.3 design window.
The example
Three system designs with their array and inverter ratings in kilowatts.
| A | B | C | D | |
|---|---|---|---|---|
| 1 | System | Array DC (kW) | Inverter AC (kW) | DC/AC |
| 2 | Home array | 9.6 | 7.6 | 1.26 |
| 3 | Shop roof | 14.4 | 11.4 | 1.26 |
| 4 | Ground mount | 20.0 | 20.0 | 1.00 |
The formula
One division, rounded to the two decimals the industry quotes:
How it works
Why the ratio is deliberately above 1:
B2is the array's nameplate DC rating — panel wattage times panel count, at standard test conditions the array will rarely see.C2is the inverter's continuous AC output rating.B2/C2gives the ratio. Above 1.0 means the array can, in theory, overwhelm the inverter on a perfect day — which is fine, because most days are not perfect.ROUND(...,2)gives the 1.26 that appears on the design document.
Push too far past 1.3 and the inverter starts clipping real production on clear days. Sit at 1.0 and you have paid for inverter capacity that almost never gets used.
Try it: interactive demo
Enter the array and inverter ratings in kilowatts.
Variations
Flag designs outside the window
Let the sheet catch a mis-sized inverter before the order goes in.
Array DC from panel count
Build the DC rating rather than typing it.
Pitfalls & errors
Compare the same units. Panel ratings come in watts and inverters are often quoted in kilowatts — mixing them gives a ratio of 1,260 instead of 1.26.
The right ratio depends on climate and orientation. Cooler, cloudier sites tolerate more oversizing than a hot desert array that regularly runs near nameplate.
Practice workbook
Frequently asked questions
Is clipping always bad?
Does this change with microinverters?
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