Single-line diagram

Building a diagram from the plant

Auto-build draws a starter single-line diagram from the plant's own equipment counts and the materials list's ratings, for you to check and extend.

Auto-build draws a starter single-line diagram — SLD — from the plant you have already laid out. It reads the plant's own equipment counts and the bill of materials' ratings, places the chain from the modules through to the grid, and annotates each block with how many of that item there are and what it is rated at. What you get is a correct-by-count skeleton on the drawing sheet, which you then edit.

It is a starting point, not a finished drawing. The chain it places is the generation-to-grid path; the protection, switching and instrumentation an issued SLD carries is drawing work you do on top of it.

A diagram generated from the plant, showing the equipment chain annotated with quantities and ratings.
An automatically built diagram

Before you run it

Auto-build reads the plant as it stands at the moment you use it, so the plant has to exist first.

Generate the layout

The equipment counts come from the placed plant — the inverters or string monitoring boxes, and the control rooms they feed. With no layout there is nothing to count. See Your first layout.

A generated layout is the whole prerequisite. The ratings auto-build annotates come from the bill of materials, which is computed from the layout alone, so no energy calculation is needed — running the yield calculation first adds nothing to the diagram.

Switch diagram mode on and run auto-build

Click ⚡ SLD on the plot toolbar, then Auto-build. The chain is drawn on the sheet.

Auto-build reads the plant at the moment you run it. If the layout changes afterwards, run it again on a sheet you have emptied with 🗑 Clear SLD, so that the chain and the plant describe each other.

The chain it draws

Which chain you get follows the electrical topology chosen at launch, because the two topologies convert the DC in different places. See Choosing a design mode.

PV → String Inverter (×N) → ACCB (×n) → Transformer → MV Panel → Grid
StageWhat it is
PVThe module field feeding the inverters
String Inverter (×N)The string inverters placed across the plant, each converting DC to AC where it stands. N is how many the layout placed
ACCB (×n)The AC circuit breakers the inverters land on. n follows from the inverter count and the inverters-per-breaker rule
TransformerThe machine taking the collected AC output up to medium voltage
MV PanelThe medium-voltage switchgear the transformer feeds
GridThe outgoing connection

The AC leg is what distinguishes this chain: conversion happens out in the field, so what arrives at the breaker is already AC.

Both chains end the same way, and both are drawn along a horizontal bus — which is why the inverter and every transformer are placed already rotated to line up with it. See Building the single-line diagram.

The topology rules it applies

Three rules decide how many breakers and transformers the chain carries:

RuleValue
Inverters per AC circuit breaker15
AC circuit breakers per inverter duty transformer4
Maximum inverter duty transformer capacity17.2 MVA

Read them as a cascade. Inverters are grouped fifteen to a breaker; breakers are grouped four to a transformer; and a transformer is capped at 17.2 MVA, so a grouping that would exceed the cap is split rather than carried.

These are the same rules the bill of materials uses. The diagram's breaker and transformer counts therefore agree with the quantities in the materials list for the same plant — the two are not derived independently, so there is no reconciliation to do between them. See Bill of materials.

If your own scheme groups equipment differently — a different number of inverters per breaker, or a transformer size you have already fixed with a supplier — the chain will not match it. Edit the drawing to your scheme, and expect the materials list to still show the rule-based quantities.

What the annotations mean

Each block on the chain is annotated with two things:

  • A multiplicity, written as ×N — how many of that item the plant carries. One inverter symbol carrying a multiplicity stands for every inverter in the plant, drawn once. That is normal single-line practice, and it is what keeps the sheet readable on a plant with dozens of machines.
  • A rating, taken from the bill of materials for that item.

Both are put on the sheet by auto-build rather than typed by you. Where one is wrong — a rating that does not match the machine you are buying, or a count you have since revised — correct it on the sheet with the Text tool.

What to do next

Treat the result as a first draft, in this order:

Check every rating

The ratings come from the materials list, which is itself derived from the layout. Read each one against the equipment you are actually procuring, and correct the annotation where it differs.

Add what the rules do not cover

The chain carries the generation-to-grid path. Isolators, breakers other than the AC circuit breakers on the chain, instrument transformers, meters, relays, arresters and phase indication are all yours to place from the palette and wire in. See Symbol reference.

Fill in the legend, the notes and the title block

All three ship blank — no company name, no project name, no drawing number. Complete them with Text.

Fit and export

Use ⤢ Fit to see the whole sheet, then export it, or leave it to be carried into the PDF report as the report's diagram page. See Exporting the diagram.

Where to go next

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