---
title: "How to Read a Crane GA Drawing Before You Approve It"
url: https://yzcranes.com/how-to-read-a-crane-ga-drawing-before-you-approve-it/
date: 2026-09-16
modified: 2026-09-12
lang: en
author: "liudatou"
description: "A GA drawing, short for General Arrangement, is the crane maker's promise on paper. Before signing, eight dimensions deserve a line-by-line check. They are span S, lifting height H, the..."
categories:
  - "Uncategorized"
image: https://yzcranes.com/wp-content/uploads/2026/07/通用门式产品图-768x576-2.jpg
word_count: 1853
---

# How to Read a Crane GA Drawing Before You Approve It

A GA drawing, short for General Arrangement, is the crane maker's promise on paper. Before signing, eight dimensions deserve a line-by-line check. They are span S, lifting height H, the left and right hook approach limits C1/C2, the top clearance from rail to roof truss or eaves, rail gauge and rail model, bridge end-carriage buffer stroke, power-supply side and maintenance platform position, and the maximum wheel load. If any dimension clashes with the building or the process, changing the drawing costs nothing. Paper edits are cheap. After the machine reaches site, that same change means cutting, rework and shutdown.

## What a GA Drawing Contains

### Three Views and the Title Block

A GA drawing usually presents three views: front, side and plan. Together they show the machine outline, its relationship with the building rails, and the position of every mechanism. The title block sits in the lower right corner. That corner holds the basics. It lists model, rated capacity, span, duty class, drawing number and revision. The revision number is the lifeline of the whole review process, and it gets its own section later.

### What Comes with the Drawing

Beyond the outline, a proper GA also carries several tables. They include a load table for every operating case, a maximum wheel load table, and power conditions covering voltage, frequency, capacity in kVA and conductor bar or festoon form. The sheet also states the rail interface and the foundation conditions. A gantry crane drawing adds leg pressures, foundation dimensions and travel-limit positions. These tables serve the design institute and the installation crew. Without them, nothing gets built. A GA with missing items is just an exterior rendering.

After taking the drawing, do one job that needs no engineering knowledge. First, compare the title block. Compare the title block against the technical agreement word by word: model, tonnage, span, duty class and revision. A single letter in the model can flip single girder to double girder, or A5 to A6. An older revision may still show the gauge from before negotiation. This check takes ten minutes, yet every later review depends on it. Reviewing the wrong revision in fine detail produces fine-detailed mistakes.

Think of the GA as the floor plan of the crane. Nobody buys a house from an exterior rendering alone. Buyers check load-bearing walls, ceiling height, door openings and utility shafts. Crane review follows the same logic: ignore color and view quality, and focus on limits, interfaces and clashes.

## Eight Dimensions to Check One by One

### S, H, C1/C2 and the Top Clearance

- **Span S:** the center distance between the two crane rails, which must match the gauge reserved by the building columns, while the allowed tolerance of the installed rail center distance also needs checking, because ISO 12488-1 sets clear crane and rail tolerance rules and a few dozen millimeters of error can start rail grinding;
- **Lifting height H:** the full-chain dimension from rail-top level to the lowest hook working position, calculated together with load height, workstation levels and clearance over equipment, never as one isolated under-hook number;
- **Hook approach limits C1/C2:** the distance from hook head to the column inner face when the hook reaches either end limit, which decides whether wall-side machines and pits fall inside hook coverage, because oversized C values waste a workstation strip at both building ends;
- **Top safety clearance:** the clear distance from main girder top to roof-truss lower chord, pipes and cable trays, which must satisfy both maintenance space and the minimum safety distances in the GB and ISO rules, with human-body checks wherever a person may pass.

### Buffers, Power, Platforms and Wheel Load

- **Bridge buffer stroke and end stops:** the alignment between end-carriage buffer centerline and the end stop, plus the collision travel, must match the rail construction drawing;
- **Power-supply side:** which building side carries the conductor bar, whether lockout-tagout is possible during maintenance, cable reel or angle-steel conductor, and whether it clashes with columns or pipes;
- **Cabin, inclined ladders and maintenance platforms:** whether the cabin door opens toward a walkway, whether platforms offer a foothold, and whether the access route crosses the conductor bar;
- **Maximum wheel load:** the design value, dynamic factor included, goes straight to the civil team for brackets and crane girders, and the number must match both the wheel load table and the technical agreement.

| Dimension code | Meaning | Who supplies the data | Common clash |
| -------------- | ------- | --------------------- | ------------ |
| S | Span, rail center distance | Maker, set from building gauge | Column spacing error, rail tolerance |
| H | Lifting height | Process sets need, maker completes the chain | Missed clearance over workpieces |
| C1/C2 | Left and right hook approach | Maker, process confirms coverage | Wall-side stations out of reach |
| Top clearance | Girder top to truss or pipes | Overlay with building drawings | Ducts, trays, truss web members |
| Gauge and rail model | QU70/QU80, A55/A75/A100 | Maker recommends, civil installs | Girder embedment mismatch |
| Buffer stroke | End-carriage buffer to stop | Maker and civil align | Stop height and position offset |
| Power side | Conductor bar or festoon position | Electrical discipline | Interference with columns and platforms |
| Maintenance platform | Platforms, ladders, cabin | Maker draws, safety reviews | Doors and pipes facing the platform |
| Maximum wheel load | Design wheel load with dynamic factor | Maker gives value, civil reviews | Mismatch with technical agreement |

## How to Read the Technical Parameter Sheet

### Duty Class, Speeds and Motors

The parameter sheet starts with duty class (A5/A6/A7) and its match with the real shift pattern. Buying low brings fatigue trouble within two or three years. Buying high wastes money. Next come the speeds and speed-control methods of the three mechanisms, hoist, trolley and bridge. Motor power, duty cycle ED% and starts per hour then face the cycle time. The sheet also states whether the control runs on variable frequency or contactors, and whether anti-sway and positioning interfaces exist.

### Wheel Loads, Rails and Power

The wheel load table gives maximum wheel load and transverse force, and the civil team sizes crane girders and brackets from it. Rail models run to QU70/QU80 crane rails or A55/A75/A100 rail. The maker recommends by wheel load, while the civil team supplies the girder and clips. The power section states voltage, frequency, kVA capacity and current collection method, and the owner's electrical team checks substation capacity and feeder breakers. One more look goes to IP protection, corrosion class and permitted ambient temperature. Coastal projects need the C5-M heavy-protection class, so the machine matches the actual climate. If climate and class diverge, trouble follows. A supporting electric hoist appears on the same sheet, line by line against the whole machine.

Three easily missed groups deserve attention as well. First, limits and buffers: the type and position of hoist upper and lower limits, plus bridge and trolley travel limits, and whether metallurgical or high-frequency duty gets double limits. Second, weight data: total machine weight, the single heaviest transport piece and its outline dimensions. Those numbers set the site-entry route, the unloading crane tonnage and gate clearance. Third, environment boundaries: permitted temperature range, supply-voltage tolerance and wind pressure for outdoor machines. If these conditions do not match reality, even a good-looking machine runs sick.

## Overlay Review Against the Building

### Lay the Building Drawing over the GA

The equipment drawing alone rarely shows a fault. Building axes, columns, brackets, process pipes, ventilation trays and door openings must overlay the GA on transparent sheets. The review then hunts clashes one by one. Does the girder top hit a truss web member? Does a conductor bracket land on column bracing? What sits behind the maintenance door when it opens? Then replay the lifting cycle on a timeline: where the workpiece enters, whether the hook reaches, how much clearance stays above equipment, and whether the operator sees the extreme position.

### Access, Maintenance and Tolerances

Walk the drawing as a person. Check the route up to the cabin, where the hook parks for maintenance, and whether a slowdown limit sits before the buffer hits the stop. Rail span and straightness tolerances follow ISO 12488-1, and civil embedments with bolt holes meet the equipment interfaces item by item. If an embedment misses, site work starts.

A printed overlay meeting beats screen review by a wide margin. Lay the GA over a building section at one scale on a drawing board. Colored pens then mark clash points, walkway lines and load travel paths one by one, and every discipline names an owner and a reply date on the spot. Finding a problem is harmless. The real danger is nobody overlaying the drawings. Most field cut-and-weld jobs trace back to each team reviewing its own sheet. At one plant expansion, no one overlaid the fire-protection drawing during GA approval. The maintenance platform faced a fire main, and the clash surfaced only on site. Crews cut and rebuilt the platform, redid welding and coating, and even moved the fire pipe. Paper time beats site time. An hour on the drawing became a week of field work, and shutdown losses dwarfed the review meeting.

## Drawing Review and Sign-Off Checklist

### Five Disciplines Sign Their Own Names

- **Process:** hook approach covers every workstation, and H with speeds meets the cycle;
- **Civil:** maximum wheel load and transverse force match crane girder, brackets and foundations, with end-stop positions confirmed;
- **Electrical:** kVA capacity, power side and interface positions match the substation;
- **Safety:** walkways, ladders, platforms, emergency stops, sound and light signals, and fire clearances meet GB/T 3811 and site safety requirements;
- **Logistics:** the equipment entry route, gate width and height, and space for unloading lifts.

Overseas projects also check parameter expression against FEM 1.001 or CMAA 70/74. Then one data set rules, so GA drawing, load table and calculation book share one data set.

### Version Control

Only the revision stamped Approved for Construction counts for production. Any spoken change or email line saying build to this for now takes effect only after a revision bump. Work starts only when the drawing revision on site matches the signed-off set. If revisions diverge, work stops.

One last reverse question deserves an honest answer: does the GA under your pen really share one revision number with the model, span and wheel loads on the quotation and technical agreement? Three documents on three revisions is the most common fuse for later disputes. But that fuse is easy to remove.

## Why Yuzhong

Yuzhong commits to a 24-hour turnaround for GA drawings. Every sheet carries the maximum wheel load table, outline limits, rail interface and foundation conditions. Each dimension is cross-checked against the technical agreement and the calculation book, so the drawing enters the design institute's sign-off flow directly. Drawing standards switch between FEM, CMAA and GB systems. Overseas projects receive English GA sheets, load tables and voltage-frequency parameters with data strictly matching the calculation book. This kills version conflicts at the source.

The company dates back to 1978 in Changyuan, Henan, with 48 years of manufacturing experience, and runs the three ISO management systems. Core mechanisms use Siemens motors and SKF bearings, exports reach more than 120 countries, and SGS and BV witness inspections are available. Because interfaces stay unified across overhead crane, gantry crane and electric hoist lines, later purchases inherit the same gauge and power form, and a dedicated owner closes every revision change.