Gantry cranes tend to get overlooked in procurement conversations that default to overhead bridge cranes. Yet for a wide range of UK construction sites, precast concrete facilities, rail infrastructure yards, and open-air storage operations, a gantry crane is not a compromise alternative — it is often the correct first choice. The question is rarely whether to use one. It is which type, and why.
The Core Advantage: No Fixed Runway Required
The defining characteristic of a gantry crane is that it carries its own support structure. Rather than running along runway beams embedded in a building’s structural frame, a gantry crane travels on ground-level rails or rubber-tyred wheels, supported by legs that move with the crane. This eliminates the need for dedicated building infrastructure and makes gantry cranes the practical solution wherever a fixed overhead crane installation is impossible, impractical, or economically unjustifiable.
For UK construction projects specifically, this matters in three common scenarios. First, on sites where the lifting requirement is temporary — a precast yard serving a specific development, for example — a gantry crane can be relocated once the project completes rather than being written off as a fixed asset. Second, in open yards where no building structure exists to provide runway support. Third, in applications where the crane needs to span a working area wider than any economical indoor runway installation could accommodate. Procurement teams evaluating gantry crane systems for industrial use will find that the range of available configurations is considerably wider than a single catalogue category suggests — span widths, leg arrangements, duty classifications, and travel systems all vary significantly depending on the application.
Single Girder vs. Double Girder: The First Decision
Every gantry crane specification starts with this structural choice.
A single girder gantry crane uses one main beam supported at each end by a leg assembly. The hoist travels along the underside of this beam. Single girder designs are lighter, less expensive to manufacture and install, and appropriate for capacities typically up to 20 tonnes. For most construction site materials handling — lifting prefabricated panels, moving steel sections within a fabrication yard, or loading and unloading delivery vehicles — a single girder gantry is more than sufficient.
A double girder gantry crane uses two parallel main beams, with the hoist trolley running on top of or between them. This configuration allows greater lifting capacity, higher hook heights relative to the overall crane height, and better performance under heavy-duty or continuous operating cycles. Double girder gantry cranes are standard in rail sleeper yards, heavy steel fabrication facilities, and any application requiring lifts above 20 tonnes or where the hook must travel to the very top of its available height without the hoist body itself consuming headroom.
Leg Configurations and What They Mean for Your Site
Beyond the single or double girder choice, gantry cranes are further categorised by their leg arrangement.
Full gantry cranes — sometimes called A-frame gantries — have two full legs on each side, with both rails at ground level. This is the most stable configuration and handles the widest span and highest capacity applications. It requires two parallel ground-level rails or a prepared running surface, which needs to be factored into civil works planning.
Semi-gantry cranes have one full ground-level leg and one elevated leg that runs along an existing wall-mounted runway beam. This hybrid configuration is common where a building exists on one side of the working area but not the other — a practical solution for facilities expanding their outdoor storage or processing capacity alongside an existing structure.
Portable or adjustable-height gantry cranes are lighter-duty equipment suited to maintenance environments, workshops, and occasional-use lifting rather than production or site applications. They are typically manually moved rather than motor-driven.
Rubber-Tyred vs. Rail-Mounted: Matching the Ground Conditions
Rail-mounted gantry cranes run on fixed steel rails set into a prepared foundation. They offer precise positioning, lower rolling resistance, and a longer service life for the travel mechanism, but they require civil engineering preparation and commit the crane to a fixed travel path.
Rubber-tyred gantry cranes — more commonly associated with port and logistics applications — offer greater flexibility of movement across a wider area but require a higher-quality running surface and involve more maintenance on the travel system. For most construction and industrial applications in the UK, rail-mounted configurations are the standard choice.
Span and Hook Height: Getting the Numbers Right
Two dimensions define the working envelope of any gantry crane: the span between the rails and the maximum hook height.
Span selection is driven by what the crane needs to straddle. In a precast concrete yard, the span must accommodate the width of the casting beds plus sufficient clearance for materials handling on either side. In a steel fabrication yard, it must straddle the processing area and any vehicle access lane. Getting this dimension wrong — either too narrow to work efficiently or unnecessarily wide, which adds significant weight and cost — is one of the most common specification errors.
Hook height determines what the crane can lift and where. For a crane loading lorries, the hook height must exceed the loaded lorry height with sufficient clearance to allow a load to be positioned and released. For a precast yard lifting large concrete elements, the hook height must account for the element’s length when lifted vertically, not just its weight.
Both dimensions interact with the crane’s structural design — wider spans and greater hook heights increase the structural demands on the main beam and legs, which feeds directly into material weight, cost, and foundation requirements.
Duty Classification: The Specification Element Most Often Underspecified
Gantry cranes are classified by duty according to how frequently they will operate at or near their rated capacity. The relevant standards in the UK and European markets are ISO 4301 and FEM classifications, ranging from light intermittent use (M3) through to severe continuous duty (M7 and M8).
A crane specified at too low a duty class for its actual operating pattern will experience accelerated fatigue in its structural and mechanical components, leading to earlier-than-expected maintenance intervention and shortened service life. A crane over-specified for a light-duty application costs more than necessary without delivering any practical benefit.
The duty class should be established based on an honest assessment of the number of lift cycles per day and the proportion of those cycles conducted at maximum load — not on the maximum load alone.
A Practical Specification Checklist
Before approaching any gantry crane supplier for a quotation, have the following defined:
- Maximum lifting capacity required (tonnes)
- Required span between rails (metres)
- Required maximum hook height (metres)
- Estimated lift cycles per day and typical load as a proportion of maximum
- Whether the application is indoor, outdoor, or a combination
- Rail-mounted or rubber-tyred travel requirement
- Control system preference — pendant, radio remote, or cabin
These inputs allow any competent manufacturer to produce a specification-matched quotation rather than a generic catalogue proposal, and they give you a consistent basis on which to compare responses from multiple suppliers.


