Fraport Terminal 3

One of Europe’s largest airport projects

Terminal 3 is one of Europe’s largest privately financed infrastructure projects. For Hilzinger Metallbau, the scale of the development meant planning and delivering eleven technically demanding sub-projects at the same time, all tailored to the requirements of airport operations. The project required Hilzinger not only to coordinate complex processes, but also to deliver façades capable of withstanding the exceptional and sustained stresses associated with a major international aviation hub. Hilzinger’s work on the project demonstrates the company’s comprehensive expertise in large-scale façade and metal construction.

项目案例详情

建筑类型 交通与基建
产品 幕墙 防火防烟
旭格系统 FireStop ADS 90 FR 90 AOC 60 ST FireStop ADS 76.NI SP FWS 60.SI FireStop ADS 90 FR 30
特征 新建建筑 防火
地点 Frankfurt am Main, Hessen
竣工时间 2022
建筑师 Fraport AG
专业公司 hilzinger Metallbau GmbH
图片版权 © HGEsch

Designed for the demands of airport operations

Building envelopes in airport environments are exposed to particularly high structural loads. To meet these demands, Hilzinger Metallbau developed a modified façade construction based on the Schüco AOC 60 ST system. The steel mullion-and-transom façades were dimensioned to withstand not only their own static loads, but also the fluctuating pressure and suction forces generated by aircraft operations.

Fire-safety solutions for airport operations

Hilzinger also installed around 550 specialist aluminium and steel doors. The smoke-control and fire doors are integrated directly into the building management system. As part of the smoke and heat exhaust systems (SHEVS), they play a central role in preventive fire protection. In an emergency, the doors can be controlled selectively. This helps to protect the building fabric and supports the safe evacuation of passengers. At the same time, they were designed to withstand a high number of opening cycles, ensuring that they can cope with the intensive demands of daily airport operations over the long term.

产品信息

AOC 60 ST

旭格AOC 60 ST幕墙系统

性能卓越的钢质附加结构,用于幕墙和采光顶

旭格AOC 60 ST钢附加结构幕墙系统技术性能出众,设计美观,可装在钢质副结构的采光顶和大规格垂直幕墙上,系统宽度为60 mm。

使用全新系统组件可为大规格玻璃尺寸实现简单安全的设计,考虑荷载转移和丝杠因素,三层玻璃也适用。

钢质附加结构打造设计美观的节能建筑,实现有效加工和安装。

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FWS 60.SI

旭格FWS 60.SI幕墙系统

获得被动房认证的构件式幕墙,提供多样化的系统解决方案

凭借开创性的隔断技术,旭格FWS 60.SI超隔热幕墙系统为幕墙和采光顶提供多样化的解决方案,满足被动房水准 – 且优化了加工和安装进程。

该系统可视面宽度为60 mm,实现极高灵活度并提供广泛的系统类型,满足奢华住宅和商建项目在功能和设计方面的不同要求。

整合进型材的通透护栏系统天衣无缝地融入幕墙外立面。无需打断型材即可满足落地窗式开启单元的防护要求和极低的护栏高度,型材可视面宽度保持不变。

不同结构深度与多种罩盖选择可为美观的建筑外立面提供附加结构和设计选项。

经过优化的系统组件保证轻松安全地整合电动组件,如用于自动化旭格门系统或遮阳装置,保证安防水准和用户舒适度。

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Just-in-sequence delivery: the key to construction-site logistics

One of the project’s greatest challenges was coordinating the movement of materials and personnel across the extensive construction site. From June 2021 to December 2025, every stage of the work had to be precisely coordinated. The situation was made more difficult by the limited storage capacity available across the site. To ensure a smooth construction process, Hilzinger’s logistics department established a fully integrated supply chain. Components manufactured at the company’s facilities in Fritzlar and Borken were delivered to their respective installation locations ready for assembly and in the correct sequence. The close integration of CAD design, manufacturing and construction-site logistics proved to be a key factor in delivering the project on schedule and within budget.

The link between terminal and aircraft

At Piers H and J, Hilzinger delivered the façades for a total of 24 passenger boarding bridges and 38 aircraft docking positions. As the direct link between the terminal and the aircraft, these structures are subject to particularly demanding requirements in terms of functionality, fire safety and structural performance. Based on the Schüco AOC 60 ST system, Hilzinger created a transparent mullion-and-transom façade. Its lightweight architectural appearance is combined with fire-compartment sections made from sandwich panels.

Architecture along the new transport route

The new Passenger Transport System (PTS) serves as the central transport link between the airport’s terminals. Station F in the north creates a distinctive architectural feature with its striking elliptical tubular design. Its segmented aluminium sheet façade was precisely installed on the reinforced-concrete structural panels, emphasising the building’s dynamic design language. Hilzinger also delivered technically demanding façade solutions for the station buildings at Terminals 1 to 3, as well as for the PTS maintenance facility. At Terminal 2, this involved integrating steel portal frames into the existing structure, while Terminal 3 required a new infrastructure building with bridge façades linking it to both the terminal and the car park.

Technical solutions for extreme operating conditions

Every component had to withstand the specific conditions of airport operations over the long term. This called for extensive structural verification, including assessments of wind loads and fall-protection performance. The transparent sections of the passenger boarding bridges were fitted with structurally tested glazing assemblies designed to withstand high horizontal impact loads, even when passenger numbers were high. The façades and glazing installed at the PTS facilities were also specifically designed to withstand the extreme conditions created by daily operations. All fixings in the tunnels and stations had to withstand the constant changes in air pressure caused by passing trains. The structural design also incorporated special expansion-joint constructions to accommodate the thermal movement of the large reinforced-concrete viaducts without affecting the performance or structural integrity of the façade and glazing elements.

Apron control tower: precision installation under extreme conditions

One of the project’s particular technical highlights was the installation of the façade on the almost 70-metre-high apron control tower. To provide air traffic controllers with optimum, glare-free visibility, glazing units up to 3.3 metres high were installed at an outward angle. This configuration reversed the direction of the loads and required specially developed anchoring technology. To install the glass units – some weighing up to 800 kilograms – Hilzinger used a mobile crane and a remotely controlled counterweight system fitted with a vacuum glass lifter. This enabled the units to be positioned with millimetre accuracy while taking the prevailing wind conditions into account.