Ingenieurwissenschaften und zugeordnete Tätigkeiten
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Ziel war die Entwicklung neuer Konzepte für die Herstellung sicherer, energieeffizienter und erschwinglicher Materialien für Gebäudehüllen und Innenwände für ein gesünderes Wohnklima.
Es werden Komposit-Fertigteile aus UHPC mit Wärmedämmung aus Porenbeton und aus Textilfaserbeton mit Wärmedämmung aus Schaumbeton vorgestellt.
Diskutiert werden die Strategien zum Erreichen einer erhöhten Dauerhaftigkeit und Ressourceneffizienz sowie zur Erzeugung multifunktionaler Oberflächen.
Ziel war die Entwicklung neuer Konzepte für die Herstellung sicherer, energieeffizienter und erschwinglicher Materialien für Gebäudehüllen und Innenwände für ein gesünderes Wohnklima.
Es werden Komposit-Fertigteile aus UHPC mit Wärmedämmung aus Porenbeton und aus Textilfaserbeton mit Wärmedämmung aus Schaumbeton vorgestellt.
Diskutiert werden die Strategien zum Erreichen einer erhöhten Dauerhaftigkeit und Ressourceneffizienz sowie zur Erzeugung multifunktionaler Oberflächen.
The project has developed a variety of new multifunctional and flexible building components for a healthier indoor environment. [H] house solutions are durable, energy efficient, safe and affordable. They are suitable for use in new buildings and for renovation. [H] house solutions cover aspects of long service life, reduced maintenance and long-term improvement of energy efficiency.
The life span of a building product is a key Parameter when it comes to Life Cycle Assessment (LCA) performance. Nevertheless, many uncertainties affect this parameter due to a lack of long-term performance data. The sensitivity of the LCA outcomes to this parameter has been studied within the framework of the FP7 project H-House (Healthier Life with Eco-innovative Components for Housing Constructions) funded by the European Commission.
The paper Features two comparative studies conducted within the scope of this project: one for new construction and another for renovation. An innovative precast sandwich panel made of Textile Reinforced Concrete (TRC) and Foamed Concrete (FC), used for external walls in new construction, is compared with a steel reinforced concrete (SRC) wall of the same thermal resistance. For renovation, a novel halfsandwich panel made of Ultra-High-Performance-Concrete (UHPC) and Autoclaved Aerated Concrete (AAC) is compared with cladding having the same thermal performance. The Evaluation was conducted using a multi-criteria basis according to the LCA methodology (ISO 14040- 44). In each case, an identical life span for both scenarios leads to the fact that H-House components have a better environmental performance. The ISO 15686 and ist relevant parts have been considered for the estimation of the service life span. The sensitivity analysis shows the link between the impact savings of the innovative walls and the life span of the walls and their components. In particular, it was found that since both scenarios need to fulfil the same service during an identical reference period, and since some maintenance and replacement of materials are necessary over time for standard Solutions compared to the innovative ones, the chosen life span of the components plays a role of utmost importance. The sensitivity analysis discloses the effect of the assumptions on these aspects.
The aim of this study was to develop a lightweight composite façade element for refurbishment of existing façades. It was crucial to minimize the thermal bridges and to undercut the thermal requirement of the system existing façade new element. The awareness of the environmental impact of the building sector is increasing. In this context, ultra-high performance concrete (UHPC) materials are shown to be promising alternatives with advantages such as lower embodied energy and reduced environmental impact. Predictions suggest that UHPC composite elements for building envelopes could have other benefits such as an increased service life, optimized use of building area due to thinner elements and minimized maintenance due to the absence of reinforcement or use of non-corrosive reinforcing materials such as carbon fibers. In this framework, composite elements have been developed combining an autoclaved aerated concrete insulation layer with an external UHPC supporting layer. The results show that the lightweight composite element has a good performance in term of thermal transmittance and minimization of thermal bridges.