H2020Докторантска мрежа2020–2025

LIGHTEN · Ultralight membrane structures towards a sustainable environment

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2020-11-01 → 2025-04-30
Финансиране от ЕС
1 382 415 €
Участници
6
Схема
MSCA-ITN

Линиите свързват координатора с партньорите.

Накратко на български

Свръхлеките мембранни структури, като специални платна и фолиа, се изследват за приложение в строителството. Те помагат за намаляване на въглеродните емисии и разхода на енергия при производството и транспорта на строителни материали.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Ultralight membrane structures towards a sustainable environment

The building construction industry is the largest anthropogenic source of pollution, with massive energy consumption and substantial CO2 emissions. Lightweight membrane structures enable the simultaneous implementation of multiple sustainable strategies by utilising recyclable, low-carbon structural membranes. Their efficient structural load-bearing mechanisms result in significant weight savings in buildings and a substantial reduction in the environmental impact associated with material production, transportation, use, and disposal. Structural fabrics and foils have gained popularity among designers and architects due to their desirable features, including high stiffness, strength, ductility, durability, and functional properties. Whilst these structural membranes open up new, crucial perspectives for the clean energy transition and have been recently employed worldwide, their full potential is still limited by the lack of construction codes, advanced optimisation tools, and comprehensive knowledge of their thermo-mechanical response. Therefore, the LIGHTEN project aims to train a new generation of PhD students to become experts in advanced design methods for a sustainable built environment through ultralightweight membrane structures. Building constructions and operations show the highest environmental footprint in terms of global energy consumption and CO2 emissions. The carbon footprint of construction is increasing, with almost one-third of building-related CO2 emissions due to the use of materials. The demand for buildings, floor area and construction materials is growing and expected to double by 2060. Under these circumstances, innovative building technologies employing low-carbon materials are of paramount importance to lower construction-related CO2 emissions through (i) resource-efficient lightweight building designs, (ii) waste reduction via reuse and recycling, (iii) lifetime extension, and (iv) minimal transportation. Hence, the primary challenge in the building sector is identifying and implementing innovative construction technologies. A feasible solution for achieving a sustainable built environment is offered by membrane, or tensile, structures. Recyclable lightweight membranes offer a thinner and greener alternative to glass and other transparent cladding materials, resulting in significant weight savings. They are advantageous in scenarios where the design must accommodate large unsupported spans with minimal weight. By building better with less material, environmental benefits in the form of reduced energy usage and carbon emissions during production, transportation and installation could be accrued, while simultaneously providing a cost-effective engineering solution. LIGHTEN aims to foster ultralightweight membrane structures by developing engineering models capable of predicting and optimising their response and performance. The research objectives, which have been achieved through a combination of analytical, numerical and experimental methods, are: (i) characterisation and modelling of the nonlinear thermo-visco-elasto-plastic response of ETFE membranes, (ii) analyses of failure and instabilities of structural thin films and (iii) design and machine-learning optimisation of lightweight structural elements. The project's outcomes provide new insights into the development of design approaches and building standards for sustainable membrane structures. The objectives have been achieved by equipping research students with a balanced combination of original research abilities, transferable skills, technical, and industry-oriented knowledge, which maximises their employability in a European market that requires enhanced technological competencies to face the current challenges of the sustainable built environment.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Clean energy transition imposes a drastic change of paradigm in the building construction technology. Among the several anthropogenic sources of pollution, building construction industry produces the highest environmental footprint, with massive global energy consumption and vast CO2 emission. Moreover, the enormous demand for buildings in rapidly developing countries characterised by extreme climates can cause an environmental shock, which can hardly be tolerated by our planet.LIGHTEN project aims to foster a new generation of highly qualified scientists and engineers to become experts in advanced design methods for a sustainable built environment. Novel fully recyclable and low-carbon structural membranes offer a thinner and green alternative to glass and other transparent cladding materials when implemented in lightweight buildings, resulting in significant weight savings in the envelope and supporting structures, thus drastically reducing the environmental impact. The remarkably incomplete scientific and technological understanding of the thermomechanical behaviour of such innovative structural membranes requires the development of engineering models capable of predicting their performances and allowing their rational use in ultralightweight buildings with enhanced energy efficiency and resilience.Experimental characterisation, mechanical modelling, computer simulation, and structural design will be taught and developed to educate the researchers through a tailored and integrated doctoral program jointly supervised by industrial and academic partners. The trained researchers will be equipped with unprecedented technical abilities and environmental sensitivity, to exploit the opportunities provided by the built environment sustainability challenge, in response to the Paris Climate Act for highly efficient and fully decarbonising buildings by 2050.

Оригинален текст от CORDIS (на английски).

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Връзки

Данни: CORDIS, © Европейски съюз