DigiMat · Digital fabrication and integration of Material reuse for environmentally friendly cementitious composite building blocks
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2022-01-01 → 2023-12-31
- Финансиране от ЕС
- 212 934 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
3D принтирането на строителни блокове от рециклирани материали помага за намаляване на отпадъците от сгради. Това е важно, защото производството на цимент отделя огромни количества въглероден диоксид и изразходва твърде много пясък и чакъл.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Digital fabrication and integration of Material reuse for environmentally friendly cementitious composite building blocks
The construction industry has yet to embrace the technological advancements seen in other sectors. Instead, it continues to rely on outdated methods to manage complex modern projects, resulting in high costs and inefficiencies. For instance, in traditional concrete, over 60% of the total cost is spent on formwork and labour. A promising technology that could transform the industry is the 3D printing of concrete. This innovative process builds solid parts layer by layer and has been recognised by the European Parliament as one of the most significant technologies. In addition, the cement industry is responsible for approximately 25% of all CO2 emissions from industry and generates the highest amount of CO2 per dollar of revenue. The production process of Portland cement involves decomposing carbonates, such as limestone and coal, at a high temperature of 1500 °C. It has been reported that every ton of OPC production releases 0.73-0.85 tons of CO2. As a result, CO2 emissions from raw materials and fuel combustion account for 5-7% of global total CO2 emissions. Furthermore, the extraction of construction virgin aggregates, such as sand and gravel, accounts for the majority of global non-metallic mineral consumption (41% gravel and 31% sand), which reached approximately 5 billion tons in 2010. Construction materials' use and impact on CO2 emissions, global warming, and natural resource conservation necessitate critical tools to minimize environmental effects. Therefore, research priorities should focus on employing innovative technological solutions to address specific needs, such as utilising 3D printing of prefabricated building blocks and using recycled construction materials obtained from demolition of buildings. DigiMat has been a collaborative training project for the past 2 years that brought together academia and industry to merge the expertise of diverse disciplines and cutting-edge 3D printing technology. The goal was to create a sustainable cementitious feedstock derived from construction and demolition waste as well as industrial by-products, which could be utilised to produce eco-friendly cast and 3D printed load-bearing building blocks. The main objective of the proposed plan was to develop a diverse collection of alkali-activated cementitious composites that could be used for both traditional and 3D printing construction processes. These materials would be designed explicitly for load-bearing applications that possess exceptional mechanical properties or non-load-bearing applications with superior physical characteristics, such as thermal and sound insulation. The goal of this project was to gain a scientific understanding of the relationship between design, material, process, environmental impact, and the overall quality of the end product. An interdisciplinary approach was taken, employing experimental techniques and trial and error on both micro and macro scales. We have successfully created various alkali-activated cementitious composites which can be 3D printed or conventionally cast. These innovative composites utilise waste materials from industrial by-products, construction and demolition waste, end-of-life plastics, and mining waste, serving as eco-friendly replacements for both ordinary Portland cement and natural sand aggregates in low-carbon concrete. We have identified a diverse array of potential waste resources and crafted tailored mix designs for each material. This marks the inception of a new era for feedstocks in 3D printable objects, characterized by optimised environmental, economic, mechanical, durability, and insulating properties.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The emergence of green and eco-friendly resources, coupled with demands for advanced digital technologies for conceptual structures/designs, are causing changes in the scale and distribution of the construction industry. The increasing resource constraints that the EU is facing strongly affect its competitiveness and the quality of life of individuals. Important gains in resource efficiency can be made by replacing current linear economic models with circular models of production and consumption, which results, at the same time, in a substantial reduction of greenhouse gas emissions. This project will combine multidisciplinary efforts from various subject areas and innovative technology of 3D printing to design and develop an environmentally friendly cementitious feedstock, driven from construction/demolition waste and industrial by-products suitable for the manufacturing of structural load-bearing building blocks. Dr. Chougan (the Fellow) will join Dr. Ghaffar’s (host Supervisor) research team at Brunel University London (BUL), Additive Manufacturing Technology in Construction group. This is coupled with guidance in the form of two secondments at the West Pomeranian University of Technology and Eindhoven Technology University. This project will provide a tremendous opportunity for the Fellow to expand his research career and further outspread his network with academic and industrial stakeholders. The Fellow will be supported throughout by other global-leading academics and non-academic including short scientific visits to Nanesa S.r.l. (Italy), Washington State University (USA), and the University of Rome Sapienza (Italy), all of which will equip him with a unique insight into eco-sustainable cementitious composite formulations for 3D printing in the construction industry. The training will broaden the Fellow’s skills and career prospects in the academic and industrial construction materials and 3D printing technology fields.
Оригинален текст от CORDIS (на английски).
Участници
- BRUNEL UNIVERSITY LONDON · UXBRIDGEКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
