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Digital Transformation in Manufacturing

Ushered into the mainstream just over a decade ago, 3D printing (i.e., additive manufacturing) continues to change the way design is regarded and valued. Together with digital technology, this is yielding valuable tools to create new design possibilities. Today, if we can imagine it, we can design and make it essentially in real time.

Research within this area includes multiple aspects of the digital transformation that enable new integrated approaches for adaptive design, manufacturing and sustainable solutions. Principal investigators have actively solicited strategies for “Designing at the Speed of Thought” as they seek to develop products and systems that improve user experience and benefit our society and economy. Reflecting synergies with other MPP research areas, projects have involved the design and manufacture of sustainable solutions related to land and ocean use, algae blooms, topsoil erosion, and agriculture.

Funded Projects

  • Calls: 2024 Call for Seed Grant Proposals

    Research Areas: Digital Transformation in Manufacturing

    Abstract

    Additive manufacturing is a process for fabricating 3D parts from a digital model. For polymers, complex parts are fabricated by Fused Deposition Modeling based on a digital specification of the desired form. However, the material properties are not well-controlled. Semicrystalline polymers are thus particularly difficult to process. To fabricate useful products, it is necessary to understand how the rheology and crystallization kinetics depend on molecular structure and are coupled during processing. In collaboration with experimental efforts of the INOV-AM and Bioshoes4ALL programs to characterize the evolution of semicrystalline morphology in situ, we will develop a state-of-the-art multiscale model that describes the coupling of the polymer rheology to flow-induced crystallization along the print road and predicts the development of semicrystalline morphology as a function of material and process parameters. Use of the model will enable better control of material properties and facilitate the development of new feedstocks and model-based control systems.


    MIT PI
    Gregory C Rutledge, Professor, Department of Chemical Engineering

    PT PIs
    INOV-AM
    Prof. Pedro. Martinho, Professor of Engineering, School of Technology and Management, member of CDRSP, Polytechnic Institute of Leiria

    Bioshoes4All
    Prof. Joao Matias, Adjunct Professor of Engineering, School of Technology and Management, member of CDRSP, Polytechnic Institute of Leiria
    Prof. Geoffrey R. Mitchell, Researcher, Centre for Rapid and Sustainable Product Development, Polytechnic Institute of Leiria (CDRSP-IPLEIRIA)
    Prof. Paula Pascoal-Faria, Professor of Mathematics, School of Technology and Management, member of CDRSP, Polytechnic Institute of Leiria

    This project is extended

    Updates & Impact
  • Calls: 2026 Call for Joint Integrated and Seed Grant Proposals

    Research Areas: Digital Transformation in Manufacturing

    Abstract

    This project investigates the integration of computational 3D knitting and EBAM to develop novel lightweight architectural metamaterial systems for sustainable construction. Producing materially efficient horizontal building system (i.e., floorslabs) with current large-scale EBAM approaches remains constrained by geometric limitations and integration of structural reinforcement. The research combines MIT’s expertise in computational 3D knitting, streamlined fabrication pipelines, and material-informed design methodologies with the University of Minho’s expertise in robotic fabrication, 3D concrete printing, hybrid manufacturing, and computational design-to-fabrication workflows. Herein, we propose the development of a hybrid textile–mineral fabrication systems where knitted reinforcement and textile membranes act as active components within EBAM workflows enabling adaptive, materially-differentiated, low-carbon construction systems [1,2]. Through iterative multi-scale prototyping and lifecycle-informed evaluation, we will develop new hybrid fabrication methodologies, computational workflows, and proof-of-concept (PoC) demonstrators to advance circular , lightweight, and resource-efficient architectural scale production.

    MIT PI
    Mariana Popescu, Professor, Department of Architecture

    PT PI
    Bruno Figueiredo, Associate Professor , Landscapes Heritage and Territory Laboratory, School of Architecture, Art and Design, University of Minho

    Additional collaborators
    Mich Lin, Ph.D. Candidate, Department of Aeronautics & Astronautics, MIT
    Paulo J.S. Cruz, Full Professor, Landscapes Heritage and Territory Laboratory, School of Architecture, Art and Design, University of Minho
    Filipe Brandão, Assistant Researcher , Landscapes Heritage and Territory Laboratory, School of Architecture, Art and Design, University of Minho

  • Calls: 2026 Call for Joint Integrated and Seed Grant Proposals

    Research Areas: Digital Transformation in Manufacturing

    Abstract

    Modern aircraft sustainment, a major Portuguese industry with national aeronautics MRO turnover estimated above €500M annually, faces growing challenges in repairing high-value metallic aerostructures. Conventional repairs, including mechanically fastened or bonded patches, can increase structural weight, extend downtime, and raise lifecycle operating costs. Friction stir deposition (FSD) offers a promising alternative by rebuilding damaged material locally with low heat input and reduced distortion. However, unlocking FSD as an aviation repair technology requires predictive, geometryaware methods for co-optimizing process parameters and toolpaths. To this end, this project will develop a physics-informed AI framework for FSD repair of curved aluminum aerostructure elements. By combining 3D surface characterization, process physics, and generative toolpath optimization, the work will create repair strategies that improve thermal control, deposition quality, and fatigue performance. These results will lay the foundation for AI-driven, certifiable aerospace repair by linking repair planning, process physics, and structural performance in a traceable framework.

    MIT PI
    Zachary Cordero, Professor,  Department of Aeronautics and Astronautics

    PT PI
    Eduardo A. S. Marques, Associate Professor of Mechanical Engineering,
    University of Porto, INEGI - Instituto de Ciência e Inovação em Engenharia Mecânica e Engenharia Industrial

Posters

PhD Students

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    Photo of Ana Pais

    Ana Pais

    PhD Student

    Portugal
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    Headshot of Andre Cardoso

    André Cardoso

    PhD Student

    Portugal
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    Photo of Andressa Oliveira

    Andressa Oliveira

    PhD Student

    Portugal
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    Photo of Bardia Naghshineh

    Bardia Naghshineh

    PhD Student

    Portugal
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    Photo of Fernando Ribeiro

    Fernando Ribeiro

    PhD Student

    Portugal
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    Jabez Abraham

    PhD Student

    Portugal
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    João Faria

    PhD Student

    Portugal
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    Photo of João Ribeiro

    João Ribeiro

    PhD Student

    Portugal
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    Photo of  José Caetano

    José Caetano

    PhD Student

    Portugal
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    Luís Oliveira

    PhD Student

    Portugal
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    Photo of Mariana Dias

    Mariana Dias

    PhD Student

    Portugal
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    Photo of Mohamad El Sibaii

    Mohamad El Sibaii

    PhD Student

    Portugal
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    Photo of Paulo Costa

    Paulo Costa

    PhD Student

    Portugal
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    Photo of Paulo Nascimento

    Paulo Nascimento

    PhD Student

    Portugal
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    Photo of Phillip Probst

    Phillip Probst

    PhD Student

    Portugal
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    Photo of Rita Pereira

    Rita Pereira

    PhD Student

    Portugal
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    Photo of Rodrigo Paredes

    Rodrigo Paredes

    PhD Student

    Portugal
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    Photo of Samruddha Kokare

    Samruddha Kokare

    PhD Student

    Portugal
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    Photo of Sara Cerqueira

    Sara Cerqueira

    PhD Student

    Portugal
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    Photo of Tran Quang Minh

    Tran Quang Minh

    PhD Student

    Portugal
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    Photo of Vinicius Viena Santana

    Vinicius Viena Santana

    PhD Student

    Portugal
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    Photo of Vítor Sousa

    Vítor Sousa

    PhD Student

    Portugal