PhD opening in 3D printed stone for heritage buildings

Master in Integrated Building Systems ETH Zürich

Zürich

Vor Ort

CHF 60.000 - 80.000

Vollzeit

14 Tage+
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Benefits dieser Stelle

Flexible working hours
Home office options

Zusammenfassung

ETH Zurich's Chair for Digital Building Technologies invites applications for a PhD position focused on 3D printing of stone for heritage restoration. The project combines a new powder-bed printer with dual powder and dual liquid feeds, enabling graded composition and porosity in a single part.

The work is part of the ETH Grant project Spatially graded 3D printing to elucidate contour scaling of building stones, with collaboration across departments and international partners.

Qualifikationen

  • Master’s degree in architecture or a closely related discipline with substantial design work.
  • Experience in digital fabrication and computational design is desirable.
  • Strong communication and collaboration skills with international partners.

Aufgaben

  • Design, build, and commission a laboratory-scale powder-bed printer with dual feeds.
  • Produce stone replacement parts for heritage buildings with graded properties.
  • Develop tectonic strategies to connect printed parts to existing structures.
  • Contribute to deterioration research and disseminate findings at conferences.
  • Publish in leading venues and supervise semester and master projects.

Kenntnisse

Digital fabrication
Computational design
Prototyping
Collaboration
English fluency

Ausbildung

Master's degree in architecture or related discipline

Tools

Mechanical design
Electronics
Sensing
Control software

Jobbeschreibung

100%, Zurich, fixed-term print Drucken

The Chair for Digital Building Technologies invites applications for a PhD position on the 3D printing of stone for the restoration of heritage buildings. The doctorate rests on two closely coupled lines of work: the development of a new powder-bed printing system with spatially graded material deposition, and its use to produce replacement parts for historic stone structures. This PhD is part of the collaborative ETH Grant project "Spatially graded 3D printing to elucidate contour scaling of building stones", and will be conducted in close exchange with a second doctoral researcher at the Chair for Physical Chemistry of Building Materials in the Department of Civil, Environmental and Geomatic Engineering.

Project background

Stone is among the oldest building materials, and among the least controllable: its properties are found in the quarry, not designed. Restoration exposes this limitation acutely. A replacement part must be compatible with the original and must enter a dialogue with a structure that has aged for centuries. With historic quarries largely exhausted, selecting and carving natural blocks falls short on every one of these counts.

This project pursues a different premise: that the material properties of stone can become a design medium. The powder-bed printing platform developed at the chair separates aggregates, powder binders, and liquid activators, placing each under independent control during fabrication. The next step, and the technical core of this doctorate, is to vary these constituents within a single piece. A dual powder feed and a dual liquid feed will allow composition, porosity, and appearance to be graded continuously across a printed element, turning a fabrication process into an instrument for specifying material behavior point by point. The machine and the artifacts it produces will be developed together, each iteration informing the next.

The project is conducted jointly with a materials science group investigating deterioration mechanisms of particular concern to sandstones, whose research depends on printed samples with precisely engineered defects and gradients. The capabilities established at the laboratory scale are intended to be transferred to the chair's architectural-scale printer, where graded deposition opens a new design space for façade systems.

Job Description
  • You will design, build, and commission a laboratory-scale powder-bed printer with dual powder and dual liquid feeds, derived from the chair's architectural-scale system and conceived as a modular research instrument, to be reconfigured as the printed work poses new questions to the machine
  • You will use it to produce stone replacement parts for heritage buildings, elements that satisfy the compatibility requirements of conservation practice while entering a dialogue with the historic fabric they join
  • You will develop tectonic strategies for connecting printed parts to the existing structure, and investigate through making how a printed element addresses the surface it meets, with graded color, texture, and printed veining among the means available
  • Your printed samples will additionally serve the deterioration research of the partner chair, whose findings will in turn inform the development of the printing process
  • You will publish in leading venues, present at international conferences, and contribute to teaching through the supervision of semester and master's projects
Profile
  • We seek a candidate with a strong background, and ideally a demonstrated body of work, in digital fabrication, and the ambition to treat material behavior as a subject of design research
  • You hold a Master's degree in architecture, or in a closely related discipline, combined with substantial design work
  • You have genuine competence in building fabrication equipment: the printer will be constructed and repeatedly modified by you, so proficiency in mechanical design and prototyping is essential, and experience with electronics, sensing, or control software is a strong asset
  • You are fluent in computational design and experienced in carrying work across the threshold between digital model and physical result
  • An interest in the behavior of stone is welcome; its scientific characterization lies with the partner group
  • An excellent oral and written level of English is essential; conversational knowledge of German is an advantage.
  • As the project involves collaboration between research groups and field practitioners, strong communication skills and a genuinely collaborative disposition are essential
Workplace

We offer

The Chair for Digital Building Technologies within the Institute of Technology in Architecture conducts research at the intersection of computational design, materials, and construction-scale fabrication. Over more than a decade, the group has developed and operated powder-bed and extrusion-based printing systems at architectural scale, with built results including the tallest 3D-printed structures in the world. In-house expertise in mechanical design, electronics and software, together with complete workshop and prototyping infrastructure, allows research ideas to move directly from concept to machine to printed artifact, and doctoral researchers are given considerable latitude in shaping that trajectory. Our highly diverse and international group offers extensive networks within ETH and internationally. We are committed to diversity by offering flexible working hours, home office options, and other measures to ensure team members can perform their roles effectively.

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We value diversity and sustainability

In line with our values, ETH Zurich encourages an inclusive culture. We promote equality of opportunity, value diversity and nurture a working and learning environment in which the rights and dignity of all our staff and students are respected. Visit our Equal Opportunities and Diversity website to find out how we ensure a fair and open environment that allows everyone to grow and flourish. Sustainability is a core value for us – we are consistently working towards a climate-neutral future.

Curious? So are we.

Further information about Digital Building Technologies can be found on our website. Questions regarding the position should be directed to Dr. Pietro Odaglia, email odaglia@arch.ethz.ch (no applications).

About ETH Zürich

ETH Zurich is one of the world’s leading universities specialising in science and technology. We are renowned for our excellent education, cutting-edge fundamental research and direct transfer of new knowledge into society. Over 30,000 people from more than 120 countries find our university to be a place that promotes independent thinking and an environment that inspires excellence. Located in the heart of Europe, yet forging connections all over the world, we work together to develop solutions for the global challenges of today and tomorrow.

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