# 3-D printing

Published articles for 3-D printing.

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## MIT spinout turns plastic waste into resilient building materials

DevFeed: [MIT spinout turns plastic waste into resilient building materials](<https://devfeed.tech/articles/mit-spinout-turns-plastic-waste-into-resilient-building-materials-37972.md>)

Original publisher: [Read original article](<https://news.mit.edu/2026/mit-spinout-turns-plastic-waste-into-resilient-building-materials-0914>)

Author: Zach Winn | MIT News

Published: 2026-09-14T04:00:00Z

Content type: news

Language: en

Sources: [MIT AI News](<https://devfeed.tech/sources/mit-ai-news.md>)

Topics: [Artificial Intelligence](<https://devfeed.tech/topics/ai.md>), [systems](<https://devfeed.tech/topics/systems.md>)

Tags: [3-d-printing](<https://devfeed.tech/tags/3-d-printing.md>), [ai](<https://devfeed.tech/tags/ai.md>), [aj-perez](<https://devfeed.tech/tags/aj-perez.md>), [alumni-ae](<https://devfeed.tech/tags/alumni-ae.md>), [artificial-intelligence](<https://devfeed.tech/tags/artificial-intelligence.md>), [atlas-composites](<https://devfeed.tech/tags/atlas-composites.md>), [cleaner-industry](<https://devfeed.tech/tags/cleaner-industry.md>), [engineering](<https://devfeed.tech/tags/engineering.md>), [homes](<https://devfeed.tech/tags/homes.md>), [housing](<https://devfeed.tech/tags/housing.md>), [manufacturing](<https://devfeed.tech/tags/manufacturing.md>), [materials-science-and-engineering](<https://devfeed.tech/tags/materials-science-and-engineering.md>), [matt-pouliot](<https://devfeed.tech/tags/matt-pouliot.md>), [mechanical-engineering](<https://devfeed.tech/tags/mechanical-engineering.md>), [platform](<https://devfeed.tech/tags/platform.md>), [pollution](<https://devfeed.tech/tags/pollution.md>), [production](<https://devfeed.tech/tags/production.md>), [recycled-plastic-building-materials](<https://devfeed.tech/tags/recycled-plastic-building-materials.md>), [robotics](<https://devfeed.tech/tags/robotics.md>), [school-of-engineering](<https://devfeed.tech/tags/school-of-engineering.md>), [startups](<https://devfeed.tech/tags/startups.md>), [sustainability](<https://devfeed.tech/tags/sustainability.md>), [u-s-army](<https://devfeed.tech/tags/u-s-army.md>), [water](<https://devfeed.tech/tags/water.md>)

### AI overview

MIT spinout Atlas Building Composites is commercializing an AI-powered robotic manufacturing platform that recycles single-use and low-grade plastic into durable building components. Its waterless process has been used for structures including a bridge supplied to the U.S. Army Corps of Engineers.

### Source excerpt

Atlas Building Composites is commercializing MIT research to turn plastic waste into parts for buildings and other infrastructure.

## MIT's JARVIS Challenge tests AI copilots in jet-engine design and manufacturing

DevFeed: [MIT's JARVIS Challenge tests AI copilots in jet-engine design and manufacturing](<https://devfeed.tech/articles/can-ai-build-a-jet-engine-jarvis-challenge-tests-role-of-ai-copilots-in-tough-tech-engineering-37945.md>)

Original publisher: [Read original article](<https://news.mit.edu/2026/can-ai-build-jet-engine-jarvis-challenge-tests-ai-copilots-in-tough-tech-engineering-0714>)

Author: Department of Aeronautics and Astronautics

Published: 2026-07-14T18:00:00Z

Content type: news

Language: en

Sources: [MIT AI News](<https://devfeed.tech/sources/mit-ai-news.md>)

Topics: [AI Development](<https://devfeed.tech/topics/ai-development.md>), [Artificial Intelligence](<https://devfeed.tech/topics/ai.md>), [Hardware](<https://devfeed.tech/topics/hardware.md>), [Software Engineering](<https://devfeed.tech/topics/software-engineering.md>), [Large language models (LLMs)](<https://devfeed.tech/topics/large-language-models-llms.md>)

Tags: [3-d-printing](<https://devfeed.tech/tags/3-d-printing.md>), [aeronautical-and-astronautical-engineering](<https://devfeed.tech/tags/aeronautical-and-astronautical-engineering.md>), [aerospace](<https://devfeed.tech/tags/aerospace.md>), [ai-and-rapid-prototyping](<https://devfeed.tech/tags/ai-and-rapid-prototyping.md>), [ai-copilots](<https://devfeed.tech/tags/ai-copilots.md>), [ai-native-engineer](<https://devfeed.tech/tags/ai-native-engineer.md>), [aircraft](<https://devfeed.tech/tags/aircraft.md>), [andreea-bobu](<https://devfeed.tech/tags/andreea-bobu.md>), [artificial-intelligence](<https://devfeed.tech/tags/artificial-intelligence.md>), [chatgpt](<https://devfeed.tech/tags/chatgpt.md>), [classes-and-programs](<https://devfeed.tech/tags/classes-and-programs.md>), [claude](<https://devfeed.tech/tags/claude.md>), [contests-and-academic-competitions](<https://devfeed.tech/tags/contests-and-academic-competitions.md>), [design](<https://devfeed.tech/tags/design.md>), [design-build-test-cycle](<https://devfeed.tech/tags/design-build-test-cycle.md>), [education-teaching-academics](<https://devfeed.tech/tags/education-teaching-academics.md>), [engineering](<https://devfeed.tech/tags/engineering.md>), [gas-turbine-aero-engine](<https://devfeed.tech/tags/gas-turbine-aero-engine.md>), [generative-ai](<https://devfeed.tech/tags/generative-ai.md>), [hardware](<https://devfeed.tech/tags/hardware.md>), [independent-activities-period](<https://devfeed.tech/tags/independent-activities-period.md>), [jet-engines](<https://devfeed.tech/tags/jet-engines.md>), [large-language-models-llms](<https://devfeed.tech/tags/large-language-models-llms.md>), [lincoln-laboratory](<https://devfeed.tech/tags/lincoln-laboratory.md>), [logistics](<https://devfeed.tech/tags/logistics.md>), [machine-learning](<https://devfeed.tech/tags/machine-learning.md>), [manufacturing](<https://devfeed.tech/tags/manufacturing.md>), [masha-folk](<https://devfeed.tech/tags/masha-folk.md>), [mechanical-engineering](<https://devfeed.tech/tags/mechanical-engineering.md>), [mit-aeroastro](<https://devfeed.tech/tags/mit-aeroastro.md>), [mit-gas-turbine-laboratory](<https://devfeed.tech/tags/mit-gas-turbine-laboratory.md>), [mit-iap](<https://devfeed.tech/tags/mit-iap.md>), [mit-jarvis-challenge](<https://devfeed.tech/tags/mit-jarvis-challenge.md>), [mit-lincoln-laboratory](<https://devfeed.tech/tags/mit-lincoln-laboratory.md>), [mit-meche](<https://devfeed.tech/tags/mit-meche.md>), [mit-motorsports-team](<https://devfeed.tech/tags/mit-motorsports-team.md>), [mit-parley](<https://devfeed.tech/tags/mit-parley.md>), [mit-rocket-team](<https://devfeed.tech/tags/mit-rocket-team.md>), [robotics](<https://devfeed.tech/tags/robotics.md>), [school-of-engineering](<https://devfeed.tech/tags/school-of-engineering.md>), [stem-education](<https://devfeed.tech/tags/stem-education.md>), [students](<https://devfeed.tech/tags/students.md>), [undergraduate](<https://devfeed.tech/tags/undergraduate.md>), [zachary-cordero](<https://devfeed.tech/tags/zachary-cordero.md>), [zoltan-spakovszky](<https://devfeed.tech/tags/zoltan-spakovszky.md>)

### AI overview

MIT's JARVIS Challenge asked undergraduate teams to design, fabricate, assemble, and test small gas turbine aero engines with AI as their primary engineering partner. The challenge found that AI could accelerate parts of safety-critical hardware engineering, while engineering judgment remained essential and manufacturing was the main rate-limiting step.

### Source excerpt

MIT students designed, built, and tested a jet engine with AI copilots, assessing AI's usefulness in developing high-performance aerospace systems.