Structural limitations of additively manufactured building panels

An experimental study on the performance of structural panels designed to serve as roofing and walls in low-cost Costa Rican homes manufactured with additive manufacturing of recycled polymers. Designs were simulated iteratively in Solidworks and performance was measured based on weight, print time,...

Full description

Bibliographic Details
Main Author: Satterfield, Emily
Other Authors: Hardt, David
Format: Thesis
Published: Massachusetts Institute of Technology 2022
Online Access:https://hdl.handle.net/1721.1/144704
_version_ 1826195083474501632
author Satterfield, Emily
author2 Hardt, David
author_facet Hardt, David
Satterfield, Emily
author_sort Satterfield, Emily
collection MIT
description An experimental study on the performance of structural panels designed to serve as roofing and walls in low-cost Costa Rican homes manufactured with additive manufacturing of recycled polymers. Designs were simulated iteratively in Solidworks and performance was measured based on weight, print time, and deflection under loading. Loads were calculated based on standards from the Housing and Urban Development Council and Costa Rican weather patterns. A slicer provided by Oakridge National Laboratory was used to calculate an estimated print time for each design. The results from simulation were then plotted to find an optimal design minimizing weight, deflection and print time. As expected, the optimal roof panel design used a small minimum feature size of 0.2” while maintaining stiffness by maximizing the distance between the outer casing of the panel with a thin i-beam inspired inner structure. The optimal roof panel design was used as inspiration for design iterations of the walls. With the optimal geometry selected from iteration, the designs were then evaluated for printing on the BAAM using the design constraints laid out by ORNL. Strict limitations in terms of possible print path required changes to the geometry of the structure that increased deflection under loading by a factor of 10. Tensile tests in accordance with ISO 527-2 were run on samples of rPET printed on an Ultimaker 2 Extended+ to get the material properties of the plastic depending on print direction. The results of these tests can be used to add rigor to previous Solidworks simulations of the house.
first_indexed 2024-09-23T10:06:45Z
format Thesis
id mit-1721.1/144704
institution Massachusetts Institute of Technology
last_indexed 2024-09-23T10:06:45Z
publishDate 2022
publisher Massachusetts Institute of Technology
record_format dspace
spelling mit-1721.1/1447042022-08-30T03:51:04Z Structural limitations of additively manufactured building panels Satterfield, Emily Hardt, David Massachusetts Institute of Technology. Department of Mechanical Engineering An experimental study on the performance of structural panels designed to serve as roofing and walls in low-cost Costa Rican homes manufactured with additive manufacturing of recycled polymers. Designs were simulated iteratively in Solidworks and performance was measured based on weight, print time, and deflection under loading. Loads were calculated based on standards from the Housing and Urban Development Council and Costa Rican weather patterns. A slicer provided by Oakridge National Laboratory was used to calculate an estimated print time for each design. The results from simulation were then plotted to find an optimal design minimizing weight, deflection and print time. As expected, the optimal roof panel design used a small minimum feature size of 0.2” while maintaining stiffness by maximizing the distance between the outer casing of the panel with a thin i-beam inspired inner structure. The optimal roof panel design was used as inspiration for design iterations of the walls. With the optimal geometry selected from iteration, the designs were then evaluated for printing on the BAAM using the design constraints laid out by ORNL. Strict limitations in terms of possible print path required changes to the geometry of the structure that increased deflection under loading by a factor of 10. Tensile tests in accordance with ISO 527-2 were run on samples of rPET printed on an Ultimaker 2 Extended+ to get the material properties of the plastic depending on print direction. The results of these tests can be used to add rigor to previous Solidworks simulations of the house. S.B. 2022-08-29T16:05:59Z 2022-08-29T16:05:59Z 2022-05 2022-06-14T19:35:32.487Z Thesis https://hdl.handle.net/1721.1/144704 In Copyright - Educational Use Permitted Copyright MIT http://rightsstatements.org/page/InC-EDU/1.0/ application/pdf Massachusetts Institute of Technology
spellingShingle Satterfield, Emily
Structural limitations of additively manufactured building panels
title Structural limitations of additively manufactured building panels
title_full Structural limitations of additively manufactured building panels
title_fullStr Structural limitations of additively manufactured building panels
title_full_unstemmed Structural limitations of additively manufactured building panels
title_short Structural limitations of additively manufactured building panels
title_sort structural limitations of additively manufactured building panels
url https://hdl.handle.net/1721.1/144704
work_keys_str_mv AT satterfieldemily structurallimitationsofadditivelymanufacturedbuildingpanels