3D Printable Soft Liquid Metal Sensors for Delicate Manipulation Tasks

Fuente: arXiv
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Main Authors: Liow, Lois, Milford, Jonty, Uygun, Emre, Farinha, Andre, Viswanathan, Vinoth, Pinskier, Josh, Howard, David
Format: Preprint
Published: 2025
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author Liow, Lois
Milford, Jonty
Uygun, Emre
Farinha, Andre
Viswanathan, Vinoth
Pinskier, Josh
Howard, David
author_facet Liow, Lois
Milford, Jonty
Uygun, Emre
Farinha, Andre
Viswanathan, Vinoth
Pinskier, Josh
Howard, David
contents Robotics and automation are key enablers to increase throughput in ongoing conservation efforts across various threatened ecosystems. Cataloguing, digitisation, husbandry, and similar activities require the ability to interact with delicate, fragile samples without damaging them. Additionally, learning-based solutions to these tasks require the ability to safely acquire data to train manipulation policies through, e.g., reinforcement learning. To address these twin needs, we introduce a novel method to print free-form, highly sensorised soft 'physical twins'. We present an automated design workflow to create complex and customisable 3D soft sensing structures on demand from 3D scans or models. Compared to the state of the art, our soft liquid metal sensors faithfully recreate complex natural geometries and display excellent sensing properties suitable for validating performance in delicate manipulation tasks. We demonstrate the application of our physical twins as 'sensing corals': high-fidelity, 3D printed replicas of scanned corals that eliminate the need for live coral experimentation, whilst increasing data quality, offering an ethical and scalable pathway for advancing autonomous coral handling and soft manipulation broadly. Through extensive bench-top manipulation and underwater grasping experiments, we show that our sensing coral is able to detect grasps under 0.5 N, effectively capturing the delicate interactions and light contact forces required for coral handling. Finally, we showcase the value of our physical twins across two demonstrations: (i) automated coral labelling for lab identification and (ii) robotic coral aquaculture. Sensing physical twins such as ours can provide richer grasping feedback than conventional sensors providing experimental validation of prior to deployment in handling fragile and delicate items.
format Preprint
id arxiv_https___arxiv_org_abs_2509_17389
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle 3D Printable Soft Liquid Metal Sensors for Delicate Manipulation Tasks
Liow, Lois
Milford, Jonty
Uygun, Emre
Farinha, Andre
Viswanathan, Vinoth
Pinskier, Josh
Howard, David
Robotics
Robotics and automation are key enablers to increase throughput in ongoing conservation efforts across various threatened ecosystems. Cataloguing, digitisation, husbandry, and similar activities require the ability to interact with delicate, fragile samples without damaging them. Additionally, learning-based solutions to these tasks require the ability to safely acquire data to train manipulation policies through, e.g., reinforcement learning. To address these twin needs, we introduce a novel method to print free-form, highly sensorised soft 'physical twins'. We present an automated design workflow to create complex and customisable 3D soft sensing structures on demand from 3D scans or models. Compared to the state of the art, our soft liquid metal sensors faithfully recreate complex natural geometries and display excellent sensing properties suitable for validating performance in delicate manipulation tasks. We demonstrate the application of our physical twins as 'sensing corals': high-fidelity, 3D printed replicas of scanned corals that eliminate the need for live coral experimentation, whilst increasing data quality, offering an ethical and scalable pathway for advancing autonomous coral handling and soft manipulation broadly. Through extensive bench-top manipulation and underwater grasping experiments, we show that our sensing coral is able to detect grasps under 0.5 N, effectively capturing the delicate interactions and light contact forces required for coral handling. Finally, we showcase the value of our physical twins across two demonstrations: (i) automated coral labelling for lab identification and (ii) robotic coral aquaculture. Sensing physical twins such as ours can provide richer grasping feedback than conventional sensors providing experimental validation of prior to deployment in handling fragile and delicate items.
title 3D Printable Soft Liquid Metal Sensors for Delicate Manipulation Tasks
topic Robotics
url https://arxiv.org/abs/2509.17389