Computational design of passive grippers
Milin Kodnongbua, Ian Good, Yu Lou, Jeffrey Lipton, Adriana Schulz
摘要
This work proposes a novel generative design tool for passive grippers---robot end effectors that have no additional actuation and instead leverage the existing degrees of freedom in a robotic arm to perform grasping tasks. Passive grippers are used because they offer interesting trade-offs between cost and capabilities. However, existing designs are limited in the types of shapes that can be grasped. This work proposes to use rapid-manufacturing and design optimization to expand the space of shapes that can be passively grasped. Our novel generative design algorithm takes in an object and its positioning with respect to a robotic arm and generates a 3D printable passive gripper that can stably pick the object up. To achieve this, we address the key challenge of jointly optimizing the shape and the insert trajectory to ensure a passively stable grasp. We evaluate our method on a testing suite of 22 objects (23 experiments), all of which were evaluated with physical experiments to bridge the virtual-to-real gap. Code and data are at https://homes.cs.washington.edu/ milink/passive-gripper/
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引用它的顶会 Paper2
- House Of Dextra : Cross-Embodied Co-Design for Dexterous HandsKehlani Fay, Darin Anthony Djapri, Anya Zorin, James Clinton 等ICLR 2026 · 被引用 9 次
- Designing Pin-pression Gripper and Learning its Dexterous Grasping with Online In-hand AdjustmentHewen Xiao, Xiuping Liu, Hang Zhao, Jian Liu 等SIGGRAPH 2025 · 被引用 2 次
它引用的顶会 Paper3
- 6-DOF GraspNet: Variational Grasp Generation for Object ManipulationArsalan Mousavian, Clemens Eppner, Dieter FoxICCV 2019 · 被引用 673 次
- DiffAqua: a differentiable computational design pipeline for soft underwater swimmers with shape interpolationPingchuan Ma, Tao Du, John Z. Zhang, Kui Wu 等SIGGRAPH 2021 · 被引用 65 次
- Swept volumes via spacetime numerical continuationSilvia Sellán, Noam Aigerman, Alec JacobsonSIGGRAPH 2021 · 被引用 35 次
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