System Identification of Admittance Models for Large Real-World Objects

📅 2026-08-30
📈 Citations: 0
✨ Influential: 0
📄 PDF
🤖 AI Summary
本文提出了一种为大型现实物体生成物理一致模型的工作流程,通过分离物体并识别手柄和主体来解决仿真中缺乏物理一致性动态模型的问题。
📝 Abstract
Simulation of admittance-type models requires physically consistent dynamic models that are rarely available for off-the-shelf, everyday objects, limiting the fidelity of haptic interfaces that rely on such simulations. This paper presents the first complete workflow for producing physically consistent models of large real-world objects with various constraints and mechanisms, guaranteeing physical consistency of inertia and friction parameters. The workflow separates each object and identifies the handle and body in two stages, requiring no torque sensors at hinges, axles, or other constrained joints. Models are produced for a heavy, closer-actuated door and a wheelbarrow, representing objects of differing constraint types and model complexity. The door is modeled using four-bar linkage kinematics and a fluid dynamics-based lumped parameter model including opening, backcheck, swing, and latch zones. The wheelbarrow is modeled as a rigid body with a spherical wheel and no slip during rolling. Handle estimation RMS errors were below 0.64 N and 0.042 Nm across both objects. Door body estimation had RMS error of 2.19 Nm and wheelbarrow body estimation had RMS error of 6.77 Nm.
Problem

Research questions and friction points this paper is trying to address.

System Identification
Admittance Models
Real-World Objects
Haptic Interfaces
Physical Consistency
Innovation

Methods, ideas, or system contributions that make the work stand out.

physically consistent models
constraint types
no torque sensors
four-bar linkage kinematics
fluid dynamics-based lumped parameter model
🔎 Similar Papers
No similar papers found.
💼 Related Jobs
No related jobs found.
N
Nathan I. Baum
Department of Mechanical Engineering, University of Utah, Salt Lake City, UT 84112, USA
N
Nathaniel G. Luttmer
M
Mark A. Minor
Department of Mechanical Engineering, University of Utah, Salt Lake City, UT 84112, USA