实现更高的负载能力:具有柔软关节结构的机器人手的创新设计
Ming Guan1, Chenxi Qu2, Liang Yang1
1School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510641, People's Republic of China.
Bioinspiration & biomimetics
|August 15, 2024
概括
这项研究介绍了一种创新的软机器人手,具有增强的执行和负载能力. 机器人手在抓住各种物体方面表现出灵巧和适应能力.
科学领域:
- 机器人技术 机器人技术 机器人技术
- 机械工程 机械工程
- 生物机械学是生物机械学.
背景情况:
- 传统的机器人手往往缺乏人类手的灵巧和适应能力.
- 在保持精细运动能力的同时实现高负载能力仍然是机器人手设计的挑战.
研究的目的:
- 介绍一款柔软机器人手的创新设计,重点是改进的执行和承载能力.
- 开发和验证肌驱动机制,协调电机驱动和新型指传动系统.
主要方法:
- 软关节机器人手的设计和实施.
- 发展一种肌驱动机制,主-奴隶运动协调,以及专门的指传动.
- 创建一个机械模型来评估应用限制和负载能力.
- 机器人手的原型设计和实验验证.
主要成果:
- 机器人手实现了高达10.3N的指尖力和高达72.8N的负载力.
- 实验结果验证了理论机械模型的可靠性.
- 机器人手成功地对不同尺寸和形状的物体进行了各种强度和精确的抓取.
- 证明了良好的灵活性和包裹状态的自主调整以适应性.
结论:
- 提出的创新设计显著提高了机器人手的操作,负载能力,灵巧性和适应性.
- 开发的机械模型准确地预测了机器人手的性能和限制.
- 柔软的机器人手能够完成复杂的抓取任务,显示出各种应用的潜力.
相关概念视频
Support Reactions in Three Dimensions
946
Support reactions in three dimensions help maintain the stability and equilibrium of various structures and systems. These reactions prevent the system from translating and rotating, ensuring the design can withstand external forces and perform its intended function efficiently and safely. Some of the supports providing support reactions in three dimensions are discussed below:
Ball and Socket Joint is one of the supports allowing free rotation about any axis. This freedom of rotation is...
Ball and Socket Joint is one of the supports allowing free rotation about any axis. This freedom of rotation is...
946
Deformation of Member under Multiple Loadings
160
When a rod is made of different materials or has various cross-sections, it must be divided into parts that meet the necessary conditions for determining the deformation. These parts are each characterized by their internal force, cross-sectional area, length, and modulus of elasticity. These parameters are then used to compute the deformation of the entire rod.
In the case of a member with a variable cross-section, the strain is not constant but depends on the position. The deformation of an...
In the case of a member with a variable cross-section, the strain is not constant but depends on the position. The deformation of an...
160
Structural Joints: Synovial Joints
3.4K
Synovial joints are the most common type of joint in the body. A key structural characteristic for a synovial joint is the presence of a joint cavity. This fluid-filled space is where the articulating surfaces of the bones contact each other. Also, unlike fibrous or cartilaginous joints, the articulating bone surfaces at a synovial joint are not directly connected to each other with fibrous connective tissue or cartilage. This gives the bones of a synovial joint the ability to move smoothly...
3.4K
Mechanical Systems
183
Mechanical systems are analogous to to electrical networks where springs and masses play similar roles to inductors and capacitors, respectively. A viscous damper in mechanical systems functions similarly to a resistor in electrical networks, dissipating energy. The forces acting on a mass in such systems include an applied force in the direction of motion, counteracted by forces from the spring, a viscous damper, and the mass's acceleration. This interplay of forces is mathematically...
183
Machines: Problem Solving II
303
Machines are complex structures consisting of movable, pin-connected multi-force members that work together to transmit forces. Consider a lifting tong carrying a 100 kg load. It comprises movable sections DAF and CBG linked together with member AB.
303
Three-Dimensional Force System:Problem Solving
657
A three-dimensional force system refers to a scenario in which three forces act simultaneously in three different directions. This type of problem is commonly encountered in physics and engineering, where it is necessary to calculate the resultant force on the system, which can then be used to predict or analyze the behavior of the object or structure under consideration.
To solve a three-dimensional force system, first resolve each force into its respective scalar components. Do this using...
To solve a three-dimensional force system, first resolve each force into its respective scalar components. Do this using...
657


