基于全身动力学的空中落轨迹优化和人形机器人着陆控制
Weilong Zuo1,2, Junyao Gao1,2, Jingwei Cao1,2
1School of Mechatronical Engineering, Beijing Institute of Technology, Beijing 100081, China.
Biomimetics (Basel, Switzerland)
|October 27, 2023
概括
人形机器人现在可以安全地从高度下降,使用优化的轨迹和先进的控制. 这项研究确保了机器人在空中落和撞击时的保护,提高了人类环境中的安全性.
科学领域:
- 机器人技术 机器人技术 机器人技术
- 控制系统 控制系统
- 机械工程 机械工程
背景情况:
- 在复杂的人类环境中,人形机器人的落是常见的.
- 现有的研究主要针对地面落,忽视了空中落.
- 空中落对机器人的完整性和安全性构成重大风险.
研究的目的:
- 开发和验证在人形机器人中安全空中降落的方法.
- 为了优化下降轨迹和减轻冲击力.
- 在动态环境中增强机器人的弹性和安全性.
主要方法:
- 使用扩展状态变量公式进行轨迹优化.
- 在空中阶段使用比例差分 (PD) 控制.
- 优化接触力,使用中心动力学模型和双弹阻尼器模型进行着陆.
主要成果:
- 模拟显示,安全落从1.5米以45°的俯仰角度下降.
- 在物理机器人上的实验验证证证了这些方法的有效性.
- 在空中落时实现了对冲击力的优异冲击吸收.
结论:
- 拟议的轨迹优化和运动控制有效地保护人形机器人在空中落时.
- 这些方法显著降低了冲击力,提高了机器人的耐用性.
- 在不可预测的人类环境中,使人形机器人能够更安全地运行.
相关概念视频
One-Degree-of-Freedom System
494
In mechanical engineering, one-degree-of-freedom systems form the basis of a wide range of electrical and mechanical components. Using these models, engineers can predict the behavior of various parts in a larger system, which gives them insight into how different forces interact with each other.
A one-degree-of-freedom system is defined by an independent variable that determines its state and behavior. One example of a one-degree-of-freedom system is a simple harmonic oscillator, such as a...
A one-degree-of-freedom system is defined by an independent variable that determines its state and behavior. One example of a one-degree-of-freedom system is a simple harmonic oscillator, such as a...
494
Absolute Motion Analysis- General Plane Motion
225
Visualize a drone, with its propellers spinning rapidly, hovering mid-air. The fascinating movements and operations of this drone can be comprehended by applying the principle of general plane motion.
As the drone's propellers rotate, an upward force is generated that counteracts the force of gravity, enabling the drone to lift off from the ground. This initial movement of the drone is along a straight path, representing a form of translational motion. In this phase, every point on the...
As the drone's propellers rotate, an upward force is generated that counteracts the force of gravity, enabling the drone to lift off from the ground. This initial movement of the drone is along a straight path, representing a form of translational motion. In this phase, every point on the...
225
Hydraulic Jump: Problem Solving
65
To analyze a hydraulic jump in a rectangular channel with a flow speed of 6 meters per second, follow these steps:Calculate Effective Upstream Velocity:When the downstream gate closes, a hydraulic jump forms, traveling upstream at 2 meters per second. This wave speed combines with the initial channel flow velocity, creating an effective upstream velocity.Identify Flow Velocities Before and After the Hydraulic Jump:Upstream of the hydraulic jump, the effective flow velocity includes both the...
65
Impact: Problem Solving
227
In an experiment conducted during a Mars mission, a rover propels a projectile with an initial velocity, and the projectile rebounds after colliding with the Martian surface. To ascertain the maximum height attained by the projectile after this collision, the known restitution coefficient and acceleration due to gravity are employed.
By designating the launch point as the origin and utilizing kinematic equations, the vertical component of the projectile's velocity at the point of impact is...
By designating the launch point as the origin and utilizing kinematic equations, the vertical component of the projectile's velocity at the point of impact is...
227
Buoyancy and Stability for Submerged and Floating Bodies
1.8K
In fluid mechanics, buoyancy and stability are key concepts for understanding the behavior of submerged and floating bodies. When a stationary body is fully or partially submerged in a fluid, the fluid exerts a force on the body known as the buoyant force. This force acts vertically upward through a point called the center of buoyancy, which is the center of the displaced fluid volume. According to Archimedes' principle, the magnitude of the buoyant force is equal to the weight of the fluid...
1.8K
Three-Dimensional Force System:Problem Solving
674
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...
674


