概括
这项研究引入了一种新的前进运动控制,用于复杂表面的盖帽抛光. 该方法提高了高梯度光学元件的加工精度和适应性.
科学领域:
- 机械工程 机械工程
- 光学工程是指光学工程.
- 制造业 制造技术 制造技术
背景情况:
- 由于轨迹限制和动态响应差,传统的盖帽抛光与高梯度表面作斗争.
- 复杂的几何形状需要先进的运动控制,用于精密加工.
研究的目的:
- 开发一种新的前进运动控制方法,用于高梯度表面盖帽抛光.
- 为了提高复杂光学表面的加工精度和适应性.
主要方法:
- 利用多体系统理论建立动力学关系.
- 通过最大限度地减少B轴倾斜角度,开发了一种最优的刚度解决方案.
- 实现了一个带轴速度约束的轴向量同质化算法.
主要成果:
- 实现了可加工加工梯度从20°大幅增加到超过35°.
- 能够对大孔面进行高精度的符合性抛光.
- 实现了91.5%的形式保存率.
结论:
- 拟议的度最佳的前置运动控制方法提高了高梯度表面的引擎盖抛光能力.
- 这一进步提高了复杂光学元件制造的工程应用性.
相关概念视频
Deformation in a Circular Shaft
955
One of the distinctive characteristics of circular shafts is their ability to maintain their cross-sectional integrity under torsion. In other words, each cross-section continues to exist as a flat, unaltered entity, simply rotating like a solid, rigid slab. To understand the distribution of shearing stress within such a shaft, consider a cylindrical section inside this circular shaft. This section has a length of L and a radius of R, with one end fixed. The radius of the cylindrical section is...
955
Hydrostatic Pressure Force on a Curved Surface
2.6K
Hydrostatic pressure on curved surfaces is a fundamental concept in fluid mechanics with broad applications in the civil engineering field. When fluid is in contact with a curved surface, as in a reservoir, dam, or storage tank, it exerts pressure that varies in magnitude and direction along the curved surface. To assess the total hydrostatic force exerted by the fluid on a curved structure, engineers typically isolate the fluid volume adjacent to the surface and analyze the forces acting on...
2.6K
Plastic Deformation in Circular Shafts
494
When materials are subjected to forces that surpass their yield strength, they undergo a process known as plastic deformation. This results in a permanent alteration or strain in their structure. This concept can be specifically applied to circular shafts, where the deformation leads to a change in its shape. The precise evaluation of this plastic deformation requires understanding the stress distribution within the circular shaft, which is achieved by calculating the maximum shearing stress in...
494
Bending of Curved Members - Neutral Surface
553
In curved beams, unlike straight beams, the stress distribution across the cross-section is not uniform due to the beam's curvature. This non-uniformity arises because the neutral axis, where stress is zero, does not align with the centroid of the section. In a curved beam, the strain varies along the section as a function of the distance from the neutral axis.
Consider the curved member described in the previous lesson. According to Hooke's law, which relates stress to strain within the...
Consider the curved member described in the previous lesson. According to Hooke's law, which relates stress to strain within the...
553
Residual Stresses in Circular Shafts
557
In materials that exhibit elastic and plastic behavior, known as elastoplastic materials, residual stresses can accumulate when these materials experience plastic deformation. This deformation arises from either high levels of shearing stress or significant strains. Residual stresses are internal stresses that persist within a material after removing the external force causing deformation. This phenomenon is demonstrated when observing the behavior of a shaft under torque; notably, the...
557
Planar Rigid-Body Motion
1.2K
Understanding the movement of a rigid body in planar motion involves recognizing that every particle within this body is traversing a path that maintains a consistent distance from a specific plane. This concept is fundamental in the study of physics and mechanical engineering, and it allows us to comprehend better how objects move in space.
Planar motion is typically divided into three distinct categories. The first is rectilinear translation, demonstrated by a subway train that moves along...
Planar motion is typically divided into three distinct categories. The first is rectilinear translation, demonstrated by a subway train that moves along...
1.2K


