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相关概念视频

Design of Transmission Shafts - Stress Analysis01:15

Design of Transmission Shafts - Stress Analysis

396
Designing a transmission shaft requires a thorough understanding of the stresses induced by bending moments and torques, especially in systems where power is transferred through gears. These forces create force-couple systems at the centers of the shaft's cross-sections, leading to both transverse and torsional loading. Although shearing stresses from transverse loads are typically smaller than those from torques and are often overlooked, the significant normal stresses from these loads...
396
Prismatic Beams: Problem Solving01:15

Prismatic Beams: Problem Solving

142
In the design of a supported timber beam subjected to a distributed load, both the beam's physical dimensions and the timber's characteristics, such as its grade and species, are critical. These factors determine the allowable stress values, which are crucial for calculating the necessary beam depth to ensure structural integrity and safety.
The design begins with analyzing the beam as a free body to identify moments and force balances, thereby determining support reactions. Next, the...
142
Design of Transmission Shafts01:16

Design of Transmission Shafts

368
The design of a transmission shaft is governed by two primary specifications: the power it transmits and its rotational speed. These parameters guide the selection of the shaft's material and cross-sectional dimensions, ensuring that the material's maximum shearing stress remains within the elastic limit while transmitting the desired power at the given speed. The system's power is intrinsically linked to the applied torque. The torque applied to the shaft can be calculated by...
368
Design of Prismatic Beams for Bending01:23

Design of Prismatic Beams for Bending

269
The design of prismatic beams, structural elements with a uniform cross-section, focuses on ensuring safety and structural integrity under load. The design process begins by determining the allowable stress, either from material properties tables, or by dividing the material's ultimate strength by a safety factor. This safety factor is essential for accommodating uncertainties, and varies depending on the material—timber, steel, or concrete—with each having unique strength and...
269
Mechanical Systems01:22

Mechanical Systems

229
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...
229
Parallel-Axis Theorem for an Area01:12

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The moment of inertia is a fundamental concept in mechanical engineering that plays a significant role in designing rotationally symmetric objects such as flywheels, gears, and other mechanical systems. In this context, we will discuss the moment of inertia of a flywheel rotating about its centroidal axis and how it relates to the moment of inertia about an axis parallel to it.
For a flywheel approximated as a solid disc, consider an infinitesimal differential element with an arbitrary distance...
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相关实验视频

Updated: Jul 16, 2025

Microfabrication of Implantable Optics Integrated in a Microstructured Imaging Window for Advanced In Vivo Imaging
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对光机械结构的多学科综合最佳设计过程.

Chol-Hyon Kim, Jong-Nam Kim, Sun-Chol Kim

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    此摘要是机器生成的。

    本研究介绍了使用多学科优化对光机械结构的综合设计过程. 这种方法通过优化组件尺寸,成功地减少了卡塞格林望远镜的波面误差.

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    科学领域:

    • 视觉机械学 视觉机械学
    • 多学科优化多学科优化
    • 光学工程是指光学工程.

    背景情况:

    • 光学机械结构需要综合设计以获得最佳性能.
    • 传统的设计流程可能会被分散,导致效果不佳.

    研究的目的:

    • 为光机械结构提供一个集成的最佳设计过程.
    • 通过自动化设计优化来提高光学系统性能.

    主要方法:

    • 使用了一种工作流,结合了ANSYS Workbench (有限元分析),MATLAB (光机械转移),ZEMAX (光学分析) 和Isight (优化解决方案).
    • 代计算变形,泽尼克系数和光学性能参数以确定最佳设计尺寸.

    主要成果:

    • 成功执行光机结构的集成最佳设计和分析.
    • 对卡塞格林望远镜的图像波面误差显著减少,从29.9nm降至16.1nm.

    结论:

    • 集成的最佳设计过程使复杂的光机械系统的成功分析和优化成为可能.
    • 这种方法通过优化单个组件设计来提高光学系统性能.