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相关概念视频

Yield Criteria for Ductile Materials under Plane Stress01:25

Yield Criteria for Ductile Materials under Plane Stress

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In designing structural elements and machine parts using ductile materials, it is crucial to ensure that these components withstand applied stresses without yielding. Yielding is initially determined through a tensile test, which evaluates the material's response to uniaxial stress. However, tensile stress is insufficient when components face biaxial or plane stress conditions This condition requires advanced criteria to predict failure.
The Maximum Shearing Stress Criterion, also known as...
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Transmission Shafts: Problem Solving01:09

Transmission Shafts: Problem Solving

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Designing a solid shaft that transmits power from a motor to a machine tool involves a series of calculations to ensure the shaft can withstand the stresses applied by bending moments and torques. First, calculate the torque exerted on the gear, considering the power transmitted by the shaft and its rotational speed. Following this, compute the tangential forces acting on the gears, which directly relate to the torque and the gear radius.
Next, use bending moment diagrams for the shaft to...
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Mechanical Characteristics of Steel01:18

Mechanical Characteristics of Steel

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The mechanical characteristics of steel are assessed through various tests that evaluate its strength, toughness, and flexibility. These tests include tension, torsion, impact, bending, and hardness assessments, each providing crucial information about steel's suitability for specific applications.
The tension test is fundamental for determining tensile strength. In this test, a steel specimen is stretched using a gripping device until it breaks. The data collected during this test are used...
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Methods of Medium Optimization01:28

Methods of Medium Optimization

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Optimizing growth media enhances microbial proliferation and maximizes product yield. Statistical experimental design methodologies provide structured and reproducible approaches, offering progressively higher levels of robustness and efficiency.The One-Factor-at-a-Time (OFAT) MethodThe One-Factor-at-a-Time (OFAT) method involves adjusting a single variable while keeping all others constant. However, it cannot detect interactions between variables, often leading to suboptimal outcomes when...
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通过强制执行最小特征尺寸来提高超表面制造能力.

Pavel Terekhov1, Shengyuan Chang1, Md Tarek Rahman1

  • 1Department of Electrical Engineering, The Pennsylvania State University, University Park, PA 16802, USA.

Nanophotonics (Berlin, Germany)
|July 26, 2024
PubMed
概括

我们开发了一种新的超表面设计流程,以确保可制造性. 这种方法可以在充满和空的区域中计算最小的特征大小,从而提高复杂元光学产品的生产产量.

关键词:
制造友好型的制造方式金属的 金属的metasurface 地表的表面是什么纳米制造的纳米制造

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科学领域:

  • 光学和光子学 在光学和光子学.
  • 材料科学 材料科学 材料科学
  • 计算设计的计算设计.

背景情况:

  • 超表面在光学系统中提供了小型化和灵活性.
  • 超原子的算法设计提供了巨大的设计自由,但使制造复杂化.

研究的目的:

  • 引入一个超表面设计过程,强制执行可制造性约束.
  • 确保高产量复杂的超表面设计的实际制造.

主要方法:

  • 开发了一个设计流程,严格执行材料填充和空区域的最小特征尺寸限制.
  • 违反这些约束的情况在整个超表面设计中得到了纠正.
  • 该方法确保对地表的整体性能产生最小的影响.

主要成果:

  • 开发的设计过程成功地强制执行复杂的超表面设计的可制造性.
  • 该方法确保填充和空白区域都符合最小特征尺寸要求.
  • 这种方法可以提高先进元光学元件的生产产量.

结论:

  • 这种制造意识的设计过程可以创建复杂的超表面,这些超表面实际上是制造的.
  • 该方法解决了先进的超光学设备广泛采用的关键挑战.
  • 改进的可制造性导致提高生产产量和更广泛地应用元表面.