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相关概念视频

Measurements of Strain01:27

Measurements of Strain

820
Strain quantifies the deformation of a material under force, typically measured as normal strain, which represents the change in length when compared with the original length. Electrical strain gauges are used for enhanced accuracy. These devices consist of a conductive wire mounted on a paper backing that adheres to the material's surface. These gauges operate on the piezoresistive effect, where the wire's electrical resistance changes in response to mechanical deformation. The strain...
820
Thermal Strain01:19

Thermal Strain

1.1K
Thermal strain is a concept that arises when we consider how temperature changes affect structures. Unlike the conventional assumption that structures remain constant under load, real-world scenarios often involve temperature fluctuations that can significantly impact these structures. Consider a homogeneous rod with a uniform cross-section resting freely on a flat horizontal surface. If the rod's temperature increases, the rod elongates. This elongation is proportional to the temperature...
1.1K
Design Example: Strain Gauge Bridge or Wheatstone Bridge01:15

Design Example: Strain Gauge Bridge or Wheatstone Bridge

401
The utilization of strain gauges as transducers for converting mechanical strain into electrical signals is a common practice in various engineering applications. These strain gauges are frequently integrated into Wheatstone bridge circuits to accurately measure parameters such as force or pressure. Within this context, each element within the circuit exhibits a resistance that undergoes subtle variations when subjected to mechanical strain. The primary objective is to convert minuscule...
401
Thermal expansion and Thermal stress: Problem Solving01:27

Thermal expansion and Thermal stress: Problem Solving

1.2K
San Francisco's Golden Gate Bridge is exposed to temperatures ranging from -15 °C to 40 °C. At its coldest, the main span of the bridge is 1275 m long. Assuming that the bridge is made entirely of steel, what is the change in its length between these temperatures?
To solve the problem, first, identify the known and unknown quantities. The initial length (L) of the bridge is 1275 m, the coefficient of linear expansion (α) for steel is 12 x 10-6/°C, and the change in...
1.2K

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相关实验视频

Updated: Jul 4, 2025

Optimized Sealing Process and Real-Time Monitoring of Glass-to-Metal Seal Structures
04:41

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Published on: September 2, 2019

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基于蓝宝石纤维的高温应变传感器布拉格格格.

Jun He, Zhuoda Li, Xizhen Xu

    Optics letters
    |February 1, 2024
    PubMed
    概括

    蓝宝石纤维布拉格格 (SFBG) 应变传感器在1200°C以下是稳定的. 这项研究确定了关键塑料变形温度,确保了可靠的工业应用的高温应变测量.

    科学领域:

    • 材料科学 材料科学 材料科学
    • 光学工程是指光学工程.
    • 传感器技术 传感器技术

    背景情况:

    • 蓝宝石纤维布拉格网格 (SFBGs) 由于其高点,提供高温应变传感能力.
    • 对于高温下施加应变的SFBGs的长期稳定性数据是有限的.
    • 了解塑料变形对于可靠的SFBG传感器操作至关重要.

    研究的目的:

    • 为了确定SFBGs中的塑性变形的临界温度点.
    • 评估SFBG应变传感器在高温下的长期稳定性和操作极限.
    • 为证明SFBG应变传感器在1200°C以下的可靠性.

    主要方法:

    • 在各种温度 (25°C,1180°C,1600°C) 及施加应变下对SFBG地形和光谱特征进行实验性调查.
    • 在测试后分析布拉格波长转移,光谱扩展和物理变形.
    • 在25°C,800°C和1100°C进行应变试验,以评估测量准确度.

    主要成果:

    • 在1600°C时,SFBG表现出塑性变形和不可逆转的延长,以缩小直径和延长格子期为证.
    • 在1600°C的8小时内观察到红移和反射峰值的扩大.
    • SFBG应变传感器在1200°C以下表现出稳定可靠的运行,具有高线性 (R2>0.99) 和低误差 (<15 μ).

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    相关实验视频

    Last Updated: Jul 4, 2025

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    结论:

    • SFBG应变传感器可以在高达1200°C的温度下可靠运行.
    • 塑料变形发生在1200°C以上,限制了操作温度范围.
    • SFBG 是一种有前途的技术,用于在电厂和航空航天等苛刻环境中进行高温应变传感.