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Biaxial strain data for composite materials

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Mendeley Data2026-04-18 收录
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Dataset Description: Composite Material Stress and Strain This dataset encompasses stress and strain measurements obtained from experiments conducted on a composite material. The data spans various conditions or loading scenarios applied to the material, capturing the material's response concerning stress and strain in different dimensions. Features: Stress: The applied force per unit area exerted on the material, measured in an unspecified unit (normalised or scaled values). Strain in X: The change in length (or deformation) in the x-direction of the material concerning the applied force. Strain in Y: Similar to strain in X, this represents the deformation in the y-direction caused by the applied force. Strain XY: The shear deformation or strain occurring in the xy plane, perpendicular to the z-axis. Insights: Initial State (Data Point 0): The initial data point shows zero stress and strain across all dimensions, indicating the material's baseline state before any applied force. Progressive Stress-Strain Relationship: As the stress increases gradually from subsequent data points, there's a corresponding increment in strain values, demonstrating the material's response to increasing stress levels. The strains appear relatively small compared to the stress values, indicating a linear or proportional relationship between stress and strain within this range. Shear Strain Variation: Notably, the shear strain (Strain XY) remains consistently negative, suggesting a consistent type of deformation within the xy plane despite varying stress levels. Observations: Incremental Stress-Strain Behaviour: The stress increments marginally across data points, possibly representing a controlled stress test where the material is subjected to incremental loading. Consistency in Strain Patterns: Strain values show incremental changes, suggesting the material's linear or elastic behavior under these applied forces. Potential Analysis: Elastic Limit Exploration: Further analysis might involve determining the material's elastic limit or investigating potential deviations from linear behaviour as stress reaches higher levels. Comparative Studies: Comparative analysis with different material compositions or under varying environmental conditions could reveal how this composite material fares in comparison.

数据集说明:复合材料应力(Stress)与应变(Strain) 本数据集涵盖针对复合材料开展实验所获取的应力与应变测量数据。数据覆盖了施加于该材料的多种工况与加载场景,完整记录了材料在不同维度下对应力与应变的响应情况。 特征说明: 应力(Stress):作用于材料的单位面积外力,采用未指定单位(已归一化或缩放后数值)进行度量。 X方向应变(Strain in X):材料在x轴方向的长度变化(或变形),与所施加的外力直接相关。 Y方向应变(Strain in Y):与X方向应变类似,代表由施加外力引发的y轴方向变形。 XY平面应变(Strain XY):发生于xy平面内、垂直于z轴的剪切变形或剪切应变。 核心结论: 初始状态(数据点0):首个数据点显示所有维度下的应力与应变均为零,代表材料未受任何外力作用时的基准状态。 渐进式应力-应变关系:后续数据点中,随着应力逐步提升,应变数值也相应增加,体现了材料对应力水平提升的响应。相较于应力数值,应变值整体偏小,表明在此测试区间内应力与应变呈线性或比例关系。 剪切应变变化特征:值得注意的是,XY平面应变始终为负值,说明尽管应力水平存在变化,xy平面内始终保持同一种变形模式。 观测现象: 增量式应力-应变行为:各数据点间的应力增量幅度较小,可能代表对材料开展的可控增量加载应力测试。 应变模式一致性:应变数值呈现渐进式变化,表明材料在所施加外力下表现出线性或弹性行为。 潜在分析方向: 弹性极限探索:后续分析可用于确定该材料的弹性极限,或探究当应力达到更高水平时,是否出现偏离线性行为的情况。 对比研究:可与不同成分的复合材料或不同环境条件下的测试数据开展对比分析,以明确该复合材料的性能表现。

创建时间:
2023-12-19
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