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TAPERED TEST SPECIMEN FOR RAPID DAMAGE PRECURSOR IDENTIFICATION

机译:用于快速损伤前体识别的锥形测试标本

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Traditionally, most mechanical testing is conducted on specimens of uniform cross-section and stress magnitude, or only a single position along the specimen length is of interest. Investigations of various stress levels therefore requires separate tests with a unique specimen at each stress level of interest. The impetus of the current work was to develop a method for the design and monitoring of a specimen that simultaneously experiences a continuum of stress magnitudes across various positions. A linearly-tapered specimen was developed and subjected to sinusoidal tension-tension fatigue until specimen failure, with the expectation that a record of damage exists along the length of the specimen due to the varying level of induced stress. Baseline and post-failure scans of x-ray diffraction, electrical resistance via four point probe, nano-indentation, eddy current, and geometric changes were compared. Attempts were made to characterize the pre- and post-test property behaviors as a function of the applied stress, which varied linearly along the specimen, and as a function of fatigue cycles, which were the same along the length of the specimen. The mechanisms of specimen damage due to fatigue cycling were investigated and analyzed to improve durability and damage tolerance understanding.
机译:传统上,大多数机械测试都是在具有相同横截面和应力大小的样品上进行的,或者只关注沿样品长度的单个位置即可。因此,对各种应力水平的研究需要在每个感兴趣的应力水平下用唯一的样本进行单独的测试。当前工作的推动力是开发一种用于设计和监测样本的方法,该方法可以同时在各个位置经历连续的应力大小。研制出线性渐缩试样并经受正弦拉伸-拉伸疲劳直到试样破坏,并期望由于诱导应力水平的变化而沿试样的长度存在损伤记录。比较了X射线衍射的基线扫描和故障后扫描,通过四点探针的电阻,纳米压痕,涡流和几何变化。尝试将测试前和测试后的特性行为表征为所施加应力的函数(沿试样线性变化)和疲劳循环(其沿试样长度方向呈线性变化)。对疲劳循环引起的标本损坏机理进行了研究和分析,以提高对耐久性和对损伤容忍度的理解。

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