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首页> 外文期刊>Journal of engineering materials and technology >On Mechanical Properties of Composite Sandwich Structures With Embedded Piezoelectric Fiber Composite Sensors
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On Mechanical Properties of Composite Sandwich Structures With Embedded Piezoelectric Fiber Composite Sensors

机译:嵌入式压电纤维复合传感器的复合夹层结构力学性能研究

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The smart sandwich structures have been widely used in the aerospace, automobile, marine, and civil engineering applications. A typical smart sandwich structure is usually comprised of two stiff face skins separated by a thick core with variety of embedded sensors to monitor the performance of the structures. In this study, the smart composite sandwich structure (CSS) samples are fabricated with glass microballoons syntactic foam core and resin infused glass-fiber face skins (with piezoelectric fiber composite sensors (PFCS) embedded inside the resin infused glass-fiber face skins). One of the main concerns associated with embedding sensors inside composite structures is the structural continuity, compatibility, and interface stress concentrations caused by the significant differences in material property between sensor and host structures. PFCS are highly flexible, easily embeddable, highly compatible with composite structures and their manufacturing processes, which makes them ideal for composite health monitoring applications. In this study, in-plane tensile, tension-tension fatigue, short beam shear, and flexural tests are performed to evaluate the effect on strengths/behavior of the CSS samples due to embedded PFCS. Then carefully planned experiments are conducted to investigate the ability of the embedded PFCS to monitor the stress/strain levels and detect damages in CSS using modal analysis technique. The tensile tests show that both the average ultimate strength and the modulus of elasticity of the tested laminate with or without embedded PFCS are within 7% of each other. The stress-life (S-N) curves obtained from fatigue tests indicates that the fatigue lives and strengths with and without the PFCS are close to each other as well. From short beam and flexural test results, it is observed that embedded PFCS leads to a reduction of 5.4% in the short beam strength and 3.6% in flexural strength. Embedded PFCS's voltage output response under tension-tension fatigue loading conditions has been recorded simultaneously to study their ability to detect the changes in input loading conditions. A linear relationship has been observed between the changes in the output voltage response of the sensor and changes in the input stress amplitude. This means that by constantly monitoring the output response of the embedded PFCS, one could effectively monitor the magnitude of stress/strain acting on the structure. Experiments are also performed to explore the ability of the embedded PFCS to detect the damages in the structures using modal analysis technique. Results from these experiments show that the PFCS are effective in detecting the initiations of damages like delamination inside these composite sandwich structures through changes in natural frequency modes. Hence embedded PFCS could be an effective method to monitor the health of the composite sandwich structures' in-service conditions.
机译:智能夹层结构已广泛用于航空航天,汽车,船舶和土木工程应用。典型的智能三明治结构通常由两个坚硬的表皮组成,这些表皮被厚实的芯隔开,并带有各种嵌入式传感器以监视结构的性能。在这项研究中,智能复合材料夹层结构(CSS)样品是用玻璃微气球句法泡沫芯和树脂注入的玻璃纤维面蒙皮(压电树脂复合传感器(PFCS)嵌入树脂注入的玻璃纤维面蒙皮内)制成的。与将传感器嵌入复合结构内部相关的主要问题之一是结构的连续性,兼容性和界面应力集中,这是由传感器和主体结构之间的材料特性显着差异引起的。 PFCS具有高度的灵活性,易于嵌入的特性,并且与复合结构及其制造工艺高度兼容,因此非常适合复合健康监测应用。在这项研究中,进行了平面内拉伸,拉伸-拉伸疲劳,短梁剪切和挠曲测试,以评估由于嵌入的PFCS对CSS样品的强度/性能的影响。然后进行精心计划的实验,以研究嵌入式PFCS使用模态分析技术监测应力/应变水平并检测CSS损伤的能力。拉伸试验表明,有或没有嵌入PFCS的层压板的平均极限强度和弹性模量均在7%之内。从疲劳测试获得的应力寿命(S-N)曲线表明,有无PFCS时的疲劳寿命和强度也彼此接近。从短梁和弯曲测试结果可以看出,嵌入的PFCS导致短梁强度降低5.4%,弯曲强度降低3.6%。同时记录了嵌入式PFCS在拉伸-拉伸疲劳载荷条件下的电压输出响应,以研究其检测输入载荷条件变化的能力。已经观察到传感器的输出电压响应的变化与输入应力幅度的变化之间存在线性关系。这意味着通过不断监视嵌入式PFCS的输出响应,可以有效监视作用在结构上的应力/应变的大小。还进行了实验,以探索嵌入式PFCS使用模态分析技术检测结构损坏的能力。这些实验的结果表明,PFCS可有效地通过自然频率模式的变化检测这些复合夹层结构内部诸如分层等破坏的起因。因此,嵌入式PFCS可能是监测复合夹层结构在役状态健康的有效方法。

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