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Interface transferring mechanism and error modification of FRP-OFBG strain sensor based on standard linear viscoelastic model

机译:基于标准线性粘弹性模型的界面传输机理及销钉应变传感器的误差修改

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This paper presents the interface transferring mechanism and error modification of the Fiber Reinforced Polymer-Optical Fiber Bragg Grating (FRP-OFBG) sensing tendons, which including GFRP (Glass Fiber Reinforced Polymer) and CFRP (Carbon Fiber Reinforced Polymer), using standard linear viscoelastic model. The optical fiber is made up of glass, quartz or plastic, et al, which creep strain is very small at room temperature. So the tensile creep compliance of optical fiber is independent of time at room temperature. On the other hand, the FRP (GFRP or CFRP) is composed of a kind of polymeric matrix (epoxy resins or the others) with glass, carbon or aramid fibers, which shear creep strain is dependent of time at room temperature. Hence, the standard linear viscoelastic model is employed to describe the shear creep compliance of FRP along the fiber direction. The expression of interface strain transferring mechanism of FRP-OFBG sensors is derived based on the linear viscoelastic theory and the analytic solution of the error rate is given by the inverse Laplace transform. The effects of FRP viscoelasticity on the error rate of FRP-OFBG sensing tendons are included in the above expression. And the transient and steady-state error modified coefficient of FRP-OFBG sensors are obtained using initial value and final value theorems. Finally, a calculated example is given to explain the correct of theoretical prediction.
机译:本文介绍了使用标准线性粘弹性的GFRP(玻璃纤维增​​强聚合物)和CFRP(碳纤维增强聚合物)的纤维增强聚合物 - 光纤布拉格光栅(FRP-OFBG)感测肌腱的界面传送机理和误差修改。模型。光纤由玻璃,石英或塑料等,在室温下蠕变菌株非常小。因此光纤的拉伸蠕变顺应性与室温下的时间无关。另一方面,FRP(GFRP或CFRP)由一种聚合物基质(环氧树脂或其他)与玻璃,碳或芳族纤维组成,剪切蠕变应变在室温下的时间。因此,使用标准的线性粘弹性模型来描述沿纤维方向的FRP的剪切蠕变顺应性。基于线性粘弹性理论导出FRP-OFBG传感器的界面应变传递机理的表达,并且通过逆拉普拉斯变换给出了误差率的分析解决方案。 FRP粘弹性对上述表达式的FRP-OFBG传感肌腱误差的影响。使用初始值和最终值定理获得FRP-OFBG传感器的瞬态和稳态误差修正系数。最后,给出了计算的示例来解释理论预测的正确性。

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