考虑冻融循环的准脆性材料能量平衡尺寸效应模型

Energy balance size effect model considering freeze-thaw cycles for quasi-brittle materials

  • 摘要: 针对已有试验观察到的一种新奇尺寸效应现象,即随着冻融循环次数的增加,准脆性材料名义强度尺寸效应先从下降型转变为先升后降型,最终转变为上升型,建立具有物理机制的预测模型以描述该现象,可为寒区工程结构安全服役评估提供理论依据。基于冻融作用下准脆性材料试样损伤从中心向表面层逐渐增大的结构特征,将试样冻融损伤简化为由表面损伤层包裹内部未损伤区。随后,采用增长幂函数和指数衰减模型分别描述表面损伤层厚度和强度与冻融循环次数的关系,进而建立准脆性材料冻融损伤结构强度模型并对其进行了验证。在此基础上,结合冻融损伤结构强度模型和能量平衡尺寸效应模型,建立考虑冻融循环的准脆性材料能量平衡尺寸效应模型(Energy Balance Size Effect Model Considering the Freeze-Thaw Cycles for Quasi-brittle Materials, EBM-FTC),并对其进行参数分析。最后,采用冻融循环作用下不同准脆性材料尺寸效应试验结果验证EBM-FTC模型。此外,通过分析不同准脆性材料试验结果拟合确定EBM-FTC参数值,简化EBM-FTC模型。结果表明:冻融损伤结构强度模型能准确描述准脆性材料试样整体强度与冻融循环次数之间的非线性特征。EBM-FTC不仅能准确描述上述新奇尺寸效应现象,还能描述随冻融循环次数增加,准脆性材料下降尺寸效应逐渐减弱的规律,这证明其能够反映试样尺寸与冻融循环对不同准脆性材料强度耦合影响的内在机制。EBM-FTC预测结果的最小决定系数R2为0.845 2,表明其具有较高的准确性。简化后EBM-FTC的最小决定系数R2为0.841 0,表明其仍然具有较高的准确性,简化合理。参数分析EBM-FTC表明,冻融循环导致的表面损伤层厚度增加和强度降低是产生上升尺寸效应的原因;下降尺寸效应产生的原因是表面损伤层体积比相对于内部未损伤区可以忽略;先升后降尺寸效应则是由表面损伤层和内部未损伤区共同控制。EBM-FTC实现了冻融循环次数和尺寸对准脆性材料强度耦合影响的定量刻画,可直接用于寒区准脆性材料构件在已知服役冻融次数下的最小安全尺寸设计,或根据设计尺寸反推冻融耐久阈值。

     

    Abstract: Existing experiments have observed a novel size effect phenomenon that as the freeze-thaw (FT) cycles increase, size effect of quasi-brittle materials nominal strength changes from the descending size effect to the ascending-descending size effect, and then to the ascending size effect. A physically based model is developed to describe this novel size effect phenomenon and to provide a theoretical basis for the safety service assessment of engineering structures in cold regions. The FT damage of specimen is simplified as the undamaged interior region wrapped by the damaged surface layer based on the fact that the FT damage gradually increases from the center of the specimen to the surface layer. And then, the increasing power function and the exponential decay model are adopted to describe the FT-dependent thickness and the FT-dependent the strength of the damaged surface layer. Based on this, the structural strength model of FT damage is established and validated for quasi-brittle materials. Following this, energy balance size effect model considering the FT cycles for quasi-brittle materials (EBM-FTC) is proposed by integrating the structural strength model of FT damage and the energy balance size effect model previously proposed by the author. Subsequently, parameters analysis of the EBM-FTC is conducted. Finally, the EBM-FTC is validated by using the experimental results of the size effect of different quasi-brittle materials under FT cycles. Furthermore, by analyzing the EBM-FTC parameter values determined through fitting for experimental results of different quasi-brittle materials, the EBM-FTC is simplified. The results show that: the structural strength model of FT damage is capable of precisely describe the nonlinear characteristics between the quasi-brittle materials strength of the whole specimen and FT cycles. The EBM-FTC can describe the novel size effect phenomenon mentioned above. This proves that it can also reflect the underlying mechanism of the coupling effect of specimen size and FT cycles on the strength of different quasi-brittle materials. The minimum determination coefficients of EBM-FTC is 0.845 2, indicating high model accuracy. The minimum coefficient of determination R2 of the simplified EBM-FTC is 0.841 0, indicating that the simplified EBM-FTC still has high accuracy and the simplification is reasonable. Parameters analysis of the EBM-FTC indicates that the decreased strength and increased thickness of the damaged surface layer caused by FT cycles are the cause of the ascending size effect; the descending size effect occurs because the volume ratio of the damaged surface layer is negligible compared to the undamaged interior region; The ascending-descending size effect is governed by both the damaged surface layer and the undamaged interior region. EBM-FTC has achieved a quantitative characterization of the coupled influence of FT cycles and size on the strength of quasi-brittle materials. It can be directly applied to the design of the minimum safe size of quasi-brittle materials components in cold regions under known service FT cycles, or to infer the freeze-thaw durability threshold based on the design size.

     

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