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輕質土動力特性研究進展

Research progress on the dynamic characteristics of lightweight soil

  • 摘要: 輕質土具有輕質、高強、保溫、隔振、環保、經濟等優點,在路基回填、軟基處理、隧道減荷等巖土工程領域具有廣闊的應用前景. 作為新型土工材料,交通荷載、地震荷載、波浪荷載等振動荷載對輕質土力學特性的影響引發眾多關注. 本文闡述了配合比(輕質材料含量、固化劑摻量、含水率等)、應力狀態、振動頻率、干濕交替和凍融循環等因素對輕質土動力特性的影響規律,總結了輕質土動剪切模量和阻尼比計算模型. 研究發現水泥等固化劑的使用大幅提升了輕質土抵抗動荷載的能力,輕質土獨特的孔隙結構可顯著提高其隔振效果,干濕、凍融循環會導致輕質土動力學性能劣化,在實際工程中可通過設置防水層延長其服役壽命. 通過模型試驗和數值模擬驗證了輕質土在實際工程中具有良好的動力穩定性和耐久性. 目前輕質土動力特性研究尚處于起步階段,新型固廢輕質土動力學性能尚未深入研究,復雜環境因素與動荷載耦合作用下輕質土的作用機理、力學性能和本構模型研究,以及輕質土在不同工程背景下的設計施工方法研究仍需探索.

     

    Abstract: Lightweight soil is a novel technological material that boasts characteristics such as low density, high strength, thermal insulation, vibration isolation, environmental friendliness, and cost-effectiveness. These features make it highly suitable for a wide range of applications in geotechnical engineering, including roadbed backfill, soft foundation treatment, and tunnel load reduction. The influence of vibration loads resulting from transportation, earthquakes, waves, and other factors on the mechanical properties of lightweight soil has garnered considerable attention in recent research. This paper expounds on the influence of factors on the dynamic deformation characteristics and dynamic strength properties of lightweight soil. These factors include the mix ratio (such as the content of lightweight materials, dosage of curing agent, and moisture content), stress state, vibration frequency, dry–wet alternation effect, and freeze–thaw cycle. Additionally, we summarise the calculation model for the dynamic shear modulus and damping ratio of lightweight soil. The findings reveal that the incorporation of curing agents, such as cement and fly ash, substantially improves the resistance of lightweight soil to dynamic loads. Additionally, the distinctive pore structure of lightweight soil markedly enhances its vibration isolation effect. As dynamic strain increases, there is a nonlinear decrease in the dynamic modulus of lightweight soil while the damping ratio increases nonlinearly. Adjusting the content of lightweight materials and the dosage of curing agents can markedly improve the seismic reduction effect of lightweight soil, thus granting it greater dynamic stability. The coupling effects of dry–wet cycles, freeze–thaw cycles, and dynamic loads may lead to a degradation in the dynamic performance of lightweight soil. To extend its service life in practical engineering applications, the implementation of a waterproof layer is recommended. Model tests and numerical simulations substantiated the commendable dynamic stability and durability of lightweight soil in real-world engineering scenarios. Finally, following a comprehensive literature review, this paper identifies potential research directions. The study of dynamic characteristics in lightweight soil is still in its infancy, with the dynamic properties of novel solid waste lightweight soil remaining largely unexplored. Further exploration is required to fully understand the response mechanisms, mechanical properties, and constitutive models of lightweight soil under the combined effects of complex environmental factors and dynamic loads. Additionally, there is a need for continued research into the design and construction methods of lightweight soil across various engineering settings. In conclusion, this paper serves as a valuable reference for investigating the dynamics of lightweight soil and its extensive application in geotechnical engineering.

     

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