Thermo-consolidation of layered soils under finite strain: performance evalution of thermal elastic-viscoplastic constitutive models

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Ding-Bao Song , Wen-Bo Chen , Zhen-Yu Yin , Jian-Hua Yin
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Abstract

A novel framework for nonlinear thermal elastic-viscoplastic (TEVP) constitutive relationships was proposed in this study, incorporating three distinct thermoplasticity mechanisms. These four TEVP formulations, combined with an existing TEVP constitutive equation presented in the companion paper, were integrated into a coupled consolidation and heat transfer (CHT) numerical model. The CHT model accounts for large strain, soil self-weight, creep strains, thermal-induced strains, the relative velocity of fluid and solid phases, varying hydraulic conductivity and compressibility during consolidation process, time-dependent loading, and heat transfer, including thermal conduction, thermo-mechanical dispersion, and advection. The performance of CHT model, incorporating different TEVP constitutive equations, was evaluated through comparing the simulation results with measurements from laboratory oedometer tests. Simulation results, including settlement, excess pore pressure and temperature profiles, showed good agreement with the experimental data. All four TEVP constitutive relationships produced identical results for the consolidation behavior of soil that in the oedometer tests. The TEVP constitutive equations may not have a significant effect on the heat transfer in soil layers because of the identical performance on simulating soil compression. The CHT model, incorporating the four TEVP constitutive equations, was then used to investigate the long-term consolidation and heat transfer behavior of a four layer soil stratum under seasonally cyclic thermal loading in a field test, with excellent agreement observed between simulated results and measured data.
层状土在有限应变下的热固结:热弹粘塑性本构模型的性能评价
本研究提出了一种新的非线性热弹粘塑性(TEVP)本构关系框架,其中包含三种不同的热塑性机制。这四种TEVP公式,结合现有的TEVP本构方程,被整合到一个耦合固结和传热(CHT)数值模型中。CHT模型考虑了大应变、土体自重、蠕变应变、热致应变、流固两相相对速度、固结过程中水力导率和压缩性的变化、随时间变化的加载以及传热,包括热传导、热-机械分散和平流。结合不同TEVP本构方程的CHT模型的性能,通过将模拟结果与实验室测温仪测试结果进行比较来评估。模拟结果与实验数据吻合较好,包括沉降、超孔隙压力和温度分布。所有四种TEVP本构关系对土的固结行为产生了相同的结果。由于TEVP本构方程在模拟土壤压缩时具有相同的性能,因此可能对土层内的换热没有显著影响。结合4个TEVP本构方程的CHT模型,通过现场试验研究了季节性循环热负荷下四层土层的长期固结和传热行为,模拟结果与实测数据吻合良好。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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