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Software LDEAS2.0 on large deformation mechanical analysis for deep soft rock engineering and its engineering application |
| CHEN Xin1, ZHU Yi1, ZHOU Yongfa2, DU Jingna3, JIANG Bei1, HE Manchao1* |
(1. State Key Laboratory of Tunnel Engineering, China University of Mining and Technology(Beijing), Beijing 100083, China;
2. Element Computing Technology Co., Ltd., Tianjin 300450, China; 3. School of Urban Railway Engineering, Shaanxi Railway Institute, Weinan, Shaanxi 714000, China) |
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Abstract The Large Deformation Engineering Analysis System (LDEAS) is a specialized finite element software designed for analyzing large deformation mechanics, supporting design, and evaluating stability in deep soft rock engineering. The first version of the software, LDEAS 1.0, was developed in 2007, and its main features include: (1) the capability to perform both polar and additive decomposition analyses for large deformations, as well as the ability to solve three types of nonlinear problems—geometric, physical, and contact nonlinearities; (2) the inclusion of rock mass, joint, and support structure elements, enabling calculations for initial in-situ stresses and dynamic simulations for construction and support; (3) the development of the computation program via the Finite Element Program Generator (FEPG) based on low-code programming technology. To address the limitations of the first version and enhance the software, development of the second version, LDEAS 2.0, commenced in 2020. The main improvements and upgrades encompass three key aspects: (1) the introduction of the NPR bolt/anchor element and an implicit damping iteration algorithm for the renewal of elastoplastic stresses, enriching the variety of support structure elements and improving convergence and iteration speed for elastoplastic calculations; (2) an upgrade of the source code for the finite element computing program from Fortran to C language, enhancing fluency, efficiency, and readability; (3) the development of a new integrated interactive user interface and the inclusion of parallel computing, significantly improving user experience and the efficiency of large-scale computations. Test examples and typical engineering cases have validated the correctness, reliability, and practicality of LDEAS 2.0. The upgrades and development of both versions of LDEAS facilitate comparative studies of two major finite deformation theories and investigations of the rock-bolt coupling effects of NPR bolts/cables, providing reliable software for research on deep rock mechanics issues in China, which holds significant theoretical and engineering application value.
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