Sumário
Latin American Journal of Solids and Structures, Volume: 23, Número: 10, Publicado: 2026Latin American Journal of Solids and Structures, Volume: 23, Número: 10, Publicado: 2026
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ORIGINAL ARTICLE Adaptive enhanced proportional topology optimization algorithm and its engineering application Wang, Jiao Resumo em Inglês: Abstract This paper proposes an adaptive enhanced proportional topology optimization algorithm (AEPTO) to address the problems of poor convergence, multiple grayscale units, and unclear topology structure in handling stress constrained minimum volume problems using the proportional topology optimization algorithm (PTO). This algorithm systematically improves the PTO algorithm in terms of interpolation method, filtering processing, density update, and convergence control by introducing a new material interpolation model based on logistic function, Cauchy type density filter, arctangent density update strategy, and dynamic adaptive historical balance coefficient. Through numerical experiments on topology optimization of three typical structures, namely cantilever beams, L-shaped beams, and MBB beams, under stress constraints, it is shown that the AEPTO algorithm significantly reduces the volume fraction of the structure, improves convergence speed, reduces the number of gray units, and the optimized topology structure is clearer and the material distribution is more reasonable. It has good engineering applicability and optimization efficiency, providing an effective gradient free optimization method for lightweight structural design. |
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ORIGINAL ARTICLE Shape Optimization of a Tram Front End for Passive Safety in Tram–Pedestrian Collisions Park, Jonghwan Cho, Minseong Lee, Jaesun Jang, Hong-Lae Resumo em Inglês: Abstract This study presents a standards-oriented shape-optimization framework for modifying the front-end geometry of an existing tram. A finite element model was developed for the CEN/TR 17420 Type A scenario at 20 km/h using Hybrid III and VIVA+ AM50 pedestrian models. Although the baseline geometry satisfied the HIC15 requirement, lateral deflection at the 50% offset was only 582.62 mm for Hybrid III and 321.58 mm for VIVA+. Six front-end shape variables were parameterized by mesh morphing and optimized using the Global Response Surface Method (GRSM), with lateral deflection maximized subject to HIC15 and design-variable constraints. One selected design from each of the six optimization cases satisfied both Type A collision-response criteria. Across these designs, lateral deflection ranged from 895.25 to 1,284.46 mm, while HIC15 ranged from 7.36 to 711.49. The results show that mesh morphing and GRSM can support retrofit-oriented tram-front design by quantifying the trade-off among lateral deflection, HIC15, and the allowable extent of front-end modification. |
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ORIGINAL ARTICLE Mechanical Properties of Random Honeycomb Material under Compression-shear Combined Loading Gui, Yiyao Xiao, Yaozhi Hu, Feng Li, Ziyuan Chai, Chengpeng Luo, Geng Chen, Yisong Resumo em Inglês: Abstract To further analyze the mechanical properties of random porous materials under combined loading, this paper constructs a series of random honeycomb models based on Voronoi diagrams and 3D printing. A compression-shear combined loading fixture was designed. Experiments on random honeycomb materials were conducted through the universal testing machine and the proposed fixture. The results show that reducing the cell size decreases both normal and shear stresses when relative density is consistent, while increasing the loading angle increases shear stress and decreases normal stress. Furthermore, to explore the dynamic mechanical properties, the finite element model is established. The results show that random honeycomb materials exhibit three deformation modes: random mode, transitional mode, and impact mode. Then, the sensitivity analysis of the loading angles and velocities on the yield stress is carried out. The normal stress is mainly affected by the loading velocities, and both the loading angles and velocities have significant effect on the shear stress. Finally, a phenomenological yielding criterion is established. |
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ORIGINAL ARTICLE Numerical Evaluation of Dynamic Constitutive Models and Modified Analytical Modeling for High-Velocity Penetration of Ultra-High-Performance Concrete (UHPC) Wang, Yalong Li, Wenbin Yin, Guixiang Cheng, Zhongqiang Li, Yiming Zhang, Kun Ma, Ronghua Resumo em Inglês: Abstract This study evaluates and improves models for predicting the high-velocity penetration response of ultra-high-performance concrete (UHPC) used in protective structures. The research scope involves systematically comparing three common concrete constitutive models: Holmquist–Johnson–Cook (HJC), Riedel–Hiermaier–Thoma (RHT), and Karagozian & Case (K&C). First, the models' theoretical differences regarding strain-rate effects and tension-compression asymmetry were analyzed. Next, their material parameters were calibrated using fundamental mechanical tests and literature data. An LS-DYNA finite element model was then established and validated against ballistic experiments (633-959 m/s) by evaluating penetration depth, surface crater morphology, and internal damage evolution. The results indicate that the HJC model is the optimal choice for high-velocity penetration simulations. It yielded the lowest average depth error (-11.89%), and its localized damage pattern best matched UHPC's high-strength and high-toughness traits. In contrast, the RHT model caused premature matrix softening under high hydrostatic pressure, leading to a -21.76% error. The K&C model overpredicted surface funnel-shaped crater damage, with its penetration depth error increasing to -26.34% at high velocities. Furthermore, extended simulations at 800–1500 m/s revealed that the traditional Forrestal analytical model deviates significantly in the ultra-high-velocity regime. To solve this, a modified analytical model tailored for UHPC was developed. By accounting for dynamic yield and high-pressure shear rheological softening mechanisms, the new model introduces a dynamic strengthening coefficient and a rheological softening factor. Ballistic validation demonstrates that, within the validated range, the theoretical predictions of this modified model match the experimental data well, with a maximum relative error of 14.54%. Overall, this research provides reliable numerical model selection and theoretical support for designing and evaluating UHPC protective structures against kinetic energy projectile impacts. |
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ORIGINAL ARTICLE A computational model for the mass and geometric dispersion of target-derived debris generated by rod penetration of finite-thickness steel plates Qi, Xiaotong Ji, Yangziyi Li, Xiangdong Zhou, Lanwei Resumo em Inglês: Abstract A computational model is developed to estimate the mass and geometric dispersion of target-plate-sourced debris from rod penetration of finite-thickness steel plates. Perforation, material-separation, and bulge regions represent the rear surface. Their boundaries are calculated from penetration-state parameters, cavity-expansion theory, and the Ravid–Bodner spherical-cap formulation, with a correction for oblique penetration. Debris mass is obtained from an equivalent source volume and effective participating thickness. The rear-surface normal, exit direction, and source-region expansion define the central direction and equivalent dispersion half-angles. Validation uses boundary data from eight shots, recovered masses from three shots, and first-witness perforations from three shots. Mean relative errors for the boundary areas are 11.42%, 17.22%, and 9.13%, and the mass error is 9.41%. Predicted ranges contain over 97% of the perforation centers. The model captures radial extent under normal penetration and transverse extent under oblique penetration, but overpredicts incidence-plane extent. |
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ORIGINAL ARTICLE Damage Effects of Adjacent Cabin Structures Subjected to Internal Explosions in an Underwater Thin-Walled Steel Box Ma, Yiming Xie, Xingbo Ma, Huayuan Yang, Guili Li, Xinghua Zhong, Mingshou Resumo em Inglês: Abstract This study examines damage effects of internal explosions in an underwater thin-walled steel box on neighboring cabins, integrating experiments and numerical modeling of a three-cabin steel box. It analyzes propagation, dynamic response, and damage effects of explosion loads from the central cabin on adjacent ones. Results show adjacent cabin pressure histories display multiple peaks and extended positive phases, from combined shock wave transmission through the internal bulkhead and reflected waves in the adjacent cabin. Explosion bubble expansion and contraction are largely confined to the central cabin, or escape through ruptured regions. Without perforation in the separating plate, the bubble typically does not penetrate adjacent cabins. Under internal explosion loading, adjacent cabin bulkhead deformation and fracture are primarily induced by transmitted bubble expansion effects. With increasing charge mass, adjacent cabin damage evolves from plastic deformation to edge cracking and shear failure; increased wall thickness reduces damage extent: the 1-mm box disintegrates at 100 g, while the 3-mm box only cracks at 200 g. |
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ORIGINAL ARTICLE Mechanical Properties of Silicon Carbide Ceramic and Its Penetration Resistance to Tungsten Alloy Fragments Gao, Dacheng Yin, Guixiang Zhang, Kebin Li, Yiming Li, Wenbin Resumo em Inglês: Abstract Silicon carbide (SiC) ceramics have been widely used in lightweight armor protection due to their combination of high compressive strength, high hardness, and low density. The mechanical properties and penetration resistance of SiC ceramics are of significant importance for armor protection design. To investigate the mechanical response and fragment penetration resistance of SiC ceramics, this study systematically carried out plate impact tests, dynamic and quasi-static uniaxial compression tests, as well as ballistic penetration tests. Based on the experimental data, the parameters of the Johnson-Holmquist II (JH-2) constitutive model for the SiC ceramic were calibrated. Subsequently, a numerical simulation model of tungsten alloy fragment penetration into SiC ceramic composite targets was established. The model was validated using tungsten alloy fragment penetration tests on SiC/6061-T6 composite targets, and the penetration characteristics of fragments into SiC/6061-T6 composite targets were systematically compared with those into monolithic 6061-T6 aluminum alloy targets. The error between the experimental and simulation results of the composite target penetration tests is less than 9%, verifying the accuracy of the calibrated JH-2 model parameters. For monolithic 6061-T6 aluminum alloy targets, the penetration depth of spherical fragments is significantly greater than that of cubic and cylindrical fragments. In contrast, for the ceramic composite targets, the residual penetration depth of spherical fragments is markedly lower, indicating that SiC ceramic exhibits substantially better resistance to spherical fragments than to the other two fragment shapes. This study can provide a theoretical basis and data support for the design and performance evaluation of lightweight armor protection. |
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