Rongyue Zheng’s research while affiliated with Ningbo University and other places

What is this page?


This page lists works of an author who doesn't have a ResearchGate profile or hasn't added the works to their profile yet. It is automatically generated from public (personal) data to further our legitimate goal of comprehensive and accurate scientific recordkeeping. If you are this author and want this page removed, please let us know.

Publications (3)


Experimental and Numerical Study on the Blast Performance of RC Shear Walls Under Uniaxial Compression
  • Article

June 2025

·

5 Reads

Wenzhe Luo

·

Rongyue Zheng

·

Wei Wang

·

Chenzhen Ye

This study addresses a critical gap in blast-resistant design by investigating the influence of axial compression ratio—a previously underexplored parameter—on the dynamic response of reinforced concrete (RC) shear walls under close-in explosions. While existing research has focused on conventional loading scenarios, the interplay between axial compression and blast effects remains poorly understood, despite its practical significance for structural safety in high-risk environments. Through a combined experimental and numerical approach, three half-scale RC shear walls were tested under blast loading, complemented by simulations analyzing key parameters (aspect ratio, axial compression ratio, boundary conditions, and charge weight). The results demonstrate that a moderate axial compression ratio (around 0.3) enhances structural stiffness and reduces displacement, effectively helping to control wall damage. Boundary conditions were also found to affect failure modes: walls with stiffer end restraints exhibited reduced deformation but more brittle cracking. Lower aspect ratios (i.e., wider walls) improved blast resistance, and peak displacement progressively increased with the charge weight. These findings provide actionable insights for optimizing RC shear wall design in blast-prone infrastructures, balancing ductility and load capacity. By linking theoretical analysis to practical design criteria, this study advances blast-resistant engineering solutions.


Section style.
Structural design drawing.
Material performance test.
Testing arrangement.
Sensor arrangement.

+15

Effect of Charge Eccentric Position on the Response of Reinforced Concrete Columns Under Blast Loading
  • Article
  • Full-text available

May 2025

·

1 Read

This study investigates the failure modes and damage extent of reinforced concrete (RC) columns under the combined action of eccentric blast loading and axial compressive loading through experimental tests and numerical simulations. Field blast tests were performed using half-scaled-down models for close-in airburst tests. The effects of charge mass, explosive position, and axial load on the failure modes and damage levels of RC columns under close-range blast loading were investigated. Eight experimental datasets of blast overpressure were obtained, and curve fitting was performed on these data to establish an empirical formula, thereby enhancing the predictive accuracy of blast effect assessment in practical engineering scenarios. The test results indicated that when the explosive position is closer to the column base, the structural failure mode becomes closer to shear failure. To further interpret the experimental data, a detailed finite element model of RC columns was developed. Numerical simulations of RC columns were conducted using the RHT model. The rationality of the model was validated through comparison with experimental data and the SDOF method, with dynamic response analyses performed on cross-sectional dimensions, the longitudinal reinforcement ratio, the scaled distance, the explosion location, and axial compression. An empirical formula was ultimately established to predict the maximum support rotation of RC columns. Studies have shown that when the explosive position is closer to the column base, the structural failure mode approaches shear failure, and axial compression significantly increases the propensity for shear failure.

Download

Analysis of Damage to Reinforced Concrete Beams Under Explosive Effects of Different Shapes, Equivalents, and Distances

January 2025

·

31 Reads

·

1 Citation

Yu Ma

·

Rongyue Zheng

·

Wei Wang

·

[...]

·

Sihao Shen

Optimizing structural resistance against blast loads critically depends on the effects of different explosive shapes, equivalents, and distances on the damage characteristics of reinforced concrete beams. This study bridges the knowledge gap in understanding how these factors influence damage mechanisms through close-range air blast experiments and LS-DYNA numerical simulations. Key damage characteristics, such as craters, overpressure, impulse, time-history displacement, and residual mid-span displacement of reinforced concrete beams, were thoroughly analyzed. Results show that cuboid-shaped explosives cause the greatest damage, with the most severe effects observed at shorter distances and higher charge weights, including an increase in mid-span displacement of up to 16.3 cm. The study highlights the pivotal role of explosive geometry, charge weight, and standoff distance in shock wave propagation and structural failure and proposes an optimized damage criterion to enhance predictive capabilities for reinforced concrete beams under blast loads.

Citations (1)


... The magnitude, pressure, and duration of an explosion significantly influence the severity of individual injuries. 3,4 Common fatal injuries mainly include head trauma, fullbody impact, and pulmonary damage. 5 To effectively shield the human body from the ravages of explosions, the ideal protective material must exhibit high rigidity, strength, and energy absorption capabilities to meet the exigencies of blast protection. ...

Reference:

Effect of water-repellent treatment on impact performance of sandwich composites after exposure to salt spray aging
Analysis of Damage to Reinforced Concrete Beams Under Explosive Effects of Different Shapes, Equivalents, and Distances