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Verified CAS / Academic Author2 Decoded Studies

Prof. HE Yuting

School of Aeronautical Engineering, Air Force Engineering University, Xi'an 710038, China

Research Publications & English Decoded Briefs

Showing 2 publications
Surface Technology (表面技术)2026DOI: 10.16490/j.cnki.issn.1001-3660.2026.12.003

Accelerated Corrosion of Aluminum Alloy and Determination Method of Equivalent Accelerated Relationship

A double-bridge connection method is proposed for rapid determination of the equivalent accelerated relationship between laboratory accelerated corrosion environment spectrum and actual atmospheric exposure for aviation aluminum alloys. The method employs corrosion electricity and corrosion weight loss as equivalent parameters, enabling calculation of the equivalent acceleration relationship without long-term outdoor exposure test pieces, using atmospheric environment monitoring data, laboratory corrosion weight loss tests, and short-term atmospheric exposure results. For ZL114A aluminum alloy, 10-year atmospheric monitoring data from a tropical marine environment were processed to compile climatic and chemical environment spectra. A laboratory accelerated corrosion environment spectrum was prepared via weighted concentration of environmental factors. Atmospheric corrosion monitoring (ACM) and electrochemical workstation measurements determined corrosion current and conversion coefficients under varying temperature, humidity, and acid solution conditions. The cumulative corrosion electricity for 10-year island atmospheric exposure was 3,050,339.15 C. Laboratory weight loss tests yielded the average corrosion weight loss rate per unit area. The equivalent acceleration relationship for ZL114A alloy under the compiled spectrum was 74 h/a. Verification via SEM, CT scanning, and fatigue testing compared surface damage morphology, pit dimensions, fatigue life, and fracture morphology of specimens exposed to atmospheric conditions for 6 months, 1 year, and laboratory accelerated corrosion for 72 h. Results confirm identical corrosion damage modes and severity consistent with the derived equivalent acceleration relationship. The 72 h accelerated specimens exhibited damage between 6-month and 1-year atmospheric exposures, closer to 1-year exposure, validating the method's feasibility.

Int. Journal of Mining Science and Technology (采矿与安全工程)2025DOI: 10.1016/j.ijmst.2025.08.014

An experimental and theoretical study on the influence of stress gradients on the propagation of hydraulic fractures

Hydraulic fracture growth is significantly influenced by the minimum horizontal principal stress gradient and the fracturing fluid pressure gradient. However, these gradients are often neglected in scaled physical modeling experiments due to difficulties in reproducing them. This study uses centrifugal hypergravity to simulate both gradients and investigate their effects on fracture propagation. Artificial mortar specimens (φ200 mm × 400 mm) are fractured under 1g (normal gravity), 50g, and 100g. Results show that compared to 1g, fractures under 50g and 100g exhibit increasingly uneven propagation, with higher g-values leading to greater asymmetry. To interpret this, a theoretical analysis based on fracture mechanics is conducted. When the fluid pressure gradient exceeds the stress gradient, a positive net gradient is generated, increasing net pressure at the lower fracture tip. This raises the stress intensity factor at the lower tip, promoting downward growth. As g increases, the disparity becomes more significant, resulting in greater fracture deviation. In conclusion, this study, for the first time, has verified and explained that the net gradient can change the propagation of hydraulic fractures, providing important guidance for wellbore placement under stress gradients.