Lin Hong, Wang Hong, Zhang Qianyun, Ma Yong, Zheng Weitao
College of Intelligent Sports Engineering, Wuhan Sports University, Wuhan, 430079, China.
Research Center of Sports Equipment Engineering Technology of Hubei Province, Wuhan Sports University, Wuhan, 430079, China.
Sci Rep. 2025 Aug 5;15(1):28543. doi: 10.1038/s41598-025-13600-4.
The study employs the shearstress transport (SST) turbulence model within a computational fluid dynamics (CFD) framework to investigate the influence of skijumping suit surface roughness on aerodynamic performance during the in-run phase. A three-dimensional multi-body model of the athlete-ski system is constructed to access variations in aerodynamic drag, moments, and flowfield characteristics under different surface roughness conditions. The results show that surface roughness has a significant effect on pressure drag, influencing both the total aerodynamic drag and the generation of pitching and rolling moments. While a surface roughness of 17.036[Formula: see text] yields the lowest total drag, it doesn't correspond to minimal moments, indicating a trade-off between drag reduction and aerodynamic stability. Flow field analysis reveals that moderate surface roughness promotes earlier boundary-layer transition and delays flow separation, thereby enhancing aerodynamic efficiency. These findings highlight the importance of balancing drag minimization and stability control in suit design. The study provides theoretical basis for material selection and performance-driven customization of ski-jumping suits, with implications for the development of optimized apparel for elite athletes.
该研究在计算流体动力学(CFD)框架内采用剪切应力输运(SST)湍流模型,以研究跳台滑雪服表面粗糙度对助滑阶段空气动力学性能的影响。构建了运动员 - 滑雪系统的三维多体模型,以获取不同表面粗糙度条件下气动阻力、力矩和流场特性的变化。结果表明,表面粗糙度对压力阻力有显著影响,进而影响总气动阻力以及俯仰和滚转力矩的产生。虽然表面粗糙度为17.036[公式:见原文]时总阻力最低,但并不对应最小力矩,这表明在减阻与空气动力学稳定性之间存在权衡。流场分析表明,适度的表面粗糙度会促进边界层更早过渡并延迟流动分离,从而提高空气动力学效率。这些发现凸显了在服装设计中平衡减阻与稳定性控制的重要性。该研究为跳台滑雪服的材料选择和性能驱动定制提供了理论依据,对为精英运动员开发优化服装具有启示意义。