YIN Shijie, HE Jiuqiang, LIU Wei, et al. Hydroforming Behavior of GH3044 Thin-Walled Eccentric Nozzle[J]. Aeronautical Manufacturing Technology, 2026, 69(3).
薄壁偏心喷管两端的直段通常采用拼焊结构,严重影响飞行器的装配精度与服役性能。本文采用锥管坯整体液压成形偏心喷管,该方法与直管坯液压成形相比可大幅降低壁厚减薄。通过数值模拟与试验研究了GH3044 偏心喷管在不同端部约束条件下的应力特性、补料行为、回弹规律以及壁厚分布。结果表明,端部约束条件显著影响锥壳的应力状态和屈服顺序。相较于两端固定约束方式,仅固定小端的管坯在内压作用下可产生6 mm 的自补料量,轴向壁厚的平均减薄率由6.2% 降低至4.2%,且管件在偏心侧壁厚减薄更为明显。此外,小端固定时管件整体的回弹较小,提高整形内压可降低管件回弹。最终在小端固定及两端固定的条件下均成形出了两端直段内径偏差均满足设计要求的GH3044 偏心喷管,为高温合金喷管的室温精密整体成形提供了理论基础与技术支撑。
Abstract
The thin-walled eccentric nozzle usually adopts a welded structure for the straight sections at both ends
which seriously affects the assembly accuracy and in-service performance of aircraft. This study proposes a new method of integral hydroforming with a conical tube blank
which significantly reduces the wall thickness reduction compared to the hydroforming process with straight tube blanks. The stress characteristics
feeding behavior
springback characteristics
and wall thickness distribution of the GH3044 eccentric nozzle were studied under different end constraint conditions through numerical simulation and experiments. The results show that the end constraint conditions have a significant impact on the stress state and yield sequence of the conical shell. Compared with the constraint method of both ends fixed
the tube blanks with only the small end fixed can obtain a self-feeding amount of 6 mm under the action of internal pressure
and the average axial wall thickness reduction rate of the nozzle is reduced from 6.2% to 4.2%
and the thickness reduction is more pronounced on the eccentric sidewalls of the tubular components. Furthermore
the overall springback of tubular components with the small end fixed is relatively small
and increasing the calibration pressure can reduce springback. Finally
the GH3044 eccentric nozzles with the inner diameter deviations of the straight sections at both ends meeting the design requirements were successfully formed under two conditions: Small end fixed and both ends fixed. This provides a theoretical basis and technical support for the precision integral net-shape forming of superalloy nozzles at room temperature.