膨胀压力对水力膨胀管-管板连接壁减薄和接触压力的影响:数值分析

Dinu ThomasThekkuden, Abdel-Harnid I. Mourad, A. Bouzid, T. Darabseh
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引用次数: 2

摘要

管板接头的设计对换热器的性能起着至关重要的作用。在膨胀过程中,施加在管内表面的压力使管向外径向变形。当管与管板接触时,管的进一步塑性变形会在界面处产生接触压力。因此,最佳膨胀压力在管-管板界面处充分产生足够的接触压力。在实际应用中,通常使用壁厚减薄百分数来估计适当的膨胀量。本文重点研究了在不同膨胀压力范围内壁厚减薄百分数、内管表面径向位移、接触压力和理论抽拔力。结果表明,当膨胀压力低于管的屈服应力时,管与管板之间的间隙不能完全闭合。在恢复膨胀压力时,由于鲍辛格效应,径向位移和接触压力有明显的回弹现象。最大径向位移和接触压力随膨胀压力的增大而增大。所有高于管屈服应力的膨胀压力都足以关闭管板连接的初始间隙。当膨胀压力高于管板屈服应力时,观察到径向位移突然增加。膨胀压力为240 ~ 340 MPa时,管壁减薄率为1.15% ~ 2.97%。由于拉出强度和接触压力是相互关联的,因此膨胀压力越大,拉出强度越大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of expansion pressure on wall thinning and contact pressure for hydraulically expanded tube-to-tubesheet joints: Numerical analysis
The design of the tube-to-tubesheet joints is very critical to the functioning of the heat exchangers. In an expansion process, the pressure that is applied on the inner tube surface causes the tube to deform radially outward. Further plastic deformation of the tube, while tube in contact with the tubesheet, creates a contact pressure at the interface. Therefore, an optimum expansion pressure adequately develops sufficient contact pressure at the tube-to-tubesheet interface. Wall thinning percentage is generally used in practice to estimate the right amount of expansion. This paper focusses on the wall thickness reduction expressed in percentage, radial displacement of the inner tube surface, contact pressure and theoretical pull-out force for a various expansion pressure range. Results show that an expansion pressure lower than the yield stress of the tube does not fully close the gap between the tube and tubesheet. There is an evident spring back of radial displacement and contact pressure due to bauschinger effect upon retrieving the expansion pressure. However, the maximum radial displacement and contact pressure increase as expansion pressure increases. All the expansion pressures above the tube yield stress were sufficient to close the initial gap of the tube-to-tubesheet joint. A sudden increase in the radial displacement was observed for expansion pressures above tubesheet yield stress. Expansion pressure from 240 MPa to 340 MPa resulted in wall thinning percentage of 1.15% to 2.97%. Since the pullout strength and contact pressure are interrelated, high expansion pressure resulted in greater pull-out strength.
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