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Impact of Intensity of Residual Stress Field Upon Re-Yielding and Re-Autofrettage of an Autofrettaged Thick Cylinder

机译:残余应力场强度的影响在重新产生和再自动复制圆柱体时

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Re-autofrettage has been identified as a significant, cost-effective method to achieve higher re-yield pressure (RYP) and/or weight reduction in large caliber gun tubes. For a given overstrain, residual stress profiles for hydraulic and for swage autofrettage may differ significantly in their intensity. The simplest representation of this 'intensity' effect is the magnitude of the bending moment 'locked in' via the residual hoop stress. Hill's analytical, plane strain, Von Mises, analysis predicts a larger 'locked-in' moment than does the equivalent open-end condition. By assuming a range of stress-field intensities (f) scaleing from 1.0 to 1.4 times that produced by open-end hydraulic autofrettage, it was possible to assess re-yield behavior following initial autofrettage via a generic numerical study In cases where Bauschinger effect is absent, re-yield initiates at the original elastic plastic interface. This includes the ideal Hill distribution. When Bauschinger effect is present, re-yield for f ≤ 1.1 initiates at the bore and after further pressurization at the original elastic plastic interface within two zones. For f ≥ 1.2 the reverse is the case, with initial yield at the original elastic plastic interface and subsequently at the bore. RYP increases with increasing f up to f=1.175 and then decreases significantly. This loss of RYP may be mitigated by hydraulic re-autofrettage. At f = 1.0 re-autofrettage increases RYP by 4%. At f = 1.4 RYP is increased by 19%. There are modest increases in safe maximum pressure as a result of re-autofrettage. RYP closely approaching re-autofrettage pressure is achievable for f ≥ 1.3. Within this range, re-autofrettage offers a significant benefit. Re-autofrettage also produces beneficial effects via increased bore hoop compressive stress, this increase varying from 20% for f = 1 to zero for f = 1.4. Such increased compression will benefit fatigue lifetime for fatigue cracks initiating at the bore. Conversely, tensile OD hoop stress increases, with increasing f, by a maximum of 6%.
机译:Re-Autofrettage已被确定为显着,经济有效的方法,以实现更高的重新屈服压(ryp)和/或大口径枪管的重量减少。对于给定的过度监控,用于液压和SWAGE自动调节的残余应力型材可能在其强度下显着差异。这种“强度”效果的最简单表示是通过残余箍应力旋转弯矩“锁定”的大小。 Hill的分析,平面菌株,vonmes,分析预测了比等价开口状况更大的“锁定”时刻。通过假设由开口液压自动分流产生的1.0至1.4倍的压力场强度(f),可以通过通用数值研究在Bauschinger效应的情况下,通过通用数值研究来评估重新产生行为缺席,重新收益在原始弹性塑料界面发起。这包括理想的山丘分布。当存在Bauschinger效应时,F≤1.1的重新产量在孔口和在两个区域内的原始弹性塑料界面处进一步加压后引发。对于F≥1.2,案例是如此,原始弹性塑料界面的初始产量随后在孔口。 RYP随着F = 1.175的增加而增加,然后显着降低。可以通过液压重新分流来减轻这种RP的这种损失。 F = 1.0重新自动提升率将ryp增加4%。在f = 1.4 ryp上增加了19%。由于重新自动制度,安全的最大压力存在适度增加。对于F≥1.3,可实现紧密接近重新自动压缩压力的抗振性。在此范围内,Re-Autofrettage提供了一个显着的好处。重新自动调节还通过增加的孔箍压缩应力产生有益效果,这种增加从F = 1.4的F = 1至零的20%变化。这种增加的压缩将使疲劳寿命有益于在孔口启动的疲劳裂缝。相反,拉伸OD环箍应力增加,随着F的增加,最大值为6%。

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