首页> 外文会议>International Conference on Surface Finishing Technology and Surface Engineering(ICSFT2006); 20060925-27; Dalian(CN) >The Academic Research of Continuum Water Jet Core Section Critical Shot Peening Pressure
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The Academic Research of Continuum Water Jet Core Section Critical Shot Peening Pressure

机译:连续水射流核心段临界喷丸强化压力的研究

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Continuum water jet critical shot peening pressure is the min pressure of the shotted materials when its surface layer produces plastic deformation. When the shot peening pressure is bigger than the critical value, materials surface layer will produce plastic deformation, and it will forms a surface strengthening layer of certain thickness. So it's very important to test critical shot peening pressure when it comes to control shot peening strength effectively. The article takes the nozzle whose outlet is taper constringency with column section as a example, according to the velocity of jet, impact radius effected on target surface by jet and dynamic water pressure effected on target surface by element flow in jet, establishing the dynamic water pressure distributing model effected on target surface by continuum water jet works at core section shot peening. According to the resolution of Boussinwsq, the analysis shows the changed rule that stress effected on target symmetry axis by load as non-dimension depth and non-dimension radius. According to the Mises yield rule, the article raises the calculating method of critical shot peening pressure. Take 45 steel as example, when the inlet total pressure of nozzle is bigger than 39 MPa, the impact effect of water jet to the target surface will make target body produce plastic deformation.
机译:连续水喷射临界喷丸压力是喷丸材料表层产生塑性变形时的最小压力。当喷丸压力大于临界值时,材料表层会产生塑性变形,并会形成一定厚度的表面强化层。因此,在有效控制喷丸强度时,测试临界喷丸压力非常重要。以喷嘴的出口为锥形截面的喷嘴为例,根据射流的速度,射流对靶面的冲击半径和射流中元素流对靶面的动水压力,建立动水。连续水射流在核心段喷丸处理中作用在目标表面上的压力分布模型。根据Boussinwsq的分辨率,分析显示了应力在载荷作用下作用于目标对称轴上的变化规律,即无尺寸深度和无尺寸半径。根据米塞斯屈服准则,提出了临界喷丸压力的计算方法。以45钢为例,当喷嘴的入口总压力大于39 MPa时,水射流对目标表面的冲击作用会使目标物体产生塑性变形。

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