选择性加热下膨胀和压制的工艺模式

V. Chudin
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引用次数: 0

摘要

观察了粘塑性条件下加热毛坯的扩展和收缩过程。得到了加工过程中对毛坯材料的损伤、受力计算的比值。在特殊工程的分支,以钛和铝为基础的高强度合金被使用。在特殊工程的分支中,使用以钛和铝为基础的高强度合金。这些合金具有各向异性的力学性能。这些合金的加工很困难。因此,压力处理操作是在对变形区加热的情况下进行的。变形区的材料表现出粘性。材料的变形硬化和软化(应力松弛)同时发生。变形速率越低,软化程度越大。在这方面,找到了一个表示这些过程的本构方程。硬化和软化因素为降低压力处理操作的功率模式和提高零件成形程度创造了条件。在膨胀和紧迫发展阶段,借助分析相关性进行应力松弛计算是必要的。计算出的比率被记录为这些操作速度的函数。在这种情况下,考虑到指定的变形(成形程度的变化),并根据轴承合金各向异性的速度和机械特性进行调整。计算出的比值是在平坦电压方案下得到的,对应于膨胀和挤压。采用各向异性材料的应力平衡方程和屈服条件。该方程的联合解和屈服条件决定了在零件材料中产生的子午和周向应力的值。应力的值可以用来计算作用的力。结果表明,膨胀和挤压速度以及力学性能的各向异性影响着“绿体”材料的损伤。在能量和变形强度准则的基础上得到了损伤计算的依赖关系。这些依赖关系允许预测产品的质量。各向异性对膨胀和挤压工艺模式也有影响。随着各向异性系数的增大,作业应力和作用力减小。对各向异性钛合金VT14在875℃下膨胀过程中的应力、力和材料损伤进行了计算。
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Technological modes of expansion and pressing under selective heating
The processes of spread and reduction of a heated rough piece under visco-plasticity conditions are viewed. The ratio for force stress calculating in operations, damage to the material of the rough pieces is obtained. In the branches of special en-gineering, high-strength alloys based on titanium and aluminum are used. In the branches of special engineering, high-strength alloys based on titanium and aluminum are used. These alloys have mechanical properties anisotropy. Processing of these alloys is difficult. For this reason, the pressure treatment operation is performed with heating of the deformation zone. The material in the deformation zone exhibits viscous properties. Deformation hardening and softening (stress relaxa-tion) of the material take place simultaneously. Besides, the lower the deformation rate, the greater the softening. In this regard, a constitutive equation representing these processes is found. The factor of hardening and softening creates condi-tions for reducing the power mode of pressure treatment operations and increasing the degree of primary part forming. Stress relaxation calculation with the help of analytical dependencies is necessary at the stage of expansion and pressing development. The calculated ratios are recorded as a function of the speed of these operations. In this case, the specified deformation (the change in the degree of forming) is taken into account, adjusted depending on the speed and mechanical characteristics of the bearing alloy anisotropy. The calculated ratios are obtained under conditions of a flat voltage scheme, which corresponds to expansion and pressing. Stress equilibrium equation and yield condition of anisotropic material are used. The joint solutions of this equation and yield conditions determine values of the meridional and circumferential stress-es arising in the piece part material. The values of the stresses allow calculating the forces of operations. It is shown that the speed of expansion and pressing and mechanical properties anisotropy affect the damage to the material of the «green body». Dependences for the calculation of damage are obtained on the basis of energy and deformation strength criteria. These dependencies allow predicting the quality of products. It is also shown that anisotropy affects the technological modes of expansion and pressing. As the anisotropy coefficient increases, the stresses and forces of operations decrease. Calculations of stresses, forces and material damage in the process of expansion of anisotropic titanium alloy VT14 at 875 ℃ are made.
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