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首页> 外文期刊>Steel Research International >Influence of Strain Rate, Temperature, Plastic Strain, and Microstructure on the Strain Rate Sensitivity of Automotive Sheet Steels
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Influence of Strain Rate, Temperature, Plastic Strain, and Microstructure on the Strain Rate Sensitivity of Automotive Sheet Steels

机译:应变率,温度,塑性应变和组织对汽车钢板应变率敏感性的影响

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This work identifies the influence of strain rate, temperature, plastic strain, and microstructure on the strain rate sensitivity of automotive sheet steel grades in crash conditions. The strain rate sensitivity m has been determined by means of dynamic tensile tests in the strain rate range 10~(-3)-200s~(-1) and in the temperature range 233-373 K. The dynamic flow curves have been tested by means of servohydraulic tensile testing. The strain rate sensitivity decreases with increasing plastic strain due to a gradual exhausting of work hardening potential combined with adiabatic softening effects. The strain rate sensitivity is improved with decreasing temperature and increasing strain rate, according to the thermally activated deformation mechanism. The m-value is reduced with increasing strength level, this decrease being most pronounced for steels with a yield strength below 400 MPa. Solid solution alloying with manganese, silicon, and especially phosphorous elements lowers the strain rate sensitivity significantly. Second phase hardening with bainite and martensite as the second constituent in a ferritic matrix reduces the strain rate sensitivity of automotive sheet steels. A statistical modeling is proposed to correlate the m-value with the corresponding quasistatic tensile flow stress.
机译:这项工作确定了应变率,温度,塑性应变和微观结构对汽车钢板在碰撞条件下的应变率敏感性的影响。应变率灵敏度m是通过动态拉伸试验确定的,其应变率范围为10〜(-3)-200s〜(-1),温度范围为233-373K。伺服液压拉伸试验的手段。应变速率敏感性随着塑性应变的增加而降低,这是由于逐渐消耗了工作硬化电位并伴有绝热软化效果。根据热激活变形机制,随着温度的降低和应变率的提高,应变率灵敏度得以提高。 m值随强度水平的增加而降低,这种降低在屈服强度低于400 MPa的钢中最为明显。与锰,硅,尤其是磷元素的固溶合金化显着降低了应变速率敏感性。以贝氏体和马氏体为第二成分的铁素体基体的第二相硬化降低了汽车钢板的应变率敏感性。提出了统计模型,以将m值与相应的准静态拉伸流应力相关联。

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