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首页> 外文期刊>The Journal of Strain Analysis for Engineering Design >Dynamic behaviour of high-strength sheet steel in dynamic tension: experimental and numerical analyses
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Dynamic behaviour of high-strength sheet steel in dynamic tension: experimental and numerical analyses

机译:动态试验中高强度钢板的动态行为:实验和数值分析

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摘要

This paper presents the behaviour of high-strength steel TRIP 700, frequently applied in automotive industries. This material is used to design some car components owing to high stress levels induced by phase transformation. Generally, a pre-plastic deformation is induced in the sheet steel at a low strain rate to transform austenite into martensite. The next step is to design for example a crash box, as described previously by Durrenberger et al. [1], in order to increase the level of energy absorption. The problem with testing this material is the specimen attachment during the tension test, notably at intermediate and high strain rates. A special problem appears when this material is used for crash applications, namely the plastic behaviour at intermediate strain rates 50 s ~(-1) ≤ ε ≤ 3 × 10~2 s~(-1) and for the maximum stress level observed at ε_(max) ≈10~3 s~(-1) must be denned correctly. In order to evaluate the behaviour of materials for this range of strain rates, servohydraulic machines are used. However, even if the actuator allows for velocities V_0 ≥ 10 m/s, usually some problems appear during force measurement because the natural frequency of the load cell is too low. Even using a piezoelectric load cell, the material behaviour cannot be defined precisely. In order to obtain more precise information by force measurement, resistance strain gauges are generally used. One possibility is to cement these on to the specimen head. However, using this technique it is necessary to have a good knowledge of the parasite effects as discussed in this paper. Therefore, a coupled experiment-numerical simulation allows some effects due to the specimen design and resistance gauge position to be demonstrated.
机译:本文介绍了经常在汽车工业中使用的高强度TRIP 700钢的性能。由于相变引起的高应力水平,该材料用于设计一些汽车部件。通常,在钢板中以低应变率引起预塑性变形,以使奥氏体转变为马氏体。下一步是设计例如碰撞盒,如Durrenberger等人先前所述。 [1],以增加能量吸收水平。测试这种材料的问题是在拉伸测试过程中,尤其是在中等和高应变速率下的样品附着。当这种材料用于碰撞应用时会出现一个特殊的问题,即在中等应变速率50 s〜(-1)≤ε≤3×10〜2 s〜(-1)时的塑性行为以及在ε_(max)≈10〜3 s〜(-1)必须正确定义。为了在此应变率范围内评估材料的性能,使用了伺服液压机。但是,即使执行器允许速度V_0≥10 m / s,在测力过程中通常也会出现一些问题,因为称重传感器的固有频率太低。即使使用压电式称重传感器,也无法精确定义材料性能。为了通过力测量获得更精确的信息,通常使用电阻应变仪。一种可能是将它们粘在样品头上。但是,使用此技术必须如本文所讨论的那样具有对寄生虫影响的充分了解。因此,通过耦合的实验数字模拟可以证明由于样品设计和电阻规位置而产生的一些影响。

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