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首页> 外文期刊>Steel Research International >Design of a Test Rig for the Characterization of Thermal Fatigue and Soldering Resistance of the Surfaces of Tool Steels for High‐Pressure Die‐Casting Dies
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Design of a Test Rig for the Characterization of Thermal Fatigue and Soldering Resistance of the Surfaces of Tool Steels for High‐Pressure Die‐Casting Dies

机译:用于高压压铸模具的工具钢表面热疲劳和焊接电阻的试验台的设计

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>The conceptualization and development of a test rig able to reproduce thermal stresses and contact with molten aluminum alloy, typical of high‐pressure die‐casting dies, are described. During the test, a hot‐work tool steel sample is cyclically heated by contact with molten aluminum alloy (AlSi11Cu2(Fe)) and then cooled by the spraying of a water‐diluted silicone‐based lubricant. A finite element method (FEM) simulation is setup to determine the temperature at different depths beneath the sample surface during thermal cycling and is experimentally validated to design the proper sample geometry aimed at reproducing the stress/strain conditions experienced by a die‐casting die insert. A tensile–compressive stress state is achievable on the surface of the sample by machining a notch with a suitable radius, which is able to produce a plastic strain comparable with the insert one. A thermally induced stress–strain fatigue loop is determined for both the sample and the component. Temperatures are monitored discontinuously by infrared (IR) thermography after heating and continuously by thermocouples placed at a reference depth of 5.5?mm. Finally, the optimized testing conditions are validated experimentally: both thermal cracking and soldering phenomena are successfully reproduced on a lab‐scale test rig.
机译: <第XML:ID =“SRIN201900480-SEC-0001”> 描述了能够再现热应力和与熔融铝合金接触的试验台的概念化和开发,典型的高压压铸模具。在测试期间,通过与熔融铝合金(Alsi11cu2(Fe))接触循环加热热工床钢样品,然后通过喷涂水稀释的硅氧烷基润滑剂冷却。设定有限元方法(FEM)模拟以在热循环期间确定样品表面下方不同深度的温度,并经过实验验证以设计适当的样本几何形状,旨在再现压铸模具插入件经历的应力/应变条件。拉伸压缩应力状态是通过加工具有合适半径的凹口在样品的表面上可以实现,这能够产生与插入件相当的塑性应变。针对样品和组分确定热诱导的应力 - 应变疲劳环。在加热后,通过放置在5.5Ωmm的参考深度的热电偶连续地,通过红外线(IR)热成像不连续地监测温度。最后,通过实验验证了优化的测试条件:在实验室规模的试验台上成功再现了热裂化和焊接现象​​。

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