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Determination of Heat Transfer Coefficients for different initial tool temperatures and closed loop controlled constant contact pressures

机译:不同初始工具温度和闭环控制恒定接触压力的热传递系数的测定

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The boron steel quenching requirement on hot forming manufacturing processes allows the industry to create tailored parts to improve their mechanical functionality. During the cooling, the microstructure of the material changes depending on the imposed cooling rate. However, an accurate prediction of the cooling ratios is needed in order to correctly design the process. In this work the interfacial heat transfer coefficient (HTC) has been determined at different contact conditions, varying the initial die temperature. Experimental tests have been realized in a SCHMIDT micro servo-press, which is able to compensate the thermal contraction of the blank and tools to precisely keep constant the contact pressure. Temperature evolution of the tools and the blank has been monitored with nine thermocouples. For the determination of the heat transfer coefficient (HTC) an analytical-numerical method has been used leading to a fast and reliable calculation method able to determine the HTC value for each process time. This methodology allows relating the HTC to the blank temperature, difference on temperature on the interface to improve the tailor tempering of boron alloys simulation.
机译:硼钢淬火要求对热成型制造工艺允许该行业创造量身定制的零件以改善其机械功能。在冷却期间,材料的微观结构根据强加的冷却速度而变化。然而,需要精确预测冷却比以便正确设计该过程。在这项工作中,界面传热系数(HTC)已经确定在不同的接触条件下,改变初始模具温度。实验测试已经在施密特微伺服机中实现,能够补偿坯料和工具的热收缩,精确地保持恒定的接触压力。用九个热电偶监测工具和坯料的温度演化。为了确定传热系数(HTC),已经使用了分析 - 数值方法,导致快速可靠的计算方法,能够为每个处理时间确定HTC值。该方法允许将HTC与空白温度相关,对界面上的温度差异提高硼合金模拟的裁缝回火。

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