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Effects of Cooling Rate during Quenching and Tempering Conditions on Microstructures and Mechanical Properties of Carbon Steel Flange

机译:淬火期间冷却率的影响和碳钢法兰微观结构和力学性能的影响

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摘要

This study investigated the mechanical properties of steel in flanges, with the goal of obtaining high strength and high toughness. Quenching was applied alone or in combination with tempering at one of nine combinations of three temperatures TTEM and durations tTEM. Cooling rates at various flange locations during quenching were first estimated using finite element method simulation, and the three locations were selected for mechanical testing in terms of cooling rate. Microstructures of specimens were observed at each condition. Tensile test and hardness test were performed at room temperature, and a Charpy impact test was performed at −46 °C. All specimens had a multiphase microstructure composed of matrix and secondary phases, which decomposed under the various tempering conditions. Decrease in cooling rate (CR) during quenching caused reduction in hardness and strength but did not affect low-temperature toughness significantly. After tempering, hardness and strength were reduced and low-temperature toughness was increased. Microstructures and mechanical properties under the various tempering conditions and CRs during quenching were discussed. This work was based on the properties directly obtained from flanges under industrial processes and is thus expected to be useful for practical applications.
机译:本研究研究了钢管中钢的机械性能,实现了高强度和高韧性的目标。单独施用猝灭,或者与三个温度和持续时间TTEM的九种组合中的一个组合施加淬火。首先使用有限元方法模拟首先估计在淬火期间各种法兰位置处的冷却速率,并选择三个位置在冷却速率方面进行机械测试。在每个条件下观察样本的微观结构。在室温下进行拉伸试验和硬度试验,并且在-46℃下进行夏比冲击试验。所有样本都具有由基质和二次相组成的多相微观结构,其在各种回火条件下分解。淬火过程中冷却速率(Cr)降低导致硬度和强度降低,但不显着影响低温韧性。经回火后,降低硬度和强度,增加低温韧性。讨论了在猝灭期间各种回火条件和CRS下的微观结构和机械性能。这项工作基于从工业过程下的法兰直接获得的属性,因此预计对实际应用有用。

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