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Structural-gradient-materials produced by gradient temperature heat treatment for dual-property turbine disc

机译:梯度温度热处理双特性涡轮盘产生的结构梯度材料

摘要

The microstructure-property relationship of deformed parts has been becoming very critical, especially for aerospace components. The design of manufacturing process to achieve the unique and required microstructure and property is thus critical. For turbine disc, fine microstructure is required for the bore region of the disc to provide high tension strength and fatigue resistance at low temperature (420-650 °C). The coarse microstructure is also needed for its rim region to possess the excellent rupture life and crack growth resistance at high temperature (760 °C). A unique heat treatment method was developed to produce the gradient microstructure from the bore to the rim regions. In this study, the gradient temperature heat treatment process (GTHT) was carried out on FGH 4096 superalloys under the conditions of (1080 °C260 °C/30 min, AC) and (1140 °C300 °C/30 min, AC), and two structural-gradient-materials (SGMs) were obtained. The SGM produced by GTHT under the condition of (1080 °C260 °C/30 min, AC) has gradient microstructure from the equiaxed grains to the flatted grains. In between the equiaxed and flatted microstructures, a unique transition region is found. The dual-size gradient material was thus successfully fabricated by the GTHT process under the condition of (1140 °C 300 °C/30 min, AC). The grain size of coarse microstructure is approximately 40 μm, while the grain size of fine microstructure is about 4 μm. The microstructural mechanisms of the SGMs during hot working process are identified in this research. Furthermore, the developed dual-size gradient material has potential application in dual-property turbine disc.
机译:变形零件的微观结构与性能的关系已变得非常关键,特别是对于航空航天部件而言。因此,设计制造过程以实现独特且所需的微观结构和性能至关重要。对于涡轮机盘,需要在盘的孔区域具有良好的微观结构,以在低温(420-650°C)下提供高的抗拉强度和抗疲劳性。边缘区域还需要具有粗糙的微观结构,以在高温(> 760°C)下具有出色的断裂寿命和抗裂纹扩展性能。开发了一种独特的热处理方法以产生从孔到边缘区域的梯度微观结构。在这项研究中,在(1080°C260°C / 30 min,AC)和(1140°C300°C / 30 min,AC)的条件下,对FGH 4096高温合金进行了梯度温度热处理工艺(GTHT),得到了两种结构梯度材料(SGMs)。 GTHT在(1080°C260°C / 30 min,AC)条件下生产的SGM具有从等轴晶粒到扁平晶粒的梯度微观结构。在等轴和扁平的微结构之间,发现了一个独特的过渡区域。因此,在(1140°C 300°C / 30 min,AC)的条件下,通过GTHT工艺成功制备了双倍梯度材料。粗组织的晶粒尺寸约为40μm,而细组织的晶粒尺寸约为4μm。这项研究确定了SGMs在热加工过程中的微观结构机制。此外,开发的双重尺寸梯度材料在双重性质涡轮盘中具有潜在的应用。

著录项

  • 作者

    Ning Y; Yao Z; Guo H; Fu MW;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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