Determination of Creep Mechanisms and Modeling Low Temperature(<0.25Tm) Creep of Two-Phase Titanium Alloys
Determination of Creep Mechanisms and Modeling Low Temperature(<0.25Tm) Creep of Two-Phase Titanium Alloys
批准号:
0906994
负责人:
Sreeramamurthy Ankem
金额:
$40.5万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-07-01 至 2013-06-30
中文摘要
技术概述:一般两相合金和&;#945;-β;钛合金在技术上尤其重要。钛合金具有高强度重量比、优异的耐腐蚀性和生物相容性等吸引人的特性。由于这些原因,它们被用于许多高科技领域。在许多此类应用中,组件在低温(0.25Tm)下长时间承受恒定负载。近年来,许多意想不到的结果被报道出来,这对设计和选择各种用途的钛合金具有重要意义。例如,传统上被认为是一种非常快速的变形机制的孪晶可以非常缓慢地发生。此外,由于孪生,单相&;#945;和,# 946;钛合金在低温下会蠕变(即塑性变形)。还发现了两相&;#945;-β;由于相之间的相互作用,钛合金可以与单相合金有很大的不同。这种行为的确切原因尚不清楚。本研究的目的是系统地研究&;#945;-β;&;#945体积分数和形貌对钛合金的影响和,# 946;阶段;使用三种不同的Ti-V合金作为模型系统。晶体学建模以及三维各向异性有限元建模将用于确定相之间的相互作用。扫描电子显微镜和透射电子显微镜将用于确定变形机制。基于这些结果,将确定提高低温抗蠕变性能的最佳显微组织。非技术摘要:在许多应用中,在低温(如室温)下对结构构件施加载荷。有时,载荷在这些结构上施加了很长一段时间,这可能导致随时间的变形,即蠕变。本研究的重点是确定两相结构材料如钛合金耐低温蠕变的最佳化学和显微组织。研究结果将通过参加各种技术会议和在知名期刊上发表来广泛宣传。虽然本研究是基于两相钛合金的低温蠕变变形,但其结果有望为复合材料的广泛应用做出贡献。在本次调查中,研究生将接受高级建模和实验技术的培训。这些研究生将继续在工业、政府或教育部门担任技术职位。除了参加各种国内和国际会议外,该项目还通过诸如材料优势学生分会等活动促进社区和多样性的推广。首席研究员是马里兰大学帕克学院材料优势学生分会的创始教师顾问。本章积极参与大学的开放日活动,向公众宣传材料科学。此外,本章鼓励本科生和研究生参加各种国家专业协会会议。
英文摘要
TECHNICAL SUMMARY:Two-phase alloys in general and &#945;-&#946; titanium alloys in particular are technologically important. The attractive properties of titanium alloys include high strength to weight ratio, excellent corrosion resistance and biocompatibility. For these reasons, they are used in a number of high technology areas. In many of these applications, components are subjected to constant loads over extended periods of time at low temperatures (0.25Tm). Recently, many unexpected results have been reported which are of great importance in designing and in selecting titanium alloys for various applications. For example, it has been shown that twinning, which has traditionally been known to be a very fast deformation mechanism, can occur very slowly. Further, due to twinning, the single-phase &#945; and &#946; titanium alloys can creep (i.e. plastically deform) at low temperatures. It was also found that the deformation mechanisms of the two-phase &#945;-&#946; titanium alloys can be quite different than those of the single phase alloys due to interactions between phases. The exact reasons for this behavior are not known. The aim of this investigation is to systematically study the low temperature creep of &#945;-&#946; titanium alloys as a function of volume fraction and morphology of &#945; and &#946; phases; using three different Ti-V alloys as the model systems. Crystallographic modeling as well as three-dimensional anisotropic finite element modeling will be used to determine the interactions between phases. Scanning electron microscopy and transmission electron microscopy will be used to determine the deformation mechanisms. Based on these results, optimal microstructures for improved low temperature creep resistance will be identified.NON-TECHNICAL SUMMARY:In a number of applications, loads are applied on structural members at low temperatures such as room temperature. At times, loads are applied on these structures over extended periods of time, which can result in time-dependent deformation, i.e. creep. This investigation focuses on determining optimal chemistry and microstructures of two-phase structural materials such as titanium alloys for low temperature creep resistance. The results will be widely publicized through participation in various technical conferences and publication in reputed journals. While this study of low temperature creep deformation is based on two-phase titanium alloys, the results are expected to contribute to the wide field of composite materials in general. During this investigation, graduate students will be trained in advanced modeling and experimental techniques. These graduate students will then go on to take up technical positions in industry, government, or education. In addition to participation in various national and international conferences, this project also promotes outreach to the community and diversity through such activities as the Materials Advantage Student Chapter. The Principal Investigator is the founding faculty advisor for the University of Maryland, College Park Materials Advantage Student Chapter. This chapter actively participates in open-houses at the University to educate the public on materials science. Further, this chapter encourages both undergraduate and graduate students to participate in the various national professional society meetings.
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会议论文
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批准号:0733522
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项目类别:Standard Grant
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资助金额:$8.2万
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财政年份:2007
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负责人:Sreeramamurthy Ankem
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依托单位:
The Determination of Activation Energies and Modeling of Low Temperature (<0.25Tm) Creep Behavior of Alpha, Alpha-Beta and Beta Titanium Alloys
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批准号:0513751
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项目类别:Continuing Grant
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资助金额:$0.0万
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财政年份:2005
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负责人:Sreeramamurthy Ankem
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依托单位:
海外基金