Designed materials: what and how

J. Mazumder, D. Dutta, Amit K. Ghosh, N. Kikuchi
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引用次数: 10

Abstract

Quest for a material to suit the service performance is almost as old as human civilization. So far materials engineers have developed a series of alloys, polymers, ceramics, and composites to serve many of the performance requirements in a modern society. However, challenges appear when one needs to satisfy more than one boundary condition. For example, a component with negative Coefficient of Thermal Expansion (CTE) using a ductile metal was almost impossible until recently. Synthesis of various technologies such as Direct Metal Deposition (DMD) Homogenization Design Method (HDM) and mutli material Computer Aided Design (CAD) was necessary to achieve this goal. Rapid fabrication of three-dimensional shapes of engineering materials such as H13 tool steel and nickel super alloys are now possible using Direct Materials Deposition (DMD) technique as well as similar techniques such as Light Engineered New Shaping (LENS) or Directed Light Fabrication (DLF). However, DMD has closed loop capability that enables better dimension and thermal cycle control. This enables one to deposit different material at different pixels with a given height directly from a CAD drawing. The feedback loop also controls the thermal cycle. H13 tool steel is one of the difficult alloys for deposition due to residual stress accumulation from martensitic transformation. However, it is the material of choice for the die and tool industry. DMD has demonstrated successful fabrication of complicated shapes and dies and tools, even with H13 alloys. This process also offers copper chill blocks and water-cooling channels as the integral part of the tool. On the other hand ZrO2 was co-deposited with nickel super alloys using DMD. Flexibility of the process is enormous and essentially it is an enabling technology to marterialize many a design. Using DMD in conjunction with HDM and multi-material CAD, one can produce components with predetermined performance such as negative co-efficient of expansion, by synthesis of designed microstructure. This paper briefly reviews the state of the art of DMD and describes the synthesis of three core technologies to produce designed materials with desired performance.
设计材料:什么和如何设计
对适合服务性能的材料的追求几乎与人类文明一样古老。到目前为止,材料工程师已经开发出一系列合金、聚合物、陶瓷和复合材料,以满足现代社会的许多性能要求。然而,当需要满足多个边界条件时,挑战就出现了。例如,直到最近,使用延展性金属制造具有负热膨胀系数(CTE)的部件几乎是不可能的。为了实现这一目标,需要综合各种技术,如直接金属沉积(DMD)、均质化设计方法(HDM)和多材料计算机辅助设计(CAD)。现在可以使用直接材料沉积(DMD)技术以及类似的技术,如光工程新成形(LENS)或定向光制造(DLF),快速制造H13工具钢和镍超级合金等工程材料的三维形状。然而,DMD具有闭环功能,可以实现更好的尺寸和热循环控制。这使得人们可以直接从CAD绘图中在给定高度的不同像素上沉积不同的材料。反馈回路还控制热循环。H13工具钢是马氏体相变残余应力积累较难沉积的合金之一。然而,它是模具和工具行业的首选材料。DMD已经成功地制造了复杂的形状、模具和工具,即使是用H13合金。该工艺还提供铜冷块和水冷通道作为工具的组成部分。另一方面,采用DMD共沉积ZrO2与镍合金。这个过程的灵活性是巨大的,从本质上讲,它是一种使许多设计具体化的技术。将DMD与HDM和多材料CAD结合使用,可以通过合成设计的微观结构来生产具有预定性能的部件,例如负膨胀系数。本文简要回顾了DMD的发展现状,并介绍了三种核心技术的综合,以生产具有理想性能的设计材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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