High-throughput Alloy Development for Additive Manufacturing via 3D-Extreme High-speed Laser Material Deposition (3D-EHLA)
High-throughput Alloy Development for Additive Manufacturing via 3D-Extreme High-speed Laser Material Deposition (3D-EHLA)
批准号:
434555091
负责人:
金额:
$0.0万
依托单位国家:
德国
项目类别:
Major Instrumentation Initiatives
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
添加制造(AM)技术是个性化和资源节约型生产高功能部件的关键推动因素。今天,AM技术无法充分发挥其潜力,因为AM缺乏利用工艺固有条件(如极高的加热和冷却速度)的高性能AM材料。因此,必须设计新颖的高通量方法,以允许以灵活而高效的方式开发适合AM的新材料。具有多种材料/元素原位混合可能性的工艺,如激光材料沉积(LMD)及其变种的极高速激光材料沉积(EHL),非常适合于大量合金的资源高效和自动化测试。EHLA的创新(专利FHG/RWTH Aachen,2015)在于粉末颗粒不像传统的激光材料沉积(LMD)那样在基材上的熔池中熔化,而是在其上方(图2)。1)。这使得厚度从10-300微米的层在高达200米/分钟的加工速度下得以实现。由于这些特点,凝固过程中的冷却速度可以在大约10^2-10^4K/S(常规LMD)和大约10^4和10^6K/S(EHL A),通过不同的处理速度以及定制的强度、激光功率和系统技术。因此,可以特别调整材料设计方面的因素,例如偏析,以影响失效机制(例如TWIP、TRIP)。到目前为止,由于表面速度较高,EHL的应用仅限于旋转对称的样品。然而,Fraunhofer ILT的最新发展表明,EHL也适用于非旋转设置。有了这样的设置,也可以研究关键区域,例如反转点(增加的热输入和冷却/凝固条件的变化)。这种高速和全3D功能的组合允许应用于3D-EHL的机器还可以模拟其他AM技术(例如激光-粉末床融合)。这台机器将能够同步加工多达8个(初级)粉末材料,在5g加速下,加工速度高达200m/min。为了通过施加不同的温度分布(通过定制的强度)来控制熔体的形成和凝固,可以将不同的光学元件集成到加工头中。此外,许多用于材料表征和过程观察的设备(如高速相机、比率高温计、激光诱导击穿光谱等)将作为设置的一部分,以实现工艺条件的即时反馈。因此,这种独一无二的机器不仅涵盖了LMD的高通量材料开发,而且提供了模拟各种AM工艺的机会(通过控制10^2-10^6K/S的局部冷却条件以及适应的工艺策略)。再加上LMD/EHL的现场材料混合能力,这使得AM的材料开发迈出了全新的一步(图4)。1)。
英文摘要
Additive Manufacturing (AM) technologies are a key enabler of individualized and resource-efficient production of highly functional parts. Today, AM technologies cannot reach their full potential due to the lack of high-performance materials for AM which exploit the process-inherent conditions such as extremely high heating and cooling rates. Thus, novel high-throughput approaches have to be designed to allow an agile and efficient way of developing new AM-suited materials. Processes with the possibility of in-situ mixing multiple materials/elements such as Laser Material Deposition (LMD) and its variant Extreme High-speed Laser Material Deposition (EHLA) are extremely suitable for the resource-efficient and automatable testing of numerous alloys. EHLA's innovation (Patent FhG/RWTH Aachen, 2015) lies in the fact that the powder particles are not molten in the melt pool on the substrate, as in conventional Laser Material Deposition (LMD), but above it (fig. 1). This enables layers with thicknesses from 10-300µm at process speeds of up to 200m/min. Due to these characteristics, the cooling rates during solidification can be varied to high degree in the regime of approx. 10^2-10^4K/s (conventional LMD) and approx. 10^4 and 10^6K/s (EHLA) by different process speeds along with tailored intensity, laser power and system technology. Hence, material design aspects, e.g. segregations can be specifically adjusted to influence failure mechanisms (e.g. TWIP, TRIP). So far, the application of EHLA is limited to rotationally symmetrical samples due to the high surface speeds. Yet, recent developments at Fraunhofer ILT shows that EHLA is also applicable in a non-rotational setup. With such a setup critical areas, e.g. reversal points (increased heat input and change of the cooling/solidification conditions) can be investigated, too. This combination - high speed and full 3D-capability - allows the applied-for 3D-EHLA machine also to emulate other AM technologies (e.g. Laser-Powder Bed Fusion). The machine will be able to process up to 8 (elementary) powder materials synchronously with process speed up to 200m/min at 5g acceleration. To control melt formation and solidification by applying different temperature profiles (by means of tailored intensities) different optics can be integrated into the processing head. Furthermore, numerous devices for material characterization and process observation (e.g. high-speed camera, ratio pyrometer, laser-induced breakdown-spectroscopy, etc.) will be part of the setup to enable instant feedback of the process conditions. Thus, this one-of-a-kind machine covers not only the high throughput material development for LMD but offers the opportunity to emulate various AM processes (by the control of the local cooling conditions from 10^2-10^6K/s together with adapted process strategies). Together with the in-situ material mixing capability of LMD/EHLA this enables a whole new step for the material development in AM (fig. 1).
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国内基金
海外基金
控制晶界特征分布提高Alloy-N合金抗Te致晶界脆性开裂性能的研究
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批准号:51671122
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项目类别:面上项目
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资助金额:60.0万元
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批准年份:2016
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负责人:夏爽
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依托单位:
原子尺度上Alloy 690腐蚀动力学机理的量子力学定量研究
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批准号:51301132
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项目类别:青年科学基金项目
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资助金额:25.0万元
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批准年份:2013
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负责人:胡军
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依托单位: