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    Options for Improving Performance of Additively Manufactured Nickel-Base Superalloys for Gas Turbine Applications

    Source: Journal of Engineering for Gas Turbines and Power:;2023:;volume( 146 ):;issue: 003::page 31017-1
    Author:
    Bridges, Alex
    ,
    Shingledecker, John
    ,
    Clark, John
    ,
    Crudden, David
    ,
    Kirka, Michael
    ,
    Fernandex-Zelaia, Patxi
    DOI: 10.1115/1.4063631
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Additive manufacturing (AM) has been increasingly used for gas turbine (GT) components over the last decade. Many different components can be successfully designed, printed, and used in the gas turbine. However, there still exist questions on the use of AM components in hot-section areas. These components are typically fabricated from nickel-base superalloys that are known to have superior mechanical properties at elevated temperatures (e.g., creep and fatigue). Research over the last decade has been primarily focused on the printability of nickel-base superalloys, and there still exists a gap in understanding the high temperature processing–structure–properties–performance relationships of these alloy systems. This study evaluates the effect of processing methods, such as laser-based powder bed fusion (LBPBF) and electron beam powder bed fusion (EBPBF), on the resulting microstructure and time dependent mechanical properties of a nickel-base superalloy (ABD®900). Material after each build was subsequently heat treated using both near-solvus (at or slightly below the gamma prime solvus temperature) and super-solvus (above gamma prime solvus temperature) conditions. Multistep aging was then carried out to produce a bi-modal distribution of gamma prime precipitates as is typical in similar alloys. Microstructure was evaluated in both the as-built and fully heat-treated conditions for each processing technique. Mechanical testing was conducted to evaluate the effects of AM build methods, microstructure, and heat treatment on high temperature mechanical properties. The results show that there are several methods which can be used to improve the performance of components built using AM. The creep testing results for ABD900-AM clearly show an improvement in properties (rupture life and ductility) at all test conditions compared to testing in the prior AM alloy of the same class. A super-solvus heat treatment improved creep rupture strength by ∼3× in the LBPBF material compared to the near-solvus heat treatment. These findings provide directions for future studies to advance the overall state of gas turbine technology by enabling ABD®900-AM material and other AM alloys to be used in more innovative hot-section components.
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      Options for Improving Performance of Additively Manufactured Nickel-Base Superalloys for Gas Turbine Applications

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4295193
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    contributor authorBridges, Alex
    contributor authorShingledecker, John
    contributor authorClark, John
    contributor authorCrudden, David
    contributor authorKirka, Michael
    contributor authorFernandex-Zelaia, Patxi
    date accessioned2024-04-24T22:25:36Z
    date available2024-04-24T22:25:36Z
    date copyright11/28/2023 12:00:00 AM
    date issued2023
    identifier issn0742-4795
    identifier othergtp_146_03_031017.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4295193
    description abstractAdditive manufacturing (AM) has been increasingly used for gas turbine (GT) components over the last decade. Many different components can be successfully designed, printed, and used in the gas turbine. However, there still exist questions on the use of AM components in hot-section areas. These components are typically fabricated from nickel-base superalloys that are known to have superior mechanical properties at elevated temperatures (e.g., creep and fatigue). Research over the last decade has been primarily focused on the printability of nickel-base superalloys, and there still exists a gap in understanding the high temperature processing–structure–properties–performance relationships of these alloy systems. This study evaluates the effect of processing methods, such as laser-based powder bed fusion (LBPBF) and electron beam powder bed fusion (EBPBF), on the resulting microstructure and time dependent mechanical properties of a nickel-base superalloy (ABD®900). Material after each build was subsequently heat treated using both near-solvus (at or slightly below the gamma prime solvus temperature) and super-solvus (above gamma prime solvus temperature) conditions. Multistep aging was then carried out to produce a bi-modal distribution of gamma prime precipitates as is typical in similar alloys. Microstructure was evaluated in both the as-built and fully heat-treated conditions for each processing technique. Mechanical testing was conducted to evaluate the effects of AM build methods, microstructure, and heat treatment on high temperature mechanical properties. The results show that there are several methods which can be used to improve the performance of components built using AM. The creep testing results for ABD900-AM clearly show an improvement in properties (rupture life and ductility) at all test conditions compared to testing in the prior AM alloy of the same class. A super-solvus heat treatment improved creep rupture strength by ∼3× in the LBPBF material compared to the near-solvus heat treatment. These findings provide directions for future studies to advance the overall state of gas turbine technology by enabling ABD®900-AM material and other AM alloys to be used in more innovative hot-section components.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOptions for Improving Performance of Additively Manufactured Nickel-Base Superalloys for Gas Turbine Applications
    typeJournal Paper
    journal volume146
    journal issue3
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4063631
    journal fristpage31017-1
    journal lastpage31017-9
    page9
    treeJournal of Engineering for Gas Turbines and Power:;2023:;volume( 146 ):;issue: 003
    contenttypeFulltext
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