Thermomechanical Deformation Response in Cold Sprayed SiCp/Al Composites: Strengthening, Microstructure Characterization and Thermomechanical Properties

IF 3.2 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS
L. Gyansah, Tianying Xiong, Raffaella Sesana
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Abstract

SiCp/pure Al composites with different SiCp fractions (20, 30 and 40 wt.%) were cold sprayed followed by hot axial-compression tests at deformation temperatures of 473 K (200 °C) to 673 K (400 °C), leading to failure of specimens through routine crack propagation in their multiphase. The plastic deformation behavior of the coating with respect to the SiCp contents and the deformation temperatures were studied at strain rate 1 s−1. As-sprayed and post-failure specimens were analyzed by x-ray computed tomography (XCT), transmission electron microscopy (TEM) and scanning electron microscopy (SEM). Quasi-static thermomechanical testing results revealed that compressive strength (UCS = 228 MPa) was the highest in the deposits that were compressed at 473 K compared to those of the as-sprayed, while the as-sprayed exhibited a compressive strength of 182.8 MPa related to the increment in SiCp fractions. Strength-plasticity synergy was promoted by dynamic recrystallization (DRX) through strengthening and refinement of the grains. The DRX degree depends relevantly on grain refinement, higher deformation temperature and the pinning effects of the interfaces promoted by the ultrafine grain structures (UFG). Reconstructed XCT data revealed different crack propagation mechanisms. A single-plane shear crack with multi-laminates fracture morphology yields relatively through the as-sprayed and as-deformed at 473 K deposits, while a multiphase plane shear cracks preeminently existed in high temperature deformed deposits resulting in multiphase-interface delaminations. Three pertinent strengthening mechanisms, videlicet, SiCp dispersed strengthening, refined grain strengthening and dislocation strengthening existed in the gradient microstructure, and their detailed contributions to the thermomechanical properties were discussed.

冷喷涂SiCp/Al复合材料的热变形响应:强化、显微组织表征和热力学性能
在473 K(200℃)~ 673 K(400℃)的变形温度下,对SiCp含量分别为20、30和40 wt.%的SiCp/纯Al复合材料进行冷喷涂,然后进行热轴压试验,导致多相裂纹扩展破坏。在应变速率为1 s−1时,研究了SiCp含量和变形温度对涂层塑性变形行为的影响。采用x射线计算机断层扫描(XCT)、透射电子显微镜(TEM)和扫描电子显微镜(SEM)对喷涂后和失效后的试样进行分析。准静态热力学测试结果表明,在473 K温度下压缩沉积的抗压强度(UCS = 228 MPa)高于喷涂沉积,而随着SiCp组分的增加,喷涂沉积的抗压强度达到182.8 MPa。动态再结晶(DRX)通过强化和细化晶粒促进了强度塑性协同作用。DRX程度与晶粒细化程度、较高的变形温度以及超细晶粒结构(UFG)对界面的钉住作用有关。重构的XCT数据揭示了不同的裂纹扩展机制。473 K镀层在喷射和变形状态下相对形成单面剪切裂纹,具有多层断裂形态,而在高温变形镀层中则主要形成多相面剪切裂纹,导致多相界面分层。讨论了梯度组织中存在的三种相关强化机制,即晶态强化、SiCp分散强化、细化晶粒强化和位错强化,以及它们对合金热力学性能的影响。
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来源期刊
Journal of Thermal Spray Technology
Journal of Thermal Spray Technology 工程技术-材料科学:膜
CiteScore
5.20
自引率
25.80%
发文量
198
审稿时长
2.6 months
期刊介绍: From the scientific to the practical, stay on top of advances in this fast-growing coating technology with ASM International''s Journal of Thermal Spray Technology. Critically reviewed scientific papers and engineering articles combine the best of new research with the latest applications and problem solving. A service of the ASM Thermal Spray Society (TSS), the Journal of Thermal Spray Technology covers all fundamental and practical aspects of thermal spray science, including processes, feedstock manufacture, and testing and characterization. The journal contains worldwide coverage of the latest research, products, equipment and process developments, and includes technical note case studies from real-time applications and in-depth topical reviews.
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