Consideration of Orowan strengthening effect in particulate-reinforced metal matrix nanocomposites: A model for predicting their yield strength - Peeref (2024)

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An analytical model for predicting the yield strength of particulate-reinforced metal matrix nanocomposites has been developed. The strengthening effects involving (i) Orowan strengthening effect, (ii) enhanced dislocation density due to the residual plastic strain caused by the difference in the coefficients of thermal expansion between the matrix and particles, and (iii) load-bearing effect have been taken into account in the model. The prediction is in good agreement with the experimental data reported in the literature. (c) 2006 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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Summary: In this study, a fluorescence thermometry method based on MgAlON:0.01 at.% Er3+ transparent ceramic was successfully proposed by employing the idea of local structural engineering. The special local environment of Er3+ in the grain boundary led to different fluorescence responses from crystalline or amorphous structures. By measuring the linear downshift fluorescence intensity ratio of thermally coupled energy levels of Er3+ with temperature, a constant absolute sensitivity (0.0156 K-1) was obtained within the tested temperature range (300-573 K). This work highlights the significance of the local structure of the activators in the design of high-performance fluorescence temperature sensors.

SCRIPTA MATERIALIA (2023)

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Article Nanoscience & Nanotechnology

Effect of amorphous complexions on plastic deformation of nanolayered composites

Zhe Yan, Zhaorui Liu, Bonan Yao, Qi An, Ruifeng Zhang, Shijian Zheng

Summary: Interface-induced dislocation nucleation and interface sliding are two decisive mechanisms for understanding the plastic deformation of nanolayered composites. By conducting atomic simulations on the Cu-Nb system, the atomic mechanisms of dislocation nucleation and interface sliding are revealed after introducing CuNb amorphous complexions with different compositions. These findings demonstrate the influence of amorphous complexions on plastic deformation and provide theoretical guidance for the design of nanolayered composites.

SCRIPTA MATERIALIA (2023)

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Article Nanoscience & Nanotechnology

First-principles investigation of the effect of interfacial compositions on the formation energies of ?? and T1 structures

S. L. Yang, Y. K. Niu, J. Z. Liu, N. Wilson, J. F. Nie

Summary: The formation energies of ohm ' and T1 precipitates with different interfacial compositions were calculated using density functional theory. The results showed that the presence of Ag and Mg and/or Li at the top and bottom layers significantly increased the favorability of precipitate formation. The effect of Ag, with a similar atomic size to Al, was dominated by chemical bonding, while the larger atoms of Mg and Li reduced the formation energy through elastic strain reduction. These findings provide insights into enhancing the formation of specific strengthening constituents through micro-alloying with appropriate elements.

SCRIPTA MATERIALIA (2023)

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Article Nanoscience & Nanotechnology

A novel additive manufactured reduced activation ferritic/martensitic steel enhanced by in-situ nanoparticles benefiting from oxygen addition

Shubo Zhang, Kailun Li, Wenjing Zhang, Menghan Ma, Mingshen Li, Jing Xue, Hao Chen, Rong Hu, Wei Liu

Summary: This study presents a new type of iron-based alloy with nano particles, manufactured using selective laser melting, to enhance high-temperature performance. The results show superior mechanical properties compared to other additive manufactured alloys, suggesting the potential for improving structural materials in fusion reactors.

SCRIPTA MATERIALIA (2023)

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Article Nanoscience & Nanotechnology

Ultra-fine microstructure and exceptional low coercivity developed in a high-Bs Fe-Si-B-P alloy by co-alloying Ni, Mo, and Cu

Fayuan Shen, Bowen Zang, Lijian Song, Juntao Huo, Yan Zhang, Jun-Qiang Wang

Summary: Designing soft magnetic alloys with high saturation magnetic induction (Bs) is crucial for enhancing the power density of electric and electronic devices. In this study, novel Fe-based nanocrystalline alloys were developed by microalloying a Fe-Si-B-P alloy, with the addition of Ni, Mo, and Cu. The microstructure of the alloys was effectively refined, resulting in a decrease in grain size from 28.5 nm to 13.1 nm, and improved stability of soft magnetic properties. After nanocrystallization, the alloys exhibited exceptional magnetic properties, including low coercivity (1-2 A/m) and high Bs (1.81 T), which could be maintained within a wide annealing temperature and time window.

SCRIPTA MATERIALIA (2023)

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Article Nanoscience & Nanotechnology

Anharmonicity in grain boundary energy for Al: Thermodynamic integration with artificial-neural-network potential

M. Matsuura, T. Yokoi, Y. Ogura, K. Matsunaga

Summary: The anharmonicity in grain boundary (GB) energies for Al has been studied using a thermodynamic integration method with a high-accuracy artificial-neural-network potential. It is found that anharmonic components are small at low temperatures but increasingly contribute to the reduction of GB free energies at higher temperatures. The magnitude of anharmonicity is roughly correlated with excess volume at GBs, and for certain GBs, there is a significant deviation from the harmonic approximation.

SCRIPTA MATERIALIA (2023)

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Consideration of Orowan strengthening effect in particulate-reinforced metal matrix nanocomposites: A model for predicting their yield strength - Peeref (2024)

FAQs

What are the strengthening mechanisms in composites? ›

The findings showed that thermal incongruity, Orowan strengthening, the Hall–Petch mechanism, and load transfer effects contributed the most towards the increased strength of the composite.

What are the advantages of metal matrix nanocomposites? ›

Advantages of metal matrix nanocomposites include enhanced mechanical properties and reduced weight, leading to improved fuel efficiency. Disadvantages are not addressed in the paper. Metal matrix composites offer high strength-to-weight ratio, low thermal expansion, and wear resistance.

What are the advantages of metal matrix composites over polymer matrix composites? ›

Metal matrix composites have high fracture toughness and are able to absorb large impact fracture energy compared with other composites, because the matrix metals have high ductility. 3. Generally, metal matrix composites have higher thermal conductivity than that of other composites.

What are the applications of metal matrix nanocomposites? ›

Major applications of metal matrix nanocomposites are in automobile and aerospace industries. Among various properties corrosion is an important property for determining the life expectancy of any nanocomposite material.

What are the factors that influence the strength of fibre reinforced composites? ›

What are the factors that affect the composite properties?
  • Properties of the constituent materials. ...
  • Length of the fibre.
  • Orientation of the fibres (with respect to the loading direction).
  • Cross sectional shape of the fibre.
  • Distribution and arrangement of the fibres in the matrix material.

How to improve yield strength? ›

Increasing the concentration of the solute atoms will increase the yield strength of a material, but there is a limit to the amount of solute that can be added, and one should look at the phase diagram for the material and the alloy to make sure that a second phase is not created.

What are the disadvantages of metal matrix composites? ›

However, MMCs also have some disadvantages compared with metals. Chief among these are the higher cost of fabrication for high-performance MMCs, and lower ductility and toughness.

What would be the advantages of using metal matrix composites over metals alone? ›

Metal matrix composites are of interest largely because they combine the high thermal conductivity of metals with the low and tailorable coefficient of thermal expansion of ceramics. In addition they provide greater stiffness than the metal and low weight, depending on the metal used.

What is the benefits and applications of nanocomposites? ›

The primary advantages of nanocomposites over other composite materials include their high surface-to-volume ratio, which results in small nanofiller sizes and tight filler particle spacing, superior mechanical properties (such as high plasticity without sacrificing stability, scratch resistance) and improved optical ...

What is the purpose of the matrix is to reinforce the composite? ›

In a composite, matrix is an important phase, which is defined as a continuous one. The important function of a matrix is to hold the reinforcement phase in its embedded place, which act as stress transfer points between the reinforcement and matrix and protect the reinforcement from adverse conditions (Clyne, 1996).

What are the applications of metal matrix composites in modern engineering? ›

Metal-matrix composites can also significantly increase the wear resistance and hardness of aluminum alloys. Al2O3 particles were found to significantly increase the wear resistance of an Al-Si alloy, and SiO2 particles increased the hardness of a Al-Mg alloy significantly.

What is the main disadvantage of using a polymer matrix composite? ›

One major disadvantage is their poor performance when exposed to high heat flux 1. At temperatures above 300-400°C, the organic matrix decomposes, releasing heat, smoke, and toxic volatiles, which can compromise the mechanical performance of the composite.

What is the purpose of metal matrix composites? ›

Metal matrix composites (MMCs), by virtue of their low density, high strength-to-weight ratio, high temperature strength retention, and excellent creep, fatigue and wear resistances, have the potential for replacing cast iron and other materials in engines and brakes.

What are the advantages of metal oxide nanocomposites? ›

Metal and metal oxide nanocomposites have received considerable attention as an alternative to conventional antimicrobial agents because of their diverse shape, size, high surface-to-volume ratio, chemical/physical stability, activity, and a greater degree of selectivity.

What is metal metal nanocomposites? ›

2 Metal Matrix Nanocomposites (MMNC) MMNCs describe materials comprising of alloy matrix or ductile metallic that have several nanosized reinforcement materials. These resources merge into metal and ceramic characteristics, which have toughness and ductility through large intensity and modulus.

What are the main strengthening mechanisms? ›

The three main strengthening mechanisms include Orowan strengthening mechanism, enhanced dislocation density strengthening mechanism and the strengthening mechanism of load-bearing effect.

What are the strengths of composites? ›

Composites have a high strength-to-weight ratio.

Perhaps the biggest advantage of composites is their high strength-to-weight ratio. Carbon fiber weighs about 25% as much as steel and 70% as much as aluminum, and is much stronger and stiffer than both materials per weight.

What is composite strengthening? ›

Fiber-reinforced polymer (FRP) systems are simply defined as high-strength and lightweight reinforcements created by combining carbon (CFRP) or E-glass fibers with a polymer material.

What are the 4 strengthening mechanisms of alloys? ›

Herein, the different strengthening mechanisms including, solid solution strengthening, grain boundary strengthening, precipitation strengthening and phase transformation strengthening are systematically reviewed with regard to overcome the strength-ductility trade-off in HEAs.

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