微波辅助烧结技术研究进展

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL Transactions of FAMENA Pub Date : 2021-05-19 DOI:10.21278/TOF.451021220
L. Ćurković, Rea Veseli, Ivan Gabelica, I. Žmak, Ivana Ropuš, M. Vukšić
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引用次数: 10

摘要

本研究考察了微波加热作为一种新兴的、创新的、节能的替代传统加热技术用于不同材料的潜力,重点是陶瓷材料的加工。现代陶瓷被广泛研究,由于这些材料的许多优点,它们的用途和不同的应用都很广泛。微波烧结与传统加热技术的区别在于其独特的传热机制。微波能量被材料吸收,因此能量的传递发生在分子水平上。通过这种方式,热量在整个材料中产生,即在内部和外部。这允许在整个材料横截面上具有非常低的温度梯度。当使用常规烧结时,通常在高加热速率下,高温梯度会带来问题。加速的微波加热发生在整个体积中,因此加热是均匀的,这限制了晶粒的生长和粗化,并导致均匀精细的微观结构。在微波烧结独特的传热机制中,致密化也得到了加速,这提高了烧结材料的机械性能。本文讨论了微波烧结在制造不同的现代技术材料中的应用,即陶瓷、复合材料、金属和合金以及玻璃。利用现有文献描述了不同性能的改进。
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A Review of Microwave-Assisted Sintering Technique
The present study examines the potential of microwave heating as an emerging and innovative energy-efficient alternative to conventional heating techniques used for different materials, with a focus on the processing of ceramic materials. Modern ceramics are studied extensively, and their use and different applications are wide due to many advantages of these materials. The most important factor in microwave sintering which differentiates it from conventional heating techniques is a unique heat transfer mechanism. Microwave energy is absorbed by the material, hence the transfer of energy takes place at the molecular level. This way, the heat is generated throughout the material, i.e. on the inside as well on the outside. This allows a very low temperature gradient throughout the material cross section. When conventional sintering is used, typically at high heating rates, high temperature gradients pose a problem. The accelerated microwave heating occurs through the whole volume, so the heating is uniform, which limits the grain growth and coarsening, and leads to a uniform and fine microstructure. The densification is accelerated as well during the unique heat transfer mechanism of microwave sintering, which enhances the mechanical properties of the sintered materials. This paper discusses the use of microwave sintering in the manufacturing of different modern technical materials, namely ceramics, composites, metals and alloys, and glasses. The improvement of different properties is described using the available literature.
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来源期刊
Transactions of FAMENA
Transactions of FAMENA 工程技术-材料科学:综合
CiteScore
2.20
自引率
30.80%
发文量
15
审稿时长
>12 weeks
期刊介绍: The journal publishes research and professional papers in the following fields: Aerospace Engineering; Automotive Engineering; Biomechanics; Energetics; Engineering Design; Experimental Methods; Industrial Engineering; Machine Tools and Machining; Materials Science; Mathematical Modelling and Simulation; Mechanical Design; Mechanics & Fluid Mechanics; Nanotechnology; Naval Architecture; Numerical Methods; Process Planning; Quality Assurance; Robotics & Mechatronics; Thermodynamics.
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