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Flash Sintering of Composite Ceramic Materials and Structures

Flash Sintering of Composite Ceramic Materials and Structures
复合陶瓷材料和结构的闪速烧结
批准号:
EP/R029873/1
负责人:
Claire Dancer
金额:
$24.78万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --

项目摘要

项目成果

Claire Dancer的其他基金

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中文摘要
翻译
陶瓷材料的应用范围很广,包括运动传感器、电动汽车的能量存储、牙齿替换、髋关节和膝关节植入物、切割刀片、车身和车辆装甲。即使在高温和腐蚀性环境中,它们也非常耐用,并且在使用寿命结束时可以重复使用或回收。然而,制造成本高是陶瓷材料使用的主要障碍。生产具有最小孔隙率的致密强陶瓷材料需要加热到非常高的温度,通常超过1000摄氏度,持续数小时。最近,科学家们发现,在加热过程中通过电场穿过陶瓷,可以显著降低陶瓷致密化过程(烧结)的温度和持续时间。这种“闪蒸烧结”工艺之所以被称为“闪蒸烧结”工艺,是因为材料在几秒钟内迅速致密化,并且经常同时发光,它有可能显著减少工业规模陶瓷制造中的能源消耗,并将该工艺产生的温室气体排放量减少高达40%。闪速烧结技术通过降低生产陶瓷材料的成本和对环境的影响,可能会彻底改变陶瓷制造业。在这个研究项目中,将对闪速烧结方法进行详细的调查,以确定该技术在广泛的陶瓷材料中使用的可行性,特别是了解导致闪速烧结效果的潜在机制。建立灵活的闪速烧结设备,可用于各种陶瓷材料的闪速烧结。具有不同电导率的复合材料将在不同条件下进行闪蒸烧结。该结果将用于了解材料特性和过程中涉及的变量(例如电场强度、电流、电压和温度)对观察到的闪烧行为的影响。材料将通过测量其密度,使用扫描电子显微镜成像和绘制化学成分图来表征,并使用x射线衍射来确定由闪蒸烧结过程引起的材料相组成的任何变化。通过闪速烧结,将首次获得由陶瓷复合材料分层组成的结构,并研究与含有每种单独成分的样品相比,闪速烧结行为如何变化。该项目的成果将由我们的工业项目合作伙伴Lucideon和Morgan Advanced Materials用于闪速烧结技术的工业开发和应用。
英文摘要
Ceramic materials are used in a wide range of applications including motion sensors, for energy storage in electric vehicles, dental replacement, hip and knee implants, cutting blades, and body and vehicle armour. They are exceptionally durable, even at high temperatures and in corrosive environments, and can be reused or recycled at the end of their life. However the high cost of manufacturing is a major barrier to the use of ceramic materials. Producing a dense strong ceramic material with minimal porosity requires heating to very high temperatures well over 1000 deg.C typically for many hours. Recently scientists have discovered that the temperature and duration of the ceramic densification process (sintering) can be significantly reduced by passing an electric field through the ceramic during the heating process. This "flash sintering" process, so-called because the material densifies extremely rapidly within a few seconds and often with the simultaneous emission of light, has potential to significantly reduce energy use in industrial-scale ceramic manufacturing and reduce emissions of greenhouse gases from the process by up to 40%. The flash sintering technique may revolutionise the ceramic manufacturing industry by reducing the cost and environmental impact of producing ceramic materials.In this research project a detailed investigation of the flash sintering method will be undertaken to establish the viability of this technique for use with a wide range of ceramic materials and particularly to understand the underlying mechanisms which cause the flash sintering effect. A flexible flash sintering facility will be established which can be used to flash sinter a wide range of ceramic materials. Composite materials with varying electrical conductivity will be flash sintered under different conditions. The results will used to understand the effect of both the material properties and the variables involved in the process (e.g. electric field strength, current, voltage, and temperature) on the observed flash sintering behaviour. Materials will be characterised by measuring their density, imaging using scanning electron microscopy and mapping the chemical composition, and using X-ray diffraction to determine any changes to the phase composition of the materials caused by the flash sintering process. New insights will be gained by flash sintering for the first time a structure made of layers of ceramic composite materials graded by composition and examining how the flash sintering behaviour changes compared to samples containing each individual composition. The results of this project will be used by our industrial project partners Lucideon and Morgan Advanced Materials in the industrial development and application of flash sintering technology.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1557/s43577-020-00010-2
发表时间: 2021-01-01
期刊: MRS BULLETIN
影响因子: 5
作者: [Jones, Gareth M., Biesuz, Mattia, Dancer, Claire E. J.]
通讯作者: Dancer, Claire E. J.
Characterisation of damage mechanisms in oxide ceramics indented at dynamic and quasi-static strain rates
动态和准静态应变率下压痕氧化物陶瓷损伤机制的表征
DOI: 10.1016/j.jeurceramsoc.2019.06.054
发表时间: 2019
期刊: Journal of the European Ceramic Society
影响因子: 5.7
作者: [Dancer C]
通讯作者: Dancer C
Sintering Ceramics at Room Temperature using Phase-Changing Additives
  • 批准号:
    EP/X019055/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $25.59万
  • 财政年份:
    2023
  • 负责人:
    Claire Dancer
  • 依托单位:
海外基金