Suppr超能文献

AlO烧结增强铝基金属基复合材料饱和条件的测定

Determination of Saturation Conditions of the Aluminum Metal Matrix Composites Reinforced with AlO Sinter.

作者信息

Szymański Paweł, Popielarski Paweł, Czarnecka-Komorowska Dorota, Sika Robert, Gawdzińska Katarzyna

机构信息

Institute of Materials Technology, Poznan University of Technology, Piotrowo 3 Str., 61-138 Poznan, Poland.

Faculty of Marine Engineering, Maritime University of Szczecin, Willowa 2-4, 71-650 Szczecin, Poland.

出版信息

Materials (Basel). 2023 Sep 7;16(18):6106. doi: 10.3390/ma16186106.

Abstract

Aluminum metal matrix composites (Al MMCs) are a class of materials characterized by being light in weight and high hardness. Due to these properties, Al MMCs have various applications in the automobile, aeronautical and marine industries. Ceramic-reinforced Al MMCs in the form of sinters are known for having excellent abrasive properties, which makes them an attractive material in certain fields of technology. The biggest problem in their production process is their low ability to infiltrate ceramics with alloys and consequently the difficulty of filling a ceramic preform. The castability of such composites has not yet been researched in detail. The aim of this study was to create aluminum metal matrix composite castings based on aluminum alloys (AlSi11) reinforced with an AlO sinter preform using a Castability Trials spiral mold, and then to determine the degree of saturation with the liquid metal of the produced ceramic shaped body (Castability Trials spiral). For the selected AlSi11 alloy, the liquidus (Tl) and solidus (Ts) temperatures were determined by performing thermal-derivation analysis during cooling, which is Tl-579.3 °C and Ts-573.9 °C. The resultant pressure necessary for the infiltration process was estimated for the reinforcement capillaries with the following dimensions: 10, 15, 20, 25, 30 and 35 microns. The following values were used to determine the capillary pressure (Pk): surface tension of the alloy-σ = 840 mN/m; the extreme wetting angle of the reinforcement by the metal-θ = 136°. It has been experimentally confirmed that for the vacuum saturation process, the estimated resultant pressure enables saturation of reinforcement with capillaries larger than 25 microns, provided that the alloy temperature does not drop lower than the infiltration temperature. After the experiment, the time and route of the liquid metal flow in the spiral were determined. On the basis of the obtained values, a simulation was developed and initial assumptions such as saturation time, alloy temperature, reinforcement and mold temperature were verified. The energy balance showed that the saturation limit temperature was Tk = 580.7 °C for the reinforcement temperature of 575 °C. In contrast to the above, the assumption that the temperature of the metal after equalizing the temperature of the composite components must be higher than the liquidus temperature (Tliq = 579.3 °C) for the aluminum alloy used must be fulfilled. After the experiment, the time and path of the liquid metal flow in the spiral were determined. Then, on the basis of the obtained values, a simulation was developed, and the initial assumptions (saturation time and temperature) were verified.

摘要

铝基金属基复合材料(Al MMCs)是一类具有重量轻、硬度高特点的材料。由于这些特性,Al MMCs在汽车、航空和船舶工业中有多种应用。烧结形式的陶瓷增强Al MMCs以其优异的耐磨性能而闻名,这使其在某些技术领域成为有吸引力的材料。其生产过程中最大的问题是合金渗透陶瓷的能力低,因此难以填充陶瓷预制件。此类复合材料的铸造性能尚未得到详细研究。本研究的目的是使用铸造性能试验螺旋模具制造基于AlO烧结预制件增强的铝合金(AlSi11)的铝基金属基复合材料铸件,然后确定所生产的陶瓷成型体(铸造性能试验螺旋体)的液态金属饱和程度。对于所选的AlSi11合金,通过冷却过程中的热导数分析确定液相线(Tl)和固相线(Ts)温度,分别为Tl - 579.3℃和Ts - 573.9℃。对尺寸为10、15、20、25、30和35微米的增强毛细管估计了渗透过程所需的合成压力。使用以下值确定毛细管压力(Pk):合金的表面张力 - σ = 840 mN/m;金属对增强材料的极限润湿角 - θ = 136°。实验证实,对于真空饱和过程,只要合金温度不降至低于渗透温度,估计的合成压力能够使大于25微米的毛细管增强材料饱和。实验后,确定了液态金属在螺旋体中的流动时间和路径。基于获得的值,开发了一个模拟,并验证了诸如饱和时间、合金温度、增强材料和模具温度等初始假设。能量平衡表明,对于增强材料温度为575℃,饱和极限温度为Tk = 580.7℃。与此相反,对于所用铝合金,复合部件温度平衡后金属温度必须高于液相线温度(Tliq = 579.3℃)这一假设必须成立。实验后,确定了液态金属在螺旋体中的流动时间和路径。然后,基于获得的值,开发了一个模拟,并验证了初始假设(饱和时间和温度)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6e7/10532971/d926fbe6c254/materials-16-06106-g001.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验