Design of an innovative self-compacting material modified with recycled steel fibers and spent equilibrium catalyst for ultra-high performance applications

Hassan Abdolpour, Paweł Niewiadomski, Łukasz Sadowski, Arkadiusz Kwiecień
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 The developed mortars' self-compatibility was evaluated in a fresh stage using mini-cone tests. Regarding the hardened stage, the mortars were characterized at the ages of 7 days and 28 days using compression and unnotched flexural tests. The abilities of RSF to increase the post-cracking behavior of the specimens and to use Ecat to increase the bond performance between RSF and the cement matrix were assessed by performing notched three-point bending tests. The results of notched flexural tests were used to obtain the residual flexural strength in service limit state (SLS), ultimate limit state (ULS), and two equivalent flexural strengths.
 The experimental results for the fresh stage demonstrated that inclusion of RSF and Ecat significantly reduced the workability of mortars. The beneficial use of RSF and Ecat was observed to increase compressive strength and flexural strength for 7 days and 28 days of tested specimens. Notched flexural tested specimens showed that the addition of RSF and Ecat can significantly decrease the brittle behavior of cement-based materials by improving its toughness and post-cracking resistance. Middle-span deflection, crack initiation load, and ultimate flexural load were also increased with the addition of RSF and Ecat. In this sense, the results of this research showed that RSF and Ecat seem to have the potential to constitute a sustainable material for structural and nonstructural applications.","PeriodicalId":36339,"journal":{"name":"U.Porto Journal of Engineering","volume":"72 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-09-22","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"U.Porto Journal of Engineering","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.24840/2183-6493_009-004_001741","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q4","JCRName":"Engineering","Score":null,"Total":0}
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Abstract

The main aim of the present study is to design an innovative self-compacting material modified with recycled steel fibers (RSF) from waste tires and spent equilibrium catalyst (Ecat) from the petrochemical industry for ultra-high performance application. For this purpose, 17 different mixtures were developed and analysed using different percentages of RSF (0%-3%) and replacement of cement by different percentages of Ecat (0%-15%). The developed mortars' self-compatibility was evaluated in a fresh stage using mini-cone tests. Regarding the hardened stage, the mortars were characterized at the ages of 7 days and 28 days using compression and unnotched flexural tests. The abilities of RSF to increase the post-cracking behavior of the specimens and to use Ecat to increase the bond performance between RSF and the cement matrix were assessed by performing notched three-point bending tests. The results of notched flexural tests were used to obtain the residual flexural strength in service limit state (SLS), ultimate limit state (ULS), and two equivalent flexural strengths. The experimental results for the fresh stage demonstrated that inclusion of RSF and Ecat significantly reduced the workability of mortars. The beneficial use of RSF and Ecat was observed to increase compressive strength and flexural strength for 7 days and 28 days of tested specimens. Notched flexural tested specimens showed that the addition of RSF and Ecat can significantly decrease the brittle behavior of cement-based materials by improving its toughness and post-cracking resistance. Middle-span deflection, crack initiation load, and ultimate flexural load were also increased with the addition of RSF and Ecat. In this sense, the results of this research showed that RSF and Ecat seem to have the potential to constitute a sustainable material for structural and nonstructural applications.
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设计一种创新的自密实材料,用回收的钢纤维和废平衡催化剂改性,用于超高性能应用
本研究的主要目的是设计一种创新的自压实材料,该材料由来自废轮胎的再生钢纤维(RSF)和来自石化工业的废平衡催化剂(Ecat)改性,用于超高性能应用。为此,开发了17种不同的混合料,并使用不同比例的RSF(0%-3%)和不同比例的Ecat(0%-15%)替代水泥进行了分析。采用微锥试验对所研制的砂浆进行了新阶段的自相容性评价。关于硬化阶段,通过压缩和无缺口弯曲试验,对砂浆在7天和28天的龄期进行了表征。通过切口三点弯曲试验,评估了RSF提高试件开裂后性能的能力,以及利用Ecat提高RSF与水泥基体粘结性能的能力。利用缺口弯曲试验的结果,得到了试件在使用极限状态(SLS)、极限状态(ULS)和两种等效抗弯强度下的剩余抗弯强度。 新鲜阶段的试验结果表明,RSF和Ecat的掺入显著降低了砂浆的和易性。RSF和Ecat的有效使用可以提高试件的抗压强度和抗弯强度,持续时间为7天和28天。缺口弯曲试验表明,RSF和Ecat的加入可以通过提高水泥基材料的韧性和抗后裂性来显著降低水泥基材料的脆性行为。梁间挠度、起裂荷载和极限抗弯荷载均随荷载的增加而增大。从这个意义上说,这项研究的结果表明,RSF和Ecat似乎有潜力构成结构和非结构应用的可持续材料。
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来源期刊
U.Porto Journal of Engineering
U.Porto Journal of Engineering Engineering-Engineering (all)
CiteScore
0.70
自引率
0.00%
发文量
58
审稿时长
20 weeks
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