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Recycling woven plastic sack waste and PET bottle waste as fiber in recycled aggregate concrete: An experimental study

机译:再生塑料混凝土中的塑料编织袋废料和PET瓶废料的回收利用:一项实验研究

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The objective of this study was to investigate the potential engineering of Recycled PET Bottles Waste (RPET) and Recycled Woven Plastic Sack Waste (RWS) fiber reinforced Recycled Aggregate Concrete (RAC). Currently, the amount of Construction and Demolition Waste (CDW) and plastic waste are rapidly increasing and becoming a burden for many nations. The present research is an effort to reduce the amount of solid waste as a good solution for waste management and preserve the environment. The effects of RWS and RPET fibers on RAC were evaluated based on mechanical properties and durability of concrete. The experimental results indicated that RPET and RWS fibers have high alkali resistance in alkaline environments and showed no detectable degradation in RAC at 90 days. The combination of Silica Fume (SF) and RPET fiber increased 3.6-9% compressive strength, 16.9-21.5% elastic modulus, 11.8-20.3% splitting tensile strength, 7-15% shear strength of RAC in comparison with RAC samples without fiber, while these values in RWS fiber reinforced RAC were lower. RWS and RPET fiber enhanced the post-cracking behavior of RAC. The contribution of RPET in the improvement of the RAC properties was better than that of RWS fiber although the RWS fiber has higher tensile strength than that of RPET fiber. Furthermore, SF and the proposed mixing technique increased the performance of RAC with 100% coarse RCA and compensated the loss of the compressive strength due to RPET and RWS fiber. (C) 2018 Elsevier Ltd. All rights reserved.
机译:这项研究的目的是研究再生PET瓶废料(RPET)和再生编织塑料袋废料(RWS)纤维增强再生骨料混凝土(RAC)的潜在工程。当前,拆建废料(CDW)和塑料废料的数量正在迅速增加,并成为许多国家的负担。本研究致力于减少固体废物的量,将其作为废物管理和保护环境的良好解决方案。基于混凝土的机械性能和耐久性,评估了RWS和RPET纤维对RAC的影响。实验结果表明,RPET和RWS纤维在碱性环境下具有较高的耐碱性,并且在90天时未发现RAC降解。与不含纤维的RAC样品相比,硅粉(SF)和RPET纤维的组合提高了RAC的3.6-9%的抗压强度,16.9-21.5%的弹性模量,11.8-20.3%的分裂抗张强度,7-15%的剪切强度,而RWS纤维增强RAC中的这些值较低。 RWS和RPET纤维增强了RAC的后裂纹行为。尽管RWS纤维的拉伸强度高于RPET纤维,但RPET在改善RAC性能方面的贡献要优于RWS纤维。此外,SF和拟议的混合技术可提高RAC的性能,使其具有100%的粗RCA,并补偿了RPET和RWS纤维导致的抗压强度损失。 (C)2018 Elsevier Ltd.保留所有权利。

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