Gurdián Hebé, García-Alcocel Eva, Baeza-Brotons Francisco, Garcés Pedro, Zornoza Emilio
Civil Engineering Deparment, Universidad de Alicante, Ctra. San Vicente s/n, San Vicente del Raspeig 03690, Spain.
Architectural Constructions Department, Universidad de Alicante, Ctra. San Vicente s/n, San Vicente del Raspeig 03690, Spain.
Materials (Basel). 2014 Apr 21;7(4):3176-3197. doi: 10.3390/ma7043176.
The main strategy to reduce the environmental impact of the concrete industry is to reuse the waste materials. This research has considered the combination of cement replacement by industrial by-products, and natural coarse aggregate substitution by recycled aggregate. The aim is to evaluate the behavior of concretes with a reduced impact on the environment by replacing a 50% of cement by industrial by-products (15% of spent fluid catalytic cracking catalyst and 35% of fly ash) and a 100% of natural coarse aggregate by recycled aggregate. The concretes prepared according to these considerations have been tested in terms of mechanical strengths and the protection offered against steel reinforcement corrosion under carbonation attack and chloride-contaminated environments. The proposed concrete combinations reduced the mechanical performance of concretes in terms of elastic modulus, compressive strength, and flexural strength. In addition, an increase in open porosity due to the presence of recycled aggregate was observed, which is coherent with the changes observed in mechanical tests. Regarding corrosion tests, no significant differences were observed in the case of the resistance of these types of concretes under a natural chloride attack. In the case of carbonation attack, although all concretes did not stand the highly aggressive conditions, those concretes with cement replacement behaved worse than Portland cement concretes.
减少混凝土行业环境影响的主要策略是回收利用废料。本研究考虑了用工业副产品替代水泥,以及用再生骨料替代天然粗骨料。目的是通过用工业副产品替代50%的水泥(15%的废流化催化裂化催化剂和35%的粉煤灰)和用再生骨料替代100%的天然粗骨料,来评估对环境影响较小的混凝土的性能。根据这些考虑制备的混凝土已在机械强度以及在碳化侵蚀和氯化物污染环境下对钢筋腐蚀的防护方面进行了测试。所提出的混凝土组合在弹性模量、抗压强度和抗弯强度方面降低了混凝土的力学性能。此外,观察到由于再生骨料的存在导致开口孔隙率增加,这与力学试验中观察到的变化一致。关于腐蚀试验,在自然氯化物侵蚀情况下,这些类型的混凝土的耐久性没有观察到显著差异。在碳化侵蚀情况下,尽管所有混凝土都无法承受高度侵蚀性条件,但用水泥替代品制成 的混凝土比波特兰水泥混凝土表现更差。